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1.
Sci Rep ; 14(1): 10587, 2024 05 08.
Article in English | MEDLINE | ID: mdl-38719851

ABSTRACT

Cassava root-rot incited by soil-borne pathogens is one of the major diseases that reduces root yield. Although the use of resistant cultivars is the most effective method of management, the genetic basis for root-rot resistance remains poorly understood. Therefore, our work analyzed the transcriptome of two contrasting genotypes (BRS Kiriris/resistant and BGM-1345/susceptible) using RNA-Seq to understand the molecular response and identify candidate genes for resistance. Cassava seedlings (resistant and susceptible to root-rot) were both planted in infested and sterilized soil and samples from Initial-time and Final-time periods, pooled. Two controls were used: (i) seedlings collected before planting in infested soil (absolute control) and, (ii) plants grown in sterilized soil (mock treatments). For the differentially expressed genes (DEGs) analysis 23.912 were expressed in the resistant genotype, where 10.307 were differentially expressed in the control treatment, 15 DEGs in the Initial Time-period and 366 DEGs in the Final Time-period. Eighteen candidate genes from the resistant genotype were related to plant defense, such as the MLP-like protein 31 and the peroxidase A2-like gene. This is the first model of resistance at the transcriptional level proposed for the cassava × root-rot pathosystem. Gene validation will contribute to screening for resistance of germplasm, segregating populations and/or use in gene editing in the pursuit to develop most promising cassava clones with resistance to root-rot.


Subject(s)
Disease Resistance , Gene Expression Regulation, Plant , Manihot , Plant Diseases , Plant Roots , Transcriptome , Manihot/genetics , Manihot/microbiology , Disease Resistance/genetics , Plant Roots/genetics , Plant Roots/microbiology , Plant Diseases/genetics , Plant Diseases/microbiology , Gene Expression Profiling , Genotype , Plant Proteins/genetics , Plant Proteins/metabolism , Genes, Plant
2.
Sci Rep ; 14(1): 10525, 2024 05 08.
Article in English | MEDLINE | ID: mdl-38720057

ABSTRACT

The narrow zone of soil around the plant roots with maximum microbial activity termed as rhizosphere. Rhizospheric bacteria promote the plant growth directly or indirectly by providing the nutrients and producing antimicrobial compounds. In this study, the rhizospheric microbiota of peanut plants was characterized from different farms using an Illumina-based partial 16S rRNA gene sequencing to evaluate microbial diversity and identify the core microbiome through culture-independent (CI) approach. Further, all rhizospheric bacteria that could grow on various nutrient media were identified, and the diversity of those microbes through culture-dependent method (CD) was then directly compared with their CI counterparts. The microbial population profiles showed a significant correlation with organic carbon and concentration of phosphate, manganese, and potassium in the rhizospheric soil. Genera like Sphingomicrobium, Actinoplanes, Aureimonas _A, Chryseobacterium, members from Sphingomonadaceae, Burkholderiaceae, Pseudomonadaceae, Enterobacteriaceae family, and Bacilli class were found in the core microbiome of peanut plants. As expected, the current study demonstrated more bacterial diversity in the CI method. However, a higher number of sequence variants were exclusively present in the CD approach compared to the number of sequence variants shared between both approaches. These CD-exclusive variants belonged to organisms that are more typically found in soil. Overall, this study portrayed the changes in the rhizospheric microbiota of peanuts in different rhizospheric soil and environmental conditions and gave an idea about core microbiome of peanut plant and comparative bacterial diversity identified through both approaches.


Subject(s)
Arachis , Bacteria , Metagenomics , Microbiota , RNA, Ribosomal, 16S , Rhizosphere , Soil Microbiology , Arachis/microbiology , India , Microbiota/genetics , RNA, Ribosomal, 16S/genetics , Metagenomics/methods , Bacteria/genetics , Bacteria/classification , Bacteria/isolation & purification , Farms , Plant Roots/microbiology , Phylogeny , Metagenome , Biodiversity
3.
BMC Genom Data ; 25(1): 40, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38724915

ABSTRACT

Bulb rot, a highly damaging disease of tulip plants, has hindered their profitable cultivation worldwide. This rot occurs in both field and storage conditions posing significant challenges. While this disease has been attributed to a range of pathogens, previous investigations have solely examined it within the framework of a single-pathogen disease model. Our study took a different approach and identified four pathogens associated with the disease: Fusarium solani, Penicillium chrysogenum, Botrytis tulipae, and Aspergillus niger. The primary objective of our research was to examine the impact of co-infections on the overall virulence dynamics of these pathogens. Through co-inoculation experiments on potato dextrose agar, we delineated three primary interaction patterns: antibiosis, deadlock, and merging. In vitro trials involving individual pathogen inoculations on tulip bulbs revealed that B. tulipae,was the most virulent and induced complete bulb decay. Nonetheless, when these pathogens were simultaneously introduced in various combinations, outcomes ranged from partial bulb decay to elongated rotting periods. This indicated a notable degree of antagonistic behaviour among the pathogens. While synergistic interactions were evident in a few combinations, antagonism overwhelmingly prevailed. The complex interplay of these pathogens during co-infection led to a noticeable change in the overall severity of the disease. This underscores the significance of pathogen-pathogen interactions in the realm of plant pathology, opening new insights for understanding and managing tulip bulb rot.


