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De la Vega-Camarillo, E.

Publications and source records attributed to De la Vega-Camarillo, E..

4 recordsLinked to original sources

Uncovering the Genomic and Phenotypic Landscape of Nitrogen-Fixing Rhizobium miluonense WD29 in Free-Living Conditions

The endophytic bacterial strain Rhizobium miluonense WD29, isolated from the giant Mexican landrace maize Jala, demonstrates remarkable nitrogen fixation capabilities in free-living conditions. Through comprehensive genomic and phenotypic analyses, we characterized its unique attributes and potential applications in sustainable agriculture. Whole genome sequencing revealed a 6.8 Mb genome with 59.7% GC content, comprising 6,908 protein-coding genes, 3 rRNA genes, 46 tRNA sequences, and 146 insertion elements. Comparative genomic analysis showed that WD29 contains unique gene clusters associated with nitrogen fixation, biofilm formation, and plant growth promotion. The strain exhibits notable plant growth-promoting characteristics, including phosphate solubilization (26.1 {+/-} 1.9 {micro}g/mL), IAA production (19.7 {+/-} 2.5 {micro}g/mL), and multiple metallophore production capabilities (21.1-62.4% chelation for various metals). Significantly, R. miluonense WD29 demonstrates efficient nitrogen fixation in free-living conditions, with rates up to 21.7 {+/-} 2.3 nmol h-1 of reduced acetylene at optimal galactose concentrations (1 g/L), coupled with substantial exopoly-saccharide production (0.8 {+/-} 0.076 g/mL). The strains genome harbors at least 9 genes involved in exopolysaccharide biosynthesis, likely contributing to its biofilm formation capability and enhanced nitrogen fixation efficiency. Additionally, WD29 shows remarkable environmental adaptability, possessing genes for heavy metal resistance and various stress responses. These findings highlight R. miluonense WD29s potential as a valuable biofertilizer for sustainable agriculture, particularly for non-leguminous crops like maize, and demonstrate the importance of studying nitrogen-fixing bacteria isolated from traditional agricultural systems.

microbiology↗

Domestication Compromised Microbiome-Mediated Resistance to Western Corn Rootworm in Maize

Western corn rootworm (WCR) (Diabrotica virgifera virgifera) represents a significant threat to global maize production, with annual costs exceeding $1 billion. While modern maize is highly susceptible, wild teosinte (Zea mays ssp. parviglumis) exhibits superior resistance through poorly understood mechanisms. This study investigated rhizosphere microbiome contributions to WCR resistance across the domestication gradient. We screened 23 accessions (15 wild teosinte accessions, 6 ancestral maize accessions, 2 modern maize accessions) for WCR resistance and analyzed rhizosphere microbiomes of selected resistant and susceptible accessions using Oxford Nanopore sequencing. Resistant accessions retained >80% of root structure (85.4% {+/-} 3.2%) while supporting minimal larval survival (22.5% {+/-} 4.8%) compared to susceptible accessions (46.7% {+/-} 5.1% root retention, 78.6% {+/-} 6.3% larval survival; P < 0.001). Resistant accessions recruited significantly more diverse bacterial communities under WCR pressure, with 28-31 enriched species versus 7-19 in susceptible accessions. Key enriched taxa included Pseudomonas putida (3.0-3.2-fold), Stenotrophomonas maltophilia (2.7-2.9-fold), and Bacillus subtilis, all possessing documented insecticidal properties. Functional analysis revealed enrichment of defense-related pathways in resistant accessions, including hydrogen cyanide production and antimicrobial compound synthesis. Wild teosinte showed the strongest responses, with significant diversity increases (P < 0.0001) and 31 enriched species under WCR herbivory. Modern maize exhibited attenuated responses regardless of resistance classification, suggesting domestication compromised plant-microbiome defensive interactions. These findings demonstrate that WCR resistance involves coordinated plant-microbiome networks and identify bacterial taxa with biocontrol potential for developing sustainable management strategies. Author Summary

microbiology↗

Microbiome differentiation between micro-sympatric maize and teosinte reveals domestication-driven functional erosion of the microbiome across plant compartments

