Economic, Social, and Environmental Contributions of Water Buffalo (Bubalus bubalis) Production to the Sustainable Development Goals: A Review
Abstract
1. Introduction
2. Methodology
2.1. Review Approach
2.2. Literature Search Strategy
2.3. Eligibility Criteria and Study Selection
3. General Characteristics of Water Buffalo
4. Economic Dimension: Productivity and Efficiency
4.1. Buffalo Production as Strategic Biological Capital and Economic Resilience
4.2. Multi-Purpose Productive Profile of Water Buffalo
4.2.1. Buffalo Milk
4.2.2. Buffalo Meat
4.2.3. Buffalo Draft Power
4.2.4. Buffalo Hide and Leather: Industrial Valorization and Economic Potential
4.2.5. Longevity of Buffalo
4.2.6. Circular Bioeconomy and Waste Valorization in Buffalo Production
4.2.7. Use in Animal-Assisted Services
5. Social Dimension: Food Systems and Social Equity
| Parameter | Cow [8,32,91,92,151,152,153,154,155] | Buffalo [8,18,32,91,92,151,152,153,154,156,157] | Goat [91,92,151,152,153,154,155] | Sheep [91,92,151,152,153,154] | Camel [91,151,152,153,154,155] |
|---|---|---|---|---|---|
| Dry matter (%) | 12.42 ± 0.58 (11.80–13.00) | 16.30 ± 0.77 (15.61–17.70) | 14.01 ± 3.27 (11.70–16.33) | 17.60 ± 1.27 (16.70–18.50) | 11.50 ± 2.68 (9.60–13.40) |
| Total solids (%) | 12.38 ± 1.14 (10.80–13.86) | 17.58 ± 1.22 (15.70–20.18) | 13.11 ± 1.62 (11.57–16.30) | 18.00 ± 1.28 (16.86–19.73) | 11.23 ± 0.88 (10.44–12.44) |
| Solid non-fat (%) | 9.18 ± 0.67 (8.24–9.78) | 10.74 ± 2.15 (8.30–15.73) | 9.69 ± 0.17 (9.57–9.81) | 12.12 ± 0.47 (11.79–12.46) | 8.54 ± 0.02 (8.53–8.56) |
| Fat (%) | 4.01 ± 0.59 (3.30–5.40) | 7.28 ± 0.89 (5.70–8.98) | 4.11 ± 0.86 (3.07–5.30) | 7.10 ± 0.59 (6.36–7.90) | 3.24 ± 1.45 (1.90–6.00) |
| Protein (%) | 3.51 ± 0.65 (2.90–5.40) | 4.41 ± 0.55 (2.70–5.20) | 3.59 ± 0.74 (2.90–5.20) | 5.53 ± 0.59 (4.95–6.30) | 3.00 ± 0.36 (2.40–3.42) |
| Lactose (%) | 4.94 ± 0.43 (4.40–5.60) | 4.76 ± 0.67 (3.20–5.36) | 4.34 ± 0.61 (3.20–5.00) | 4.52 ± 0.55 (3.70–4.90) | 4.41 ± 0.38 (4.05–4.90) |
| Ash (%) | 0.73 ± 0.06 (0.65–0.80) | 0.81 ± 0.09 (0.60–0.90) | 0.82 ± 0.07 (0.73–0.90) | 0.88 ± 0.07 (0.82–0.98) | 0.83 ± 0.06 (0.69–0.90) |
| Energy (kcal/100 g) | 66.90 ± 4.38 (62.74–72.13) | 104.86 ± 8.27 (96.90–116.55) | 63.53 (single value) | 105.80 (single value) | - |
| pH | 6.63 ± 0.01 (6.62–6.65) | 6.68 ± 0.08 (6.61–6.81) | 6.55 ± 0.09 (6.50–6.66) | 6.56 ± 0.08 (6.49–6.66) | 6.55 ± 0.15 (6.44–6.66) |
| Acidity (%) | 0.11 (single value) | 0.16 ± 0.03 (0.12–0.19) | 0.14 ± 0.03 (0.11–0.18) | 0.20 ± 0.06 (0.13–0.25) | 0.12 ± 0.01 (0.11–0.13) |
| Casein (g/100 g) | 2.69 ± 0.38 (2.28–3.27) | 3.19 ± 0.26 (2.93–3.61) | 2.55 ± 0.42 (2.14–3.18) | 4.28 ± 0.57 (3.78–5.20) | 2.29 ± 0.18 (2.10–2.46) |
| Bioactive Component | Health Effect Potential | Biological Source | Molecular Mechanism | Reference |
|---|---|---|---|---|
| Betaines δ-valerobetaine (δVB) γ-butyrobetaine (γ-BB) Glycine betaine | Antioxidant Anti-inflammatory, cytoprotective Antineoplastic effect | Milk, whey, buffalo products (ricotta, mozzarella) | ↓ Pro-inflammatory cytokines (TNF-α, IL-1β and IL-6) ↓ ROS in endothelial cells ↓ Lipid peroxidation Amelioration of high-glucose cytotoxicity ↓ intracellular malondialdehyde ↑ SIRT1 and SIRT6; inhibition of NF-κB nuclear translocation Antineoplastic effects in human colon and in head and neck squamous carcinoma cells ↑ Autophagy in cancer cells ↓ fatty acid β-oxidation in mouse cardiomyocytes ↑ Necroptosis (RIPK1/RIPK3/MLKL axis) and Apoptosis (Cleaved Caspase-3/PARP-1). Synergistic with δ-valerobetaine | [32,162,163,167,168,169,170] |
| L-carnitine | Antioxidant Anti-inflammatory | Milk, Whey, buffalo products (ricotta, mozzarella) | On endothelial cells and platelets ↑ Neuropeotective potential in central and peripheral nervous regulation of BDNF | [162,167,170] |
| Short-chain Acylcarnitines: acetyl-L-carnitine (C2Car) (ALCAR) Propionyl-L-carnitine (C3Car) Butytyl-L-carnitine (nC4Car) Isobutyryl-L-carnitine (iC4Car) | Cytoprotective, antioxidant, anti-inflammatory responses | Milk, whey, buffalo products (ricotta, mozzarella), meat | ↑ Cytotoxic effects on human colon cancer cells and tongue squamous carcinoma cells ↓ ROS in human umbilical vein endothelial cells ↓ Expression of chemokines and adhesion molecules ↓ TNF-α-mediated inflammatory angiogenesis | [162,167,169,170] |
| RELEE | Can alleviate oxidative stress by reducing ROS | Hydrolysis of buffalo casein | High Trolox equivalent antioxidant capacity | References |
| VLPVPQK (from buffalo β-casein) | Can alleviate oxidative stress by reducing ROS Apoptotic effect | Milk, hydrolyzed buffalo casein | ↑ Nuclear translocation of Nrf2 via Keap 1 ↑ Expression of antioxidant enzyme HO-1 ↓ ROS and mitochondrial damage ↓ Apoptosis (↑ Bcl-2/↓ Bax ratio) | [32,171,172] |
| Lipid fraction/PUFAS | Hypolipidemic and Hepatic protection | Milk | ↑ mRNA expression of hepatic genes ↓ Accumulation of total cholesterol and triglycerides in hepatocytes ↓ Hepatic fat | [173] |
| Casein peptides (EDVPSER, NAVPITPTL, VLPVPQK, HPHPHLSF) | Bone-promoting and Anti-osteoporotic in rats | Milk (casein hydrolysates) | ↑ Expression of osteoblast markers ↑ Bone mineral density and matrix mineralization ↓ Bone resorption cytokines (RANKL, TNF-α, IL-6) | [32,174,175] |
| YPFPGPIPN (Casein peptide) | Antidiabetic (glycemic regulation) | Milk (buffalo casein) | Inhibition of DPP-4 enzyme for maintaining blood glucose homeostasis | [174] |
| RNAVPITPTLNR, TKVIPYVRYL, YLGYLEQLLR, FALPQYLK (Casein peptide from αs1-CN, αs2-CN, and β-CN) | Antidiabetic (hypoglycemic) | Milk (buffalo casein) | Inhibition of α-glucosidase for maintaining blood glucose homeostasis | [176] |
| YVEELKPTPEGDL (β-lactoglobulin peptide) | Gastrointestinal protection and antioxidant | Ricotta cheese | ↓ ROS release; ↑ Nrf2 activation; ↑ Cytoprotective factors (HO-1, NQO1, SOD) | [177] |
| FPGPIPK, IPPK, IVPN, QPPQ, YPSG, HPFA, KFQ | Antioxidant and hypotensive | Skimmed buffalo milk | ↓ ACE (angiotensin-converting enzyme) activity ↑ Free radical scavenging | [172] |
| YQEPVLGPVR | Anti-inflammatory and antioxidant | Buffalo milk casein | ↓ Splenocyte proliferation ↓ Inflammatory cytokines (IFN-γ) ↑ Regulatory cytokines (IL-10 and TGF-β) ↑ Phagocytic activity ↓ ROS generation and oxidative stress (H2O2) ↑ Antioxidant enzymes (Catalase and GPx) ↓ mRNA expression of Nrf-2 | [178] |
| Parameter | Broiler [188,189,190,191] | Pork [158,189,192,193,194] | Beef [17,158,182,189,192,193,195,196,197,198] | Lamb [158,189,199,200] | Goat [158,189,201,202] | Buffalo [17,110,158,182,184,185,189,196,197,198,203] |
|---|---|---|---|---|---|---|
| Moisture (%) | 75.58 ± 2.37 (70.0–77.6) | 69.00 ± 1.41 (68.0–70.0) | 73.30 ± 2.62 (69.3–78.7) | 73.37 ± 2.34 (70.0–75.8) | 76.24 ± 1.10 (74.5–78.7) | 75.05 ± 2.33 (71.6–78.8) |
| Protein (%) | 20.91 ± 2.11 (18.5–23.8) | 20.40 ± 1.60 (19.0–22.2) | 20.18 ± 1.95 (16.5–23.0) | 20.84 ± 0.77 (19.4–21.9) | 19.96 ± 1.83 (16.2–23.4) | 21.50 ± 1.88 (18.3–23.8) |
| Fat (%) | 2.31 ± 2.58 (0.1–7.0) | 7.35 ± 2.97 (4.7–11.0) | 3.57 ± 2.60 (1.2–10.3) | 5.31 ± 1.92 (2.7–8.2) | 3.31 ± 2.44 (1.2–10.5) | 2.26 ± 1.16 (0.5–4.1) |
| Ash (%) | 1.07 ± 0.08 (0.9–1.1) | - | 1.00 ± 0.04 (0.8–1.0) | 1.11 ± 0.03 (1.0–1.1) | 1.07 ± 0.10 (0.9–1.2) | 0.99 ± 0.13 (0.5–1.1) |
| SFA (%) | 32.40 ± 6.33 (25.4–44.7) | 30.08 ± 4.39 (24.1–36.3) | 41.35 ± 5.92 (22.0–46.6) | 49.43 ± 8.27 (39.5–60.2) | 46.88 ± 5.48 (38.7–52.4) | 40.15 ± 8.54 (18.5–59.1) |
| MUFA (%) | 30.09 ± 7.42 (20.5–43.7) | 40.89 ± 8.87 (29.3–57.4) | 34.13 ± 9.53 (15.1–51.6) | 33.87 ± 5.49 (25.1–41.3) | 47.38 ± 5.58 (41.3–56.8) | 29.98 ± 13.08 (8.8–77.3) |
| PUFA (%) | 35.47 ± 4.60 (25.3–44.0) | 13.91 ± 6.38 (5.5–33.0) | 22.74 ± 12.37 (4.4–41.4) | 11.02 ± 10.51 (0.3–25.1) | 7.44 ± 2.52 (4.5–10.9) | 16.36 ± 9.38 (1.5–31.1) |
| Cholesterol | 32.74 ± 5.57 (23.5–36.7) | 36.03 ± 9.47 (26.7–49.2) | 41.97 ± 9.17 (28.8–46.3) | 36.07 ± 1.80 (34.1–37.7) | 65.81 ± 2.45 (62.4–69.0) | 44.43 ± 9.07 (32.2–64.5) |
| n-6/n-3 ratio | 7.39 ± 4.26 (2.3–13.0) | 7.57 ± 3.14 (3.7–11.4) | 13.62 ± 8.35 (3.9–20.8) | 4.68 ± 2.37 (1.9–8.5) | 2.95 ± 0.26 (2.6–3.2) | 4.06 ± 3.10 (0.5–12.4) |
| AI | 0.46 ± 0.36 (0.2–1.1) | 0.45 ± 0.01 (0.4–0.4) | 0.55 ± 0.09 (0.4–0.6) | 1.29 ± 0.54 (0.6–2.1) | 0.40 ± 0.03 (0.3–0.4) | 0.45 ± 0.12 (0.3–0.6) |
| TI | 0.66 ± 0.28 (0.3–1.2) | 1.01 ± 0.06 (0.9–1.0) | 1.33 ± 0.12 (1.1–1.4) | 1.65 ± 0.52 (0.8–2.2) | 0.61 ± 0.02 (0.5–0.6) | 0.78 ± 0.51 (0.2–1.6) |
Social Equity, Gender Roles, and Empowerment in Buffalo Farming
6. Environmental Dimension: Resilience and Planet (SDGs 13, 15)
6.1. Climate Action and Methane Mitigation Strategies (SDG 13)
| Species | Type of Production Systems and Country | Methodology | Methane Emission (CH4) (% Total of Emissions or kg/Head) | Carbon Footprint (kg CO2eq) | Observations | Reference |
|---|---|---|---|---|---|---|
| Buffalo | High-input intensive system, Italy | Cradle-to-farm gate LCA | 45% enteric CH4; 25% indirect emissions. | Milk: 3.75 kg CO2 (2.87–5.2) eq/kg de FPCM (baseline value). Meat: 3.70 kg CO2 eq/kg live weight | The footprint drops to 3.27–3.45 kg when including herd growth functionality and economic allocation. | [52] |
| Cattle and buffalo | Multifunctional smallholder dairy system. Anand, Gujarat (India) | Cradle-to-farm gate LCA | Cattle: 75.4% Buffalo: 80.5% | Cow: 1.9–2.3 kg CO2-eq/kg FPCM. Buffalo: 2.5–3.0 kg CO2-eq/kg FPCM | Footprint is reduced to 1.7 kg CO2-eq when economic functions (manure, finance, and insurance) are considered. | [222] |
| Buffalo | Confinement (C), free-ranging (FR), Italy | Cradle-to-farm gate LCA | 49.70 y 101.66 kg CH4/head/yr (total) | FR: 3.68 kg CO2 eq/kg de FPCM. C: 4.01 kg CO2 eq/kg de FPCM | Intensive system; higher environmental impact due to high input dependency. Rearing on natural pasture reduced the global climate impact by 9%. | [82] |
| Buffalo | Intensive farms, Italy | Cradle-to-farm gate LCA | 65% of the total | 3.4–6.4 kg CO2 eq/kg FPCM (depending on allocation) 28.9–33.9 kg CO2 eq/kg of mozzarella | Milk production accounts for 95% of total GWP. Strategy: improve farm efficiency to reduce impact per kg of cheese. | [83] |
| Buffalo | Intensive systems: wheat crop integration (WWC) vs. no wheat (NWC), Italy | Cradle-to-farm gate LCA | - | NWC: 4.91 kg CO2-eq/kg FPCM. WWC: 5.19 kg CO2-eq/kg FPCM | In WWC emissions increase, but eutrophication is significantly reduced thanks to better nutrient management and the use of straw. | [50] |
| Buffalo | Intensive systems: corn silage (CS) vs. non-corn silage (NCS), Italy | Cradle-to-farm gate LCA | 87% of on-farm emissions derived from enteric fermentation | 4.96–5.29 kg CO2 eq/kg NBM (no significant difference between systems). Functional unit: 1 kg normalized buffalo milk (NBM) | CS systems showed lower Acidification and Eutrophication impacts due to higher dry matter yields per hectare. | [87] |
| Buffalo | Hilly and plain regions (mixed/seasonal), Nepal | IPCC Tier 2 | 36.5–97.5 kg/CH4/head/year | - | Enteric fermentation contributes 92.6% and manure management 7.4% of CH4/head/year. Enteric fermentation varies by live weight (77–530 kg). | [42] |
| Buffalo | Smallholder vs. organized farms, Hisar, Haryana, India | Cradle-to-farm gate LCA | Enteric: 50% of total GHG emissions. | Smallholder: 3.54 kg CO2 eq/L of milk. Organized: 4.53 kg CO2 eq/L of milk | Smallholder systems are environmentally superior due to lower total emissions per liter. | [223] |
| Cattle and Buffalo | Crop livestock farms), India | IPCC Tier 2 | Indigenous cattle: 39.17–41.26 kg CH4 kg/CH4/head/year Buffalo: 75.54–84.8 kg CH4 kg/CH4/head/year Crossbred cow: 74.78–83.98 kg/CH4/head/year | Indigenous cattle (0.90 kg CO2-eq/kg milk Buffalo: 0.83 kg CO2-eq/kg milk Crossbred cows: 0.68 kg CO2-eq/kg milk | Differences attributed to quantity and quality of feed available. Higher Productivity in indigenous cattle. | [224] |
| Country | Dietary Additive/Strategy | Study Type | Key Results | Description/Observations | Reference |
|---|---|---|---|---|---|
| India | Poplar (P. deltoides) and eucalyptus (E. citriodora) | In vivo (lactating buffaloes) | ↓ CH4 (37.3%). ↑ Daily milk, fat, and protein-corrected milk. ↑ Digestibility (DM, OM, NDF). | Phytogenic additive (PCFA) that improves production and health without inhibiting nutrients. | [236] |
| India | Eucalyptus oil (E. citriodora) | In vitro (24 h incubation) | Significant ↓ CH4. ↑ Digestibility and VFA at low dose. High dose (2.0 mL) reduces digestibility. | Leaf extract modulates fermentation. Low dose (0.5 mL/30 mL) is optimal for methane mitigation. | [241] |
| India | Eucalyptus leaves (E. citriodora) | In vivo (120 days, lactating) | ↓ CH4 and fecal Nitrogen. ↑ Yield, ruminal nitrogen, and nutrient digestibility. | Acts as a phytogenic ruminal modulator; increases productivity in a “climate-smart” system. | [242] |
| India | Garlic essential oil (Allium sativum) | In vitro (ANKOM-RF) | Significant ↓ methanogenesis. ↑ CLA and TVA. ↓ Total gas and digestibility. | Potent antimicrobial that improves fatty acid profile (nutraceutical) but affects digestibility. | [243] |
| India | Eucalyptus and poplar leaves (EPLM) | In vivo (10–14 months old) | ↓ Enteric CH4 and blood urea. ↑ Antioxidants (GSH, CAT, SOD) and immunity. | Mitigates methane and strengthens immunity at 50 g/d without altering nutrient use. | [244] |
| India | Garlic oil (GOL) doses | In vitro (24 h incubation) | ↓ CH4 in all doses. ↓ NH3-N (lower proteolysis). GOL-3 inhibits digestibility. | Low dose (33.33 µL/L) is effective without compromising fiber-degrading enzyme activity. | [240] |
| India | Saponins, tannins, and eucalyptus oil | In vitro (ruminal liquid) | Linear ↓ CH4 with increasing dose. Positive associative effect. | Blend reduces methane using lower individual doses, preventing negative impact on digestion. | [245] |
| India | Compound additive (CFA) (oils, leaves, salts) | In vivo (early lactation) | ↓ CH4 (44.9%). ↑ Milk yield and 6% FCM. ↑ Digestibility and immunity. | Designed as a combination of methane inhibitors, hydrogen sinks, and rumen stimulants. | [246] |
| India | Linoleic and linolenic acids | In vitro (batch culture) | ↓ CH4 up to 63% (linolenic 3%). ↑ Propionate. ↓ Protozoa and archaea. | Omega fatty acids shift fermentation toward higher energy efficiency (propionate). | [237] |
| China | Sodium nitrate and disodium fumarate | In vitro (batch culture) | Significant ↓ CH4. ↑ VFA and Propionate. Optimized fatty acid composition. | Fumarate acts as a hydrogen consumer and mitigates the adverse effects of nitrate. | [238] |
6.2. Conservation of Biodiversity and Terrestrial Ecosystems
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Gagaoua, M.; Gondret, F.; Lebret, B. Towards a ‘One quality’ approach of pork: A perspective on the challenges and opportunities in the context of the farm-to-fork continuum—Invited review. Meat Sci. 2025, 226, 109834. [Google Scholar] [CrossRef] [PubMed]
- Ndue, K.; Pál, G. European Green Transition Implications on Africa’s Livestock Sector Development and Resilience to Climate Change. Sustainability 2022, 14, 14401. [Google Scholar] [CrossRef]
- Lerma, L.M.; Díaz Baca, M.F.; Burkart, S. Public Policies for the Development of a Sustainable Cattle Sector in Colombia, Argentina, and Costa Rica: A Comparative Analysis (2010–2020). Front. Sustain. Food Syst. 2022, 6, 722522. [Google Scholar] [CrossRef]
- Chen, C.; Chaudhary, A.; Mathys, A. Dietary Change and Global Sustainable Development Goals. Front. Sustain. Food Syst. 2022, 6, 771041. [Google Scholar] [CrossRef]
- Varijakshapanicker, P.; McKune, S.; Miller, L.; Hendrickx, S.; Balehegn, M.; Dahl, G.E.; Adesogan, A.T. Sustainable livestock systems to improve human health, nutrition, and economic status. Anim. Front. 2019, 9, 39–50. [Google Scholar] [CrossRef] [PubMed]
- Keeling, L.; Tunón, H.; Olmos Antillón, G.; Berg, C.; Jones, M.; Stuardo, L.; Swanson, J.; Wallenbeck, A.; Winckler, C.; Blokhuis, H. Animal Welfare and the United Nations Sustainable Development Goals. Front. Vet. Sci. 2019, 6, 336. [Google Scholar] [CrossRef]
- Gama Pantoja, L.S.; Amante, E.R.; Manoel da Cruz Rodrigues, A.; Meller da Silva, L.H. World scenario for the valorization of byproducts of buffalo milk production chain. J. Clean. Prod. 2022, 364, 132605. [Google Scholar] [CrossRef]
- Vasile, F.E.; Muchut, L.C.; Fernández, A.B.; Bustos, L.F.; Chiariotti, A. Buffaloes in South America: A Promising and Sustainable Source of Dairy Proteins and Agro-Industrial Development. Sustain. Food Proteins 2025, 3, e70022. [Google Scholar] [CrossRef]
- Carruyo, G.M.; Calderón, E.; Hoet, A.E. Expansion of the buffalo agri-system and industry following the one health approach. Rev. Cient. FCV-LUZ. 2023, XXXIII, 64–72. [Google Scholar] [CrossRef]
- Naresha, N.; Dixit, A.K.; Singh, A.; Meena, B.S. Economic analysis of milk production in Southern and North coastal regions of Andhra Pradesh. Indian J. Dairy Sci. 2023, 76, 163–167. [Google Scholar] [CrossRef]
- Chandra, T.; Jaiswal, S.; Iquebal, M.A.; Datta, T.K.; Oberoi, H.S.; Kumar, D. Carabeef: Unexploited Healthy Meat from Climate-Resilient Water Buffaloes for Global Nutritional Security. Food Bioprocess Technol. 2025, 18, 7796–7826. [Google Scholar] [CrossRef]
- Makarabbi, G.; Saxena, N.; Sabu, A.; Tuteja, F.C.; Punetha, M. Cost and returns estimation and break-even point analysis of Murrah buffalo milk production in Haryana. Buffalo Bull. 2025, 44, 317–325. [Google Scholar] [CrossRef]
- Vargas-Ramella, M.; Pateiro, M.; Maggiolino, A.; Faccia, M.; Franco, D.; De Palo, P.; Lorenzo, J.M. Buffalo Milk as a Source of Probiotic Functional Products. Microorganisms 2021, 9, 2303. [Google Scholar] [CrossRef]
- Escarcha, J.F.; Lassa, J.A.; Palacpac, E.P.; Zander, K.K. Understanding climate change impacts on water buffalo production through farmers’ perceptions. Clim. Risk Manag. 2018, 20, 50–63. [Google Scholar] [CrossRef]
- Windsor, P.; Martin, S.; Khounsy, S.; Young, J.; Thomson, P.; Bush, R. Improved Milk Production from Supplementation of Swamp Buffalo with Molasses Nutrient Blocks Containing 10% Urea. Dairy 2021, 2, 90–103. [Google Scholar] [CrossRef]
- Pasquini, M.; Osimani, A.; Tavoletti, S.; Moreno, I.; Clementi, F.; Trombetta, M.F. Trends in the quality and hygiene parameters of bulk Italian Mediterranean buffalo (Bubalus bubalis) milk: A three year study. Anim. Sci. J. 2018, 89, 176–185. [Google Scholar] [CrossRef]
- Tamburrano, A.; Tavazzi, B.; Callà, C.A.M.; Amorini, A.M.; Lazzarino, G.; Vincenti, S.; Zottola, T.; Campagna, M.C.; Moscato, U.; Laurenti, P. Biochemical and nutritional characteristics of buffalo meat and potential implications on human health for a personalized nutrition. Ital. J. Food Saf. 2019, 8, 8317. [Google Scholar] [CrossRef]
- Becskei, Z.; Savić, M.; Ćirković, D.; Rašeta, M.; Puvača, N.; Pajić, M.; Đorđević, S.; Paskaš, S. Assessment of Water Buffalo Milk and Traditional Milk Products in a Sustainable Production System. Sustainability 2020, 12, 6616. [Google Scholar] [CrossRef]
- El-Hedainy, D.K.A.; Elbanhawy, K.A.K.; Amin, A.M.S.; Salem, M.M.I.; Hammoud, M.H.; El-Barbary, A.S.A. Genetic trend for milk production and longevity traits of Egyptian buffalo. Egypt. J. Anim. Prod. 2020, 57, 95–100. [Google Scholar] [CrossRef]
- Zava, M. The buffalo: Its origin, population, and importance in the world. In The Water Buffalo: General Information and Productive Characteristics; de la Cruz-Cruz, L.A., Maitret-Collado, E., Roldán-Santiago, P., Zava, M., Eds.; LID: Mexico City, Mexico, 2021; Volume 1, pp. 17–32. [Google Scholar]
- Paján-Jiménez, V.; Pazmiño-Rodríguez, F.D.; Roldán-Santiago, P.; Dutro-Aceves, A.; de la Cruz-Cruz, L.A.; Larrondo, C. Effects of different load weights on the work performance and physiological and hematobiochemical responses in working water buffalo. Vet. World 2023, 16, 2349–2357. [Google Scholar] [CrossRef]
- Chandran, P.C.; Dey, A.; Barari, S.K.; Kamal, R. Scenario and strategies for sustainable buffalo production in Eastern Region of India. Buffalo Bull. 2023, 42, 1–9. [Google Scholar] [CrossRef]
- Winiarti, S.; Prahara, A.; Murinto; Ismi, D.P. Pre-Trained Convolutional Neural Network for Classification of Tanning Leather Image. Int. J. Adv. Comput. Sci. Appl. 2018, 9, 212–217. [Google Scholar] [CrossRef]
- Fusco, G.M.; Di Mola, I.; Mori, M.; Cozzolino, E.; Morrone, B.; Trasacco, F.; Carillo, P. From Water Buffalo (Bubalus bubalis) Manure to Vermicompost: Testing a Sustainable Approach for Agriculture. Sustainability 2025, 17, 4253. [Google Scholar] [CrossRef]
- Özbay, G.; Koçak, E.; Ahmad, M.S. Pyrolysis of water buffalo manure: Influence of temperature and alkali hydroxide additives on the quality of bio-oil. Biocatal. Agric. Biotechnol. 2021, 38, 102230. [Google Scholar] [CrossRef]
- Cruz, H.D.F.; Olivier, J.A.S.; Canepa, J.R.L.; Fuentes, A.S.; Torres, A.D.P. Evaluation of biogas production from water buffalo (Bubalus bubalis) manure under tropical climate conditions. AIMS Energy 2026, 14, 275–290. [Google Scholar] [CrossRef]
- Bureekhampun, S.; Maneepun, C. Eco-Friendly and Community Sustainable Textile Fabric Dyeing Methods From Thai Buffalo Manure: From Pasture to Fashion Designer. SAGE Open 2021, 11, 21582440211058201. [Google Scholar] [CrossRef]
- Garber, P.; Turner, S. Entangled, unraveled, and reconfigured: Human-animal relations among ethnic minority farmers and water buffalo in the northern uplands of Vietnam. Environ. Plan. E Nat. Space 2023, 6, 2472–2494. [Google Scholar] [CrossRef]
- Escarcha, J.F.; Lassa, J.A.; Palacpac, E.P.; Zander, K.K. Livelihoods transformation and climate change adaptation: The case of smallholder water buffalo farmers in the Philippines. Environ. Dev. 2020, 33, 100468. [Google Scholar] [CrossRef]
- Viana, C.F.; Lopes, A.C.C.; Conrrado, R.S.; Resende, F.A.M.; Andrade, E.H.P.; Penna, C.F.A.M.; de Souza, M.R.; Bastianetto, E.; Fonseca, L.M. Buffalo milk quality: A study of seasonal influence on composition and somatic cell count. J. Dairy Sci. 2025, 108, 2215–2226. [Google Scholar] [CrossRef]
- Evangelista, C.; Bernabucci, U.; Basiricò, L. Effect of Antioxidant Supplementation on Milk Yield and Quality in Italian Mediterranean Lactating Buffaloes. Animals 2022, 12, 1903. [Google Scholar] [CrossRef]
- Liao, J.; Yang, J.; Suo, H.; Song, J. Buffalo milk: Nutritional composition, bioactive properties, and advances in processing technologies-a comprehensive review. Food Chem. X 2025, 29, 102647. [Google Scholar] [CrossRef]
- Zoia Arshad, A. Women’s participation and their constraints in livestock management activities: A case study of district Bahawalpur in Punjab, Pakistan. Int. J. Vet. Sci. Res. 2021, 7, 83–87. [Google Scholar] [CrossRef]
- Galiè, A.; Najjar, D.; Petesch, P.; Badstue, L.; Farnworth, C.R. Livestock Innovations, Social Norms, and Women’s Empowerment in the Global South. Sustainability 2022, 14, 3741. [Google Scholar] [CrossRef]
- Chiariotti, A.; Borghese, A.; Boselli, C.; Barile, V.L. Water Buffalo’s Adaptability to Different Environments and Farming Systems: A Review. Animals 2025, 15, 1538. [Google Scholar] [CrossRef] [PubMed]
- Sansamur, C.; Boonchuay, K.; Ngasaman, R.; Olana, K.O.A.; Punyapornwithaya, V. Epidemiology and factors associated with the infection of Babesia bigemina, Babesia bovis, and Theileria orientalis in Thale Noi Wetland buffaloes (Bubalus bubalis), Southern Thailand. BMC Vet. Res. 2025, 21, 397. [Google Scholar] [CrossRef]
- Fazaa, N.A.; Dunn, J.C.; Whittingham, M.J. Evaluation of the Ecosystem Services of the Central Marsh in Southern Iraq. Baghdad Sci. J. 2018, 15, 1. [Google Scholar] [CrossRef]
- Barboza, G. Benefits of water buffalo for organic production. In The Water Buffalo: Generalities and Productive Characteristics; de la Cruz-Cruz, L.A., Maitret-Collado, E., Roldán-Santiago, P., Zava, M., Eds.; LID: Mexico City, Mexico, 2021; Volume 1, pp. 385–411. [Google Scholar]
- Borghese, A.; Barile, V.L.; Chiariotti, A. Sustainability of buffalo farming in different environments in the world. Rev. Cient. Fac. Cienc. Vet. 2023, 33, 31–46. [Google Scholar] [CrossRef]
- Karstens, S.; Inácio, M.; Schernewski, G. Expert-Based Evaluation of Ecosystem Service Provision in Coastal Reed Wetlands Under Different Management Regimes. Front. Environ. Sci. 2019, 7, 63. [Google Scholar] [CrossRef]
- Correddu, F.; Lunesu, M.F.; Caratzu, M.F.; Pulina, G. Recalculating the global warming impact of italian livestock methane emissions with new metrics. Ital. J. Anim. Sci. 2023, 22, 125–135. [Google Scholar] [CrossRef]
- Nepal, S.; Byanju, R.M.; Chaudhary, P.; Rijal, K.; Baskota, P.; Thakuri, S. Methane release from enteric fermentation and manure management of domestic water buffalo in Nepal. Environ. Monit. Assess. 2023, 195, 603. [Google Scholar] [CrossRef]
- Prusty, S.; Kundu, S.S.; Kumar Sharma, V. Nutrient utilization and methane emissions in Murrah buffalo calves fed on diets with different methanogenic potential. Livest. Sci. 2017, 202, 89–95. [Google Scholar] [CrossRef]
- Singh, S.; Koli, P.; Kushwaha, B.P.; Anele, U.Y.; Bhattacharya, S.; Ren, Y.L. Agroecological Zone-Specific Diet Optimization for Water Buffalo (Bubalus bubalis) through Nutritional and In Vitro Fermentation Studies. Animals 2024, 14, 143. [Google Scholar] [CrossRef]
- Paul, S.S.; Dey, A.; Chanu, Y.M.; Paul, J.; Andonissamy, J.; Dahiya, S.S.; Punia, B.S. Altered rumen microbiome of water buffalo (Bubalus bubalis) by dietary composite feed additive enhances growth and nutrient utilization with reduced enteric methane and nitrogen emissions. J. Environ. Manag. 2026, 397, 128347. [Google Scholar] [CrossRef]
- Dey, A.; Paul, S.S.; Lailer, P.C.; Dahiya, S.S. Efficacy of Sunflower Oil in Modulating Rumen Functions and Reducing Enteric Methane Production in Buffalo (Bubalus bubalis). Res. Biot. 2020, 2, 061–064. [Google Scholar] [CrossRef]
- Tong, F.; Wang, T.; Gao, N.L.; Liu, Z.; Cui, K.; Duan, Y.; Wu, S.; Luo, Y.; Li, Z.; Yang, C.; et al. The microbiome of the buffalo digestive tract. Nat. Commun. 2022, 13, 823. [Google Scholar] [CrossRef] [PubMed]
- Wang, Q.; Gao, X.; Yang, Y.; Zou, C.; Yang, Y.; Lin, B. A comparative study on rumen ecology of water buffalo and cattle calves under similar feeding regime. Vet. Med. Sci. 2020, 6, 746–754. [Google Scholar] [CrossRef] [PubMed]
- Chirone, R.; Paulillo, A.; Salatino, P.; Salzano, A.; Cristofaro, B.; Cristiano, T.; Campanile, G.; Neglia, G. Life Cycle Assessment of buffalo milk: A case study of three farms in southern Italy. J. Clean. Prod. 2022, 365, 132816. [Google Scholar] [CrossRef]
- Romano, E.; De Palo, P.; Tidona, F.; Maggiolino, A.; Bragaglio, A. Dairy Buffalo Life Cycle Assessment (LCA) Affected by a Management Choice: The Production of Wheat Crop. Sustainability 2021, 13, 11108. [Google Scholar] [CrossRef]
- Sabia, E.; Napolitano, F.; Claps, S.; Braghieri, A.; Piazzolla, N.; Pacelli, C. Feeding, Nutrition and Sustainability in Dairy Enterprises. The Sustainability of Agro-Food and Natural Resource Systems in the Mediterranean Basin; Springer: Berlin, Germany, 2015; pp. 57–64. [Google Scholar]
- Pirlo, G.; Terzano, G.; Pacelli, C.; Abeni, F.; Carè, S. Carbon footprint of milk produced at Italian buffalo farms. Livest. Sci. 2014, 161, 176–184. [Google Scholar] [CrossRef]
- da Silva, J.A.R.; Garcia, A.R.; de Almeida, A.M.; Bezerra, A.S.; de Brito Lourenço Junior, J. Water buffalo production in the Brazilian Amazon Basin: A review. Trop. Anim. Health Prod. 2021, 53, 343. [Google Scholar] [CrossRef] [PubMed]
- Jaiswal, S.; Jagannadham, J.; Kumari, J.; Iquebal, M.A.; Gurjar, A.K.S.; Nayan, V.; Angadi, U.B.; Kumar, S.; Kumar, R.; Datta, T.K.; et al. Genome Wide Prediction, Mapping and Development of Genomic Resources of Mastitis Associated Genes in Water Buffalo. Front. Vet. Sci. 2021, 8, 593871. [Google Scholar] [CrossRef] [PubMed]
- Howe, R.; Kroll, T. Why Should the Welfare of Therapy Animals Involved in Animal Assisted Interventions Matter to Child Healthcare Researchers and Professionals? Compr. Child. Adolesc. Nurs. 2022, 45, 123–126. [Google Scholar] [CrossRef]
- Vidal, B.; Verger, L.; Nagy, G.J. Exploring the One Health–One Welfare nexus and zoonoses. Sci. One Health 2025, 4, 100128. [Google Scholar] [CrossRef] [PubMed]
- Tricco, A.C.; Lillie, E.; Zarin, W.; O’Brien, K.K.; Colquhoun, H.; Levac, D.; Moher, D.; Peters, M.D.J.; Horsley, T.; Weeks, L.; et al. PRISMA Extension for Scoping Reviews (PRISMA-ScR). Ann. Intern. Med. 2018, 169, 467–473. [Google Scholar] [CrossRef]
- Kumari, N.; Kumar, S.; Roy, A.; Saini, P.; Jaiswal, S.; Iquebal, M.A.; Angadi, U.B.; Kumar, D. BuffExDb: Web-based tissue-specific gene expression resource for breeding and conservation programmes in Bubalus bubalis. Database 2025, 2025, baae128. [Google Scholar] [CrossRef]
- Zhang, Y.; Colli, L.; Barker, J.S.F. Asian water buffalo: Domestication, history and genetics. Anim. Genet. 2020, 51, 177–191. [Google Scholar] [CrossRef]
- FAOSTAT. Crops and Livestock Products. Available online: https://www.fao.org/faostat/en/#data/QCL (accessed on 1 September 2025).
- Cappelli, G.; Di Vuolo, G.; Gerini, O.; Noschese, R.; Bufano, F.; Capacchione, R.; Rosini, S.; Limone, A.; De Carlo, E. Italian Tracing System for Water Buffalo Milk and Processed Milk Products. Animals 2021, 11, 1737. [Google Scholar] [CrossRef]
- Rohaeni, E.S.; Santoso, A.D.; Ariningsih, E.; Widaningsih, N.; Hutahaean, L.; Priyanto, D.; Ilham, N.; Suharyon, S.; Herdis, H.; Widiawati, Y.; et al. Analysing the sustainability of swamp buffalo (Bubalus bubalis carabauesis) farming as a protein source and germplasm. Open Agric. 2023, 8, 20220224. [Google Scholar] [CrossRef]
- Pineda, P.S.; Flores, E.B.; Herrera, J.R.V.; Low, W.Y. Opportunities and Challenges for Improving the Productivity of Swamp Buffaloes in Southeastern Asia. Front. Genet. 2021, 12, 629861. [Google Scholar] [CrossRef]
- Pérez-Pardal, L.; Chen, S.; Costa, V.; Liu, X.; Carvalheira, J.; Beja-Pereira, A. Genomic differentiation between swamp and river buffalo using a cattle high-density single nucleotide polymorphisms panel. Animal 2018, 12, 464–471. [Google Scholar] [CrossRef]
- Sun, T.; Wang, S.; Hanif, Q.; Chen, N.; Chen, H.; Lei, C. Genetic diversity of mitochondrial cytochrome b gene in swamp buffalo. Anim. Genet. 2020, 51, 977–981. [Google Scholar] [CrossRef]
- Pineda, P.S.; Flores, E.B.; Villamor, L.P.; Parac, C.J.M.; Khatkar, M.S.; Thu, H.T.; Smith, T.P.L.; Rosen, B.D.; Ajmone-Marsan, P.; Colli, L.; et al. Disentangling river and swamp buffalo genetic diversity: Initial insights from the 1000 Buffalo Genomes Project. Gigascience 2024, 13, giae053. [Google Scholar] [CrossRef] [PubMed]
- Minervino, A.H.H.; Zava, M.; Vecchio, D.; Borghese, A. Bubalus bubalis: A Short Story. Front. Vet. Sci. 2020, 7, 570413. [Google Scholar] [CrossRef]
- Gantner, V.; Mijic, P.; Baban, M.; Skrtic, Z.; Turalija, A. The overall and fat composition of milk of various species. Mljekarstvo 2015, 65, 223–231. [Google Scholar] [CrossRef]
- Ramlachan, N. Genetic Characterization of Selected Buffalypso (Bubalus bubalis) from Trinidad and Tobago. OALib 2023, 10, 1110903. [Google Scholar] [CrossRef]
- Ape, T.S.; Singha, S.; Marma, U.; Rumi, H.J.; Sagor, S.I.; Chiariotti, A.; Barile, V.L.; Persson, Y.; Rahman, M.M. Water buffalo farming, udder health and its dairy production status in Bangladesh. Vet. Res. Commun. 2025, 49, 292. [Google Scholar] [CrossRef]
- Michelizzi, V.N.; Dodson, M.V.; Pan, Z.; Amaral, M.E.J.; Michal, J.J.; Mclean, D.J.; Womack, J.E.; Jiang, Z. Water Buffalo Genome Science Comes of Age. Int. J. Biol. Sci. 2010, 6, 333–349. [Google Scholar] [CrossRef]
- Wiegleb, G.; Krawczynski, R. Biodiversity management by water buffalos in restored wetlands. Wald. Landschaftsforsch. Naturschutz 2010, 10, S17–S22. [Google Scholar]
- Yazar, S. A Research on Satisfaction Levels of Water Buffalo Breeders in Sivas Province, Türkiye. J. Tekirdag Agric. Fac. 2024, 21, 444–456. [Google Scholar] [CrossRef]
- Kappes, A.; Tozooneyi, T.; Shakil, G.; Railey, A.F.; McIntyre, K.M.; Mayberry, D.E.; Rushton, J.; Pendell, D.L.; Marsh, T.L. Livestock health and disease economics. Front. Vet. Sci. 2023, 10, 1168649. [Google Scholar] [CrossRef]
- Bilotto, F.; Harrison, M.T.; Vibart, R.; Mackay, A.; Christie-Whitehead, K.M.; Ferreira, C.S.S.; Cottrell, R.S.; Forster, D.; Chang, J. Towards resilient, inclusive, sustainable livestock farming systems. Trends Food Sci. Technol. 2024, 152, 104668. [Google Scholar] [CrossRef]
- Baltenweck, I.; Enahoro, D.; Frija, A.; Tarawali, S. Why Is Production of Animal Source Foods Important for Economic Development in Africa and Asia? Anim. Front. 2020, 10, 22–29. [Google Scholar] [CrossRef]
- Schneider, F.; Tarawali, S. Sustainable Development Goals and livestock systems. Rev. Sci. Tech. 2021, 40, 585–595. [Google Scholar] [CrossRef]
- Kaur, I.; Nivedita; Singh, V.P.; Sharma, H. Assessment of production traits and lactation wise economics of buffalo in punjab state of india. Buffalo Bull. 2022, 41, 731–739. [Google Scholar] [CrossRef]
- Maheswarappa, N.B.; Mohan, K.; Banerjee, R. Establishing Water Buffaloes as a Promising Source of Red Meat. Meat Muscle Biol. 2024, 8, 1–17. [Google Scholar] [CrossRef]
- Khan, N.; Khan, S.; Israr, M.; Hilal, M.G.; Ibrahim, M.N.M.; Khan, N.A. Comparing Azikheli buffaloes with Nili Ravi buffaloes. Pak. J. Agric. Sci. 2022, 59, 693–701. [Google Scholar] [CrossRef]
- Sannino, M.; Faugno, S.; Crimaldi, M.; Di Francia, A.; Ardito, L.; Serrapica, F.; Masucci, F. Effects of an automatic milking system on milk yield and quality of Mediterranean buffaloes. J. Dairy Sci. 2018, 101, 8308–8312. [Google Scholar] [CrossRef] [PubMed]
- Sabia, E.; Napolitano, F.; Claps, S.; De Rosa, G.; Braghieri, A.; Pacelli, C. Dairy buffalo life cycle assessment as affected by heifer rearing system. J. Clean. Prod. 2018, 192, 647–655. [Google Scholar] [CrossRef]
- Berlese, M.; Corazzin, M.; Bovolenta, S. Environmental sustainability assessment of buffalo mozzarella cheese production chain. J. Clean. Prod. 2019, 238, 117922. [Google Scholar] [CrossRef]
- Gómez-Carpio, M.; Rossi, D.; Cimmino, R.; Gombia, Y.; Altieri, D.; Di Palo, R.; Campanile, G.; Biffani, S.; Neglia, G. Functional longevity in the Italian Mediterranean buffalo. J. Dairy Sci. 2025, 108, 1730–1746. [Google Scholar] [CrossRef]
- Chung, R.; Minh Tu, L.; Quang Tinh, N.; Thi Minh Chau, N.; Thi Thu Hương, K.; Thi Huong Giang, N.; Hong Linh, D.; Kingsbury, A. The changing role of water buffalo in rural Vietnam. Buffalo Bull. 2023, 42, 545–554. [Google Scholar] [CrossRef]
- Amin, A.M.S.; Abo-Ismail, M.K.; Salem, M.M.I. Genetic parameters and genetic trends for reproductive traits in Egyptian buffalo. Anim. Reprod. Sci. 2021, 231, 106800. [Google Scholar] [CrossRef]
- Bragaglio, A.; Maggiolino, A.; Romano, E.; De Palo, P. Role of Corn Silage in the Sustainability of Dairy Buffalo Systems. Agriculture 2022, 12, 828. [Google Scholar] [CrossRef]
- Herdoiza, N.; Worrell, E.; van den Berg, F. Including animal welfare targets in the SDGs: The case of animal farming. Agric. Hum. Values 2024, 41, 815–830. [Google Scholar] [CrossRef]
- Pujiwati, L.A.; Giyarsih, S.R.; Sudrajat, S. Breaking down poverty: Livelihood assets’ impact on Indonesian livelihood strategies. Environ. Sustain. Indic. 2026, 30, 101225. [Google Scholar] [CrossRef]
- Torres, B.; Cayambe, J.; Paz, S.; Ayerve, K.; Heredia-R, M.; Torres, E.; Luna, M.; Toulkeridis, T.; García, A. Livelihood Capitals, Income Inequality, and the Perception of Climate Change. Sustainability 2022, 14, 5028. [Google Scholar] [CrossRef]
- Amalfitano, N.; Patel, N.; Haddi, M.-L.; Benabid, H.; Pazzola, M.; Vacca, G.M.; Tagliapietra, F.; Schiavon, S.; Bittante, G. Detailed mineral profile of milk. J. Dairy Sci. 2024, 107, 8887–8907. [Google Scholar] [CrossRef]
- Bittante, G.; Amalfitano, N.; Bergamaschi, M.; Patel, N.; Haddi, M.L.; Benabid, H.; Pazzola, M.; Vacca, G.M.; Tagliapietra, F.; Schiavon, S. Composition and aptitude for cheese-making. J. Dairy Sci. 2022, 105, 2132–2152. [Google Scholar] [CrossRef]
- Emakpor, O.L.; Edo, G.I.; Jikah, A.N.; Ikpekoro, V.O.; Agbo, J.J.; Ainyanbhor, I.E.; Essaghah, A.E.A.; Ekokotu, H.A.; Oghroro, E.E.A.; Akpoghelie, P.O. Buffalo milk: An essential natural adjuvant. Discov. Food 2024, 4, 38. [Google Scholar] [CrossRef]
- Gross, J.J. Dairy cow physiology and production limits. Anim. Front. 2023, 13, 44–50. [Google Scholar] [CrossRef]
- Ferro, M.M.; Tedeschi, L.O.; Atzori, A.S. The comparison of the lactation and milk yield and composition of selected breeds of sheep and goats. Transl. Anim. Sci. 2017, 1, 498–506. [Google Scholar] [CrossRef] [PubMed]
- Nagy, P.P.; Skidmore, J.A.; Juhasz, J. Intensification of camel farming and milk production. Anim. Front. 2022, 12, 35–45. [Google Scholar] [CrossRef] [PubMed]
- Vincenzetti, S.; Cammertoni, N.; Rapaccetti, R.; Santini, G.; Klimanova, Y.; Zhang, J.-J.; Polidori, P. Nutraceutical and Functional Properties of Camelids’ Milk. Beverages 2022, 8, 12. [Google Scholar] [CrossRef]
- Albenzio, M.; Santillo, A.; d’Angelo, F.; di Corcia, M.; Ciliberti, M.G.; Marino, R.; Caroprese, M.; della Malva, A.; Sevi, A. Milk quality of Italian Mediterranean buffalo. J. Dairy Sci. 2024, 107, 5343–5352. [Google Scholar] [CrossRef]
- Vilela, R.A.; Lourenço Junior, J.d.B.; Jacintho, M.A.C.; Barbosa, A.V.C.; Pantoja, M.H.d.A.; Oliveira, C.M.C.; Garcia, A.R. Dynamics of Thermolysis and Skin Microstructure in Water Buffaloes. Front. Vet. Sci. 2022, 9, 871206. [Google Scholar] [CrossRef]
- Choudhary, M.; Satheesan, L.; Kamboj, A.; Pal, P.; Kumar, D.; Singh, P.; Dang, A.K. Effect of different heat mitigation strategies on the thermography of lactating water buffaloes. Int. J. Biometeorol. 2025, 69, 3061–3072. [Google Scholar] [CrossRef]
- Hassan, F.-u.; Ashraf, N.; Arain, M.A.; Mushahid, M.; Safdar, M.; Saif-ur-Rehman, M.; Behan, A.A. Heat stress in riverine buffaloes: Regulatory mechanism, physiological changes, production and reproductive performance, and mitigation strategies. Int. J. Biometeorol. 2025, 69, 2567–2587. [Google Scholar] [CrossRef] [PubMed]
- Aoumtes, K.; Panya, A.; Phonsatta, N.; Charoen, R.; Chaiyasit, W.; Puangploy, P.; Kittipongpittaya, K. Insight into physicochemical properties and oxidative stability of Thai buffalo milk as an alternative source for milk and yogurt production. Discov. Food 2025, 5, 241. [Google Scholar] [CrossRef]
- Melo, T.T.; Bezerra, L.; Santos, V.; Ferreira, M.; Lima, V., Jr.; Silva, L.A.; Menezes, M.; Silva, F.; Oliveira, R. Effect of replacing soybean meal by a blend of ground corn and urea-ammonium sulphate on milk production and composition, digestibility and N balance of dairy Murrah buffaloes. J. Dairy Res. 2022, 89, 134–140. [Google Scholar] [CrossRef]
- Marques, L.C.; Matos, A.S.; Costa, J.S.; Silva, C.S.; Camargo, R.N.C.; McManus, C.; Peripolli, V.; Araújo, C.V.; Laureano, M.M.M.; Sales, R.L.; et al. Productive characteristics in dairy buffalo (Bubalus bubalis) in the Eastern Amazon. Arq. Bras. Med. Vet. Zootec. 2020, 72, 947–954. [Google Scholar] [CrossRef]
- Eldawy, M.H.; Lashen, M.E.; Badr, H.M.; Farouk, M.H. Milk production potential and reproductive performance of Egyptian buffalo cows. Trop. Anim. Health Prod. 2021, 53, 282. [Google Scholar] [CrossRef] [PubMed]
- Özdemir, S.; Kecici, P.D.; Yalcintan, H.; Ekiz, B. Behaviors in the Slaughter Corridor, Carcass, and Meat Quality Traits of Anatolian, Italian, and Italian x Anatolian Crossbreds (F1) Water Buffaloes. Anim. Sci. J. 2025, 96, e70042. [Google Scholar] [CrossRef] [PubMed]
- Costa, A.; Negrini, R.; De Marchi, M.; Campanile, G.; Neglia, G. Phenotypic Characterization of Milk Yield and Quality Traits in a Large Population of Water Buffaloes. Animals 2020, 10, 327. [Google Scholar] [CrossRef]
- Deng, T.-x.; Ma, X.-y.; Duan, A.; Lu, X.-r.; Abdel-Shafy, H. Genome-wide copy number variant analysis reveals candidate genes associated with milk production traits in water buffalo (Bubalus bubalis). J. Dairy Sci. 2024, 107, 7022–7037. [Google Scholar] [CrossRef]
- Rodas-González, A.; Huerta-Leidenz, N.O. Water buffalo versus cattle under similar rearing condition. I. Growth and carcass performance. Anim. Front. 2023, 13, 32–41. [Google Scholar] [CrossRef]
- Di Stasio, L.; Brugiapaglia, A. Current Knowledge on River Buffalo Meat: A Critical Analysis. Animals 2021, 11, 2111. [Google Scholar] [CrossRef] [PubMed]
- Rodríguez-Florentino, R.; de la Cruz-Cruz, L.A.; Roldán-Santiago, P.; Larrondo, C. Sensory Acceptability of Buffalo Meat and Beef in Young Consumers. J. Buffalo Sci. 2025, 14, 42–49. [Google Scholar] [CrossRef]
- Ozturk, N.; Arap, S.; Kocak, O.; Serva, L.; Avanus, K.; Kilic, H.I.; Magrin, L.; Gunes, H. Evaluation of Anatolian Water Buffalo Carcass Weights Based on a Slaughterhouse Data Collection. Animals 2024, 14, 710. [Google Scholar] [CrossRef]
- Shahein, T.M.; Mohamed, M.A.; Emara, M.M.T.; Nouman, T.M. The Quality Characteristics of Cold Cuts Processed from Beef and Buffalo Meat: A Comparative Study. Adv. Anim. Vet. Sci. 2021, 9, 1466–1471. [Google Scholar] [CrossRef]
- Bhaskar Reddy, G.V.; Viswanatha Reddy, K.P.A. Quality Characteristics and Ultra Structural Changes of Restructured Buffalo Meat Slices with Flaxseed Flour as Binder: A Novel Value Added Technology. Emir. J. Food Agric. 2023, 35, 342–350. [Google Scholar] [CrossRef]
- Failla, S. Calidad, procesamiento y comercialización de la carne de búfalo: Aprovechando sus beneficios y potencial nutracéutico. Rev. Cient. Fac. Cienc. Vet. 2023, 33, 105–113. [Google Scholar] [CrossRef]
- El-Saadony, M.T.; Abd El-Hack, M.E.; Swelum, A.A.; Al-Sultan, S.I.; El-Ghareeb, W.R.; Hussein, E.O.S.; Ba-Awadh, H.A.; Akl, B.A.; Nader, M.M. Enhancing quality and safety of raw buffalo meat using the bioactive peptides of pea and red kidney bean under refrigeration conditions. Ital. J. Anim. Sci. 2021, 20, 762–776. [Google Scholar] [CrossRef]
- Aksoy, Y.; Şahin, A.; Ulutaş, Z.; Uğurlutepe, E. The effect of different slaughter weights on some meat quality traits of musculus longissimus dorsi thoracis of male Anatolian buffaloes. Trop. Anim. Health Prod. 2021, 53, 137. [Google Scholar] [CrossRef]
- Huerta-Leidenz, N.O.; Rodas-González, A. Water buffalo versus cattle under similar rearing condition. II. Eating and nutritional quality. Anim. Front. 2023, 13, 42–52. [Google Scholar] [CrossRef]
- Contò, M.; Cifuni, G.F.; Iacurto, M.; Failla, S. Effect of pasture and intensive feeding systems on the carcass and meat quality of buffalo. Anim. Biosci. 2022, 35, 105–114. [Google Scholar] [CrossRef]
- Jaspal, M.H.; Ijaz, M.; Akhtar, M.J.; Nasir, J.; Ullah, S.; Badar, I.H.; Yar, M.K.; Ahmad, A. Effect of Carcass Electrical Stimulation and Suspension Methods on Meat Quality Characteristics of Longissimus lumborum of Young Buffalo (Bubalus bubalis) Bulls. Food Sci. Anim. Resour. 2021, 41, 34–44. [Google Scholar] [CrossRef] [PubMed]
- Turan, A.; Yalcintan, H.; Orman, A.; Ekiz, B. Effects of gender and slaughter age on meat quality of Anatolian water buffaloes. Trop. Anim. Health Prod. 2021, 53, 415. [Google Scholar] [CrossRef]
- Feuz, R.; Reichhardt, C.C.; Larsen, R.; Thornton, K.J.; Garcia, M.D. Comparing net returns in the feedlot: Bos Taurus vs. Bos Indicus influenced steers with varying anabolic implant intensity. Transl. Anim. Sci. 2022, 6, txac111. [Google Scholar] [CrossRef]
- Netam, A.; Jaiswal, P. Role of animal power in the field of agriculture. Int. J. Avian Wildl. Biol. 2018, 3, 62–63. [Google Scholar] [CrossRef]
- Senthilkumar, G.; Selvakumar, K.N.; Prabu, M.; Pandian, A.S.S.; Valli, C.; Jayavarathan, B. Spatio-temporal dimensions of draught cattle and buffaloes in Tamil Nadu. Indian J. Anim. Sci. 2015, 85, 508–513. [Google Scholar] [CrossRef]
- Cruz, L.C. Trends in buffalo production in Asia. Ital. J. Anim. Sci. 2007, 6, 9–24. [Google Scholar] [CrossRef]
- Lija, S. The enduring significance and vital role of draught animals in India’s agriculture. Int. J. Agric. Ext. Soc. Dev. 2024, 7, 356–360. [Google Scholar] [CrossRef]
- Lapitan, R.M.; Del Barrio, A.N.; Katsube, O.; Ban-Tokuda, T.; Orden, E.A.; Robles, A.Y.; Fujihara, T.; Cruz, L.C.; Homma, H.; Kanai, Y. Comparison of carcass and meat characteristics of Brahman grade cattle (Bos indicus) and crossbred water buffalo (Bubalus bubalis). Anim. Sci. J. 2007, 78, 596–604. [Google Scholar] [CrossRef]
- Khaskheli, A.A. Skin and Hides Selling Practices at Coastal Area of Sindh Province of Pakistan. Biomed. J. Sci. Tech. Res. 2020, 30, 23401–23408. [Google Scholar] [CrossRef]
- Lapitan, R.M.; Del Barrio, A.N.; Katsube, O.; Ban-Tokuda, T.; Orden, E.A.; Robles, A.Y.; Cruz, L.C.; Kanai, Y.; Fujihara, T. Comparison of fattening performance in Brahman grade cattle (Bos indicus) and crossbred water buffalo (Bubalus bubalis) fed on high roughage diet. Anim. Sci. J. 2008, 79, 76–82. [Google Scholar] [CrossRef]
- Ramli, R.A.; Mohamad Razali, U.H.; Izzreen Mohd Noor, N.Q. Optimization of extraction conditions of gelatin from buffalo (Bubalus bubalis) skins using response surface methodology. Heliyon 2023, 9, e14367. [Google Scholar] [CrossRef]
- Mulyani, S.; Bintoro, V.P.; Legowo, A.M.; Santoso, U. The Emulsifying and Foaming Properties of Buffalo (Bubalus bubalis) Hide Gelatin Extracted Using Alkali Acid Compared to Commercial Gelatin. Int. J. Sci. Res. 2020, 9, 543–546. [Google Scholar] [CrossRef]
- El Debaky, H.A.; Kutchy, N.A.; Ul-Husna, A.; Indriastuti, R.; Akhter, S.; Purwantara, B.; Memili, E. Review: Potential of water buffalo in world agriculture: Challenges and opportunities. Appl. Anim. Sci. 2019, 35, 255–268. [Google Scholar] [CrossRef]
- Hoffman, J.M.; Valencak, T.G. A short life on the farm: Aging and longevity in agricultural, large-bodied mammals. Geroscience 2020, 42, 909–922. [Google Scholar] [CrossRef]
- Carvalho, I.S.d.; Lázaro, S.F.; Stefani, G.; Silva, A.A.; Silveira, K.R.d.; Scalez, D.C.B.; Tonhati, H. Genetic parameters and association between longevity and milk production in buffaloes using the ssGBLUP method. Rev. Bras. Zootec. 2023, 52, e20220143. [Google Scholar] [CrossRef]
- Al-Azzawi, M.; Bowtell, L.; Hancock, K.; Preston, S. Addition of Activated Carbon into a Cattle Diet to Mitigate GHG Emissions and Improve Production. Sustainability 2021, 13, 8254. [Google Scholar] [CrossRef]
- Adesogan, A.T.; Havelaar, A.H.; McKune, S.L.; Eilittä, M.; Dahl, G.E. Animal source foods: Sustainability problem or malnutrition and sustainability solution? Perspective matters. Glob. Food Secur. 2020, 25, 100325. [Google Scholar] [CrossRef]
- Ortiz-Carmona, A.I.; Perroni, Y.; Ruelas Inzunza, E.; Chávez-Vergara, B. Microbial Activity and Nutrient Composition of Water Buffalo and Cattle Manure: Implications for Tropical Soils. J. Soil. Sci. Plant Nutr. 2026, 26, 2757–2769. [Google Scholar] [CrossRef]
- Jarwar, A.I.; Laghari, A.Q.; Maitlo, G.; Qureshi, K.; Bhutto, A.W.; Shah, A.K.; Jatoi, A.S.; Ahmed, S. Biological assisted treatment of buffalo dung and poultry manure for biogas generation using laboratory-scale bioreactor. Biomass Convers. Biorefin. 2023, 13, 1979–1986. [Google Scholar] [CrossRef]
- Ameli, K.; Braun, T.F.; Krämer, S. Animal-Assisted Interventions and Animal Welfare—An Exploratory Survey in Germany. Animals 2023, 13, 1324. [Google Scholar] [CrossRef] [PubMed]
- Winton, T.; Nicodemus, M.; Friend, M.; Holtcamp, K.; Burnett, D.D.; Smith, T.; Hill, C.; Memili, E.; Cavinder, C. Welfare of the therapy animal within facilitated youth psychotherapy: A scoping review. Appl. Anim. Behav. Sci. 2024, 277, 106357. [Google Scholar] [CrossRef]
- Dixon, D.; Jones, C.; Green, R. Understanding the role of the animal in animal-assisted therapy: A qualitative study. Complement. Ther. Clin. Pract. 2025, 60, 101983. [Google Scholar] [CrossRef]
- Compitus, K. The Process of Integrating Animal-Assisted Therapy into Clinical Social Work Practice. Clin. Soc. Work. J. 2021, 49, 1–9. [Google Scholar] [CrossRef]
- Wijnen, B.; Martens, P. Animals in Animal-Assisted Services: Are They Volunteers or Professionals? Animals 2022, 12, 2564. [Google Scholar] [CrossRef]
- Sheffield, S.; Fiorotto, M.L.; Davis, T.A. Nutritional importance of animal-sourced foods in a healthy diet. Front. Nutr. 2024, 11, 1424912. [Google Scholar] [CrossRef]
- El-Hage Scialabba, N. Chapter 2—Livestock food and human nutrition. In Managing Healthy Livestock Production and Consumption; El-Hage Scialabba, N., Ed.; Academic Press: Cambridge, MA, USA, 2022; pp. 29–44. [Google Scholar]
- Enahoro, D.; Lannerstad, M.; Pfeifer, C.; Dominguez-Salas, P. Contributions of livestock-derived foods to nutrient supply under changing demand in low- and middle-income countries. Glob. Food Secur. 2018, 19, 1–10. [Google Scholar] [CrossRef]
- Oh, Y.-N.; Kim, H.-Y. Exploring Sustainable Future Protein Sources. Food Sci. Anim. Resour. 2025, 45, 81–108. [Google Scholar] [CrossRef]
- Deb, G.K.; Nahar, T.N.; Duran, P.G.; Presicce, G.A. Safe and Sustainable Traditional Production: The Water Buffalo in Asia. Front. Environ. Sci. 2016, 4, 38. [Google Scholar] [CrossRef]
- Faraz, A.; Tauqir, N.A.; Waheed, A.; Hameed, A. Effect of Exogenous Oxytocin Administration on the Performance of Lactating Nili Ravi Buffalo. Iran. J. Appl. Anim. Sci. 2021, 11, 517–525. [Google Scholar]
- Reswati, R.; Putra, A.A. The profile of buffalo farming in Matur District, Agam Regency, West Sumatra. J. Agric. Sci. Vet. 2023, 11, 97–106. [Google Scholar] [CrossRef]
- Boukria, O.; El Hadrami, E.; Sameen, A.; Sahar, A.; Khan, S.; Safarov, J.; Sultanova, S.; Leriche, F.; Aït-Kaddour, A. Biochemical, Physicochemical and Sensory Properties of Yoghurts Made from Mixing Milks of Different Mammalian Species. Foods 2020, 9, 1722. [Google Scholar] [CrossRef]
- Yasmin, I.; Iqbal, R.; Liaqat, A.; Khan, W.A.; Nadeem, M.; Iqbal, A.; Chughtai, M.F.J.; Rehman, S.J.U.; Tehseen, S.; Mehmood, T.; et al. Characterization and Comparative Evaluation of Milk Protein Variants from Pakistani Dairy Breeds. Food Sci. Anim. Resour. 2020, 40, 689–698. [Google Scholar] [CrossRef]
- Huma, N.; Ghaffar, F.; Rafiq, S.; Pasha, I.; Sameen, A.; Hayat, I.; Hussain, I. Characterization of Milk Proteins from Different Animal Species through Gel Electrophoresis. Pak. J. Zool. 2018, 50, 1983–1986. [Google Scholar] [CrossRef]
- Rafiq, S.; Huma, N.; Pasha, I.; Sameen, A.; Mukhtar, O.; Khan, M.I. Chemical Composition, Nitrogen Fractions and Amino Acids Profile of Milk from Different Animal Species. Asian-Australas. J. Anim. Sci. 2016, 29, 1022–1028. [Google Scholar] [CrossRef]
- Seifu, E. Camel milk products: Innovations, limitations and opportunities. Food Prod. Process. Nutr. 2023, 5, 15. [Google Scholar] [CrossRef]
- Roy, D.; Ye, A.Q.; Moughan, P.J.; Singh, H. Impact of gastric coagulation on the kinetics of release of fat globules from milk of different species. Food Funct. 2021, 12, 1783–1802. [Google Scholar] [CrossRef]
- Abdel-Hamid, M.; Huang, L.; Huang, Z.; Romeih, E.; Yang, P.; Zeng, Q.; Li, L. Effect of Buffalo Breed on the Detailed Milk Composition in Guangxi, China. Foods 2023, 12, 1603. [Google Scholar] [CrossRef]
- Rueda-García, A.M.; Fracassi, P.; Scherf, B.D.; Hamon, M.; Iannotti, L. Unveiling the Nutritional Quality of Terrestrial Animal Source Foods by Species and Characteristics of Livestock Systems. Nutrients 2024, 16, 3346. [Google Scholar] [CrossRef]
- Rai, D.C.; Rathaur, A.; Yadav, A.K.; Shraddha. Nutritional and nutraceutical properties of goat milk for human health: A review. Indian J. Dairy Sci. 2022, 75, 1–10. [Google Scholar] [CrossRef]
- Mandolesi, S.; Naspetti, S.; Arsenos, G.; Caramelle-Holtz, E.; Latvala, T.; Martin-Collado, D.; Orsini, S.; Ozturk, E.; Zanoli, R. Consumer attitudes, motivations and barriers towards sheep and goat dairy products. Int. J. Gastron. Food Sci. 2024, 36, 100917. [Google Scholar] [CrossRef]
- de Oliveira, L.S.M.; Alves, J.S.; Bastos, M.S.; da Cruz, V.A.R.; Pinto, L.F.B.; Tonhati, H.; Costa, R.B.; de Camargo, G.M.F. Water buffaloes (Bubalus bubalis) only have A2A2 genotype for beta-casein. Trop. Anim. Health Prod. 2021, 53, 145. [Google Scholar] [CrossRef]
- Salzano, A.; Licitra, F.; D’Onofrio, N.; Balestrieri, M.L.; Limone, A.; Campanile, G.; D’Occhio, M.J.; Neglia, G. Short communication: Space allocation in intensive Mediterranean buffalo production influences the profile of functional biomolecules in milk and dairy products. J. Dairy Sci. 2019, 102, 7717–7722. [Google Scholar] [CrossRef]
- D’Onofrio, N.; Balestrieri, A.; Neglia, G.; Monaco, A.; Tatullo, M.; Casale, R.; Limone, A.; Balestrieri, M.L.; Campanile, G. Antioxidant and Anti-Inflammatory Activities of Buffalo Milk δ-Valerobetaine. J. Agric. Food Chem. 2019, 67, 1702–1710. [Google Scholar] [CrossRef]
- Gu, Y.; Li, X.; Qi, X.; Ma, Y.; Chan, E.C.Y. In silico identification of novel ACE and DPP-IV inhibitory peptides derived from buffalo milk proteins and evaluation of their inhibitory mechanisms. Amino Acids 2023, 55, 161–171. [Google Scholar] [CrossRef]
- De Simone, C.; Ferranti, P.; Picariello, G.; Scognamiglio, I.; Dicitore, A.; Addeo, F.; Chianese, L.; Stiuso, P. Peptides from water buffalo cheese whey induced senescence cell death via ceramide secretion in human colon adenocarcinoma cell line. Mol. Nutr. Food Res. 2011, 55, 229–238. [Google Scholar] [CrossRef]
- Zhao, Q.; Fu, X.; Zheng, W.; Huang, A. Characterization of whey proteins and their derived peptides in Binglangjiang versus Dehong buffalo milk. J. Dairy Sci. 2025, 108, 13054–13070. [Google Scholar] [CrossRef] [PubMed]
- Salzano, A.; Neglia, G.; D’Onofrio, N.; Balestrieri, M.L.; Limone, A.; Cotticelli, A.; Marrone, R.; Anastasio, A.; D’Occhio, M.J.; Campanile, G. Green feed increases antioxidant and antineoplastic activity of buffalo milk: A globally significant livestock. Food Chem. 2021, 344, 128669. [Google Scholar] [CrossRef] [PubMed]
- Cacciola, N.A.; Salzano, A.; D’Onofrio, N.; Venneri, T.; Cicco, P.D.; Vinale, F.; Petillo, O.; Martano, M.; Maiolino, P.; Neglia, G.; et al. Buffalo Milk Whey Activates Necroptosis and Apoptosis in a Xenograft Model of Colorectal Cancer. Int. J. Mol. Sci. 2022, 23, 8464. [Google Scholar] [CrossRef] [PubMed]
- Servillo, L.; D’Onofrio, N.; Neglia, G.; Casale, R.; Cautela, D.; Marrelli, M.; Limone, A.; Campanile, G.; Balestrieri, M.L. Carnitine Precursors and Short-Chain Acylcarnitines in Water Buffalo Milk. J. Agric. Food Chem. 2018, 66, 8142–8149. [Google Scholar] [CrossRef]
- Khetra, Y.; Meena, G.S.; Arora, S. Buffalo Milk and Its Products: Composition, Nutrition and Benefits. In Biotechnological Applications in Buffalo Research; Chauhan, M.S., Selokar, N., Eds.; Springer: Singapore, 2022; pp. 121–143. [Google Scholar]
- Shanmugam, V.P.; Kapila, S.; Sonfack, T.K.; Kapila, R. Antioxidative peptide derived from enzymatic digestion of buffalo casein. Int. Dairy J. 2015, 42, 1–5. [Google Scholar] [CrossRef]
- Abdel-Hamid, M.; Otte, J.; De Gobba, C.; Osman, A.; Hamad, E. Angiotensin I-converting enzyme inhibitory activity and antioxidant capacity of bioactive peptides derived from enzymatic hydrolysis of buffalo milk proteins. Int. Dairy J. 2017, 66, 91–98. [Google Scholar] [CrossRef]
- Yan, K.; Ma, X.; Jiang, M.; Hu, Z.; Yang, T.; Zhan, K.; Zhao, G. Effects of bovine milk and buffalo milk on lipid metabolism in mice. J. Anim. Physiol. Anim. Nutr. 2023, 107, 428–434. [Google Scholar] [CrossRef]
- An, N.; Yang, J.; Zhang, Y.; Suo, H.; Song, J. Enzymatic hydrolysis of buffalo casein enhances DPP-4 inhibition: Structural modifications and bioactive peptide identification. J. Dairy Sci. 2025, 108, 2169–2181. [Google Scholar] [CrossRef]
- Reddi, S.; Shanmugam, V.P.; Tanedjeu, K.S.; Kapila, S.; Kapila, R. Effect of buffalo casein-derived novel bioactive peptides on osteoblast differentiation. Eur. J. Nutr. 2018, 57, 593–605. [Google Scholar] [CrossRef]
- Zhao, Q.; Wei, G.; Li, K.; Duan, S.; Ye, R.; Huang, A. Identification and molecular docking of novel α-glucosidase inhibitory peptides from hydrolysates of Binglangjiang buffalo casein. LWT 2022, 156, 113062. [Google Scholar] [CrossRef]
- Basilicata, M.G.; Pepe, G.; Adesso, S.; Ostacolo, C.; Sala, M.; Sommella, E.; Scala, M.C.; Messore, A.; Autore, G.; Marzocco, S.; et al. Antioxidant Properties of Buffalo-Milk Dairy Products: A β-Lg Peptide Released after Gastrointestinal Digestion of Buffalo Ricotta Cheese Reduces Oxidative Stress in Intestinal Epithelial Cells. Int. J. Mol. Sci. 2018, 19, 1955. [Google Scholar] [CrossRef]
- Sowmya, K.; Bhat, M.I.; Bajaj, R.K.; Kapila, S.; Kapila, R. Buffalo Milk Casein Derived Decapeptide (YQEPVLGPVR) Having Bifunctional Anti-inflammatory and Antioxidative Features Under Cellular Milieu. Int. J. Pept. Res. Ther. 2019, 25, 623–633. [Google Scholar] [CrossRef]
- de la Cruz-Cruz, L.A.; Bonilla-Jaime, H.; Orozco-Gregorio, H.; Tarazona-Morales, A.M.; Ballesteros-Rodea, G.; Roldan-Santiago, P.; Waytula, M.; Vargas-Romero, J.M. Effects of weaning on the stress responses and productivity of water buffalo in different breeding systems: A review. Livest. Sci. 2019, 226, 73–81. [Google Scholar] [CrossRef]
- de la Cruz, L.; Gibson, T.J.; Guerrero-Legarreta, I.; Napolitano, F.; Mora-Medina, P.; Rojas, D. The welfare of water buffaloes during the slaughter process: A review. Livest. Sci. 2018, 212, 22–33. [Google Scholar] [CrossRef]
- Coppola, F.; Nazzaro, F.; Fratianni, F.; Lombardi, S.J.; Grazia, L.; Coppola, R.; Tremonte, P. Pumpkin Oil and Its Effect on the Quality of Naples-Style Salami Produced from Buffalo Meat. Foods 2025, 14, 1077. [Google Scholar] [CrossRef] [PubMed]
- Naveena, B.M.; Kiran, M. Buffalo meat quality, composition, and processing characteristics: Contribution to the global economy and nutritional security. Anim. Front. 2014, 4, 18–24. [Google Scholar] [CrossRef]
- Cooke, R.F.; Daigle, C.L.; Moriel, P.; Smith, S.B.; Tedeschi, L.O.; Vendramini, J.M.B. Cattle adapted to tropical and subtropical environments: Social, nutritional, and carcass quality considerations. J. Anim. Sci. 2020, 98, skaa014. [Google Scholar] [CrossRef]
- Silva, J.A.R.d.; Rodrigues, L.S.; Lourenço-Júnior, J.d.B.; Alfaia, C.M.; Costa, M.M.; Castro, V.C.G.d.; Bezerra, A.S.; Almeida, A.M.d.; Prates, J.A.M. Total Lipids, Fatty Acid Composition, Total Cholesterol and Lipid-Soluble Antioxidant Vitamins in the longissimus lumborum Muscle of Water Buffalo (Bubalus bubalis) from Different Production Systems of the Brazilian Eastern Amazon. Animals 2022, 12, 595. [Google Scholar] [CrossRef]
- Somchan, T.; Wongtangtintharn, S.; Uriyapongson, S. Amino acid and fatty acid profiles in raw and cooked swamp buffalo meat (Bubalus bubalis). Czech. J. Food Sci. 2025, 43, 352–357. [Google Scholar] [CrossRef]
- Bhaskar Reddy, G.V.; Amaravathi, P.; Sen, A.R.; Vijay Kumar Reddy, S. Effect of egg white powder on quality and structural properties of restructured buffalo meat slices. Int. Food Res. J. 2025, 32, 489–501. [Google Scholar] [CrossRef]
- Haque, A.M.; Ahmad, S.; Khan, T.M.; Alomrani, S.O.; Adnan, M.; Kieliszek, M.; Ashraf, S.A. Development of buffalo meat patties using pea peel powder as a value added ingredient: Physicochemical, shelf stability, microstructural, sensory attributes analysis. J. Food Meas. Charact. 2024, 18, 4088–4107. [Google Scholar] [CrossRef]