Subject(s)
Fusarium , Plant Diseases , Tulipa , Plant Diseases/microbiology , Fusarium/pathogenicity , Tulipa/microbiology , Botrytis/pathogenicity , Penicillium chrysogenum/pathogenicity , Aspergillus niger/pathogenicity , Virulence , Plant Roots/microbiology
4.
Microbiome ; 12(1): 83, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38725008

ABSTRACT

BACKGROUND: Fungi and bacteria coexist in a wide variety of environments, and their interactions are now recognized as the norm in most agroecosystems. These microbial communities harbor keystone taxa, which facilitate connectivity between fungal and bacterial communities, influencing their composition and functions. The roots of most plants are associated with arbuscular mycorrhizal (AM) fungi, which develop dense networks of hyphae in the soil. The surface of these hyphae (called the hyphosphere) is the region where multiple interactions with microbial communities can occur, e.g., exchanging or responding to each other's metabolites. However, the presence and importance of keystone taxa in the AM fungal hyphosphere remain largely unknown. RESULTS: Here, we used in vitro and pot cultivation systems of AM fungi to investigate whether certain keystone bacteria were able to shape the microbial communities growing in the hyphosphere and potentially improved the fitness of the AM fungal host. Based on various AM fungi, soil leachates, and synthetic microbial communities, we found that under organic phosphorus (P) conditions, AM fungi could selectively recruit bacteria that enhanced their P nutrition and competed with less P-mobilizing bacteria. Specifically, we observed a privileged interaction between the isolate Streptomyces sp. D1 and AM fungi of the genus Rhizophagus, where (1) the carbon compounds exuded by the fungus were acquired by the bacterium which could mineralize organic P and (2) the in vitro culturable bacterial community residing on the surface of hyphae was in part regulated by Streptomyces sp. D1, primarily by inhibiting the bacteria with weak P-mineralizing ability, thereby enhancing AM fungi to acquire P. CONCLUSIONS: This work highlights the multi-functionality of the keystone bacteria Streptomyces sp. D1 in fungal-bacteria and bacterial-bacterial interactions at the hyphal surface of AM fungi. Video Abstract.


Subject(s)
Hyphae , Microbiota , Mycorrhizae , Plant Roots , Soil Microbiology , Streptomyces , Mycorrhizae/physiology , Mycorrhizae/classification , Streptomyces/classification , Streptomyces/isolation & purification , Streptomyces/genetics , Streptomyces/physiology , Hyphae/growth & development , Plant Roots/microbiology , Phosphorus/metabolism , Microbial Interactions/physiology , Soil/chemistry , Bacteria/classification , Bacteria/genetics , Bacteria/isolation & purification , Bacteria/metabolism
5.
Sci Rep ; 14(1): 10231, 2024 05 03.
Article in English | MEDLINE | ID: mdl-38702407

ABSTRACT

Agricultural soils are increasingly undergoing inadvertent and purposeful exposures to engineered CeO2 nanoparticles (NPs), which can impact crops and root-associated microbial communities. However, interactions between NP concentration and exposure duration on plant-mediated responses of root-associated bacterial communities are not well understood. Soybeans seedlings were grown in soil with uncoated NPs added at concentrations of 0, 1 or 100 mg kg-1. Total soil exposure durations were either 190 days, starting 106 days before planting or 84 days with NP amendments coinciding with planting. We assessed plant development, bacterial diversity, differential abundance and inferred functional changes across rhizosphere, rhizoplane, and root tissue compartments. Plant non-monotonic dose responses were mirrored in bacterial communities. Most notably, effects were magnified in the rhizoplane under low-dose, short-exposures. Enriched metabolic pathways were primarily related to biosynthesis and degradation/utilization/assimilation, rather than responses to metals or oxidative stress. Our results indicate that plant-mediated bacterial responses were greater than direct NP impacts. Also, we identify needs for modeling non-monotonic legume stress responses that account for coinfection with mutualistic and parasitic bacteroids. Our findings provide new insights regarding effects of applications of soil amendments such as biosolids containing NPs or nano-enabled formulations used in cultivation of legumes and other crops.


