A Comparison of Airborne Microbial Load on Four Housed Dairy Farms
Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Animals and Housing
2.2. Sampling Design
2.3. Microbial Analysis
2.4. Environmental Measurements
2.5. Bedding Analysis
2.6. Data Standardization
2.7. Statistical Analysis
3. Results
3.1. Microclimatic Conditions Across Farms
3.2. Differences in Environmental Parameters in Relation to Microbial Groups
| Variable | Microbial Group | H | df | p |
|---|---|---|---|---|
| Bedding Moisture | TBC | 10.42 | 3 | 0.015 |
| Volume per cow | TBC | 35.29 | 3 | <0.001 |
| RH | Coliforms | 8.369 | 3 | 0.039 |
| PM1 | Coliforms | 12.27 | 3 | 0.006 |
| PM2.5 | Coliforms | 11.74 | 3 | 0.008 |
| PM10 | Coliforms | 12.21 | 3 | 0.007 |
| Volume per cow | Coliforms | 23.38 | 3 | <0.001 |
| Wind Speed | Coliforms | 15.17 | 3 | 0.002 |
| Bedding Moisture | Molds | 23.43 | 3 | <0.001 |
| Volume per cow | Molds | 34.88 | 3 | <0.001 |
3.3. Comparative Analysis of Environmental Effects on Airborne Microbial Counts
3.4. Comparative Analysis of Environmental Effects on Airborne Coliform Counts
3.5. Comparative Analysis of Environmental Effects on Airborne Mold Counts
3.6. GLMM Analysis of Factors Affecting Airborne Microbial Counts
3.7. GLMM Analysis of Factors Affecting Airborne Coliform Counts
3.8. GLMM Analysis of Factors Affecting Airborne Mold Counts
4. Discussion
5. Limitations
6. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- World Health Organization. Air Quality Guidelines; WHO: Geneva, Switzerland, 2021. [Google Scholar]
- Directive 2000/54/EC of the European Parliament and of the Council of 18 September 2000 on the Protection of Workers from Risks Related to Exposure to Biological Agents at Work. Off. J. Eur. Communities 2000, L 262, 21–45.
- Dutkiewicz, J.; Cisak, E.; Sroka, J.; Wójcik-Fatla, A.; Zając, V. Biological Agents as Occupational Hazards—Selected Issues. Ann. Agric. Environ. Med. 2011, 18, 286–293. [Google Scholar]
- European Parliament and Council. Regulation (EC) No 178/2002 of 28 January 2002 laying down the general principles and requirements of food law, establishing the European Food Safety Authority and laying down procsedures in matters of food safety. Off. J. Eur. Communities 2002, L 31, 1–24. [Google Scholar]
- European Parliament and Council. Regulation (EC) No 852/2004 of 29 April 2004 on the hygiene of foodstuffs. Off. J. Eur. Union 2004, L 139, 1–54. [Google Scholar]
- European Parliament and Council. Regulation (EC) No 853/2004 of 29 April 2004 laying down specific hygiene rules for food of animal origin. Off. J. Eur. Union 2004, L 139, 55–205. [Google Scholar]
- European Parliament and Council. Regulation (EU) 2017/625 of 15 March 2017 on official controls and other official activities performed to ensure the application of food and feed law, rules on animal health and welfare, plant health and plant protection products. Off. J. Eur. Union 2017, L 95, 1–142. [Google Scholar]
- Mellor, D.J.; Beausoleil, N.J.; Littlewood, K.E.; McLean, A.N.; McGreevy, P.D.; Jones, B.; Wilkins, C. The 2020 Five Domains Model: Including Human–Animal Interactions in Assessments of Animal Welfare. Animals 2020, 10, 1870. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ławniczek-Wałczyk, A.; Górny, R.L. Endotoxins and β-Glucans as Markers of Microbiological Contamination—Characteristics, Detection, and Environmental Exposure. Ann. Agric. Environ. Med. 2010, 17, 193–208. [Google Scholar]
- Food and Agriculture Organization; World Health Organization. Hazard Analysis and Critical Control Point (HACCP) System and Guidelines for Its Application; Codex Alimentarius Commission: Rome, Italy, 2020. [Google Scholar]
- Alonso, M.E.; González-Montaña, J.R.; Lomillos, J.M. Consumers’ Concerns and Perceptions of Farm Animal Welfare. Animals 2020, 10, 385. [Google Scholar] [CrossRef] [Scilit]
- Heredia, N.; García, S. Animals as sources of food-borne pathogens: A review. Anim. Nutr. 2018, 4, 250–255. [Google Scholar] [CrossRef] [Scilit]
- Ouamba, A.J.K.; Gagnon, M.; Varin, T.; Chouinard, P.Y.; LaPointe, G.; Roy, D. Phylogenetic variation in raw cow milk microbiota and the impact of forage combinations and use of silage inoculants. Front. Microbiol. 2023, 14, 1175663. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nightingale, K.K.; Schukken, Y.H.; Nightingale, C.R.; Fortes, E.D.; Ho, A.J.; Her, Z.; Grohn, Y.T.; McDonough, P.L.; Wiedmann, M. Ecology and Transmission of Listeria monocytogenes Infecting Ruminants and in the Farm Environment. Appl. Environ. Microbiol. 2004, 70, 4458–4467. [Google Scholar] [CrossRef] [Scilit]
- LeBlanc, S.J.; Lissemore, K.D.; Kelton, D.F.; Leslie, K.E. Major advances in disease prevention in dairy cattle. J. Dairy Sci. 2006, 89, 1549–1555. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rahman, M.T.; Sobur, M.A.; Islam, M.S.; Ievy, S.; Hossain, M.J.; El Zowalaty, M.E.; Rahman, A.T.; Ashour, H.M. Zoonotic Diseases: Etiology, Impact, and Control. Microorganisms 2020, 8, 1405. [Google Scholar] [CrossRef] [Scilit]
- Szulc, J.; Okrasa, M.; Dybka-Stępień, K.; Sulyok, M.; Nowak, A.; Otlewska, A.; Szponar, B.; Majchrzycka, K. Assessment of Microbiological Indoor Air Quality in Cattle Breeding Farms. Aerosol Air Qual. Res. 2020, 20, 1353–1373. [Google Scholar] [CrossRef] [Scilit]
- Chmielowiec-Korzeniowska, A.; Trawińska, B.; Tymczyna, L.; Bis-Wencel, H.; Matuszewski, Ł. Microbial Con-tamination of the Air in Livestock Buildings as a Threat to Human and Animal Health—A Review. Ann. Anim. Sci. 2021, 21, 417–431. [Google Scholar] [CrossRef] [Scilit]
- Dančová, N.; Gregová, G.; Szabóová, T. Assessment of Bacterial Contamination and Antimicrobial Resistance of Escherichia coli Isolates from Slovak Dairy Farms. Animals 2024, 14, 3095. [Google Scholar] [CrossRef] [Scilit]
- Lo Dico, G.; Lisuzzo, L.; Carcelén, V.; Cavallaro, G.; Haranczyk, M. Thermogravimetric Analysis of Moisture in Natural and Thermally Treated Clay Materials. Materials 2024, 17, 2231. [Google Scholar] [CrossRef] [Scilit]
- Tang, Q.; Zhang, M.; Yu, L.; Deng, K.; Mao, H.; Hu, J.; Wang, C. Seasonal Dynamics of Microbial Communities in PM2.5 and PM10 from a Pig Barn. Animals 2025, 15, 1116. [Google Scholar] [CrossRef] [Scilit]
- Callejo, A. Alojamiento para vacas lecheras. In Alojamientos e Instalaciones (II); Buxadé, C., Ed.; Mundi-Prensa: Madrid, Spain, 1998; pp. 115–159. [Google Scholar]
- Popescu, S.; Borda, C.; Diugan, E.A. Microbiological air quality in tie-stall dairy barns and some factors that influence it. Afr. J. Agric. Res. 2011, 6, 6726–6734. [Google Scholar] [CrossRef] [Scilit]
- Sevi, A.; Massa, S.; Muscio, A.; Dell’aquila, S.D.D.; Catalano, S. Litter treatment with bentonite or paraformaldehyde: Effects on air quality and on milk yield of Comisana ewes. Zootec. Nutr. Anim. 1998, 24, 213–224. [Google Scholar]
- Monsallier, F.; Feutry, F.; Bouton, Y.; Convert, T.; Verdier-Metz, I.; Montel, M.C. Are bedding materials a source of useful microorganisms for dairy cow and ewe milk? In Proceedings of the Joint Meeting FAO CIHEAM “Mountain Pastures, Mediterranean Forage Resources and Mountain Cheese” Networks, Clermont-Ferrand, France, 24 June 2014. [Google Scholar]
- Quintana, Á.R.; Seseña, S.; Garzón, A.; Arias, R. Factors Affecting Levels of Airborne Bacteria in Dairy Farms: A Review. Animals 2020, 10, 526. [Google Scholar] [CrossRef] [Scilit]
- Robles, I.; Kelton, D.F.; Barkema, H.W.; Keefe, G.P.; Roy, J.P.; von Keyserlingk, M.A.G.; DeVries, T.J. Bacterial concentrations in bedding and their association with dairy cow hygiene and milk quality. Animal 2020, 14, 1052–1066. [Google Scholar] [CrossRef] [Scilit]
- Kic, P. Influence of Technological Housing Conditions on the Concentration of Airborne Dust in Dairy Farms in the Summer: A Case Study. Animals 2023, 13, 2322. [Google Scholar] [CrossRef] [Scilit]
- Paduch, J.-H.; Mohr, E.; Krömker, V. The Association between Bedding Material and the Bacterial Counts of Staphylococcus aureus, Streptococcus uberis and Coliform Bacteria on Teat Skin and in Teat Canals in Lactating Dairy Cattle. J. Dairy Res. 2013, 80, 159–164. [Google Scholar] [CrossRef] [Scilit]
