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Keywords = plant growth-promotion

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16 pages, 1250 KB  
Article
Molecular Cloning, In Silico Characterization, and Promoter Analysis of a Putative ETHE1 Gene from Jatropha curcas
by Mei-Li Zhao, Feng-Jin Han and Lei Nie
Curr. Issues Mol. Biol. 2026, 48(9), 919; https://doi.org/10.3390/cimb48090919 - 8 Sep 2026
Abstract
Sulfur metabolism and stress responses are fundamental to plant growth and seed development. ETHE1 encodes a mitochondrial sulfur dioxygenase that plays important roles in these processes; however, its function in Jatropha curcas remains unknown. In this study, we report the cloning and in [...] Read more.
Sulfur metabolism and stress responses are fundamental to plant growth and seed development. ETHE1 encodes a mitochondrial sulfur dioxygenase that plays important roles in these processes; however, its function in Jatropha curcas remains unknown. In this study, we report the cloning and in silico characterization of a putative JcETHE1 gene from J. curcas. Bioinformatic analysis revealed that JcETHE1 has an open reading frame of 726 bp encoding a 241-amino-acid protein, which is predicted to localize in mitochondria and possesses a typical sulfur dioxygenase conserved domain. Because the transcript ends were not experimentally confirmed and the predicted protein is shorter than related plant homologues, the possibility that the cloned sequence is partial cannot be excluded. Phylogenetic analysis showed that JcETHE1 clusters within the Euphorbiaceae clade, showing high similarity to ETHE1 from Manihot esculenta and Hevea brasiliensis. In silico promoter analysis suggested that, in addition to core elements, the JcETHE1 promoter contains multiple putative regulatory elements associated with light response, hormone responses (ABA, ethylene, gibberellin), floral development (CArG-box, AAGAA-motif), stress responses, and endosperm development. These findings provide a molecular basis for future functional studies of JcETHE1 and suggest that it may serve as a potential candidate gene for further investigation into reproductive development and stress responses in J. curcas. However, these hypotheses require experimental validation. Full article
(This article belongs to the Special Issue Plant Hormones, Development, and Stress Tolerance)
23 pages, 374 KB  
Review
Managing Citrus Canopy Growth for Higher Productivity: A Review of Plant Growth Regulator (PGR) Applications
by Kare Mahmud, Paul Cronje and Dave Monks
Horticulturae 2026, 12(9), 1140; https://doi.org/10.3390/horticulturae12091140 - 8 Sep 2026
Abstract
Balancing the vegetative and reproductive developmental cycles in a citrus orchard is essential to maintain sustainability. Plant growth regulators (PGRs) offer an effective tool for managing shoot growth rate and fruit production of citrus trees. By moderating shoot elongation and reducing canopy expansion, [...] Read more.
Balancing the vegetative and reproductive developmental cycles in a citrus orchard is essential to maintain sustainability. Plant growth regulators (PGRs) offer an effective tool for managing shoot growth rate and fruit production of citrus trees. By moderating shoot elongation and reducing canopy expansion, PGRs help minimise the frequency and intensity of pruning, substantially reducing labour costs and improving orchard management. Evidence from multi-year experiments showed PGR-treated citrus trees can maintain or increase yield efficiency, producing equal or greater fruit/canopy (m3) than untreated controls. Strategic application of PGRs can moderate alternate bearing by promoting more consistent and fruitful shoots, stabilising annual yields. Economic assessments showed significant reductions in labour costs, especially when trees treated with PGRs required less hand pruning. This review synthesises historic and contemporary research and the mechanisms by which PGRs exert their effects in citrus. It identifies knowledge gaps, such as the need for long-term studies, optimal timing for different cultivars, and integrated strategies suited to different environmental conditions. Plant growth regulators could be an effective tool for stable citrus production, offering the potential for more efficient tree canopy management when used responsibly in accordance with regulatory requirements and integrated with other orchard management practices. Full article
15 pages, 1727 KB  
Article
Agro-Circular Economy: Produced Volume and Rates of Sisal Residues (Pulp and Broken Fiber) on Development of Sisal Seedlings in Bahia/Brazil
by Risely Ferraz-Almeida, Maíne Alves dos Santos, Joane Lima Oliveira and Valmir Freitas de Almeida
Agronomy 2026, 16(18), 1748; https://doi.org/10.3390/agronomy16181748 - 8 Sep 2026
Abstract
During sisal defibration, large amounts of residues are produced, classified as liquid (green juice) and solid (pulp/mucilage and broken fiber). Pulp/mucilage and broken fiber have been used for sisal fertilization by farmers in Brazil, but no studies have demonstrated the rates of solid [...] Read more.