Subject(s)
Bacteria , Cerium , Glycine max , Nanoparticles , Plant Roots , Rhizosphere , Soil Microbiology , Glycine max/growth & development , Glycine max/drug effects , Glycine max/microbiology , Plant Roots/microbiology , Plant Roots/drug effects , Plant Roots/growth & development , Bacteria/drug effects , Microbiota/drug effects , Soil/chemistry
6.
Sci Rep ; 14(1): 10294, 2024 05 04.
Article in English | MEDLINE | ID: mdl-38704448

ABSTRACT

The Himalayas provide unique opportunities for the extension of shrubs beyond the upper limit of the tree. However, little is known about the limitation of the biotic factors belowground of shrub growth at these cruising altitudes. To fill this gap, the present study deals with the documentation of root-associated microbiota with their predicted functional profiles and interactions in the host Rhododendron campanulatum, a krummholz species. While processing 12 root samples of R. campanulatum from the sites using Omics we could identify 134 root-associated fungal species belonging to 104 genera, 74 families, 39 orders, 17 classes, and 5 phyla. The root-associated microbiota members of Ascomycota were unambiguously dominant followed by Basidiomycota. Using FUNGuild, we reported that symbiotroph and pathotroph as abundant trophic modes. Furthermore, FUNGuild revealed the dominant prevalence of the saptroptroph guild followed by plant pathogens and wood saprotrophs. Alpha diversity was significantly different at the sites. The heatmap dendrogram showed the correlation between various soil nutrients and some fungal species. The study paves the way for a more in-depth exploration of unidentified root fungal symbionts, their interactions and their probable functional roles, which may serve as an important factor for the growth and conservation of these high-altitude ericaceous plants.


Subject(s)
High-Throughput Nucleotide Sequencing , Plant Roots , Rhododendron , Rhododendron/microbiology , Rhododendron/genetics , Plant Roots/microbiology , Fungi/genetics , Fungi/classification , Mycobiome , Soil Microbiology , Symbiosis , Phylogeny
7.
Nat Commun ; 15(1): 4438, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38806462

ABSTRACT

Various microbes isolated from healthy plants are detrimental under laboratory conditions, indicating the existence of molecular mechanisms preventing disease in nature. Here, we demonstrated that application of sodium chloride (NaCl) in natural and gnotobiotic soil systems is sufficient to induce plant disease caused by an otherwise non-pathogenic root-derived Pseudomonas brassicacearum isolate (R401). Disease caused by combinatorial treatment of NaCl and R401 triggered extensive, root-specific transcriptional reprogramming that did not involve down-regulation of host innate immune genes, nor dampening of ROS-mediated immunity. Instead, we identified and structurally characterized the R401 lipopeptide brassicapeptin A as necessary and sufficient to promote disease on salt-treated plants. Brassicapeptin A production is salt-inducible, promotes root colonization and transitions R401 from being beneficial to being detrimental on salt-treated plants by disturbing host ion homeostasis, thereby bolstering susceptibility to osmolytes. We conclude that the interaction between a global change stressor and a single exometabolite from a member of the root microbiome promotes plant disease in complex soil systems.


Subject(s)
Osmotic Pressure , Plant Diseases , Plant Roots , Pseudomonas , Plant Diseases/microbiology , Pseudomonas/metabolism , Pseudomonas/genetics , Plant Roots/microbiology , Plant Roots/metabolism , Sodium Chloride/pharmacology , Sodium Chloride/metabolism , Soil Microbiology , Lipopeptides/pharmacology , Lipopeptides/metabolism , Arabidopsis/microbiology , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis/drug effects
8.
Arch Microbiol ; 206(6): 282, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38806859

ABSTRACT

Plant growth-promoting rhizobacteria (PGPR) offer an eco-friendly alternative to agrochemicals for better plant growth and development. Here, we evaluated the plant growth promotion abilities of actinobacteria isolated from the tea (Camellia sinensis) rhizosphere of Darjeeling, India. 16 S rRNA gene ribotyping of 28 isolates demonstrated the presence of nine different culturable actinobacterial genera. Assessment of the in vitro PGP traits revealed that Micrococcus sp. AB420 exhibited the highest level of phosphate solubilization (i.e., 445 ± 2.1 µg/ml), whereas Kocuria sp. AB429 and Brachybacterium sp. AB440 showed the highest level of siderophore (25.8 ± 0.1%) and IAA production (101.4 ± 0.5 µg/ml), respectively. Biopriming of maize seeds with the individual actinobacterial isolate revealed statistically significant growth in the treated plants compared to controls. Among them, treatment with Paenarthrobacter sp. AB416 and Brachybacterium sp. AB439 exhibited the highest shoot and root length. Biopriming has also triggered significant enzymatic and non-enzymatic antioxidative defense reactions in maize seedlings both locally and systematically, providing a critical insight into their possible role in the reduction of reactive oxygen species (ROS) burden. To better understand the role of actinobacterial isolates in the modulation of plant defense, three selected actinobacterial isolates, AB426 (Brevibacterium sp.), AB427 (Streptomyces sp.), and AB440 (Brachybacterium sp.) were employed to evaluate the dynamics of induced systemic resistance (ISR) in maize. The expression profile of five key genes involved in SA and JA pathways revealed that bio-priming with actinobacteria (Brevibacterium sp. AB426 and Brachybacterium sp. AB440) preferably modulates the JA pathway rather than the SA pathway. The infection studies in bio-primed maize plants resulted in a delay in disease progression by the biotrophic pathogen Ustilago maydis in infected maize plants, suggesting the positive efficacy of bio-priming in aiding plants to cope with biotic stress. Conclusively, this study unravels the intrinsic mechanisms of PGPR-mediated ISR dynamics in bio-primed plants, offering a futuristic application of these microorganisms in the agricultural fields as an eco-friendly alternative.