- Murphy, S.I.; Kent, D.; Martin, N.H.; Evanowski, R.L.; Patel, K.; Godden, S.M.; Wiedmann, M. Bedding and Bedding Management Practices Are Associated with Mesophilic and Thermophilic Spore Levels in Bulk Tank Raw Milk. J. Dairy Sci. 2019, 102, 6885–6900. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sevi, A.; Massa, S.; Annicchiarico, G.; Aquila, S.D.; Muscio, A. Effect of stocking density on ewes’ milk yield, udder health and microenvironment. J. Dairy Res. 1999, 66, 489–499. [Google Scholar] [CrossRef] [Scilit]
- Jimeno, V. Diseño de alojamientos para vacas lecheras en estabulación libre. In Curso Para Peritos Tasadores; Agroseguro, S.A: Madrid, Spain, 2004. [Google Scholar]
- Preller, L.; Heederik, D.; Kromhout, H.; Boleij, J.S.M.; Tielen, M.J.M. Determinants of dust and endotoxin exposure of pig farmers: Development of a control strategy using empirical modelling. Ann. Occup. Hyg. 1995, 5, 545–547. [Google Scholar] [CrossRef] [Scilit]
- Kim, D.; Shin, D.; Kim, D.; Kwon, B.; Min, C.; Geevarghese, G.; Kim, S.; Hwang, J.; Seo, S. Revisiting the Joint Effect of Temperature and Relative Humidity on Airborne Mold and Bacteria Concentration in Indoor Environment: A Machine Learning Approach. Build. Environ. 2025, 270, 112548. [Google Scholar] [CrossRef] [Scilit]
- Islam, M.A.; Ikeguchi, A.; Naide, T. Influence of Temperature and Humidity on the Dynamics of Aerosol Numbers and Airborne Bacteria in a Dairy Calf House. Biosyst. Eng. 2020, 194, 213–226. [Google Scholar] [CrossRef] [Scilit]
- Fang, Z.; Guo, W.; Zhang, J.; Lou, X. Influence of Heat Events on the Composition of Airborne Bacterial Communities in Urban Ecosystems. Int. J. Environ. Res. Public Health 2018, 15, 2295. [Google Scholar] [CrossRef] [Scilit]
- Hogan, J.S.; Smith, K.L. Bacteria Counts in Sawdust Bedding. J. Dairy Sci. 1997, 80, 1600–1605. [Google Scholar] [CrossRef] [Scilit]
- Sanz, S.; Olarte, C.; Martínez-Olarte, R.; Navajas-Benito, E.V.; Alonso, C.A.; Hidalgo-Sanz, S.; Somalo, S.; Torres, C. Airborne dissemination of Escherichia coli in a dairy cattle farm and its environment. Int. J. Food Microbiol. 2015, 197, 40–44. [Google Scholar] [CrossRef] [Scilit]
- Curiel, G.J.; Van Eijk, H.M.J.; Lelieveld, H.L.M. Risk and control of airborne contamination. In Encyclopedia of Food Microbiology; Robinson, R.K., Batt, C.A., Patel, P.D., Eds.; Academic Press: London, UK, 2000; pp. 1816–1822. [Google Scholar]
| Farms | Housing System | Type of Bedding | Space per Cow (m2/Cow) ± SD |
|---|---|---|---|
| Farm 1 | Loose housing with permanent deep litter | Deep litter housing system | 20.92 ± 0.86 |
| Farm 2 | Loose housing on deep bedding | Deep bedding with periodic addition of straw | 10.04 ± 0.43 |
| Farm 3 | Free-stall housing with individual cubicles | Cubicles fitted with rubber mats | 8.06 ± 0.32 |