During sisal defibration, large amounts of residues are produced, classified as liquid (green juice) and solid (pulp/mucilage and broken fiber). Pulp/mucilage and broken fiber have been used for sisal fertilization by farmers in Brazil, but no studies have demonstrated the rates of solid residues needed to improve sisal production. The study demonstrated the effects of sisal residues (pulp and broken fiber) on the development of sisal seedlings in the region of Conceição do Coité, Bahia, Brazil, based on agro-circular economy principles. The study was developed using two scientific methods: (i) modeling of sisal residue production (pulp and broken fiber) in Bahia/Brazil, during recent years (2000–2024) and (ii) an outdoor pot experiment testing rates of dried sisal residue (0, 2, 4, 6, 8, 10, and 12 L plant−1 of a mixture of pulp and broken fiber) on the development of sisal seedlings. Results showed that over the last decades, the annual residue production of pulp and broken fiber was 4.3 million tons year−1, with an accumulated production of 107.8 million tons between 2000 and 2024. The rates of sisal residues promoted the development of plants, increasing plant weight (from 29.7 to 247.4 g/plant), shoot (from 4.3 to 22.4 g/plant), and root (from 25.4 to 225.0 g/plant). Sisal seedlings produced more roots than shoots with applications of residues. The sisal residues fitted a linear response, indicating that increasing rates promoted sisal seedling growth. Based on the results, it can be concluded that the sisal sector produces a great volume of solid residues that can be used for sisal planting, promoting higher initial plant development and an agro-circular economy in Bahia, Brazil. Future studies could include data on sisal fertilization, circularity index, nutrient cycling, carbon footprint, water footprint, and benefits. Future studies should also test application rates across different soils, regions, temperatures, times, and other variations to increase the efficiency of residue use. Full article
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26 pages, 2764 KB  
Article
Effects of Individual and Consortium Inoculation of Bacillus velezensis, Burkholderia pyrrocinia, and Streptomyces sp. on Acclimatization and Tuberization of Micropropagated Potato
by El Hadi Erbiai, Fidel Carlos Jaime, Fernanda Leal and Guilhermina Marques
Horticulturae 2026, 12(9), 1134; https://doi.org/10.3390/horticulturae12091134 - 7 Sep 2026
Abstract
Potato (Solanum tuberosum L.), the third most important food crop worldwide, is constrained by phytopathogens, environmental stress, and heavy agrochemical use. Potato micropropagation is a biotechnological strategy for producing genetically uniform, pathogen-free plantlets. However, the acclimatization phase remains a major bottleneck in [...] Read more.
Potato (Solanum tuberosum L.), the third most important food crop worldwide, is constrained by phytopathogens, environmental stress, and heavy agrochemical use. Potato micropropagation is a biotechnological strategy for producing genetically uniform, pathogen-free plantlets. However, the acclimatization phase remains a major bottleneck in micropropagation, often resulting in poor survival and stunted growth. In this context, plant growth-promoting bacteria (PGPB) represent a sustainable strategy to improve plantlet establishment and reduce reliance on synthetic inputs. This study evaluated the biofertilization and biocontrol potential of three Douro vineyard-associated bacterial strains, Bacillus velezensis Nb1, Burkholderia pyrrocinia Gs3, and Streptomyces sp. 42s5, identified using 16S rRNA and gyrB sequence analysis. In dual-culture assays, the isolates showed antagonistic activity against Fusarium oxysporum, F. solani, Botrytis cinerea, and Alternaria alternata. All strains also exhibited key plant growth-promoting traits, including indole-3-acetic acid and siderophore production, and phosphate solubilization. The isolates were tested individually and in consortia on micropropagated potato plantlets during acclimatization under greenhouse conditions. Eight treatments (six replicates each), including a non-inoculated control, were evaluated. The results indicated that inoculations significantly improved vegetative growth and yield-related parameters. Notably, the Gs3 + 42s5 combination produced the highest shoot biomass, while the three-strain consortium achieved the greatest total tuber weight (36.91 g/plant) compared to the control (7.75 g/plant). These findings highlight the potential of these native PGPB, particularly when applied in multi-strain combinations, to enhance acclimatization efficiency and support sustainable potato production by reducing dependence on chemical inputs and promoting eco-friendly agricultural practices. Full article
(This article belongs to the Special Issue Strategies of Producing Horticultural Crops Under Climate Change)
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25 pages, 4809 KB  
Review
Microbial Biofertilizers: Mechanisms, Agricultural Applications, Innovations, and Future Perspectives
by Imene Marouf, Rayane Saifi, Abouamama Sidaoui, Hadjer Saifi, Debasis Mitra and Bekri Xhemali
Appl. Microbiol. 2026, 6(9), 106; https://doi.org/10.3390/applmicrobiol6090106 - 7 Sep 2026
Abstract
Unsustainable agricultural practices and overreliance on chemical fertilizers have led to severe environmental issues, such as soil and water pollution, loss of biodiversity, and risks to human and animal health. Moreover, plant diseases continuously decrease crop productivity and threaten global food security. Therefore, [...] Read more.