Subject(s)
Actinobacteria , Camellia sinensis , Rhizosphere , Seeds , Soil Microbiology , Zea mays , Zea mays/microbiology , Zea mays/growth & development , Zea mays/metabolism , Actinobacteria/genetics , Actinobacteria/isolation & purification , Actinobacteria/metabolism , Seeds/microbiology , Seeds/growth & development , Seeds/metabolism , Camellia sinensis/microbiology , Camellia sinensis/growth & development , Camellia sinensis/genetics , Camellia sinensis/metabolism , India , Plant Roots/microbiology , Plant Roots/growth & development , Signal Transduction , RNA, Ribosomal, 16S/genetics , Plant Growth Regulators/metabolism , Indoleacetic Acids/metabolism , Siderophores/metabolism
9.
BMC Plant Biol ; 24(1): 416, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760676

ABSTRACT

BACKGROUND: Phytophthora root rot, a major constraint in chile pepper production worldwide, is caused by the soil-borne oomycete, Phytophthora capsici. This study aimed to detect significant regions in the Capsicum genome linked to Phytophthora root rot resistance using a panel consisting of 157 Capsicum spp. genotypes. Multi-locus genome wide association study (GWAS) was conducted using single nucleotide polymorphism (SNP) markers derived from genotyping-by-sequencing (GBS). Individual plants were separately inoculated with P. capsici isolates, 'PWB-185', 'PWB-186', and '6347', at the 4-8 leaf stage and were scored for disease symptoms up to 14-days post-inoculation. Disease scores were used to calculate disease parameters including disease severity index percentage, percent of resistant plants, area under disease progress curve, and estimated marginal means for each genotype. RESULTS: Most of the genotypes displayed root rot symptoms, whereas five accessions were completely resistant to all the isolates and displayed no symptoms of infection. A total of 55,117 SNP markers derived from GBS were used to perform multi-locus GWAS which identified 330 significant SNP markers associated with disease resistance. Of these, 56 SNP markers distributed across all the 12 chromosomes were common across the isolates, indicating association with more durable resistance. Candidate genes including nucleotide-binding site leucine-rich repeat (NBS-LRR), systemic acquired resistance (SAR8.2), and receptor-like kinase (RLKs), were identified within 0.5 Mb of the associated markers. CONCLUSIONS: Results will be used to improve resistance to Phytophthora root rot in chile pepper by the development of Kompetitive allele-specific markers (KASP®) for marker validation, genomewide selection, and marker-assisted breeding.


Subject(s)
Capsicum , Disease Resistance , Genome-Wide Association Study , Phytophthora , Plant Diseases , Plant Roots , Polymorphism, Single Nucleotide , Phytophthora/physiology , Phytophthora/pathogenicity , Capsicum/genetics , Capsicum/microbiology , Plant Diseases/microbiology , Plant Diseases/genetics , Disease Resistance/genetics , Plant Roots/microbiology , Plant Roots/genetics , Genotype
10.
Physiol Plant ; 176(3): e14355, 2024.
Article in English | MEDLINE | ID: mdl-38783519

ABSTRACT

Fusarium solani exerts detrimental effects on plant growth, which is one of the reasons for the incidence of apple replant disease. Arbuscular mycorrhizal fungi (AMF) enhance plant resistance to Fusarium wilt; however, the mechanism remains poorly understood. Therefore, the present study investigated the symbiosis between apple and AMF and explored the physiology, especially nitrate metabolism, antioxidant defense, and photosynthetic performance, when infected by F. solani. The experiment was carried out with four treatments, namely -AMF - F. solani, -AMF + F. solani, -AMF + F. solani, and + AMF + F. solani. In this study, the -AMF + F. solani treatment increased the activity of enzymes associated with nitrogen metabolism, such as the nitrate and nitrite reductases, in the apple root system. The +AMF + F. solani treatment showed higher antioxidant enzyme activities than the -AMF + F. solani by F. solani infection. The apple seedlings of the +AMF + F. solani treatment decreased reactive oxygen accumulation and reduced the oxidative damages triggered by F. solani infection. The improvement in antioxidant capacity due to the +AMF + F. solani treatment was closely associated with the upregulation of genes related to the antioxidant system. The F. solani infection greatly damaged the photosynthetic process, while the +AMF + F. solani treatment significantly improved it compared to the -AMF + F. solani treatment. In conclusion, the study demonstrated that the apple-AMF symbiosis plays an active role in regulating the resistance against F. solani infection by enhancing defense response and nitrogen metabolism.


