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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

Do stomatal movements have a limited dynamic range?

Authors: Muraya, F., Siqueira, J. A., Very, A.-A., Roelfsema, R.

Date: 2025-12-26 · Version: 1
DOI: 10.64898/2025.12.22.695892

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study examined the roles of AtKUP2, AtKUP6, AtKUP8, and GORK potassium transport proteins in guard cell function by performing gas-exchange measurements on mature Arabidopsis leaves. Loss of KUP2/6/8 reduced stomatal conductance, whereas a GORK loss‑of‑function mutant showed increased conductance, yet the magnitude of light‑ and ABA‑induced transpiration changes remained similar across genotypes, suggesting a limited dynamic range for rapid stomatal movements that relies on small ionic osmolytes.

stomatal conductance potassium transporters GORK channel AtKUP2/6/8 Arabidopsis

Exogenous auxins for proline regulation in heat-stressed plants

Authors: Kaleh, A. M., Whalen, J. K.

Date: 2025-12-22 · Version: 1
DOI: 10.64898/2025.12.20.695708

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The abstract proposes that microbial indole-3-acetic acid (IAA) enhances plant thermotolerance by regulating proline metabolism, coordinating early osmoprotective synthesis with later catabolism to support growth and redox balance during heat stress. This regulation is hypothesized to involve integration of auxin perception (HSP90‑TIR1), MAPK signaling (MPK‑IAA8), mitochondrial redox components (SSR1, HSCA2) and interactions with abscisic acid and ethylene, offering a framework for using auxin‑producing microbes to boost heat resilience.

microbial indole-3-acetic acid thermomorphogenesis proline metabolism auxin signaling heat stress resilience

Root growth promotion by Penicillium melinii: mechanistic insights and agricultural applications

Authors: Gutierrez-Manso, L., Devesa-Aranguren, I., Conesa, C. M., Monteoliva-Garcia, G., Gonzalez-Sayer, S., Lozano-Enguita, A., Blasio, F., Ugena, L., Nolasco, J., Vazquez-Mora, A., Levy, C. C. B., Ariel Otero, E., Fernandez-Calvo, P., Moreno-Risueno, M. A., petrik, I., Pencik, A., Reguera, M., Gonzalez-Bodi, S., Huerta-Cepas, J., Sacristan, S., del Pozo, J. C., Cabrera, J.

Date: 2025-12-09 · Version: 1
DOI: 10.64898/2025.12.05.692050

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study characterizes the endophytic fungus Penicillium melinii, isolated from Arabidopsis thaliana roots, as a plant‑growth‑promoting agent that enhances root architecture and biomass across Arabidopsis, quinoa, and tomato. Integrated phenotypic, transcriptomic, and hormonal analyses reveal that the fungus stimulates auxin‑related pathways and modest stress responses, leading to increased tomato yield in field trials, underscoring its value as a model for root development and a sustainable biostimulant.

Penicillium melinii plant growth‑promoting fungus root architecture auxin signaling biostimulant

Salt stress disrupts local auxin and COP1 gradients in Arabidopsis apical hooks

Authors: van Veen, E., Kupers, J. J., Chen, X., Tang, Y. H., De Zeeuw, T., Duijts, K., Hayes, S., Testerink, C., Gommers, C. M. M.

Date: 2025-12-05 · Version: 1
DOI: 10.64898/2025.12.03.691840

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study demonstrates that salinity stress induces a photomorphogenic‑like response in dark‑grown Arabidopsis thaliana seedlings, resulting in reduced apical hook curvature and impaired soil emergence. This phenotype is linked to disrupted asymmetric epidermal cell elongation, decreased auxin signaling and PIN3 abundance on the hook’s concave side, repression of BBX28 expression, and loss of a spatial COP1 gradient, highlighting spatial regulation as a key factor in stress‑affected seedling development.

apical hook salinity stress COP1 spatial gradient auxin signaling BBX28 repression

SPOROCYTELESS/NOZZLE acts together with MADS-domain transcription factors to regulate an auxin-dependent network controlling the Megaspore Mother Cell development

Authors: Cavalleri, A., Astori, C., Manrique, S., Bruzzaniti, G., Smaczniak, C., Mizzotti, C., Ruiu, A., Spano, M., Movilli, A., Gregis, V., Xu, X., Kaufmann, K., Colombo, L.