Unsustainable agricultural practices and overreliance on chemical fertilizers have led to severe environmental issues, such as soil and water pollution, loss of biodiversity, and risks to human and animal health. Moreover, plant diseases continuously decrease crop productivity and threaten global food security. Therefore, there is a strong need to focus on sustainable agricultural practices. Microbial biofertilizers emerge as environment-friendly alternatives to chemical fertilizers that help in nutrient solubilization and availability, soil fertility, and plant growth promotion, in addition to curbing the application of chemical fertilizers. Microbial inoculants enhance agricultural yield by performing complementary roles, such as facilitating nutrient uptake through biological nitrogen fixation and phosphate solubilization, promoting plant growth via phytohormone synthesis, and mitigating diseases by activating plant defense responses. A 2025 meta-analysis of 107 field studies in China reported mean yield increases of 22.3% in wheat, 13.6% in rice, 12.8% in maize, and 65.4% in millet, while a field study in saline soil reported a 25% reduction in NPK fertilizer use in barley without reducing the grain yield. This review provides an overview of the major types of microbial biofertilizers, their modes of action, and their use in important cropping systems. Special emphasis is placed on microbial consortia that can enhance nutrient cycling, plant productivity, and tolerance to abiotic stress factors. The application of nanotechnology, genetically engineered microorganisms, and combinations of microbial inoculants with organic waste are some strategies that could be adopted for next-generation biofertilizer development. The review also addresses the major hurdles in the formulation, field performance, and commercialization of microbial biofertilizers. Future perspectives revolve around optimizing microbial formulations, applying advanced biotechnological tools, and developing enabling policies for the rapid adoption of microbial biofertilizers for sustainable agriculture. Full article
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15 pages, 398 KB  
Article
Low-Dose Foliar Melatonin Enhances Chilling Stress Tolerance in Cucumber
by Alexey A. Kudrinsky, Olga A. Shapoval, Maria T. Mukhina, Dmitry M. Mikhaylov, Georgii V. Lisichkin and Yurii A. Krutyakov
Agronomy 2026, 16(17), 1739; https://doi.org/10.3390/agronomy16171739 - 7 Sep 2026
Viewed by 61
Abstract
The study evaluated the potential of low-dose foliar melatonin (MT) treatments to alleviate chilling injury in cucumber plants, with a particular focus on mimicking sudden spring frosts in open-field cultivation. Cucumber seedlings were sprayed with MT solutions at 0.1, 1, and 10 mg [...] Read more.
The study evaluated the potential of low-dose foliar melatonin (MT) treatments to alleviate chilling injury in cucumber plants, with a particular focus on mimicking sudden spring frosts in open-field cultivation. Cucumber seedlings were sprayed with MT solutions at 0.1, 1, and 10 mg L−1 (0.4, 4, 40 µM respectively), then subjected to a controlled chilling regime (4 °C for 72 h). A set of biochemical and physiological parameters was assessed, including stem elongation, leaf area, tissue water content, photosynthetic pigment concentrations, malondialdehyde (MDA) and hydrogen peroxide (H2O2) accumulation, antioxidant enzyme activities, and soluble carbohydrate profiles. In addition, the thermostable fraction of chlorophylls a and b was determined as an indicator of photosynthetic system integrity; this parameter substantially increased under MT treatment, particularly at 1 and 10 mg L−1, despite an overall reduction in total pigment content. The results demonstrated that MT pretreatment, especially at 1 mg L−1, significantly mitigated chilling-induced growth inhibition, preserved chloroplast integrity, and reduced membrane lipid peroxidation. Moreover, MT promoted the accumulation of osmo- and cryoprotective sugars, contributing to improved cellular homeostasis under low temperature. These key findings indicate that low-dose MT priming is a promising, nature-derived strategy to enhance the tolerance of cucumber to acute chilling events, supporting the development of sustainable and organic-friendly approaches for spring frost protection. Full article
(This article belongs to the Section Plant-Crop Biology and Biochemistry)
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14 pages, 2257 KB  
Article
Effects of Mulching Measures on Growth of Haloxylon ammodendron Seedlings in an Arid Mining Area
by Zhiqiang Zheng, Hong Wang, Zhengzhong Jin, Maoling Ayitikan, Jing Xie and Zhenggang Wang
Agronomy 2026, 16(17), 1732; https://doi.org/10.3390/agronomy16171732 - 5 Sep 2026
Viewed by 135
Abstract
To explore the suitable surface mulching measures for vegetation restoration in abandoned mining areas in arid regions, this study investigated the water conservation effects of various surface mulching practices on H. ammodendron restoration in arid mining zones. The results showed that (1) The [...] Read more.