Subject(s)
Fusarium , Malus , Mycorrhizae , Nitrogen , Plant Diseases , Symbiosis , Fusarium/physiology , Fusarium/pathogenicity , Mycorrhizae/physiology , Nitrogen/metabolism , Malus/microbiology , Malus/genetics , Malus/metabolism , Malus/physiology , Malus/immunology , Plant Diseases/microbiology , Plant Diseases/immunology , Disease Resistance/genetics , Antioxidants/metabolism , Plant Roots/microbiology , Plant Roots/genetics , Plant Roots/physiology , Plant Roots/metabolism , Photosynthesis , Seedlings/microbiology , Seedlings/physiology , Seedlings/genetics
11.
Curr Biol ; 34(10): R507-R509, 2024 05 20.
Article in English | MEDLINE | ID: mdl-38772340

ABSTRACT

Arbuscular mycorrhiza, an ancient symbiosis with soil fungi, support mineral nutrition in most plants. How roots recognize such symbiotic fungi has long been debated. Recent research identifies a Medicago truncatula receptor as a key player in triggering symbiont accommodation responses.


Subject(s)
Medicago truncatula , Mycorrhizae , Symbiosis , Symbiosis/physiology , Medicago truncatula/microbiology , Medicago truncatula/metabolism , Medicago truncatula/physiology , Mycorrhizae/physiology , Plant Roots/microbiology , Plant Roots/metabolism , Light , Plant Proteins/metabolism , Plant Proteins/genetics , Green Light
12.
Plant Physiol Biochem ; 211: 108701, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38723489

ABSTRACT

Graphitic carbon nitride (g-C3N4) is a promising candidate for heavy metal remediation, primarily composed of carbon (C) and nitrogen (N). It has been demonstrated that g-C3N4 adjusts rhizosphere physicochemical conditions, especially N conditions, alleviating the absorption and accumulation of Cadmium (Cd) by soybeans. However, the mechanisms by which g-C3N4 induces N alterations to mitigates plant uptake of Cd remain unclear. This study investigated the impact of g-C3N4-mediated changes in N conditions on the accumulation of Cd by soybeans using pot experiments. It also explored the microbiological mechanisms underlying alterations in soybean rhizospheric N cycling induced by g-C3N4. It was found that g-C3N4 significantly increased N content in the soybean rhizosphere (p < 0.05), particularly in terms of available nitrogen (AN) of nitrate and ammonium. Plants absorbed more ammonium nitrogen (NH4⁺-N), the content of which in the roots showed a significant negative correlation with Cd concentration in plant (p < 0.05). Additionally, g-C3N4 significantly affected rhizospheric functional genes associated with N cycling (p < 0.05) by increasing the ratio of the N-fixation functional gene nifH and decreasing the ratios of functional genes amoA and nxrA involved in nitrification. This enhances soybean's N-fixing potential and suppresses denitrification potential in the rhizosphere, preserving NH4⁺-N. Niastella, Flavisolibacter, Opitutus and Pirellula may play a crucial role in the N fixation and preservation process. In summary, the utilization of g-C3N4 offers a novel approach to ensure safe crop production in Cd-contaminated soils. The results of this study provide valuable data and a theoretical foundation for the remediation of Cd polluted soils.


Subject(s)
Cadmium , Glycine max , Graphite , Nitrogen , Rhizosphere , Glycine max/metabolism , Glycine max/drug effects , Glycine max/microbiology , Cadmium/toxicity , Cadmium/metabolism , Nitrogen/metabolism , Soil Pollutants/metabolism , Soil Pollutants/toxicity , Nitrogen Compounds/metabolism , Plant Roots/metabolism , Plant Roots/drug effects , Plant Roots/microbiology
13.
Sci Rep ; 14(1): 10866, 2024 05 13.
Article in English | MEDLINE | ID: mdl-38740920

ABSTRACT

The presence of Arbuscular Mycorrhizal Fungi (AMF) in vascular land plant roots is one of the most ancient of symbioses supporting nitrogen and phosphorus exchange for photosynthetically derived carbon. Here we provide a multi-scale modeling approach to predict AMF colonization of a worldwide crop from a Recombinant Inbred Line (RIL) population derived from Sorghum bicolor and S. propinquum. The high-throughput phenotyping methods of fungal structures here rely on a Mask Region-based Convolutional Neural Network (Mask R-CNN) in computer vision for pixel-wise fungal structure segmentations and mixed linear models to explore the relations of AMF colonization, root niche, and fungal structure allocation. Models proposed capture over 95% of the variation in AMF colonization as a function of root niche and relative abundance of fungal structures in each plant. Arbuscule allocation is a significant predictor of AMF colonization among sibling plants. Arbuscules and extraradical hyphae implicated in nutrient exchange predict highest AMF colonization in the top root section. Our work demonstrates that deep learning can be used by the community for the high-throughput phenotyping of AMF in plant roots. Mixed linear modeling provides a framework for testing hypotheses about AMF colonization phenotypes as a function of root niche and fungal structure allocations.