| Farm 4 | Loose housing on deep bedding | Deep bedding with periodic addition of straw | 59.73 ± 2.97 |
| Farm | Relative Humidity, % Mean ± SD | Bedding Moisture, % Mean ± SD | Wind Speed, m/s Mean ± SD | Volume/Cow, m3/Cow Mean ± SD |
|---|---|---|---|---|
| Farm 1 (n = 15) | 71.07 ± 10.89 | 31.75 ± 11.14 | 1.01 ± 0.77 | 157.6 ± 0.90 |
| Farm 2 (n = 12) | 64.88 ± 12.67 | 54.03 ± 21.22 | 0.53 ± 0.31 | 32.62 ± 9.16 |
| Farm 3 (n = 15) | 65.66 ± 11.80 | 84.09 ± 1.85 * | 0.44 ± 0.55 | 48.29 ± 1.89 |
| Farm 4 (n = 12) | 64.73 ± 7.76 | 65.08 ± 13.37 | 0.61 ± 0.41 | 236.3 ± 0.57 |
| Comparison (Farm vs. Farm) | Factor/Environmental Parameter | Z | N | Effect Size r | Interpretation |
|---|---|---|---|---|---|
| Farm 1–Farm 2 | Bedding humidity | 2.651 | 26 | 0.52 | Large |
| Farm 1–Farm 3 | Bedding humidity | 2.780 | 29 | 0.52 | Large |
| Farm 1–Farm 4 | Bedding humidity | 2.322 | 26 | 0.46 | Large |
| Farm 1–Farm 3 | Wind speed | 2.629 | 30 | 0.48 | Large |
| Farm 2–Farm 3 | Wind speed | 1.855 | 28 | 0.35 | Moderate |
| Farm 1–Farm 2 | Air volume per cow | 3.668 | 26 | 0.72 | Large |
| Farm 1–Farm 3 | Air volume per cow | 4.012 | 30 | 0.73 | Large |
| Farm 2–Farm 4 | Air volume per cow | 4.308 | 24 | 0.88 | Large |
| Farm 3–Farm 4 | Air volume per cow | 4.671 | 28 | 0.88 | Large |
| Farm 1–Farm 3 | Temperature | 2.134 | 28 | 0.40 | Moderate |
| Farm 2–Farm 3 | Temperature | 1.772 | 28 | 0.33 | Moderate |
| Comparison (Farm vs. Farm) | Factor/Environmental Parameter | Z | N | Effect Size r | Interpretation |
|---|---|---|---|---|---|
| Farm 1–Farm 2 | Bedding humidity | 2.651 | 26 | 0.52 | Large |
| Farm 1–Farm 3 | Bedding humidity | 2.780 | 29 | 0.52 | Large |
| Farm 1–Farm 4 | Bedding humidity | 2.322 | 26 | 0.46 | Large |
| Farm 1–Farm 2 | Wind speed | 2.940 | 26 | 0.58 | Large |
| Farm 1–Farm 4 | Wind speed | 3.532 | 26 | 0.69 | Large |
| Farm 1–Farm 3 | Wind speed | 2.629 | 30 | 0.48 | Large |
| Farm 2–Farm 3 | Wind speed | 1.855 | 28 | 0.35 | Moderate |
| Farm 1–Farm 2 | Air volume per cow | 3.668 | 26 | 0.72 | Large |
| Farm 1–Farm 3 | Air volume per cow | 4.012 | 30 | 0.73 | Large |
| Farm 2–Farm 4 | Air volume per cow | 4.308 | 24 | 0.88 | Large |
| Farm 3–Farm 4 | Air volume per cow | 4.671 | 28 | 0.88 | Large |
| Farm 1–Farm 3 | Temperature | 2.134 | 28 | 0.40 | Moderate |
| Farm 2–Farm 3 | Temperature | 1.772 | 28 | 0.33 | Moderate |
| Farm 1–Farm 2 | PM1 | 3.668 | 26 | 0.72 | Large |
| Farm 1–Farm 3 | PM1 | 4.012 | 30 | 0.73 | Large |
| Farm 1–Farm 4 | PM1 | 4.308 | 26 | 0.88 | Large |
| Farm 3–Farm 4 | PM1 | 4.671 | 28 | 0.88 | Large |
| Farm 1–Farm 2 | PM10 | 2.250 | 26 | 0.44 | Large |
| Farm 1–Farm 3 | PM10 | 1.960 | 30 | 0.36 | Moderate |
| Farm 1–Farm 4 | PM10 | 3.410 | 26 | 0.67 | Large |