- Park, S.Y.; Byeon, D.S.; Kim, G.W.; Kim, H.Y. Carcass and retail meat cuts quality properties of broiler chicken meat based on the slaughter age. J. Anim. Sci. Technol. 2021, 63, 180–190. [Google Scholar] [CrossRef]
- Maheswarappa, N.B.; Muthupalani, M.; Mohan, K.; Banerjee, R.; Sen, A.R.; Barbuddhe, S.B. Buffalo Meat Composition and Nutritional Characteristics. In Asiatic Water Buffalo: A Sustainable and Healthy Red Meat Source; Maheswarappa, N.B., Muhulapani, M., Mohan, K., Banerjee, R., Ratan, S.E., Barbuddhe, S.B., Eds.; Springer: Singapore, 2022; pp. 49–61. [Google Scholar]
- Popova, T.; Petkov, E.; Vlahova-Vangelova, D.; Kolev, N.; Balev, D.; Dragoev, S.; Dimov, K. Meat quality and fatty acid profile in broilers as affected by low-fat Tenebrio molitor meal in the diet. Front. Anim. Sci. 2025, 6, 1629411. [Google Scholar] [CrossRef]
- Dal Bosco, A.; Cartoni Mancinelli, A.; Vaudo, G.; Cavallo, M.; Castellini, C.; Mattioli, S. Indexing of Fatty Acids in Poultry Meat for Its Characterization in Healthy Human Nutrition: A Comprehensive Application of the Scientific Literature and New Proposals. Nutrients 2022, 14, 3110. [Google Scholar] [CrossRef]
- Vicente, F.; Pereira, P.C. Pork Meat Composition and Health: A Review of the Evidence. Foods 2024, 13, 1905. [Google Scholar] [CrossRef]
- Razmaite, V.; Siukscius, A.; Sveistiene, R.; Bliznikas, S.; Jatkauskiene, V. Relationships between fat and cholesterol contents and fatty acid composition in different meat-producing animal species. Acta Vet. Beogr. 2020, 70, 374–385. [Google Scholar] [CrossRef]
- Minelli, G.; D’Ambra, K.; Macchioni, P.; Lo Fiego, D.P. Effects of Pig Dietary n-6/n-3 Polyunsaturated Fatty Acids Ratio and Gender on Carcass Traits, Fatty Acid Profiles, Nutritional Indices of Lipid Depots and Oxidative Stability of meat in Medium-Heavy Pigs. Foods 2023, 12, 4106. [Google Scholar] [CrossRef]
- Ivankovic, A.; Pecina, M.; Bittante, G.; Ugarkovic, N.K.; Konjacic, M. Growth performance, carcass characteristics, and meat quality in beef x Holstein-Friesian crossbred bulls. Ital. J. Anim. Sci. 2025, 24, 1596–1608. [Google Scholar] [CrossRef]
- Zhang, Y.; Wei, Y.T.; Lu, G.W.; Yang, Y.X.; Pan, Y.T.; Fu, C.P.; Tian, F.Z.; Qiu, Q.H.; Zhao, X.H.; Li, Y.J.; et al. Study on the Carcass Traits, Meat Quality, and Nutritional Attributes of Six Kinds of Jiangxi Local Breeds Cattle. Animals 2024, 14, 3053. [Google Scholar] [CrossRef] [PubMed]
- Rodrigues, L.S.; Silva, J.A.R.d.; Silva, W.C.d.; Silva, É.B.R.d.; Belo, T.S.; Sousa, C.E.L.; Rodrigues, T.C.G.d.C.; Silva, A.G.M.e.; Prates, J.A.M.; Lourenço-Júnior, J.d.B. A Review of the Nutritional Aspects and Composition of the Meat, Liver and Fat of Buffaloes in the Amazon. Animals 2024, 14, 1618. [Google Scholar] [CrossRef]
- Aziz, A.; Shah, A.H.; Haq, I.U.; Khaskheli, M.; Salman, M.; Talpur, A.R. Comparative Studies on Nutritional Quality of Cattle and Buffalo Meat. Int. J. Sci. Res. 2014, 3, 524–531. [Google Scholar]
- Junkuszew, A.; Nazar, P.; Milerski, M.; Margetin, M.; Brodzki, P.; Bazewicz, K. Chemical composition and fatty acid content in lamb and adult sheep meat. Arch. Anim. Breed. 2020, 63, 261–268. [Google Scholar] [CrossRef]
- Suliman, G.M.; Al-Owaimer, A.N.; El-Waziry, A.M.; Hussein, E.O.S.; Abuelfatah, K.; Swelum, A.A. A Comparative Study of Sheep Breeds: Fattening Performance, Carcass Characteristics, Meat Chemical Composition and Quality Attributes. Front. Vet. Sci. 2021, 8, 647192. [Google Scholar] [CrossRef] [PubMed]
- Gawat, M.; Boland, M.; Singh, J.; Kaur, L. Goat Meat: Production and Quality Attributes. Foods 2023, 12, 3130. [Google Scholar] [CrossRef]
- Saengsuk, N.; Sangsawad, P.; Paengkoum, P.; Pongsetkul, J. Lipid and Volatile Profiles of Various Goat Primal Cuts: Aspects of Nutritional Value and Flavor/Taste Attributes. Foods 2024, 13, 492. [Google Scholar] [CrossRef] [PubMed]
- Arenas, M.A.; Huerta-Leidenz, N. Water buffalo (Bubalus bubalis) meat produced in Latin America II: Literature review on technological traits and nutrient composition. Lat. Am. Arch. Anim. Prod. 2026, 34, 11–30. [Google Scholar] [CrossRef]
- Devendra, C. Animal—Agricultural Systems In Asia: Enhanced Impacts and Rural Prosperity. Int. J. Dairy Process Res. 2014, 3, 47–65. [Google Scholar] [CrossRef]
- Romero, M.H.; Gallego-Polania, S.A.; Sanchez, J.A. Natural Savanna Systems Within the “One Health and One Welfare” Approach: Part 2—Sociodemographic and Institution Factors Impacting Relationships Between Farmers and Livestock. Animals 2025, 15, 2139. [Google Scholar] [CrossRef]
- Hira, F.T.Z.; Alam, M.J.; Begum, I.A. Women’s empowerment in livestock sector as a tool to enhance child’s nutrition: A review. Discov. Sustain. 2025, 6, 76. [Google Scholar] [CrossRef]
- Kaluwa, C.; Oduma, J.; Abdirahman, F.A.; Kitoga, B.K.; Opondoh, A.A.; Muchibi, J.; Bagnol, B.; Rosenbaum, M.; Onchaga, S.; Stanley, M.; et al. Using the Women Empowerment in Livestock Index (WELI) to Examine Linkages between Women Smallholder Livestock Farmers’ Empowerment and Access to Livestock Vaccines in Machakos County of Kenya: Insights and Critiques. Vaccines 2022, 10, 1868. [Google Scholar] [CrossRef]
- Galiè, A.; Ojango, J.M.K.; Farnworth, C.R.; Jumba, H.; Roeven, L.; Marshall, K. Building gender considerations into livestock breeding in low- and middle-income countries. Front. Anim. Sci. 2025, 6, 1511992. [Google Scholar] [CrossRef]
- Singh, N.; Sharma, N.K.; Rajput, D.S. Economic Contribution of Buffalo Farming in Livelihood of Buffalo Owners in Bharatpur District of Rajasthan. Int. J. Livest. Res. 2021, 11, 24–28. [Google Scholar] [CrossRef]
- FAO. Self Employed Women’s Association (SEWA). Available online: https://www.fao.org/family-farming/detail/es/c/1743202/ (accessed on 22 January 2026).
- Usman, M.; Saboor, A.; Mohsin, A.Q.; Afzal, A. Women’s Role in Livestock Production and Its Impact on Livestock Income. J. Ed. Soc. Stud. 2022, 3, 73–83. [Google Scholar] [CrossRef]
- Singh, S.; Jukaria, S.; Sharma, A.K. Gender based participatory approach for sustainable small holder farming in developing countries. J. Appl. Nat. Sci. 2014, 6, 81–87. [Google Scholar] [CrossRef]
- Raza, H.; Rafiq, N.; Asif, T.; Ali, A. Sociological Analysis of Women Participation in Agricultural Activities in District Rajanpur Punjab, Pakistan. Pak. J. Humanit. Soc. Sci. 2022, 10, 381–390. [Google Scholar] [CrossRef]
- Silveira, R.M.F.; Façanha, D.A.E.; de Vasconcelos, A.M.; Leite, S.C.B.; Leite, J.H.G.M.; Saraiva, E.P.; Fávero, L.P.; Tedeschi, L.O.; da Silva, I.J.O. Physiological adaptability of livestock to climate change: A global model-based assessment for the 21st century. Environ. Impact Assess. Rev. 2026, 116, 108061. [Google Scholar] [CrossRef]
- Batalla, I.; Knudsen, M.T.; Mogensen, L.; Hierro, Ó.d.; Pinto, M.; Hermansen, J.E. Carbon footprint of milk from sheep farming systems in Northern Spain including soil carbon sequestration in grasslands. J. Clean. Prod. 2015, 104, 121–129. [Google Scholar] [CrossRef]
- Place, S. Environmental Sustainability of Livestock Systems. Meat Muscle Biol. 2024, 8, 18117. [Google Scholar] [CrossRef]
- Van Eenennaam, A.L. Addressing the 2050 demand for terrestrial animal source food. Proc. Natl. Acad. Sci. USA 2024, 121, e2319001121. [Google Scholar] [CrossRef]
- Malik, P.K.; Trivedi, S.; Mohapatra, A.; Kolte, A.P.; Sejian, V.; Bhatta, R.; Rahman, H. Comparison of enteric methane yield and diversity of ruminal methanogens in cattle and buffaloes fed on the same diet. PLoS ONE 2021, 16, e0256048. [Google Scholar] [CrossRef]
- Malik, P.K.; Trivedi, S.; Kolte, A.P.; Mohapatra, A.; Biswas, S.; Bhattar, A.V.K.; Bhatta, R.; Rahman, H. Comparative analysis of rumen metagenome, metatranscriptome, fermentation and methane yield in cattle and buffaloes fed on the same diet. Front. Microbiol. 2023, 14, 1266025. [Google Scholar] [CrossRef]
- Ciriello, N.; Albano, L.; Auriemma, G.; Palomba, R.; Grazioli, G.; Sarubbi, F. Methane Emission Factor in Italian Mediterranean Buffalo According to Production Management. Curr. J. Appl. Sci. Technol. 2020, 39, 11–19. [Google Scholar] [CrossRef]
- Davies, H.F.; Murphy, B.P.; Duvert, C.; Neave, G. Controlling feral ruminants to reduce greenhouse gas emissions: A case study of buffalo in northern Australia. Wildl. Res. 2023, 50, 899–910. [Google Scholar] [CrossRef]
- Garg, M.R.; Phondba, B.T.; Sherasia, P.L.; Makkar, H.P.S. Carbon footprint of milk production under smallholder dairying in Anand district of Western India: A cradle-to-farm gate life cycle assessment. Anim. Prod. Sci. 2016, 56, 423–436. [Google Scholar] [CrossRef]
- Pordhiya, K.I.; Gautam. Comparative carbon footprints of buffalo milk produced at smallholder and organised farms in Hisar district of Haryana, India. Indian J. Anim. Sci. 2023, 93, 389–394. [Google Scholar] [CrossRef]
- Arora, K.; Kataria, P. Methane footprint of milk in integrated crop-livestock farms in Indian Punjab. Buffalo Bull. 2025, 44, 203–220. [Google Scholar] [CrossRef]
- Reddy, P.R.K.; Kumar, D.S.; Rao, E.R.; Seshiah, C.V.; Sateesh, K.; Rao, K.A.; Reddy, Y.; Hyder, I. Environmental sustainability assessment of tropical dairy buffalo farming vis-a-vis sustainable feed replacement strategy. Sci. Rep. 2019, 9, 16745. [Google Scholar] [CrossRef] [PubMed]
- Khanpit, V.; Viswanathan, S.; Hinrichsen, O. Environmental impact of animal milk vs plant-based milk: Critical review. J. Clean. Prod. 2024, 449, 141703. [Google Scholar] [CrossRef]
- Pérez, A.F.; Vélez, S.F.; Naranjo, R.J.F. The carbon footprint of pasture-based buffalo milk production in Colombia. Rev. Cient. Fac. Cienc. Vet. 2023, 33, 166–167. [Google Scholar] [CrossRef]
- Frascarelli, A.; Ciliberti, S.; Lilli, S.M.; Pascolini, P.; Orlando, J.G.; Tiradritti, M. Comparative Techno-Economic and Carbon Footprint Analysis of Semi-Extensive and Intensive Beef Farming. Agriculture 2025, 15, 472. [Google Scholar] [CrossRef]