To explore the suitable surface mulching measures for vegetation restoration in abandoned mining areas in arid regions, this study investigated the water conservation effects of various surface mulching practices on H. ammodendron restoration in arid mining zones. The results showed that (1) The survival rates of sandalwood under different coverage measures are ranked as follows: coal gangue mulching > control > fine sand mulching > liquid film mulching > agricultural plastic film mulching. (2) Different mulching measures had a significant effect on the height growth of H. ammodendron (p = 0.001) (p < 0.05). The agricultural plastic film group yielded the greatest annual increments in plant height and crown width (36.50 cm and 33.49 cm, respectively), with agricultural plastic film and fine sand exhibiting superior water retention capacity. (3) Overall, each mulching practice had distinct advantages and drawbacks. Agricultural plastic film mulching achieved the best plant growth-promoting effect yet suffered from soil contamination and high costs. Coal gangue mulching, capable of solid waste recycling while delivering favorable restoration outcomes, was the preferred option for vegetation restoration in local mining areas. These findings provide technical references and practical support for vegetation restoration in abandoned mining areas of arid regions. Full article
(This article belongs to the Section Grassland and Pasture Science)
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16 pages, 11238 KB  
Article
Foliar Application of Se and TiO2 Nanoparticles Induces Physiological Stability and Stem Anatomical Remodeling Without Affecting Vegetative Growth in Lilium cv. Concador
by Sergio Rubén Pérez-Ríos, Nayla Tamara Sánchez-Granados, Juan Ocampo-López, Mariana Saucedo-García, Fabián Fernández-Luqueño, María Fernanda Cenobio-Galindo, Macario Vicente-Flores, Ma Isabel Reyes-Santamaría, Cristián Raziel Delgado-González and Iridiam Hernández-Soto
Int. J. Plant Biol. 2026, 17(9), 83; https://doi.org/10.3390/ijpb17090083 - 4 Sep 2026
Viewed by 98
Abstract
Lilium sp. is one of the most commercially important ornamental species; however, improving its ornamental quality remains a challenge for production systems. In this context, nanoparticles have been proposed as an innovative alternative to optimize the agronomic performance of ornamental crops. The objective [...] Read more.
Lilium sp. is one of the most commercially important ornamental species; however, improving its ornamental quality remains a challenge for production systems. In this context, nanoparticles have been proposed as an innovative alternative to optimize the agronomic performance of ornamental crops. The objective of this study was to determine how the foliar application of selenium nanoparticles (SeNPs) and titanium dioxide nanoparticles (TiO2NPs) modifies the physiological response and stem morphoanatomy of Lilium cv. Concador. Plants were grown under greenhouse conditions using conventional agronomic management for commercial Lilium production. We evaluated vegetative growth variables, relative chlorophyll content (SPAD), root biomass, flowering characteristics, and quantitative stem anatomy using histological, morphometric, and multivariate statistical analyses. Most agronomic variables, including plant height, number of leaves, shoot biomass, and flower opening, did not differ significantly between treatments, indicating that the nanoparticles did not compromise vegetative development. In contrast, root biomass and stem anatomical organization responded differently depending on nanoparticle type and applied dose. SeNPs, particularly at the highest dose, promoted greater development of parenchyma and vascular tissue, while TiO2NPs induced dose-dependent anatomical responses, with less parenchyma expansion and less pronounced vascular remodeling. Taken together, these results demonstrate that foliar application of nanoparticles induces early remodeling of the stem’s functional architecture without affecting vegetative growth and show that quantitative anatomy is a sensitive tool for detecting early responses to nano-inputs in ornamental species. Full article
(This article belongs to the Section Plant Physiology)
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29 pages, 20694 KB  
Article
Inoculation with Bacillus velezensis UFV 3918 Promotes Early Growth and Nutrient Uptake in Sugarcane Under Reduced Phosphorus Fertilization
by Hariane Luiz Santos and Marcelo de Almeida Silva
Agriculture 2026, 16(17), 1917; https://doi.org/10.3390/agriculture16171917 - 4 Sep 2026
Viewed by 283
Abstract
Phosphorus (P) is one of the main limiting factors for sugarcane establishment and longevity in tropical soils, requiring biotechnological strategies to improve fertilizer use efficiency. This study evaluated the effects of inoculation with Bacillus velezensis UFV 3918, alone or combined with reduced monoammonium [...] Read more.