Subject(s)
Mycorrhizae , Plant Roots , Sorghum , Mycorrhizae/physiology , Plant Roots/microbiology , Sorghum/microbiology , Linear Models , Symbiosis , Neural Networks, Computer
14.
Sci Rep ; 14(1): 10848, 2024 05 13.
Article in English | MEDLINE | ID: mdl-38740945

ABSTRACT

Bacterial cellulose (BC) is a natural polymer renowned for its unique physicochemical and mechanical attributes, including notable water-holding capacity, crystallinity, and a pristine fiber network structure. While BC has broad applications spanning agriculture, industry, and medicine, its industrial utilization is hindered by production costs and yield limitations. In this study, Rhizobium sp. was isolated from bean roots and systematically assessed for BC synthesis under optimal conditions, with a comparative analysis against BC produced by Komagataeibacter hansenii. The study revealed that Rhizobium sp. exhibited optimal BC synthesis when supplied with a 1.5% glucose carbon source and a 0.15% yeast extract nitrogen source. Under static conditions at 30 °C and pH 6.5, the most favorable conditions for growth and BC production (2.5 g/L) were identified. Modifications were introduced using nisin to enhance BC properties, and the resulting BC-nisin composites were comprehensively characterized through various techniques, including FE-SEM, FTIR, porosity, swelling, filtration, and antibacterial activity assessments. The results demonstrated that BC produced by Rhizobium sp. displayed properties comparable to K. hansenii-produced BC. Furthermore, the BC-nisin composites exhibited remarkable inhibitory activity against Escherichia coli and Pseudomonas aeruginosa. This study contributes valuable insights into BC's production, modification, and characterization utilizing Rhizobium sp., highlighting the exceptional properties that render it efficacious across diverse applications.


Subject(s)
Cellulose , Plant Roots , Rhizobium , Cellulose/biosynthesis , Cellulose/metabolism , Plant Roots/microbiology , Rhizobium/metabolism , Acetobacteraceae/metabolism , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/biosynthesis
15.
World J Microbiol Biotechnol ; 40(6): 191, 2024 May 04.
Article in English | MEDLINE | ID: mdl-38702442

ABSTRACT

Seed endophytes played a crucial role on host plants stress tolerance and heavy metal (HM) accumulation. Dysphania ambrosioides is a hyperaccumulator and showed strong tolerance and extraordinary accumulation capacities of multiple HMs. However, little is known about its seed endophytes response to field HM-contamination, and its role on host plants HM tolerance and accumulation. In this study, the seed endophytic community of D. ambrosioides from HM-contaminated area (H) and non-contaminated area (N) were investigated by both culture-dependent and independent methods. Moreover, Cd tolerance and the plant growth promoting (PGP) traits of dominant endophytes from site H and N were evaluated. The results showed that in both studies, HM-contamination reduced the diversity and richness of endophytic community and changed the most dominant endophyte, but increased resistant species abundance. By functional trait assessments, a great number of dominant endophytes displayed multiple PGP traits and Cd tolerance. Interestingly, soil HM-contamination significantly increased the percentage of Cd tolerance isolates of Agrobacterium and Epicoccum, but significantly decreased the ration of Agrobacterium with the siderophore production ability. However, the other PGP traits of isolates from site H and N showed no significant difference. Therefore, it was suggested that D. ambrosioides might improve its HM tolerance and accumulation through harboring more HM-resistant endophytes rather than PGP endophytes, but to prove this, more work need to be conducted in the future.