- De Vivo, R.; Zicarelli, L.; Napolano, R.; Zicarelli, F. Calculation Method of the Carbon Footprint of Products of Animal Origin Integrated with the Physiological Absorption of Carbon Dioxide: Calculation Example of the CFP of Mozzarella di Bufala Campana DPO. Adv. Environ. Eng. Res. 2023, 4, 044. [Google Scholar] [CrossRef]
- Min, B.-R.; Lee, S.; Jung, H.; Miller, D.N.; Chen, R. Enteric Methane Emissions and Animal Performance in Dairy and Beef Cattle Production: Strategies, Opportunities, and Impact of Reducing Emissions. Animals 2022, 12, 948. [Google Scholar] [CrossRef]
- Kyriazakis, I.; Arndt, C.; Aubry, A.; Charlier, J.; Ezenwa, V.O.; Godber, O.F.; Krogh, M.; Mostert, P.F.; Orsel, K.; Robinson, M.W.; et al. Improve animal health to reduce livestock emissions: Quantifying an open goal. Proc. R. Soc. B 2024, 291, 20240675. [Google Scholar] [CrossRef]
- Capper, J.L.; Bauman, D.E. The role of productivity in improving the environmental sustainability of ruminant production systems. Annu. Rev. Anim. Biosci. 2013, 1, 469–489. [Google Scholar] [CrossRef]
- Pardo, G.; del Prado, A.; Fernández-Álvarez, J.; Yáñez-Ruiz, D.R.; Belanche, A. Influence of precision livestock farming on the environmental performance of intensive dairy goat farms. J. Clean. Prod. 2022, 351, 131518. [Google Scholar] [CrossRef]
- Yilmaz, I.; Yurt, B.; Sahin, O. Milk Production and Evaluation in Farms Raised Anatolian Water Buffalo (Bubalus bubalis); A Case Study of Igdir Province. J. Hell. Vet. Med. Soc. 2023, 74, 6615–6624. [Google Scholar] [CrossRef]
- Singh, R.K.; Dey, A.; Singh, M. Modulating Natural Methane Release from Rumen Fermentation through the Use of Ficus glomerata Leaf Tannins in Murrah Buffalo (Bubalus bubalis). Methane 2023, 2, 319–328. [Google Scholar] [CrossRef]
- Dey, A.; Attri, K.; Dahiya, S.S.; Paul, S.S. Influence of dietary phytogenic feed additives on lactation performance, methane emissions and health status of Murrah buffaloes (Bubalus bubalis). J. Sci. Food Agric. 2021, 101, 4390–4397. [Google Scholar] [CrossRef] [PubMed]
- Li, M.W.; Hassan, F.U.; Peng, L.J.; Ebeid, H.M.; Tang, Z.H.; Xie, F.; Peng, K.P.; Yang, C.J. Dietary treatment with omega fatty acids mediates in vitro rumen fermentation kinetics and reduce methane emission in water buffalo. Trop. J. Pharm. Res. 2021, 20, 1801–1809. [Google Scholar] [CrossRef]
- Guo, Y.X.; Faiz-ul, H.; Li, M.W.; Tang, Z.H.; Peng, L.J.; Peng, K.P.; Yang, C.J. Effect of Hydrogen-Consuming Compounds on In Vitro Ruminal Fermentation, Fatty Acids Profile, and Microbial Community in Water Buffalo. Curr. Microbiol. 2022, 79, 220. [Google Scholar] [CrossRef]
- Dey, A.; Thakur, S.; Singh, R.K.; Sheoran, S.; Andonissamy, J.; Kumar, S. Developing a Feeding Module with a Blend of Garlic Oil and Cinnamon Bark for Enhancing Antioxidant Status and Immunity of Murrah Buffalo (Bubalus bubalis) with an Improvement in Feed Efficiency and Reduced Methane Emissions. Antioxidants 2025, 14, 702. [Google Scholar] [CrossRef]
- Dey, A.; Paul, S.S.; Lailer, P.C.; Dahiya, S.S. Reducing enteric methane production from buffalo (Bubalus bubalis) by garlic oil supplementation in in vitro rumen fermentation system. SN Appl. Sci. 2021, 3, 187. [Google Scholar] [CrossRef]
- Kumar, K.; Dey, A.; Rose, M.K.; Dahiya, S.S. Modulating feed digestion and methane production by eucalyptus (Eucalyptus citriodora) leaves essential oils in water buffalo (Bubalus bubalis). Buffalo Bull. 2022, 41, 41–47. [Google Scholar] [CrossRef]
- Sheoran, S.; Dey, A.; Sindhu, S. Reduction of methane and nitrogen emission and improvement of feed efficiency, rumen fermentation, and milk production through strategic supplementation of eucalyptus (Eucalyptus citriodora) leaf meal in the diet of lactating buffalo (Bubalus bubalis). Environ. Sci. Pollut. Res. 2023, 30, 125510–125525. [Google Scholar] [CrossRef]
- Singh, R.K.; Dey, A.; Thakur, S.; Singh, M.; Lailer, P.C. Modulation of Murrah Buffalo (Bubalus bubalis) Rumen Functions for In Vitro Fatty Acid Bio-Hydrogenation, Methane Production and Fermentation Pattern of Total Mixed Ration Supplemented with Allium sativum (Garlic) Essential Oils. Fermentation 2023, 9, 615. [Google Scholar] [CrossRef]
- Kumar, K.; Dey, A.; Rose, M.K.; Dahiya, S.S. Impact of Dietary Phytogenic Composite Feed Additives on Immune Response, Antioxidant Status, Methane Production, Growth Performance and Nutrient Utilization of Buffalo (Bubalus bubalis) Calves. Antioxidants 2022, 11, 325. [Google Scholar] [CrossRef]
- Singh, R.K.; Dey, A.; Paul, S.S.; Singh, M.; Dahiya, S.S.; Punia, B.S. Associative effects of plant secondary metabolites in modulating in vitro methanogenesis, volatile fatty acids production and fermentation of feed in buffalo (Bubalus bubalis). Agrofor. Syst. 2020, 94, 1555–1566. [Google Scholar] [CrossRef]
- Attri, K.; Dey, A.; Dahiya, S.S.; Paul, S.S.; Jerome, A.; Bharadwaj, A.; Kakker, N.K. Abatement of enteric methane production from lactating Murrah buffaloes (Bubalus bubalis) with improving production performance and immune status through dietary supplementation of composite feed additive. Environ. Sci. Pollut. Res. 2020, 27, 22476–22485. [Google Scholar] [CrossRef] [PubMed]
- Georgoudis, A.G.; Papanastasis, V.P.; Boyazoglu, J.G. Use of Water Buffalo for Environmental Conservation of Waterland—Review. Asian-Australas. J. Anim. Sci. 1999, 12, 1324–1331. [Google Scholar] [CrossRef]
- Abdenour, A.; Sinan, M.; Lekhlif, B. Toward Sustainable Wetland Management: A Literature Review of Global Wetland Vulnerability Assessment Techniques in the Context of Rising Pressures. Sustainability 2025, 17, 7962. [Google Scholar] [CrossRef]
- Vári, Á.; Podschun, S.A.; Erős, T.; Hein, T.; Pataki, B.; Iojă, I.-C.; Adamescu, C.M.; Gerhardt, A.; Gruber, T.; Dedić, A.; et al. Freshwater systems and ecosystem services: Challenges and chances for cross-fertilization of disciplines. Ambio 2022, 51, 135–151. [Google Scholar] [CrossRef]
- Adhya, T.; Banerjee, S. Impact of Wetland Development and Degradation on the Livelihoods of Wetland-dependent Communities: A Case Study from the Lower Gangetic Floodplains. Wetlands 2022, 42, 65. [Google Scholar] [CrossRef]
- Hallett, M.T.; Pereira, G.; Ambrose, O.; McTurk, D.; Bankovich, B.A. Projecting the theoretical niche of a recently re-discovered population of feral Asian water buffalo (Bubalus bubalis) in the North Rupununi wetlands, Guyana. Neotrop. Biodivers. 2021, 7, 405–414. [Google Scholar] [CrossRef]
- Pike, K.N.; Perry, J.; Vanderduys, E.; Arnould, J.P.Y.; Hoskins, A. Love thy neighbour: Feral buffalos show greater space use, resource overlap and encounters during the wet season in the Northern Territory. Ecol. Evol. 2024, 14, e70345. [Google Scholar] [CrossRef]
- Carvalho, E.A.R.; Gonçalves, H.J.F.; Pinha, P.R.S.; Coutinho, I.; Haugaasen, T. Distribution and abundance of water buffalo populations in eastern Amazonian floodplains. Manag. Biol. Invasions 2021, 12, 408–419. [Google Scholar] [CrossRef]
- Salgado, J.; Shurin, J.B.; Vélez, M.I.; Link, A.; Lopera-Congote, L.; González-Arango, C.; Jaramillo, F.; Åhlén, I.; de Luna, G. Causes and consequences of recent degradation of the Magdalena River basin, Colombia. Limnol. Oceanogr. Lett. 2022, 7, 451–465. [Google Scholar] [CrossRef]
- Fűrész, A.; Penksza, K.; Sipos, L.; Turcsányi-Járdi, I.; Szentes, S.; Fintha, G.; Penksza, P.; Viszló, L.; Szalai, F.; Wagenhoffer, Z. Examination of the Effects of Domestic Water Buffalo (Bubalus bubalis) Grazing on Wetland and Dry Grassland Habitats. Plants 2023, 12, 2184. [Google Scholar] [CrossRef]
- Hoogesteijn, R.; Hoogesteijn, A. Conflicts between cattle ranching and large predators in Venezuela: Could use of water buffalo facilitate felid conservation? Oryx 2008, 42, 132–138. [Google Scholar] [CrossRef]
- Pucher, J.; Steinbronn, S.; Mayrhofer, R.; Schad, I.; El-Matbouli, M.; Focken, U. Improved Sustainable Aquaculture Systems for Small-Scale Farmers in Northern Vietnam. In Sustainable Land Use and Rural Development in Southeast Asia; Fröhlich, H.L., Schreinemachers, P., Stahr, K., Clemens, G., Eds.; Springer: Berlin, Germany, 2013; pp. 281–317. [Google Scholar]
- Jayasinghe, A.D.; Athula, J.A.; Silva, S.S.D.; Amarasinghe, U.S. Cattle and water buffalo densities wading into small village reservoirs of Sri Lanka impact on yields on the culture-based fisheries thereof. Sri Lanka J. Aquat. Sci. 2018, 23, 67–75. [Google Scholar] [CrossRef]










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de la Cruz-Cruz, L.A.; Roldán-Santiago, P.; Larrondo, C.; Orozco-Gregorio, H.; Bonilla-Jaime, H.; González-Hernández, M.; Rodríguez-Florentino, R.; Yáñez-Pizaña, A. Economic, Social, and Environmental Contributions of Water Buffalo (Bubalus bubalis) Production to the Sustainable Development Goals: A Review. Sustainability 2026, 18, 5216. https://doi.org/10.3390/su18115216
de la Cruz-Cruz LA, Roldán-Santiago P, Larrondo C, Orozco-Gregorio H, Bonilla-Jaime H, González-Hernández M, Rodríguez-Florentino R, Yáñez-Pizaña A. Economic, Social, and Environmental Contributions of Water Buffalo (Bubalus bubalis) Production to the Sustainable Development Goals: A Review. Sustainability. 2026; 18(11):5216. https://doi.org/10.3390/su18115216
Chicago/Turabian Stylede la Cruz-Cruz, Luis A., Patricia Roldán-Santiago, Cristian Larrondo, Héctor Orozco-Gregorio, Herlinda Bonilla-Jaime, Milagros González-Hernández, René Rodríguez-Florentino, and Ariadna Yáñez-Pizaña. 2026. "Economic, Social, and Environmental Contributions of Water Buffalo (Bubalus bubalis) Production to the Sustainable Development Goals: A Review" Sustainability 18, no. 11: 5216. https://doi.org/10.3390/su18115216
APA Stylede la Cruz-Cruz, L. A., Roldán-Santiago, P., Larrondo, C., Orozco-Gregorio, H., Bonilla-Jaime, H., González-Hernández, M., Rodríguez-Florentino, R., & Yáñez-Pizaña, A. (2026). Economic, Social, and Environmental Contributions of Water Buffalo (Bubalus bubalis) Production to the Sustainable Development Goals: A Review. Sustainability, 18(11), 5216. https://doi.org/10.3390/su18115216