Phosphorus (P) is one of the main limiting factors for sugarcane establishment and longevity in tropical soils, requiring biotechnological strategies to improve fertilizer use efficiency. This study evaluated the effects of inoculation with Bacillus velezensis UFV 3918, alone or combined with reduced monoammonium phosphate (MAP) doses, on the morphological, nutritional, and root nutrient uptake responses of sugarcane grown in a dystrophic Red Latosol under greenhouse conditions. The experiment was conducted in a completely randomized design with six treatments and four replicates: absolute control (AC, without MAP), commercial control (CC, recommended MAP dose), B. velezensis alone (Bv), and Bv combined with 1/3, 2/3, or the full recommended MAP dose. Plant growth responses varied across treatments and stages, with Bv promoting greater leaf area than the CC at 120 and 180 DAP, whereas Bv + 1/3 MAP maintained leaf area comparable to the CC throughout the evaluation period. Principal component analysis (PCA) revealed a clear separation among treatments, with Bv exhibiting the most distinct plant response, primarily associated with greater stalk diameter, root and stalk biomass, higher concentrations of potassium and phosphorus in stalks, sulfur and magnesium in roots, and greater boron-use efficiency. Bv + 1/3 MAP displayed an intermediate multivariate profile, mainly associated with phosphorus uptake per unit root length and nutritional attributes related to phosphorus acquisition under reduced fertilizer supply. Correlation analysis further revealed strong positive associations among growth-related traits, biomass accumulation, and phosphorus-related variables, indicating a close relationship between P acquisition and plant responses to bacterial inoculation. Overall, inoculation with B. velezensis UFV 3918 improved early sugarcane growth and nutrient acquisition, and its combination with 1/3 of the recommended MAP rate maintained plant performance. These findings indicate the potential for reducing mineral P inputs during early sugarcane establishment; however, long-term field trials are required to determine whether these responses can be sustained throughout the crop cycle and under commercial production conditions. Full article
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20 pages, 30017 KB  
Article
Genome-Wide Analysis of the Longan HB/HD-ZIP Gene Family and Heterologous Functional Analysis of DlHB22 Associated with Fruit Energy Metabolism
by Xinmin Lv, Qian Li, Junbin Wei, Jing Wang, Dongmei Han, Jianguang Li, Shilian Huang and Dongliang Guo
Horticulturae 2026, 12(9), 1114; https://doi.org/10.3390/horticulturae12091114 - 4 Sep 2026
Viewed by 175
Abstract
The HB (homeobox) transcription factor family plays important roles in plant growth, development, morphogenesis, and stress responses; however, its involvement in longan (Dimocarpus longan Lour.) fruit energy metabolism remains unclear. In this study, 32 DlHB family members were identified in the longan [...] Read more.
The HB (homeobox) transcription factor family plays important roles in plant growth, development, morphogenesis, and stress responses; however, its involvement in longan (Dimocarpus longan Lour.) fruit energy metabolism remains unclear. In this study, 32 DlHB family members were identified in the longan genome, and their physicochemical properties, phylogenetic relationships, gene structures, conserved motifs, conserved domains, tissue-specific expression patterns, promoter cis-acting elements, and collinearity relationships were systematically analyzed. The DlHB family was classified into four subfamilies, HD-ZIP I–IV, with substantial divergence in structural composition, expression patterns, and putative regulatory features. Our previous work showed that 1.5% chitosan (CTS) treatment improved postharvest longan fruit quality through modulation of energy metabolism, and the corresponding CTS-treatment transcriptome was therefore used here to screen energy-metabolism-associated DlHB candidates. DlHB22 was selected as a representative candidate, and its CTS-responsive expression was independently confirmed by qRT-PCR. Exogenous ATP treatment was then used as an independent physiological validation of the relationship between energy metabolism and postharvest storability; ATP-treated fruit showed reduced deterioration together with higher ATP, ADP, and AMP contents and higher activities of H+-ATPase, Ca2+-ATPase, cytochrome c oxidase (CCO), and succinate dehydrogenase (SDH) at 15 d, although adenylate energy charge (AEC) was lower than in the control. DlHB22 localized predominantly to the nucleus. Heterologous overexpression of DlHB22 in tomato accelerated fruit color transition and ripening progression and altered ATP, ADP, and AMP contents, AEC, and the activities of H+-ATPase, Ca2+-ATPase, CCO, and SDH. Transcriptome analysis of DlHB22-overexpressing tomato fruit revealed broad transcriptional changes in pathways associated with central carbon metabolism, energy metabolism, glutathione metabolism, hormone signaling, and MAPK signaling, and qRT-PCR validation of six representative DEGs was consistent with the RNA-seq trends. Because tomato is climacteric whereas longan is non-climacteric, the heterologous tomato results demonstrate the regulatory potential of DlHB22 but do not establish an identical native ripening pathway in longan. Overall, DlHB22 is best regarded as a candidate transcription factor associated with longan fruit energy metabolism, whose native regulatory mechanism requires direct validation in longan. Full article
