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AI-summarized plant biology research papers from bioRxiv

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Latest 11 Papers

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

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

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

MBD8 is required for LDL2-mediated transcriptional repression downstream of H3K9me2 in Arabidopsis

Authors: Mori, S., Osakabe, A., Juliarni,, Tanaka, Y., Hirayama, M., Inagaki, S., Kakutani, T.

Date: 2025-08-25 · Version: 1
DOI: 10.1101/2025.08.21.671526

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study reveals that the methyl‑CpG‑binding domain protein MBD8 interacts with the histone demethylase LDL2 to facilitate removal of H3K4me1 and transcriptional repression downstream of H3K9me2 in Arabidopsis. MBD8 binds GC‑poor DNA independently of cytosine methylation and stabilizes LDL2 protein levels, indicating a broader role for MBD proteins beyond methyl‑DNA recognition.

H3K9me2 LDL2 MBD8 histone demethylation Arabidopsis

Cell-type-specific execution of effector-triggered immunity

Authors: Chhillar, H., Jo, L., Redkar, A., Kajala, K., Jones, J. D., Ding, P.

Date: 2025-07-01 · Version: 1
DOI: 10.1101/2025.06.28.662111

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study used chemically induced effector-triggered immunity combined with single-cell transcriptomics to map immune responses across all leaf cell types in Arabidopsis, revealing that while a core defense program is universally activated, individual cell types deploy distinct transcriptional modules. Functional assays showed that epidermis‑specific transcriptional regulators are essential for preventing pathogen penetration, indicating a spatial division of immune functions within the leaf.

effector-triggered immunity single-cell transcriptomics cell-type-specific immune response transcriptional regulators Arabidopsis

Ethylene Receptor Gain- and Loss-of-function Mutants Reveal an ETR1-dependent Transcriptional Network in Roots

Authors: White, M. G., Harkey, A., Muhlemann, J. K., Olex, A. L., Pfeffer, N. J., Houben, M., Binder, B., Muday, G. K.

Date: 2025-06-22 · Version: 3
DOI: 10.1101/2024.06.26.600793

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study profiled root transcriptomes of Arabidopsis wild type and etr1 gain-of-function (etr1-3) and loss-of-function (etr1-7) mutants under ethylene or ACC treatment, identifying 4,522 ethylene‑responsive transcripts, including 553 that depend on ETR1 activity. ETR1‑dependent genes encompassed ethylene biosynthesis enzymes (ACO2, ACO3) and transcription factors, whose expression was further examined in an ein3eil1 background, revealing that both ETR1 and EIN3/EIL1 pathways regulate parts of the network controlling root hair proliferation and lateral root formation.

ethylene signaling ETR1 root development gene regulatory network Arabidopsis

Advanced illumination-imaging reveals photosynthesis-triggered pH, ATP and NAD redox signatures across plant cell compartments

Authors: Zheng, K., Elsässer, M., Niemeier, J.-O., Barreto, P., Cislaghi, A. P., Hoang, M., Feitosa-Araujo, E., Wagner, S., Giese, J., Kotnik, F., Martinez, M. d. P., Buchert, F. E., Ugalde, J. M., Armbruster, U., Hippler, M., Meyer, A. J., Kunz, H.-H., Maurino, V. G., Finkemeier, I., Schallenberg-Rüdinger, M., Schwarzländer, M.

Date: 2025-06-21 · Version: 1
DOI: 10.1101/2025.06.16.659786

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The authors established a live‑cell imaging platform that combines confocal microscopy of genetically encoded fluorescent protein biosensors with on‑stage illumination to monitor pH, MgATP²⁻, and NADH/NAD⁺ dynamics during dark‑light transitions in Arabidopsis mesophyll cells. They discovered that photosynthetic proton pumping triggers a stromal alkalinization wave extending to the cytosol and mitochondria, elevates MgATP²⁻ levels, and drives reduction of the NAD pool, with malate dehydrogenase mutants showing altered cytosolic redox even in darkness. This methodological advance enables high‑resolution mapping of photosynthesis‑linked energy physiology across cellular compartments.

photosynthesis fluorescent protein biosensors subcellular pH dynamics MgATP2- signaling NAD redox metabolism

Acclimation of carbon metabolism to a changing environment across a leaf rosette of Arabidopsis thaliana

Authors: Brodsky, V., Kerscher, A., Urban, M., Naegele, T.

Date: 2025-05-03 · Version: 1
DOI: 10.1101/2025.04.29.651223

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study compared photosynthetic performance and carbon metabolism in mature versus immature leaves of Arabidopsis thaliana accessions from different latitudes under standard and low‑temperature/high‑light conditions. Leaf‑specific measurements of Fv/Fm and CO2 assimilation revealed distinct acclimation capacities, and integration of carbohydrate and carboxylic‑acid profiles into a carbon balance model indicated that mature leaves help stabilize metabolism in younger tissue. The authors emphasize the importance of accounting for intra‑rosette heterogeneity to avoid misleading metabolic interpretations.

Arabidopsis thaliana leaf-specific acclimation photosynthesis carbon metabolism carbon balance modeling

An unrecognized and crucial role of chloroplast division in leaf variegation in Arabidopsis thaliana

Authors: Wu, W., Guo, W., Zhu, H., Li, D., Zhang, Z., Lin, D., Qu, M., Yu, Z., Huang, J.

Date: 2025-04-06 · Version: 1
DOI: 10.1101/2025.04.06.647415

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study uses time-course microscopy to show that VAR2 mutants have delayed and heterogeneous chloroplast biogenesis, with many cells lacking chloroplasts, especially in white leaf sectors. Genetic interactions reveal that loss of plastid division genes worsens the phenotype, while overexpressing PDV1/PDV2 or knocking out COP1 rescues it, indicating VAR2’s novel role in plastid division and chloroplast development. These findings clarify mechanisms behind leaf variegation.

VAR2 chloroplast division leaf variegation Arabidopsis genetic rescue

Protein and genetic interactions between RACK1A and FSD1 modulate plant development and stress granule-dependent response to salt in Arabidopsis.

Authors: Melicher, P., Dvorak, P., Tsinyk, M., Rehak, J., Samajova, O., Hlavackova, K., Ovecka, M., Samaj, J., Takac, T.

Date: 2025-02-25 · Version: 1
DOI: 10.1101/2025.02.25.640159

Category: Plant Biology

Model Organism: Arabidopsis thaliana

AI Summary

The study identifies the scaffolding protein RACK1A as a cytoplasmic interaction partner of the antioxidant enzyme FSD1, revealing that RACK1A recruits FSD1 to cycloheximide-sensitive condensates that colocalize with stress granules during salt stress. Functional analyses show that this RACK1A‑FSD1 module modulates ROS levels, influences root hair tip growth, and determines salt‑stress resilience in Arabidopsis.

reactive oxygen species salt stress RACK1A-FSD1 interaction stress granules Arabidopsis
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