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AI-summarized plant biology research papers from bioRxiv

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Latest 19 Papers

Dynamic regulation of protein homeostasis underlies acquiredthermotolerance in Arabidopsis

Authors: Bajaj, M., Allu, A. D., Rao, B. J.

Date: 2025-12-26 · Version: 3
DOI: 10.1101/2023.08.04.552042

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

Thermopriming enhances heat stress tolerance by orchestrating protein maintenance pathways: it activates the heat shock response (HSR) via HSFA1 and the unfolded protein response (UPR) while modulating autophagy to clear damaged proteins. Unprimed seedlings cannot mount these responses, leading to proteostasis collapse, protein aggregation, and death, highlighting the primacy of HSR and protein maintenance over clearance mechanisms.

thermopriming heat shock response unfolded protein response autophagy proteostasis

In vivo binding by Arabidopsis SPLICING FACTOR 1 shifts 3' splice site choice, regulating circadian rhythms and immunity in plants

Authors: Agrofoglio, Y. C., Iglesias, M. J., de Leone, M. J., Hernando, C. E., Lewinski, M., Torres, S. B., Contino, G., Yanovsky, M. J., Staiger, D., Mateos, J. L.

Date: 2025-12-17 · Version: 1
DOI: 10.64898/2025.12.17.693997

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study characterizes the plant spliceosomal protein AtSF1 in Arabidopsis thaliana, using iCLIP and RNA‑seq to map its in vivo branch point binding sites and demonstrate that loss of AtSF1 causes widespread 3' splice‑site mis‑selection. Structural comparison reveals a plant‑specific domain architecture, and the identified AtSF1 targets are enriched for circadian and defense genes, linking splicing regulation to timing and immunity.

alternative splicing branch point recognition AtSF1 circadian clock regulation plant immunity

Cellular energy sensor SnRK1 suppresses salicylic acid-dependent and -independent defenses and bacterial resistance in Arabidopsis

Authors: Jie, L., Sanagi, M., Yasuda, S., Yamada, K., Ejima, S., Sugisaki, A., Takagi, J., Nomoto, M., Xin, X., Tada, Y., Saijo, Y., Sato, T.

Date: 2025-10-01 · Version: 1
DOI: 10.1101/2025.10.01.679707

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study reveals that the energy sensor SnRK1 modulates Arabidopsis defense by repressing SA‑dependent gene expression and bacterial resistance, with its activity enhanced under high humidity. SnRK1 interacts with TGA transcription factors to attenuate PR1 expression, linking cellular energy status to immune regulation.

SnRK1 salicylic acid signaling plant immunity energy status high humidity

Clathrin-coated vesicles are targeted for selective autophagy during osmotic stress.

Authors: dragwidge, j., Buridan, M., Kraus, J., Kosuth, T., Chambaud, C., Brocard, L., Yperman, K., Mylle, E., Vandorpe, M., Eeckhout, D., De Jaeger, G., Pleskot, R., Bernard, A., Van Damme, D.

Date: 2025-09-17 · Version: 1
DOI: 10.1101/2025.09.16.676479

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study identifies an autophagy pathway that degrades plasma membrane-derived clathrin-coated vesicles (CCVs) during hyperosmotic stress, helping maintain membrane tension as cell volume decreases. Using live imaging and correlative microscopy, the authors show that the TPLATE complex subunits AtEH1/Pan1 and AtEH2/Pan1 act as selective autophagy receptors by directly binding ATG8, thereby removing excess membrane under drought or salt conditions.

hyperosmotic stress autophagy clathrin-coated vesicles TPLATE complex plasma membrane tension

Deciphering the role of autophagy under Cd toxicity in Arabidopsis thaliana

Authors: Collado-Arenal, A. M., Perez-Gordillo, F. L., Espinosa, J., Moreno-Diaz, R., Shabala, S., Romero-Puertas, M. C., Sandalio, L. M.

Date: 2025-08-31 · Version: 1
DOI: 10.1101/2025.08.27.672299

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study investigates autophagy’s protective role against cadmium stress in Arabidopsis thaliana by comparing wild-type, atg5 and atg7 autophagy-deficient mutants, and ATG5/ATG7 overexpression lines. Cadmium exposure triggered autophagy, shown by ATG8a-PE accumulation, GFP-ATG8a fluorescence and ATG gene up-regulation, with atg5 mutants displaying heightened Cd sensitivity and disrupted metal ion homeostasis, whereas overexpression had limited impact. Genotype-specific differences between Col-0 and Ws backgrounds were also observed.

cadmium stress autophagy Arabidopsis thaliana ATG5 metal ion homeostasis

Unveiling the molecular identity of plant autophagic compartments: A proteo-lipidomic study in Arabidopsis thaliana

Authors: Lupette, J., Chambaud, C., Buridan, M., Castets, J., Wattelet-Boyer, V., Toboso Moreno, I., Kosuth, T., Yatim, C., Dittrich-Domergue, F., Gros, V., Jouhet, J., Claverol, S., Herice, C., Melser, S., Genva, M., Fouillen, L., Bessoule, J.-J., Domergue, F., Bernard, A.