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22 pages, 680 KB  
Review
The Rhizosphere Microbiome: A Key Mediator of Crop Responses to Fertilization Strategies
by Zhihui Zhao, Qihua Wu, Zerong Sun, Wenling Zhou and Junhua Ao
Plants 2026, 15(17), 2711; https://doi.org/10.3390/plants15172711 - 3 Sep 2026
Viewed by 161
Abstract
The rhizosphere microbiome, the plant’s “second genome” is pivotal for crop nutrient acquisition, health, and stress responses. While fertilization ensures high agricultural yields, a key challenge is reshaping this microbiome to boost crop performance. This review synthesizes how mineral, organic, and bio-organic/microbial inoculant [...] Read more.
The rhizosphere microbiome, the plant’s “second genome” is pivotal for crop nutrient acquisition, health, and stress responses. While fertilization ensures high agricultural yields, a key challenge is reshaping this microbiome to boost crop performance. This review synthesizes how mineral, organic, and bio-organic/microbial inoculant fertilizers affect rhizosphere microbial structure, diversity, and function. Long-term excessive mineral fertilizers (especially nitrogen) reduce microbial diversity, diminish beneficial groups (e.g., diazotrophs, PGPR), and disrupt microbial networks via soil acidification and altered root exudates, causing continuous cropping obstacles. In contrast, organic fertilizers improve soil microenvironments, maintaining high microbial diversity, enriching beneficial taxa (e.g., Proteobacteria, Actinobacteria), and enhancing community complexity. Bio-organic fertilizers/microbial inoculants “engineer” the microbiome by introducing exogenous beneficial microbes (e.g., Bacillus, Pseudomonas, AMF), directly promoting growth, suppressing diseases, and “reconditioning” indigenous beneficial communities. We also clarify how fertilization regulates plant-microbe dialog via root exudates and rhizosphere chemistry (e.g., pH, ion balance), discuss current challenges (causality, lab-to-field translation, genotype-microbiome-fertilization interactions), and outline future directions. Integrating rhizosphere microbiome management into fertilization is crucial for reducing chemical fertilizer reliance and advancing agricultural green transformation. Full article
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28 pages, 1190 KB  
Review
Phytochemical, Bioactive, and Toxicological Aspects of Ageratina adenophora (Spreng.) R.M.King & H.Rob.: A Narrative Review
by Miaomiao Wang, Heng Xu, Zhihui Hao, Haiyang Jiang, Jianzhong Shen and Chongshan Dai
Biomolecules 2026, 16(9), 1276; https://doi.org/10.3390/biom16091276 - 3 Sep 2026
Viewed by 162
Abstract
Due to limitations in the use of antibiotics as feed additives to promote growth, the development of safe, effective, and environmentally friendly antibiotic alternatives is a critical and urgent research priority in animal nutrition and veterinary medicine. Plants contain abundant active substances, which [...] Read more.
Due to limitations in the use of antibiotics as feed additives to promote growth, the development of safe, effective, and environmentally friendly antibiotic alternatives is a critical and urgent research priority in animal nutrition and veterinary medicine. Plants contain abundant active substances, which are important sources for developing new feed additives or discovering new active substances. Ageratina adenophora (Spreng.) R.M.King & H.Rob. (A. adenophora) is an herb native to Central America and a globally invasive species that has spread across Asia, Australia, Africa, and other continents. Studies indicated that it possesses a complex chemical composition, with over 100 constituents identified, including terpenoids, flavonoids, and phenolic acids, which exhibit diverse biological activities, including antibacterial, antioxidant, insecticidal, acaricidal, anti-inflammatory, neuroprotective, antidiabetic, antitumor, and gut health regulation effects. However, it also possesses distinct toxicity, primarily targeting organs such as the intestines, liver, and spleen, causing tissue damage by activating specific signaling pathways. This may limit its utilization as a feed additive or in medical drug development. Therefore, this review systematically summarizes the botanical characteristics, geographic distribution, phytochemical composition, biological activities, and toxicological effects of A. adenophora. We also discussed its potential application and current challenges. We hope this review can promote its development and utilization as potential feed additives or medicinal resources. Full article
22 pages, 8696 KB  
Article
Genome-Wide Identification and Bioinformatics Analysis of the FAD Gene Family in Walnut (Juglans regia L.)
