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Plants possess regulatory mechanisms that allow them to flower under conditions that maximize reproductive success. Selection of natural variants affecting those mechanisms has been critical in agriculture to modulate the flowering response of crops to specific environments and to increase yield. In the temperate cereals, wheat and barley, the photoperiod and vernalization pathways explain most of the natural variation in flowering time. However, other pathways also participate in fine-tuning the flowering response. In this work, we integrate the conserved microRNA miR172 and its targets APETALA2-like (AP2L) genes into the temperate grass flowering network involving VERNALIZATION 1 (VRN1), VRN2 and FLOWERING LOCUS T 1 (FT1 = VRN3) genes. Using mutants, transgenics and different growing conditions, we show that miR172 promotes flowering in wheat, while its target genes AP2L1 (TaTOE1) and AP2L5 (Q) act as flowering repressors. