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AI-summarized plant biology research papers from bioRxiv

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Latest 57 Papers

Ethylene signal-driven plant-multitrophic synergy boosts crop performance

Authors: Baer, M., Zhong, Y., Yu, B., Tian, T., He, X., Gu, L., Huang, X., Gallina, E., Metzen, I. E., Bucher, M., Song, R., Gutjahr, C., SU, Z., Moya, Y., von Wiren, N., Zhang, L., Yuan, L., Shi, Y., Wang, S., Qi, W., Baer, M., Zhao, Z., Li, C., Li, X., Hochholdinger, F., Yu, P.

Date: 2025-11-29 · Version: 1
DOI: 10.1101/2025.11.28.690471

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study uncovers how arbuscular mycorrhizal (AM) fungi induce lateral root formation in maize by activating ethylene‑responsive transcription factors (ERFs) that regulate pericycle cell division and reshape flavonoid metabolism, lowering inhibitory flavonols. It also shows that the rhizobacterium Massilia collaborates with AM fungi, degrading flavonoids and supplying auxin, thereby creating an integrated ethylene‑flavonoid‑microbe signaling network that can be harnessed to improve nutrient uptake and crop sustainability.

arbuscular mycorrhizal fungi lateral root development ethylene‑responsive transcription factors flavonoid metabolism Zea mays

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

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

KATANIN promotes cell elongation and division to generate proper cell numbers in maize organs

Authors: Martinez, S. E., Lau, K. H., Allsman, L. A., Irahola, C., Habib, C., Diaz, I. Y., Ceballos, I., Panteris, E., Bommert, P., Wright, A. J., Weil, C., Rasmussen, C.

Date: 2025-10-06 · Version: 1
DOI: 10.1101/2025.10.05.680529

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study identifies two maize genes, Discordia3a and Discordia3b, that encode the microtubule‑severing protein KATANIN. Loss‑of‑function allele combinations reduce microtubule severing, impair cell elongation, delay mitotic entry, and disrupt preprophase band and nuclear positioning, leading to dwarfed, misshapen plants.

KATANIN microtubule severing Zea mays preprophase band cell elongation

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

Aphid-derived cross-kingdom RNA dynamics underpin maize resistance

Authors: Jiang, S., Zhang, Z., Liu, C., Zhu, Y., Kou, Y., Yang, P., Hu, Z., Wu, J., Wang, Y., Wan, F., Wu, G., Chen, Y.

Date: 2025-09-28 · Version: 1
DOI: 10.1101/2025.09.25.678037

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study identified lineage-specific long non‑coding RNAs (lncRNAs) from the aphid‑specific Ya gene family in Rhopalosiphum maidis and R. padi, demonstrating that these Ya lncRNAs are secreted into maize, remain stable, and move systemically. RNA interference of Ya genes reduced aphid fecundity, while ectopic expression of Ya lncRNAs in maize enhanced aphid colonization, indicating that Ya lncRNAs act as cross‑kingdom effectors that influence aphid virulence.

aphid long non‑coding RNA cross‑kingdom effectors Zea mays RNA interference

SlATG8f enhances tomato thermotolerance and fruit quality via autophagy and HS pathways

Authors: Cheng, q., Xu, w., wen, c., He, Z., Song, L.

Date: 2025-09-25 · Version: 1
DOI: 10.1101/2025.09.23.678159

Category: Plant Biology

Model Organism: Solanum lycopersicum

AI Summary

The researchers created tomato lines overexpressing the autophagy gene SlATG8f and evaluated their performance under high-temperature stress. qRT‑PCR and physiological measurements revealed that SlATG8f overexpression enhances expression of autophagy‑related and heat‑shock protein genes, accelerates fruit ripening, and improves fruit quality under heat stress.

SlATG8f autophagy high-temperature stress tomato fruit quality

Spatial inheritance patterns across maize ears are associated with alleles that reduce pollen fitness

Authors: Ruggiero, D., Bang, M., Leary, M., Flieg, H., Garcia-Lamas, L., Vejlupkova, Z., Megraw, M., Jiang, D., Leiboff, S., Fowler, J. E.

Date: 2025-09-20 · Version: 1
DOI: 10.1101/2025.09.17.676879

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study used a computer‑vision phenotyping pipeline (EarVision.v2) based on Faster R-CNN to map Ds‑GFP mutant kernels on maize ears and a statistical framework (EarScape) to assess spatial patterns of allele transmission from the apex to the base. They found that alleles causing pollen‑specific transmission defects often show significant spatial biases, whereas Mendelian alleles do not, indicating that reduced pollen fitness can shape the spatial distribution of progeny genotypes in Zea mays.

pollen fitness spatial inheritance Ds‑GFP mutants computer vision phenotyping Zea mays

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
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