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AI-summarized plant biology research papers from bioRxiv

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Latest 6 Papers

Universal modules for decoding amplitude and frequency of Ca2+ signals in plants

Authors: Vergara-Valladares, F., Rubio-Melendez, M. E., Charpentier, M., Michard, E., Dreyer, I.

Date: 2025-12-16 · Version: 1
DOI: 10.64898/2025.12.13.694100

Category: Plant Biology

Model Organism: General

AI Summary

The authors used a bottom‑up thermodynamic modelling framework to investigate how plants decode calcium signals, starting from Ca2+ binding to EF‑hand proteins and extending to higher‑order decoding modules. They identified six universal Ca2+-decoding modules that can explain variations in calcium sensitivity among kinases and provide a theoretical basis for interpreting calcium signal amplitude and frequency in plant cells.

calcium signaling EF‑hand Ca2+ binding protein decoding modules plant calcium sensors signal amplitude and frequency

The functional divergence of two ethylene receptor subfamilies that exhibit Ca2+-permeable channel activity

Authors: Pan, C., Cheng, J., Lin, Z., Hao, D., Xiao, Z., Ming, Y., Song, W., Liu, L., Guo, H.

Date: 2025-11-29 · Version: 1
DOI: 10.1101/2025.11.28.691086

Category: Plant Biology

Model Organism: General

AI Summary

The study demonstrates that subfamily I ethylene receptors form the core ethylene‑sensing module and act epistatically over subfamily II receptors, uniquely possessing Ca2+‑permeable channel activity that drives ethylene‑induced cytosolic calcium influx. This reveals a mechanistic link whereby subfamily I receptors integrate hormone perception with calcium signaling in plants.

ethylene signaling subfamily I receptors Ca2+ influx epistasis hormone‑induced calcium channel

Spatiotemporal Analysis Reveals Mechanisms Controlling Reactive Oxygen Species and Calcium Interplay Following Root Compression

Authors: Vinet, P., Audemar, V., Durand-Smet, P., Frachisse, J.-M., Thomine, S.

Date: 2025-10-23 · Version: 1
DOI: 10.1101/2025.10.22.683952

Category: Plant Biology

Model Organism: General

AI Summary

Using a microfluidic valve rootchip, the study simultaneously tracked ROS and calcium dynamics in compressed roots and found three kinetic phases linking mechanosensitive channel activity, NADPH oxidase‑dependent ROS accumulation, and secondary calcium influx. Pharmacological inhibition revealed that a fast calcium response is mediated by plasma‑membrane mechanosensitive channels, while a slower calcium increase is driven by ROS production.

mechanotransduction reactive oxygen species calcium signaling microfluidic compression root biology

The Rapid Mechanically Activated (RMA) channel transduces increases in plasma membrane tension into transient calcium influx

Authors: Guerringue, Y., Thomine, S., Allain, J.-M., Frachisse, J.-M.

Date: 2025-08-07 · Version: 1
DOI: 10.1101/2025.08.06.668926

Category: Plant Biology

Model Organism: General

AI Summary

The study characterizes a plasma membrane-localized, calcium‑permeable force‑gated channel named Rapid Mechanically Activated (RMA) in plants, using patch‑clamp and pressure‑clamp to elucidate its rapid activation, inactivation, and irreversible adaptation upon repeated mechanical stimulation. Kinetic modeling shows the channel functions as a pass‑band filter for frequencies between 10 Hz and 1 kHz, supporting its role in transducing high‑frequency mechano‑stimuli such as insect vibrations.

mechanically activated calcium channel RMA channel calcium signaling high‑frequency mechanical stimulation kinetic modeling

Rapid ethylene-triggered protein complex remodeling in dark grown hypocotyls

Authors: Lee, Y., Park, H. L., Yoon, G. M., Szymanski, D. B.

Date: 2025-05-16 · Version: 1
DOI: 10.1101/2025.05.15.654145

Category: Plant Biology

Model Organism: General

AI Summary

The study used quantitative proteomics and co‑fractionation mass spectrometry to uncover rapid ethylene‑induced changes in protein abundance and complex formation during early seedling development, revealing extensive protein multimerization events that correlate with hypocotyl growth modulation. Small‑scale validation confirmed several identified proteins impact hypocotyl development, highlighting novel components of ethylene‑mediated growth regulation.

ethylene signaling protein multimerization hypocotyl development quantitative proteomics seedling morphogenesis

Impaired methyl recycling induces substantial shifts in sulfur utilization in Arabidopsis

Authors: Tremblay, B. J.-M., Adeel, S. A., Saechao, M., Dong, Y., Andrianasolo, E., Steele, J. M., Traa, A., Yogadasan, N., Waduwara-Jayabahu, I., Katzenback, B. A., Hell, R., Wirtz, M., Moffatt, B. A.

Date: 2025-03-13 · Version: 1
DOI: 10.1101/2025.03.09.642221

Category: Plant Biology

Model Organism: General

AI Summary

Reduced activity of methylthioadenosine (MTA) nucleosidase causes MTA over‑accumulation in reproductive tissues, leading to lowered cysteine, methionine, and S‑adenosylmethionine levels and altered sulfur and energy metabolism. These metabolic disturbances trigger misregulation of cell‑cycle progression, widespread down‑regulation of developmental genes, and genome‑wide changes in DNA methylation patterns, highlighting the extensive role of MTA recycling in plant growth and methyl‑index maintenance.

sulfur metabolism methylthioadenosine nucleosidase methionine/S‑adenosylmethionine biosynthesis DNA methylation reproductive development