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AI-summarized plant biology research papers from bioRxiv

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Integrative genomic and transcriptomic analyses uncover regulatory landscape of symbiotic nitrogen fixation in soybean natural population

Authors: Li, Y., Feng, w., Feng, X., Liu, X., Hao, S., Lian, L., Gao, L., Shao, Y., Chen, H., Chen, Z., Yuan, J., Qin, L., Li, X., Li, X., Wang, X.

Date: 2025-07-23 · Version: 1
DOI: 10.1101/2025.07.18.665310

Category: Plant Biology

Model Organism: Glycine max

AI Summary

The study integrates genome, transcriptome, and chromatin accessibility data from 380 soybean accessions to dissect the genetic and regulatory basis of symbiotic nitrogen fixation (SNF). Using GWAS, TWAS, eQTL mapping, and ATAC-seq, the authors identify key loci, co‑expression modules, and regulatory elements, and validate the circadian clock gene GmLHY1b as a negative regulator of nodulation via CRISPR and CUT&Tag. These resources illuminate SNF networks and provide a foundation for soybean improvement.

symbiotic nitrogen fixation GWAS TWAS eQTL mapping ATAC-seq

Heat Stress and Soil Microbial Disturbance Influence Soybean Root Metabolite, Microbiome Profiles, and Nodulation

Authors: Elango, D., Van der Laan, L., Gholizadeh, S., Premarathne, M. D. G. P., Dutter, C. R., DePew, C., McDaniel, M., Singh, A. K.

Date: 2025-07-14 · Version: 1
DOI: 10.1101/2025.07.13.664636

Category: Plant Biology

Model Organism: Glycine max

AI Summary

The study investigated how native soil microbes affect heat tolerance in soybean (Glycine max) by comparing plants grown in natural versus microbiome‑disturbed soils under optimal and elevated temperatures. Using 16S rRNA and ITS sequencing alongside non‑targeted root metabolomics, the authors found significant shifts in bacterial and fungal communities, suppressed nodule‑forming bacteria, and altered root metabolites that correlated with reduced nodulation efficiency under heat stress. Integrated multi‑omics analyses linked microbial composition to metabolite profiles and nitrogen‑fixation traits, highlighting a coordinated response of the root physiological system to combined heat and microbiome perturbations.

heat stress rhizosphere microbiome soybean root metabolomics nitrogen fixation

Transcriptomic and physiological responses of soybean plants subjected to a combination of water deficit and heat stress under field conditions

Authors: Sinha, R., Pelaez-Vico, M. A., Dhakal, S., Ghani, A., Myers, R., Verma, M., Shostak, B., Ogden, A., Krueger, C. B., Costa Netto, J. R., Zandalinas, S. I., Joshi, T., Fritschi, F. B., Mittler, R.

Date: 2025-05-11 · Version: 1
DOI: 10.1101/2025.05.07.652738

Category: Plant Biology

Model Organism: Glycine max

AI Summary

A two‑year field study examined how soybean (Glycine max) vegetative and reproductive tissues respond transcriptionally and physiologically to water deficit, heat, and their combination. The field‑grown plants showed distinct transcriptomic patterns compared with controlled‑environment studies, especially under single stresses, while differential leaf‑pod transpiration observed in growth chambers was also present in the field. The generated transcriptomic dataset highlights the importance of field‑based omics for understanding crop stress responses.

water deficit heat stress combined stress field transcriptomics soybean