by Fan Hao, Jingchuan Xia, Zhenlin Shen and Shuoxin Zhang
Int. J. Mol. Sci. 2026, 27(17), 7879; https://doi.org/10.3390/ijms27177879 - 3 Sep 2026
Viewed by 142
Abstract
Fatty acid desaturase (FAD) is a core catalytic enzyme in plants for the synthesis of unsaturated fatty acids, profoundly affecting plant growth, development, and adaptability to various environmental stresses. The walnut (Juglans regia L.) is an important woody oil tree [...] Read more.
Fatty acid desaturase (FAD) is a core catalytic enzyme in plants for the synthesis of unsaturated fatty acids, profoundly affecting plant growth, development, and adaptability to various environmental stresses. The walnut (Juglans regia L.) is an important woody oil tree species, and its kernel is rich in unsaturated fatty acids. Systematic identification of the walnut FAD gene family and analysis of its function are of great significance for revealing the molecular mechanisms underlying unsaturated fatty acid metabolism in the walnut. Based on walnut whole-genome data, this study used homology alignment and hidden Markov model search methods to identify the JrFAD gene family members. Subsequently, a variety of bioinformatics tools were used to systematically analyze their structural characteristics, evolutionary expansion mechanism, expression regulation, and function. A total of 21 JrFAD gene family members were identified and classified into five subfamilies. The family genes were unevenly distributed on nine chromosomes. WGD/segmental duplication was the main expansion method, and the duplicated gene pairs experienced strong purification selection. The family gene promoter sequence is rich in regulatory elements that respond to light, plant hormones, and various stresses. The expression pattern analysis showed that JrFAD3.1 and JrFAD2.3 showed high expression specifically during the rapid accumulation of walnut kernel oil. This study clarified the composition and evolutionary characteristics of the FAD gene family in the walnut, which provides useful information for in-depth analyses of its functional mechanism in the regulation of lipid metabolism, and also identified potential candidate gene resources for the genetic improvement of walnut varieties with high amounts of unsaturated fatty acids. Full article
(This article belongs to the Special Issue Plant Molecular Ecology and Genomic Perspectives)
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25 pages, 3596 KB  
Article
Two Bacillus PGPB Strains in Wheat and Soybean: Wheat Growth Promotion Without Detectable Rhizosphere Microbiome Restructuring
by Elena Nikolaevna Voronina, Ekaterina Alexeevna Sokolova, Irina Nikolaevna Tromenschleger, Olga Viktorovna Mishukova, Valeria Aleksandrovna Fedorets, Inna Viktorovna Khlistun, Oleg Aleksandrovich Savenkov, Oleg Igorevich Saprikin, Maria Dmitrievna Buyanova, Irina Mikhailovna Filippova, Marina Andreevna Glukhova, Evgeny Ivanovich Rogaev, Lada Vladimirovna Zhohova, Andrey Dmitrievich Manakhov and Natalya Valentinovna Smirnova
Int. J. Mol. Sci. 2026, 27(17), 7873; https://doi.org/10.3390/ijms27177873 - 3 Sep 2026
Viewed by 256
Abstract
Plant growth-promoting bacteria (PGPB) are increasingly deployed as biofertilizers, yet the link between an inoculant’s genomic potential and its realized effect on the plant is rarely assessed within an integrative framework that jointly captures the rhizosphere microbiome, plant phenotype, and strain genome. Two [...] Read more.