| Farm 3–Farm 4 | PM10 | 1.514 | 28 | 0.31 | Moderate |
| Farm 1–Farm 2 | TVOCs | 2.395 | 26 | 0.47 | Large |
| Farm 1–Farm 4 | TVOCs | 2.139 | 26 | 0.42 | Large |
| Comparison (Farm vs. Farm) | Factor/Environmental Parameter | Z | N | Effect Size r | Interpretation |
|---|---|---|---|---|---|
| Farm 1–Farm 2 | Bedding humidity | 1.952 | 26 | 0.38 | Moderate |
| Farm 1–Farm 3 | Bedding humidity | 4.793 | 29 | 0.89 | Large |
| Farm 1–Farm 4 | Bedding humidity | 2.645 | 26 | 0.52 | Large |
| Farm 2–Farm 3 | Bedding humidity | 2.617 | 27 | 0.50 | Large |
| Farm 3–Farm 4 | Bedding humidity | 1.913 | 27 | 0.37 | Moderate |
| Farm 1–Farm 2 | Wind Speed | 1.740 | 26 | 0.34 | Moderate |
| Farm 1–Farm 3 | Wind Speed | 1.811 | 30 | 0.33 | Moderate |
| Farm 1–Farm 2 | Air Volume per Cow | 4.180 | 26 | 0.82 | Large |
| Farm 1–Farm 3 | Air Volume per Cow | 3.355 | 30 | 0.61 | Large |
| Farm 2–Farm 4 | Air Volume per Cow | 4.860 | 24 | 0.99 | Large |
| Farm 3–Farm 4 | Air Volume per Cow | 4.104 | 28 | 0.78 | Large |
| Factor | Level/Category | B | SE | Exp(B) | 95% CI (B) | Wald χ2 | df | p-Value |
|---|---|---|---|---|---|---|---|---|
| Farm Type | 1 | −0.299 | 0.361 | 0.74 | −0.818–0.597 | 0.094 | 1 | 0.759 |
| 2 | −0.458 | 0.368 | 0.63 | −1.120–0.321 | 1.180 | 1 | 0.277 | |
| 3 | −0.048 | 0.353 | 0.95 | −0.740–0.644 | 0.018 | 1 | 0.893 | |
| 4 (ref) | 0 | – | 1.00 | – | – | – | – | |
| Location | 1 | 0.471 | 0.336 | 1.60 | −0.187–1.128 | 1.968 | 1 | 0.161 |
| 2 (ref) | 0 | – | 1.00 | – | – | – | – | |
| RH% | – | −0.015 | 0.012 | 0.99 | −0.040–0.009 | 1.559 | 1 | 0.212 |
| Temperature | – | 0.056 | 0.042 | 1.06 | −0.026–0.138 | 1.772 | 1 | 0.183 |
| Wind Speed | – | −0.154 | 0.248 | 0.86 | −0.639–0.332 | 0.384 | 1 | 0.535 |
| Bedding Humidity | – | −0.009 | 0.011 | 0.99 | −0.030–0.012 | 0.679 | 1 | 0.410 |
| Air Volume per Cow | – | −0.001 | 0.032 | 1.00 | −0.064–0.062 | 0.001 | 1 | 0.978 |
| PM1 | – | 0.083 | 0.069 | 1.09 | −0.053–0.219 | 1.416 | 1 | 0.234 |
| PM2.5 | – | 0.072 | 0.056 | 1.08 | −0.038–0.182 | 1.659 | 1 | 0.198 |
| PM10 | – | 0.058 | 0.047 | 1.06 | −0.034–0.150 | 1.535 | 1 | 0.215 |
| TVOCs | – | 0.373 | 0.907 | 1.45 | −1.404–2.151 | 0.169 | 1 | 0.681 |
| Factor | Level/Category | B | SE | Exp(B) | 95% CI (B) | Wald χ2 | df | p-Value |
|---|---|---|---|---|---|---|---|---|
| Farm Type | 1 | −2.258 | 0.384 | 0.12 | −3.047–−1.474 | 30.52 | 1 | <0.001 |
| 2 | −1.070 | 0.387 | 0.35 | −1.831–−0.312 | 6.98 | 1 | 0.009 | |
| 3 | −1.482 | 0.359 | 0.23 | −2.301–−0.755 | 16.05 | 1 | <0.001 | |
| 4 (ref) | 0 | – | 1.00 | – | – | – | – | |
| Location | 1 | 0.228 | 0.341 | 1.27 | −0.546–1.018 | 0.55 | 1 | 0.528 |
| 2 (ref) | 0 | – | 1.00 | – | – | – | – | |
| Relative Humidity (%) | – | 0.014 | 0.015 | 1.01 | −0.014–0.042 | 0.931 | 1 | 0.335 |