Date: 2025-08-28 · Version: 1
DOI: 10.1101/2025.08.25.671700

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study introduces a native‑condition method combining cell fractionation and immuno‑isolation to purify autophagic compartments from Arabidopsis, followed by proteomic and lipidomic characterisation of the isolated phagophore membranes. Proteomic profiling identified candidate proteins linked to autophagy, membrane remodeling, vesicular trafficking and lipid metabolism, while lipidomics revealed a predominance of glycerophospholipids, especially phosphatidylcholine and phosphatidylglycerol, defining the unique composition of plant phagophores.

autophagy phagophore membrane proteomics lipidomics membrane remodeling

NUDIX Hydrolases Target Specific Inositol Pyrophosphates and Regulate Phosphate Homeostasis and Bacterial Pathogen Susceptibility in Arabidopsis

Authors: Schneider, R., Lami, K., Prucker, I., Stolze, S. C., Strauss, A., Schmidt, J. M., Bartsch, S. M., Langenbach, K., Lange, E., Ritter, K., Furkert, D., Faiss, N., Kumar, S., Hasan, M. S., Makris, A., Krusenbaum, L., Wege, S., Belay, Y. Z., Kriescher, S., The, J., Harings, M., Grundler, F., Ried-Lasi, M. K., Schoof, H., Gaugler, P., Kamleitner, M., Fiedler, D., Nakagami, H., Giehl, R. F., Lahaye, T., Bhattacharjee, S., Jessen, H. J., Gaugler, V., Schaaf, G.

Date: 2025-08-12 · Version: 2
DOI: 10.1101/2024.10.18.619122

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study identified two subclades of Arabidopsis NUDIX hydrolases that selectively hydrolyze distinct inositol pyrophosphate isomers, with subclade I targeting 4-InsP7 and subclade II targeting 3-InsP7 in a Mg2+-dependent manner. Loss-of-function mutants of subclade II NUDTs displayed disrupted phosphate and iron homeostasis, elevated 1/3-InsP7 levels, and increased resistance to Pseudomonas syringae, revealing roles in nutrient signaling and plant immunity, while cross-kingdom analyses showed conserved PP-InsP‑metabolizing activities.

Inositol pyrophosphates NUDIX hydrolases phosphate homeostasis iron homeostasis plant immunity

A dual component system instructs membrane hydrolysis during the final stages of plant autophagy

Authors: Castets, J., Buridan, M., Toboso Moreno, I., Sanchez de Medina Hernandez, V., Gomez, R. E., Dittrich-Domergue, F., Lupette, J., Chambaud, C., Pascal, S., Ibrahim, T., Bozkurt, T. O., Dagdas, Y., Domergue, F., Joubes, J., Minina, A. E. A., Bernard, A.

Date: 2025-08-02 · Version: 1
DOI: 10.1101/2025.08.01.668046

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study identifies the Arabidopsis phospholipases LCAT3 and LCAT4 as essential components that hydrolyze membranes of autophagic bodies within the vacuole, a critical step for autophagy completion. Double mutants lacking both enzymes accumulate autophagic bodies and display diminished autophagic activity, while in vivo reconstitution shows LCAT3 initiates membrane hydrolysis, facilitating LCAT4’s function.

autophagy phospholipase Arabidopsis thaliana vacuolar lumen LCAT3/LCAT4

Cell-type specific gating of gene regulatory modules as a hallmark of early immune responses in Arabidopsis leaves

Authors: Wang, S., Bezrukov, I., Wu, P.-J., Gauss, H., Timmermans, M., Weigel, D.

Date: 2025-08-01 · Version: 1
DOI: 10.1101/2025.08.01.668105

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study used single‑cell transcriptomics to compare Arabidopsis thaliana leaf cell responses during pattern‑triggered and effector‑triggered immunity, revealing that core defense modules are broadly shared but differ in timing, intensity, and cell‑type specific receptor dynamics. Distinct mesophyll subpopulations showed divergent resilience patterns, and gene regulatory network analysis identified WRKY‑regulated and salicylic‑acid biosynthesis modules, with the cue1-6 mutant confirming robustness of core immune responses while exposing cryptic sucrose‑responsive pathways.

single-cell RNA sequencing Arabidopsis thaliana plant immunity PTI and ETI WRKY transcription factors

A conserved small RNA-generating gene cluster undergoes sequence diversification and contributes to plant immunity

Authors: Feng, L., Hou, Y., Toghani, A., Wang, Z., Tang, B., Atkinson, N., Li, H., Qiao, Y., Wang, Y., Hua, J., Zhai, J., Ma, W.

Date: 2025-07-21 · Version: 1
DOI: 10.1101/2025.07.20.665670

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study reveals that a conserved clade of pentatricopeptide repeat (PPR) genes in Arabidopsis thaliana generates secondary siRNAs that contribute to plant immunity, with these PPR loci undergoing extensive duplication and diversification to create a varied siRNA pool for pathogen defense. This PPR‑siRNA system is proposed as a novel family of defense genes with potential for engineering broad‑spectrum disease resistance.

secondary siRNA pentatricopete repeat proteins plant immunity gene duplication co‑evolutionary arms race
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