Plant growth-promoting bacteria (PGPB) are increasingly deployed as biofertilizers, yet the link between an inoculant’s genomic potential and its realized effect on the plant is rarely assessed within an integrative framework that jointly captures the rhizosphere microbiome, plant phenotype, and strain genome. Two Bacillus strains—B. halotolerans 1453 and B. pumilus 630—were applied to wheat and soybean in a factorial pot experiment (2 strains × 2 application methods × 3 frequencies + control, 3–4 replicates). Rhizosphere samples (n = 67 after filtering) were profiled by 16S rRNA sequencing with PICRUSt2 functional prediction and compositional validation (Aitchison PERMANOVA, ALDEx2, ANCOM-BC2). The PGPB gene repertoire was characterized by genome mining (481 marker genes, 14 categories). Wheat phenotype (six traits) and soybean height were analyzed with models appropriate for count data (Negative Binomial and binomial GLMs) for treatment-vs.-control comparisons, and with factorial ANOVA for decomposition into main effects and interactions. Crop identity was the dominant factor shaping both microbiome structure and function (PERMANOVA R2 = 14.7% taxonomically and R2 = 7.8% functionally, both p < 0.001), with biologically meaningful taxonomic differences between wheat and soybean; strain, application count and method had no significant effect on community composition (R2 < 4% each), and co-occurrence networks showed no reliable differences between crops once read depth and sample size were controlled for. Despite this neutrality at the microbiome level, inoculation significantly increased wheat spike count (NB-GLM, all 12 treatments vs. control, padj 0.0002–0.031), ear weight, and stem count, with application count the strongest source of variability and a pronounced strain × application count. Strain 1453 outperformed 630 in spike count (+23.1%, p = 0.012) and ear weight (+20.4%, p = 0.023); we hypothesize that this may be related to its more complete DNRA pathway (narGHI + nirB-nirD) and biocontrol genes (bacE, srfAA). Strain 630 produced a less pronounced effect than strain 1453 but was subject to smaller fluctuations across replicates (CV ≈ 16–21% vs. ≈24–26% for 1453), which may reflect better resilience to environmental fluctuations, possibly due to its confirmed rsbV/rsbW stress-tolerance regulon. Rhizosphere microbiome composition differed clearly by crop (wheat vs. soybean) but showed no detectable response to strain, application method, or application count. Despite this lack of a microbiome signal, inoculation significantly increased wheat spike count and ear weight, with the magnitude and stability of this effect differing by strain. We hypothesize that this strain-dependent difference relates to underlying genomic differences—particularly in nitrogen metabolism (DNRA pathway) and stress-tolerance genes—though this link has not been tested directly and remains a hypothesis for future work. Full article
(This article belongs to the Special Issue Recent Advances in Plant–Microbe Interactions)
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16 pages, 1845 KB  
Article
Enhanced Phosphorus Acquisition Contributes Substantially to Arbuscular Mycorrhizal Fungus-Mediated Drought Tolerance in Trifoliate Orange
by Liu Yang, Manqi Wu, Yali Feng, Qian Cheng, Jie He, Jia Peng, Yiwei Tang, Yuqi Huang, Shuhan Dong and Chunyan Liu
Horticulturae 2026, 12(9), 1102; https://doi.org/10.3390/horticulturae12091102 - 3 Sep 2026
Viewed by 213
Abstract
Arbuscular mycorrhizal fungi (AMF) have been widely recognized for their ability to enhance plant drought tolerance. However, the contribution of improved phosphorus (P) nutrition to AMF-mediated drought tolerance in citrus and its relationship with other physiological processes remain unclear. Here, we investigated the [...] Read more.
Arbuscular mycorrhizal fungi (AMF) have been widely recognized for their ability to enhance plant drought tolerance. However, the contribution of improved phosphorus (P) nutrition to AMF-mediated drought tolerance in citrus and its relationship with other physiological processes remain unclear. Here, we investigated the physiological mechanisms underlying AMF-mediated drought tolerance in trifoliate orange (Poncirus trifoliata) by combining AMF inoculation with exogenous phosphorus supplementation under drought stress. AMF inoculation markedly alleviated drought-induced growth inhibition, increased plant biomass, enhanced root and rhizosphere phosphatase activities, promoted phosphorus accumulation, and strongly induced the expression of the mycorrhiza-specific phosphate transporter genes PtaPT4 and PtaPT5. Exogenous phosphorus supplementation largely mimicked the beneficial effects of AMF on plant growth and drought tolerance, indicating that enhanced phosphorus acquisition contributes substantially to AMF-mediated drought tolerance in trifoliate orange. However, the combined application of AMF and exogenous phosphorus conferred greater drought tolerance than phosphorus supplementation alone, suggesting that, in addition to improved phosphorus nutrition, AMF further enhances drought adaptation through the regulation of multiple physiological processes. Furthermore, AMF promoted the accumulation of growth-related phytohormones, enhanced antioxidant capacity, and reduced reactive oxygen species (ROS) accumulation, thereby further improving plant drought tolerance. These findings demonstrate that enhanced phosphorus acquisition is an important component of AMF-mediated drought tolerance in trifoliate orange, whereas coordinated regulation of phytohormone homeostasis and antioxidant defense provides additional protection against drought stress. Full article
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