Date: 2025-11-26 · Version: 2
DOI: 10.1101/2025.03.11.641985

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study elucidates the SPL/NZZ‑dependent regulatory pathway governing megaspore mother cell (MMC) differentiation, revealing that SPL/NZZ directly targets genes and interacts with ovule‑identity MADS‑domain transcription factor complexes. Integration of multi‑omics data with genetic complementation and mutant analyses uncovers an auxin‑dependent downstream network that drives MMC formation.

megaspore mother cell SPL/NZZ MADS‑domain transcription factors auxin signaling regulatory network

KDM7-mediated oxygen sensing reprograms chromatin to enhance hypoxia tolerance in the root

Authors: Zhang, D., Chirinos, X., Del Chiaro, A., Shukla, V., Ryder, A., Beltran, A. D. P., Iacopino, S., Bota, P., Zivkovic, D., Fioriti, F., Telara, Y., Ellison, C. J., Costa, F., Elliott, P. R., Giorgi, F., Giuntoli, B., Flashman, E. G., Abreu, I., Licausi, F.

Date: 2025-11-26 · Version: 1
DOI: 10.1101/2025.11.24.690241

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study shows that Arabidopsis root tips adapt to hypoxia by increasing H3K4me3 levels, linked to the inhibition of group 7 demethylases (KDM7s). Genetic loss of KDM7s mimics hypoxic conditions, activating genes that sustain meristem survival, suggesting KDM7s act as root‑specific oxygen sensors that prime epigenetic tolerance mechanisms.

hypoxia root meristem H3K4 trimethylation KDM7 demethylase Arabidopsis

Sphingolipid-driven interleaflet coupling orchestrates Rho-GTPase recruitment to nanodomains for signal activation in plants

Authors: Montrazi, M., Poitout, A., Depenveiller, C., Bayle, V., Nagano, M., Mamode Cassim, A., Jolivet, M.-D., Fiche, J.-B., Sarazin, C., Fouillen, L., Simon-Plas, F., Crowet, J.-M., Jaillais, Y., MONGRAND, S., Martiniere, A., BOUTTE, Y.

Date: 2025-11-07 · Version: 1
DOI: 10.1101/2025.11.06.686946

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study demonstrates that very long chain sphingolipids in the outer membrane leaflet interdigitate with inner‑leaflet phosphatidylserine, forming a vertical bridge that organizes PS nanodomains and enables auxin‑induced activation of the Rho‑GTPase ROP6. Disruption of sphingolipid biosynthesis disperses these nanodomains, impairing ROP6 signaling, cytoskeletal dynamics, and directional growth, highlighting interleaflet coupling as a key mechanism linking membrane asymmetry to plant signal transduction.

interleaflet coupling sphingolipids phosphatidylserine nanodomains ROP6 activation auxin signaling

Cytosolic Ca2+ as a universal signal for rapid root growth regulation

Authors: Randuch, M., Kulich, I., Vladimirtsev, D., Huang, S., Hedrich, R., Friml, J.

Date: 2025-10-17 · Version: 1
DOI: 10.1101/2025.10.17.683082

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study demonstrates that a rapid increase in cytosolic Ca²⁺ is the primary and sufficient signal mediating auxin‑induced root growth inhibition in Arabidopsis. Using live imaging, microfluidics, and optogenetic control of Ca²⁺ influx, the authors show that blocking Ca²⁺ entry prevents growth responses, while light‑triggered Ca²⁺ influx from the apoplast or ER mimics inhibition, indicating that diverse stimuli converge on a Ca²⁺‑dependent mechanism.

root growth auxin signaling cytosolic calcium optogenetics rapid growth inhibition

Ca2+ signature-dependent control of auxin sensitivity in Arabidopsis

Authors: Song, H., Baudon, A., Freund, M., Randuch, M., Pencik, A., Ondrej, N., He, Z., Kaufmann, K., Gilliham, M., Friml, J., Hedrich, R., Huang, S.

Date: 2025-10-05 · Version: 1
DOI: 10.1101/2025.10.04.680446

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study uses an optogenetic ChannelRhodopsin 2 variant (XXM2.0) to generate defined cytosolic Ca²⁺ transients in Arabidopsis root cells, revealing that these Ca²⁺ signatures suppress auxin‑induced membrane depolarization, Ca²⁺ spikes, and auxin‑responsive transcription, leading to reversible inhibition of cell division and elongation. This demonstrates that optogenetically imposed Ca²⁺ signals act as dynamic regulators of auxin sensitivity in roots.

auxin signaling calcium signaling optogenetics Arabidopsis root cell division inhibition
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