Subject(s)
Cadmium , Endophytes , Metals, Heavy , Seeds , Soil Microbiology , Soil Pollutants , Endophytes/metabolism , Endophytes/isolation & purification , Metals, Heavy/metabolism , Seeds/microbiology , Soil Pollutants/metabolism , Cadmium/metabolism , Biodiversity , Bacteria/classification , Bacteria/metabolism , Bacteria/isolation & purification , Bacteria/genetics , Soil/chemistry , Biodegradation, Environmental , Plant Roots/microbiology
16.
Arch Microbiol ; 206(5): 235, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38722413

ABSTRACT

In recent years, blueberry root rot has been caused mainly by Fusarium commune, and there is an urgent need for a green and efficient method to control this disease. To date, research on Schizophyllum commune has focused on antioxidant mechanisms, reactive dye degradation, etc., but the mechanism underlying the inhibition of pathogenic microorganisms is still unclear. Here, the control effects of S. commune on F. commune and blueberry root rot were studied using adversarial culture, tissue culture, and greenhouse pot experiments. The results showed that S. commune can dissolve insoluble phosphorus and secrete various extracellular hydrolases. The results of hyphal confrontation and fermentation broth antagonism experiments showed that S. commune had a significant inhibitory effect on F. commune, with inhibition rates of 70.30% and 22.86%, respectively. Microscopy results showed distortion of F. commune hyphae, indicating that S. commune is strongly parasitic. S. commune had a significant growth-promoting effect on blueberry tissue-cultured seedlings. After inoculation with S. commune, inoculation with the pathogenic fungus, or inoculation at a later time, the strain significantly reduced the root rot disease index in the potted blueberry seedlings, with relative control effects of 79.14% and 62.57%, respectively. In addition, S. commune G18 significantly increased the antioxidant enzyme contents in the aboveground and underground parts of potted blueberry seedlings. We can conclude that S. commune is a potential biocontrol agent that can be used to effectively control blueberry root rot caused by F. commune in the field.


Subject(s)
Blueberry Plants , Fusarium , Plant Diseases , Plant Roots , Schizophyllum , Blueberry Plants/microbiology , Plant Diseases/microbiology , Plant Diseases/prevention & control , Plant Roots/microbiology , Fusarium/physiology , Schizophyllum/metabolism , Schizophyllum/growth & development , Antibiosis , Hyphae/growth & development , Biological Control Agents , Seedlings/microbiology , Seedlings/growth & development
17.
Microbiome ; 12(1): 81, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38715147

ABSTRACT

BACKGROUND: After two decades of extensive microbiome research, the current forefront of scientific exploration involves moving beyond description and classification to uncovering the intricate mechanisms underlying the coalescence of microbial communities. Deciphering microbiome assembly has been technically challenging due to their vast microbial diversity but establishing a synthetic community (SynCom) serves as a key strategy in unravelling this process. Achieving absolute quantification is crucial for establishing causality in assembly dynamics. However, existing approaches are primarily designed to differentiate a specific group of microorganisms within a particular SynCom. RESULTS: To address this issue, we have developed the differential fluorescent marking (DFM) strategy, employing three distinguishable fluorescent proteins in single and double combinations. Building on the mini-Tn7 transposon, DFM capitalises on enhanced stability and broad applicability across diverse Proteobacteria species. The various DFM constructions are built using the pTn7-SCOUT plasmid family, enabling modular assembly, and facilitating the interchangeability of expression and antibiotic cassettes in a single reaction. DFM has no detrimental effects on fitness or community assembly dynamics, and through the application of flow cytometry, we successfully differentiated, quantified, and tracked a diverse six-member SynCom under various complex conditions like root rhizosphere showing a different colonisation assembly dynamic between pea and barley roots. CONCLUSIONS: DFM represents a powerful resource that eliminates dependence on sequencing and/or culturing, thereby opening new avenues for studying microbiome assembly. Video Abstract.


Subject(s)
DNA Transposable Elements , Microbiota , Rhizosphere , Plasmids/genetics , Plant Roots/microbiology , Proteobacteria/genetics , Flow Cytometry , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Soil Microbiology
18.
PLoS One ; 19(5): e0296547, 2024.
Article in English | MEDLINE | ID: mdl-38753661

ABSTRACT

Endophytic bacteria, recognized as eco-friendly biofertilizers, have demonstrated the potential to enhance crop growth and yield. While the plant growth-promoting effects of endophytic bacteria have been extensively studied, the impact of weed endophytes remains less explored. In this study, we aimed to isolate endophytic bacteria from native weeds and assess their plant growth-promoting abilities in rice under varying chemical fertilization. The evaluation encompassed measurements of mineral phosphate and potash solubilization, as well as indole-3-acetic acid (IAA) production activity by the selected isolates. Two promising strains, tentatively identified as Alcaligenes faecalis (BTCP01) from Eleusine indica (Goose grass) and Metabacillus indicus (BTDR03) from Cynodon dactylon (Bermuda grass) based on 16S rRNA gene phylogeny, exhibited noteworthy phosphate and potassium solubilization activity, respectively. BTCP01 demonstrated superior phosphate solubilizing activity, while BTDR03 exhibited the highest potassium (K) solubilizing activity. Both isolates synthesized IAA in the presence of L-tryptophan, with the detection of nifH and ipdC genes in their genomes. Application of isolates BTCP01 and BTDR03 through root dipping and spraying at the flowering stage significantly enhanced the agronomic performance of rice variety CV. BRRI dhan29. Notably, combining both strains with 50% of recommended N, P, and K fertilizer doses led to a substantial increase in rice grain yields compared to control plants receiving 100% of recommended doses. Taken together, our results indicate that weed endophytic bacterial strains BTCP01 and BTDR03 hold promise as biofertilizers, potentially reducing the dependency on chemical fertilizers by up to 50%, thereby fostering sustainable rice production.


