Genetius

AI-summarized plant biology research papers from bioRxiv

View Trends

Latest 24 Papers

The genetic architecture of leaf vein density traits and its importance for photosynthesis in maize

Authors: Coyac-Rodriguez, J. L., Perez-Limon, S., Hernandez-Jaimes, E., Hernandez-Coronado, M., Camo-Escobar, D., Alonso-Nieves, A. L., Ortega-Estrada, M. d. J., Gomez-Capetillo, N., Sawers, R. J., Ortiz-Ramirez, C. H.

Date: 2026-01-15 · Version: 1
DOI: 10.64898/2026.01.14.699362

Category: Plant Biology

Model Organism: Zea mays

AI Summary

Using diverse Mexican maize varieties and a MAGIC population, the study demonstrated that leaf vein density is both variable and plastic, correlating positively with photosynthetic rates for small intermediate veins and increasing under heat in drought-adapted lines. Twelve QTLs linked to vein patterning were identified, highlighting candidate genes for intermediate vein development and shedding light on the evolution of high-efficiency C4 leaf architecture.

leaf venation density C4 photosynthesis Zea mays QTL mapping MAGIC population

Southern South American Maize Landraces: A Source of Phenotypic Diversity

Authors: Dudzien, T. L., Freilij, D., Defacio, R. A., Fernandez, M., Paniego, N. B., Lia, V. V., Dominguez, P. G.

Date: 2026-01-03 · Version: 1
DOI: 10.64898/2026.01.02.697242

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study assessed 17 morphological, biochemical, and salt‑stress tolerance traits in 19 maize (Zea mays) landrace accessions from northern Argentina, revealing substantial variation both within and among accessions. Redundancy analysis linked phenotypic variation to the altitude of the collection sites, underscoring the potential of these landraces as sources of diverse biochemical and stress‑related traits for breeding.

Zea mays maize landraces phenotypic diversity biochemical traits salt stress tolerance

The influence of heavy metal stress on the evolutionary transition of teosinte to maize

Authors: Acosta Bayona, J. J., Vallebueno-Estrada, M., Vielle-Calzada, J.-P.

Date: 2025-12-22 · Version: 2
DOI: 10.1101/2025.03.17.643647

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study tests whether heavy‑metal stress contributed to maize domestication by exposing teosinte (Zea mays ssp. parviglumis) and the Palomero toluqueno landrace to sublethal copper and cadmium, then analysing genetic diversity, selection signatures, and transcriptomic responses of three chromosome‑5 heavy‑metal response genes (ZmHMA1, ZmHMA7, ZmSKUs5). Results reveal strong positive selection on these genes, heavy‑metal‑induced phenotypes resembling modern maize, and up‑regulation of Tb1, supporting a role for volcanic‑derived metal stress in early maize evolution.

heavy metal stress maize domestication Zea mays positive selection Tb1

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

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

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

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

Partial retention of ancient function increases genetic pleiotropy in grass evolution

Authors: de Neve, A. E., Kelly, O. A., Kelly, T., Leiboff, S., Bartlett, M. E.

Date: 2025-08-23 · Version: 1
DOI: 10.1101/2025.08.22.670905

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study investigates how the pleiotropic maize genes GRASSY TILLERS1 (GT1) and RAMOSA3 (RA3) are differentially regulated to suppress axillary meristems and floral organs, using a newly developed high-throughput quantitative phenotyping method for grass flowers. Distinct environmental mechanisms were found to control each suppression process, and upstream regulatory pathways of GT1 and RA3 have diverged, illustrating how ancient developmental genes can be redeployed to increase genetic pleiotropy during evolution.

genetic pleiotropy axillary meristem suppression floral organ suppression high-throughput quantitative phenotyping Zea mays

Non-catalytic and catalytic TREHALOSE-6-PHOSPHATE SYNTHASES interact with RAMOSA3 to control maize development.

Authors: Tran, T., Claeys, H., Abraham Juarez, M. J., Vi, L. S., Xu, X., Michalski, K., Chou, T. H., Iohannes, S. D., Boumpas, P., Williams, Z., Sheppard, S., Griffiths, C., Paul, M., Furukawa, H., Jackson, D.

Date: 2025-08-12 · Version: 1
DOI: 10.1101/2025.08.09.669499

Category: Plant Biology

Model Organism: Zea mays

AI Summary

The study reveals that the maize catalytic trehalose-6-phosphate phosphatase RA3 interacts with the non‑catalytic TPS ZmTPS1, and together with the catalytic TPS ZmTPS14 they form a protein complex that enhances enzymatic activity. Genetic analyses show that mutations in ZmTPS1 and its paralog ZmTPS12 exacerbate ra3 branching phenotypes, while loss of the catalytic TPSs ZmTPS11 and ZmTPS14 causes embryonic lethality, indicating essential and regulatory roles for both catalytic and non‑catalytic TPS/TPP proteins in plant development.

Trehalose-6-phosphate non‑catalytic TPS Zea mays protein complex developmental regulation

ZmCRY1s interact with GL2 in a blue light dependent manner to regulate epidermal wax composition in Zea mays

Authors: Zhao, Z., Feng, F., Liu, Y., Liu, Y., Wang, F., Ni, Y., Liang, H., Hu, W., Wang, S., Hao, Y., Li, X., Li, J., Wang, J., Zhang, P., Liu, H.

Date: 2025-08-06 · Version: 1
DOI: 10.1101/2025.08.06.668858

Category: Plant Biology

Model Organism: Zea mays

AI Summary

Using CRISPR‑Cas9‑generated Zmcry mutants, the study shows that maize cryptochromes redundantly mediate blue‑light signaling, suppress mesocotyl elongation, and enhance UV‑B stress tolerance by upregulating genes for phenylpropanoid, flavonoid, and fatty‑acid pathways. Blue light also promotes epidermal wax accumulation, and ZmCRY1 directly interacts with GLOSSY2 in a light‑dependent manner to drive C32 aldehyde synthesis, linking cryptochrome activity to wax biosynthesis and UV‑B resistance.

cryptochrome Zea mays blue light signaling UV-B tolerance epidermal wax biosynthesis
Page 1 of 3 Next