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AI-summarized plant biology research papers from bioRxiv

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Latest 9 Papers

Dynamic ASK1 proximity networks uncover SCF-dependent and noncanonical roles in ABA and drought adaptation

Authors: Rodriguez-Zaccaro, F. D., Moe-Lange, J., Malik, S., Montes-Serey, C., Hamada, N., Groover, A., Walley, J., Shabek, N.

Date: 2025-12-25 · Version: 1
DOI: 10.64898/2025.12.22.696057

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study maps the in vivo proximity interactome of Arabidopsis SKP1-LIKE 1 (ASK1) under acute abscisic acid (ABA) signaling and prolonged drought using TurboID-based proximity labeling and quantitative proteomics, revealing condition-specific networks that include both canonical SCF modules and diverse noncanonical partners. Overexpression of ASK1 shifts proteome composition toward drought‑protective and ABA‑responsive proteins while repressing immune and ROS‑scavenging pathways, highlighting ASK1 as a hub that integrates SCF‑dependent and independent pathways to reprogram transcription, translation, and proteostasis during stress adaptation.

ASK1 SCF ubiquitin ligases abscisic acid signaling drought stress TurboID proximity labeling

GWAs reveals SUBER GENE1-mediated suberization via Type One Phosphatases

Authors: Han, J.-P., Lefebvre-Legendre, L., Yu, J., Capitao, M. B., Beaulieu, C., Gully, K., Shukla, V., Wu, Y., Boland, A., Nawrath, C., Barberon, M.

Date: 2025-12-12 · Version: 2
DOI: 10.1101/2025.05.06.652434

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

Using a forward genetic screen of 284 Arabidopsis thaliana accessions, the study identified extensive natural variation in root endodermal suberin and pinpointed the previously unknown gene SUBER GENE1 (SBG1) as a key regulator. GWAS and protein interaction analyses revealed that SBG1 controls suberin deposition by binding type‑one protein phosphatases (TOPPs), with disruption of this interaction or TOPP loss‑of‑function altering suberin levels, linking the pathway to ABA signaling.

suberin deposition Arabidopsis thaliana GWAS SBG1 TOPP phosphatases

The mRNA covalent modification dihydrouridine regulates transcript turnover and photosynthetic capacity during plant abiotic stress

Authors: Yu, L., Melandri, G., Dittrich, A. C., Calleja, S., Rozzi, B., Ganguly, D. R., Palos, K., Srinivasan, A., Brewer, E. K., Fischer, H., Obata, T., Elgawad, H. A., Beemster, G. T. S., Henderson, R., Garcia, C. D., Zhang, X., Stern, D., Eveland, A., Schroeder, S. J., Skirycz, A., Lyons, E., Arnold, E. A., Gregory, B. D., Nelson, A. D. L., Pauli, D.

Date: 2025-11-24 · Version: 3
DOI: 10.1101/2025.01.17.633510

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study integrates multi-omics data from six Sorghum bicolor accessions under field drought to link RNA covalent modifications (RCMs) with photosynthetic performance, identifying the enzyme SbDUS2 that produces dihydrouridine (DHU) on transcripts. Loss‑of‑function dus2 mutants in Arabidopsis thaliana reveal that DHU deficiency leads to hyperstability of photosynthesis‑related mRNAs, impairing germination, development, and stress‑induced CO2 assimilation. The authors propose DHU as a post‑transcriptional mark that promotes rapid mRNA turnover during abiotic stress, enhancing plant resilience.

RNA covalent modifications dihydrouridine (DHU) drought stress photosynthesis RNA stability

Development alters genotype-environment interactions and shapes adaptation in Arabidopsis

Authors: Lawrence-Paul, E. H., Janakiraman, J., Lawrence-Paul, M. R., Ben-Zeev, R., Xu, Y., Penn, A., Lasky, J. R.

Date: 2025-11-03 · Version: 2
DOI: 10.1101/2025.05.13.653704

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study investigates how the timing of the vegetative phase change (VPC) in Arabidopsis thaliana influences drought adaptation, revealing strong genotype-by-environment interactions that create stage-specific fitness tradeoffs. Genotypes from warmer, drier Iberian climates transition earlier, and genome-wide association mapping identifies loci linked to VPC timing and drought response, with several candidates validated using T‑DNA insertion lines.

vegetative phase change drought adaptation genotype-by-environment interaction GWAS developmental trade‑offs

Identification of a novel link connecting indole-3-acetamide with abscisic acid biosynthesis and signaling

Authors: Moya-Cuevas, J., Ortiz-Garcia, P., Gonzalez Ortega-Villizan, A., Viguera-Leza, I., Perez-Gonzalez, A., Paz-Ares, J., Alonso-Blanco, C., Vicente-Carbajosa, J., Pollmann, S.