Subject(s)
Alcaligenes faecalis , Endophytes , Fertilizers , Oryza , Phosphates , Plant Weeds , Oryza/microbiology , Oryza/growth & development , Endophytes/metabolism , Alcaligenes faecalis/metabolism , Alcaligenes faecalis/growth & development , Plant Weeds/microbiology , Plant Weeds/growth & development , Phosphates/metabolism , Indoleacetic Acids/metabolism , RNA, Ribosomal, 16S/genetics , Phylogeny , Plant Roots/microbiology , Plant Roots/growth & development , Eleusine/microbiology , Eleusine/growth & development , Cynodon/microbiology , Cynodon/growth & development , Potassium/metabolism
19.
Environ Microbiol Rep ; 16(3): e13254, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38725134

ABSTRACT

Arid and semi-arid areas are facing increasingly severe water deficits that are being intensified by global climate changes. Microbes associated with plants native to arid regions provide valuable benefits to plants, especially in water-stressed environments. In this study, we used 16S rDNA metabarcoding analysis to examine the bacterial communities in the bulk soil, rhizosphere and root endosphere of the plant Malva sylvestris L. in Morocco, along a gradient of precipitation. We found that the rhizosphere of M. sylvestris did not show significant differences in beta-diversity compared to bulk soil, although, it did display an increased degree of alpha-diversity. The endosphere was largely dominated by the genus Rhizobium and displayed remarkable variation between plants, which could not be attributed to any of the variables observed in this study. Overall, the effects of precipitation level were relatively weak, which may be related to the intense drought in Morocco at the time of sampling. The dominance of Rhizobium in a non-leguminous plant is particularly noteworthy and may permit the utilization of this bacterial taxon to augment drought tolerance; additionally, the absence of any notable selection of the rhizosphere of M. sylvestris suggests that it is not significatively affecting its soil environment.


Subject(s)
Bacteria , Droughts , RNA, Ribosomal, 16S , Rhizosphere , Soil Microbiology , Morocco , Bacteria/classification , Bacteria/genetics , Bacteria/isolation & purification , RNA, Ribosomal, 16S/genetics , Plant Roots/microbiology , Biodiversity , Microbiota , DNA, Bacterial/genetics , Rhizobium/classification , Rhizobium/genetics , Rhizobium/isolation & purification , Rhizobium/physiology , Phylogeny
20.
Physiol Plant ; 176(3): e14338, 2024.
Article in English | MEDLINE | ID: mdl-38740528

ABSTRACT

Bacteria can be applied as biofertilizers to improve crop growth in phosphorus (P)-limited conditions. However, their mode of action in a soil environment is still elusive. We used the strain ALC_02 as a case study to elucidate how Bacillus subtilis affects dwarf tomato cultivated in soil-filled rhizoboxes over time. ALC_02 improved plant P acquisition by increasing the size and P content of P-limited plants. We assessed three possible mechanisms, namely root growth stimulation, root hair elongation, and solubilization of soil P. ALC_02 produced auxin, and inoculation with ALC_02 promoted root growth. ALC_02 promoted root hair elongation as the earliest observed response and colonized root hairs specifically. Root and root hair growth stimulation was associated with a subsequent increase in plant P content, indicating that a better soil exploration by the root system improved plant P acquisition. Furthermore, ALC_02 affected the plant-available P content in sterilized soil differently over time and released P from native P pools in the soil. Collectively, ALC_02 exhibited all three mechanisms in a soil environment. To our knowledge, bacterial P biofertilizers have not been reported to colonize and elongate root hairs in the soil so far, and we propose that these traits contribute to the overall effect of ALC_02. The knowledge gained in this research can be applied in the future quest for bacterial P biofertilizers, where we recommend assessing all three parameters, not only root growth and P solubilization, but also root hair elongation. This will ultimately support the development of sustainable agricultural practices.


Subject(s)
Bacillus subtilis , Phosphorus , Plant Roots , Soil , Solanum lycopersicum , Phosphorus/metabolism , Plant Roots/growth & development , Plant Roots/microbiology , Plant Roots/metabolism , Bacillus subtilis/growth & development , Bacillus subtilis/metabolism , Soil/chemistry , Solanum lycopersicum/growth & development , Solanum lycopersicum/microbiology , Solanum lycopersicum/metabolism , Soil Microbiology , Solubility , Indoleacetic Acids/metabolism , Fertilizers
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