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A chloroplast-localized protein AT4G33780 regulates Arabidopsis development and stress-associated responses

Authors: Yang, Z.

Date: 2026-01-03 · Version: 1
DOI: 10.64898/2026.01.03.697459

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study characterizes the chloroplast‑localized protein AT4G33780 in Arabidopsis thaliana using CRISPR/Cas9 knockout and overexpression lines, revealing tissue‑specific expression and context‑dependent effects on seed germination, seedling growth, vegetative development, and root responses to nickel stress. Integrated transcriptomic (RNA‑seq) and untargeted metabolomic analyses show extensive transcriptional reprogramming—especially of cell‑wall genes—and altered central energy metabolism, indicating AT4G33780 coordinates metabolic state with developmental regulation rather than controlling single pathways.

AT4G33780 chloroplast regulator Arabidopsis thaliana transcriptomics metabolomics

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

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

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

The autophagy-related genes AtATG5 and AtATG7 influence reserve mobilisation and responses to ABA during seed germination in Arabidopsis thaliana

Authors: Contreras, E., Sanchez-Vicente, I., Pastor-Mora, E., Aylon-Rodriguez, M., Gonzalez-Ceballos, M., Delgado-Gutierrez, M. A., Lorenzo, O., Vicente-Carbajosa, J., Iglesias-Fernandez, R.

Date: 2025-04-21 · Version: 2
DOI: 10.1101/2024.05.15.593177

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study examines how autophagy-related genes AtATG5 and AtATG7 influence Arabidopsis seed germination and ABA responses, revealing that atg5 and atg7 mutants germinate more slowly and display altered lipid droplet and protein storage vacuole organization. Transcriptomic and immunolocalization analyses show delayed ABI5 decay and a direct interaction between ATG8 and the autophagy machinery, implicating autophagy in seed reserve mobilization via transcription factor turnover.

autophagy Arabidopsis thaliana ABA signaling ATG5/ATG7 ABI5

Root hair lifespan is antagonistically controlled by autophagy and programmed cell death

Authors: Feng, Q., Zhu, S., Wang, X., Liu, Y., Zhao, J., Dagdas, Y., Nowack, M. K.

Date: 2025-03-19 · Version: 1
DOI: 10.1101/2025.03.18.643910

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study reveals that root hair cells rely on elevated autophagy to extend their lifespan, and that loss-of-function mutations in autophagy genes ATG2, ATG5, or ATG7 trigger premature, cell-autonomous death mediated by NAC transcription factors ANAC046 and ANAC087. This uncovers an antagonistic interaction between autophagy and a developmentally programmed cell death pathway that controls root hair longevity, highlighting a potential target for improving nutrient and water uptake in crops.

root hair longevity autophagy ATG2 ATG5 ATG7 NAC transcription factors programmed cell death

Cell-type specific autophagy in root hair forming cells is essential for salt stress tolerance in Arabidopsis thaliana

Authors: Zhao, J., Loefke, C., Yeung, K. C., Chen, Y., Dagdas, Y.

Date: 2025-03-18 · Version: 1
DOI: 10.1101/2025.03.18.643786

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study reveals that root hair-forming trichoblast cells in Arabidopsis thaliana display higher autophagic flux than adjacent atrichoblast cells, a difference linked to cell fate determination. Elevated autophagy in trichoblasts is required for vacuolar sodium sequestration, contributing to salt‑stress tolerance, whereas disrupting autophagy in these cells impairs ion accumulation and survival. Cell‑type‑specific genetic complementation restores both autophagy and stress resilience, highlighting a developmental program that tailors autophagy for environmental adaptation.

autophagy trichoblast Arabidopsis thaliana salt stress cell-type-specific regulation

Lack of AtMC1 catalytic activity triggers autoimmunity dependent on NLR stability

Authors: Salguero-Linares, J., Armengot, L., Ayet, J., Ruiz-Solani, N., Saile, S., Salas-Gomez, M., Fernandez, E., Denolf, L., Navarrete, F., Krumbach, J., Kaiser, M., Stael, S., Van Breusegem, F., Gevaert, K., Kaschani, F., petersen, m., El Kasmi, F., Valls, M., Coll, N. S.

Date: 2025-02-03 · Version: 1
DOI: 10.1101/2025.01.31.635913

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study demonstrates that loss of Arabidopsis metacaspase 1 (AtMC1) triggers autoimmunity reliant on downstream NLR and PRR signaling, and that overexpressing a catalytically dead AtMC1 exacerbates this effect. Overexpression of the E3 ligase SNIPER1 restores normal immunity, suggesting that AtMC1 regulates NLR protein turnover, possibly via autophagic degradation of the inactive protein.

metacaspase 1 autoimmunity NLR homeostasis SNIPER1 autophagy