Date: 2025-08-20 · Version: 1
DOI: 10.1101/2025.08.15.670611

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

A genome-wide association study of 166 Iberian Arabidopsis accessions identified loci, including ABA3 and GA2ox2, that modulate the inhibitory effect of the auxin precursor indole-3-acetamide (IAM) on primary root elongation. Integrating sequence analysis, transcriptomics, 3D protein modeling, and mutant physiology revealed that IAM promotes ABA biosynthesis and signaling, uncovering a novel node of hormone crosstalk.

indole-3-acetamide (IAM) abscisic acid (ABA) signaling Arabidopsis thaliana GWAS hormone crosstalk

A sublethal drought and rewatering time course reveals intricate patterning of responses in the annual Arabidopsis thaliana

Authors: Fitzek-Campbell, E., Psaroudakis, D., Weisshaar, B., Junker, A., Braeutigam, A.

Date: 2025-07-27 · Version: 1
DOI: 10.1101/2025.07.25.666782

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study applied a progressive, sublethal drought treatment to Arabidopsis thaliana, collecting time‑resolved phenotypic and transcriptomic data. Machine‑learning analysis revealed distinct drought stages driven by multiple overlapping transcriptional programs that intersect with plant aging, and identified high‑explanatory‑power transcripts as biomarkers rather than causal agents.

drought stress Arabidopsis thaliana transcriptomics high‑throughput phenotyping biomarker transcripts

Drought stress modulates the molecular response of Arabidopsis plants to root-knot nematode infection

Authors: Refaiy, A., Lilley, C. J., Atkinson, N. J., Urwin, P. E.

Date: 2025-06-09 · Version: 1
DOI: 10.1101/2025.06.05.658137

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

RNA‑Seq was used to compare Arabidopsis thaliana transcriptomes under drought, Meloidogyne incognita infection, and their combination, revealing a distinct set of genes uniquely regulated by the joint stress. Notably, AZI1, SAUR71, and DRN1 showed stress‑specific expression patterns, suggesting key roles in coordinating responses to simultaneous drought and nematode attack.

combined biotic and abiotic stress drought stress root‑knot nematode (Meloidogyne incognita) RNA‑Seq transcriptomics Arabidopsis thaliana

MYB59 is linked to natural variation of water use associated with warmer temperatures in Arabidopsis thaliana

Authors: Ferguson, J. N., Brendel, O., Bechtold, U.

Date: 2025-02-28 · Version: 1
DOI: 10.1101/2025.02.27.640580

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study surveyed vegetative water use and life‑history traits across Arabidopsis thaliana ecotypes in both controlled and outdoor environments to assess how climatic history shapes water‑use strategies. Trait‑climate correlations and genome‑wide association analyses uncovered that ecotypes from warmer regions exhibit higher water use, and identified MYB59 as a key gene whose temperature‑linked alleles affect water consumption, a finding validated using myb59 mutants. These results indicate that temperature‑driven adaptive differentiation partly explains intraspecific water‑use variation.

water-use variation Arabidopsis thaliana climate adaptation GWAS MYB59

Stress drives plasticity in leaf maturation transcriptional dynamics

Authors: Swift, J., Wu, X., Xu, J., Jain, T., Illouz-Eliaz, N., Nery, J. R., Chory, J., Ecker, J. R.

Date: 2025-02-25 · Version: 1
DOI: 10.1101/2025.02.24.639183

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study constructs a ~1‑million‑cell single‑nuclei transcriptome atlas of Arabidopsis leaves to reveal that drought stress accelerates transcriptional programs associated with maturation and aging, thereby limiting leaf growth in proportion to stress intensity. Targeted upregulation of FERRIC REDUCTION OXIDASE 6 in mesophyll cells partially rescues leaf growth under drought, demonstrating the functional relevance of these transcriptional changes.

leaf development drought stress single-nucleus transcriptomics Arabidopsis thaliana cell-type specific gene upregulation