| Temperature | – | −0.040 | 0.042 | 0.96 | −0.123–0.043 | 0.885 | 1 | 0.347 |
| Wind Speed | – | 0.150 | 0.290 | 1.16 | −0.419–0.719 | 0.268 | 1 | 0.605 |
| Bedding Humidity | – | −0.021 | 0.011 | 0.98 | −0.043–0.002 | 3.310 | 1 | 0.069 |
| Air Volume per Cow | – | 0.013 | 0.034 | 1.01 | −0.053–0.079 | 0.150 | 1 | 0.699 |
| PM1 | – | 0.114 | 0.074 | 1.12 | −0.031–0.258 | 2.389 | 1 | 0.122 |
| PM2.5 | – | 0.106 | 0.061 | 1.11 | −0.012–0.225 | 3.087 | 1 | 0.079 |
| PM10 | – | 0.086 | 0.050 | 1.09 | −0.013–0.185 | 2.924 | 1 | 0.087 |
| TVOCs | – | −1.912 | 1.063 | 0.15 | −3.995–0.172 | 3.234 | 1 | 0.072 |
| Factor | Level/ Category | B | SE | Exp(B) | 95% CI (B) | Wald χ2 | df | p-Value |
|---|---|---|---|---|---|---|---|---|
| Farm Type | 1 | −0.843 | 0.369 | 0.43 | −0.858–0.589 | 0.133 | 1 | 0.715 |
| 2 | −0.074 | 0.371 | 0.93 | −0.773–0.681 | 0.015 | 1 | 0.903 | |
| 3 | −0.265 | 0.349 | 0.77 | −0.939–0.427 | 0.540 | 1 | 0.463 | |
| 4 (ref) | 0 | – | 1.00 | – | – | – | – | |
| Location | 1 | 0.113 | 0.324 | 1.12 | −0.524–0.744 | 0.115 | 1 | 0.734 |
| 2 (ref) | 0 | – | 1.00 | – | – | – | – | |
| Relative Humidity (%) | – | −0.017 | 0.013 | 0.98 | −0.042–0.009 | 1.672 | 1 | 0.196 |
| Temperature | – | 0.085 | 0.040 | 1.09 | 0.006–0.164 | 4.473 | 1 | 0.034 |
| Wind Speed | – | −0.017 | 0.243 | 0.98 | −0.494–0.460 | 0.005 | 1 | 0.944 |
| Bedding Humidity | – | −0.002 | 0.011 | 1.00 | −0.022–0.019 | 0.020 | 1 | 0.887 |
| Air Volume per Cow | – | −0.020 | 0.031 | 0.98 | −0.081–0.042 | 0.399 | 1 | 0.527 |
| PM1 | – | 0.010 | 0.067 | 1.01 | −0.121–0.142 | 0.025 | 1 | 0.876 |
| PM2.5 | – | 0.009 | 0.055 | 1.01 | −0.098–0.116 | 0.027 | 1 | 0.870 |
| PM10 | – | 0.008 | 0.046 | 1.01 | −0.081–0.098 | 0.034 | 1 | 0.854 |
| TVOCs | – | 0.153 | 0.947 | 1.17 | −1.703–2.010 | 0.026 | 1 | 0.871 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Bachevska, G.; Beev, G.; Dimov, D.; Stancheva, E.; Penev, T. A Comparison of Airborne Microbial Load on Four Housed Dairy Farms. Vet. Sci. 2026, 13, 357. https://doi.org/10.3390/vetsci13040357
Bachevska G, Beev G, Dimov D, Stancheva E, Penev T. A Comparison of Airborne Microbial Load on Four Housed Dairy Farms. Veterinary Sciences. 2026; 13(4):357. https://doi.org/10.3390/vetsci13040357
Chicago/Turabian StyleBachevska, Gergana, Georgi Beev, Dimo Dimov, Elena Stancheva, and Toncho Penev. 2026. "A Comparison of Airborne Microbial Load on Four Housed Dairy Farms" Veterinary Sciences 13, no. 4: 357. https://doi.org/10.3390/vetsci13040357
APA StyleBachevska, G., Beev, G., Dimov, D., Stancheva, E., & Penev, T. (2026). A Comparison of Airborne Microbial Load on Four Housed Dairy Farms. Veterinary Sciences, 13(4), 357. https://doi.org/10.3390/vetsci13040357