IntroductionCrop domestication has fundamentally transformed plant phenotypes through artificial selection, yet the consequences of domestication for plant-associated microbial communities across the plant-soil continuum remain poorly understood. Gap StatementWhile recent studies suggest that domestication impacts microbiome structures, the magnitude, mechanisms, and functional implications of such impacts have not been systematically quantified using controlled experimental designs that eliminate environmental confounding factors. AimTo characterize and quantify the effects of crop domestication on microbial community structure and function by comparing maize (Zea mays subsp. mays) and its wild ancestor Balsas teosinte (Zea mays subsp. parviglumis) across multiple plant compartments in an unmanipulated field setting in Mexico, maizes domestication center. MethodologyWe applied a micro-sympatric design in a natural setting to compare microbial communities between maize and Balsas teosinte across five plant compartments: bulk soil, rhizosphere, mucilage, leaves, and seeds. Full-length 16S rRNA gene sequencing was used for taxonomic characterization, Functional Annotation of Prokaryotic Taxa (FAPROTAX) and PICRUSt 2.0 were used to predict functional profiles, and network analysis was used to assess functional connectivity. ResultsCompartment identity explained 72.2% of variation in community structure, with consistent host effects across all niches (9.0%). Teosinte maintained significantly higher microbial diversity than maize across all compartments, with pronounced differences in seeds (32.0 {+/-} 1.9 vs 9.3 {+/-} 1.8 species, P < 0.01) and rhizosphere (60.3 {+/-} 5.8 vs 33.8 {+/-} 10.4 species, P < 0.01). Eighty-nine percent of predicted metabolic functions showed significant changes associated with domestication, with teosinte exhibiting enhanced nitrogen fixation (0.89 {+/-} 0.07 vs 0.44 {+/-} 0.04 in maize mucilage), siderophore production, and pathogen suppression. Network analysis revealed functional fragmentation in maize, with reduced connections (80 to 49) and lower clustering coefficients (0.62 {+/-} 0.03 vs 0.25 {+/-} 0.02, P < 0.001). ConclusionBalsas teosinte domestication fundamentally eroded microbial diversity and functional capacity in maize leading to a "domestication gap" that encompasses taxonomic loss, functional simplification, and network fragmentation, and replaced mutualistic plant-microbe partnerships with simplified microbial assemblages that may compromise crop resilience vis-a-vis a changing climate. Impact statementUnderstanding how plants select their microbial partners is crucial for enhancing agricultural productivity yet distinguishing between environmental and host genetic effects on microbiome assemblage remains challenging. Our study provides compelling evidence for host-driven microbiome assembly by comparing ancestral Balsas teosinte with derived maize growing in a common farm field in Mexico, eliminating environmental variation and experimental manipulation as confounding factors. By characterizing bacterial communities across different plant compartments, from soil to seed, we showed that each hosts genotype shaped divergent microbiome compositions despite growing in common environmental conditions. This research represents a significant step forward in understanding plant-microbe co-evolution during crop domestication and has three key implications. First, it suggests that microbiome traits were likely selected in conjunction with plant (host) traits during domestication and post-domestication selection. Second, it identifies specific bacterial communities that could be targeted for improving crop productivity and resilience. And third, it provides a methodological framework for studying host-microbe interactions in other crop-wild ancestor pairs. Our findings are particularly relevant for developing microbiome-based agricultural technologies and conservation strategies for beneficial plant-microbe interactions for deployment in traditional and modern farming systems. Data summaryThe authors confirm all supporting data, code and protocols have been provided within the article or through supplementary data files.

microbiology↗

Machine Learning-Guided Synthetic Microbial Communities Enable Functional and Sustainable Degradation of Persistent Environmental Pollutants

Persistent environmental pollutants demand the use of diverse microbial metabolic capabilities for effective degradation. While naturally occurring consortia or single strains often fall short in efficiency, synthetic microbial communities (SynComs) hold greater promise for enhanced degradation. To address this challenge, we developed GENIA (Genomically and Environmentally Networked Intelligent Assemblies), a genome-informed and machine learning-guided framework for the rational design of SynComs capable of multi-pollutant degradation under simulated environmental conditions. Using a microfluidic high-throughput cultivation platform, 2,155 bacterial strains were isolated from xenobiotic-enriched environments and screened for pollutant-specific growth. Whole-genome sequencing and functional annotation of 45 prioritized strains revealed metabolic traits associated with the potential degradation of challenging persistent environmental pollutants as proof of concept, i.e., lignin oxidation, atrazine dechlorination, and PFAS defluorination. These genomic profiles were encoded into spline-based graph representations and integrated within the GENIA pipeline, which combines graph neural networks, pathway complementarity modeling, and functional redundancy minimization to predict optimal community assemblies. The resulting nine-member community--comprising Pantoea dispersa, Atlantibacter hermannii, Pseudomonas fulva, Paenibacillus polymyxa, Bacillus cabrialesii, Micrococcus luteus, Bacillus pseudomycoides, Bacillus licheniformis, and Pseudomonas pergaminensis--was predicted to exhibit broad catabolic capacity and minimal intra-community competition. Kinetic experiments in minimal medium demonstrated simultaneous multi-pollutant degradation: lignin (91.6% removal by day 5), atrazine (91.4% removal by day 3), and PFOS (93.1% removal within seven days), representing a 2-4-fold improvement over existing approaches. GENIA establishes a scalable and generalizable framework that integrates systems-level genomics, phenotypic screening, and predictive modeling to engineer ecologically coherent microbial consortia with application to complex environmental bioremediation. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=133 SRC="FIGDIR/small/677392v1_ufig1.gif" ALT="Figure 1"> View larger version (66K): org.highwire.dtl.DTLVardef@1beee39org.highwire.dtl.DTLVardef@a0a1corg.highwire.dtl.DTLVardef@11ddc4aorg.highwire.dtl.DTLVardef@169ba57_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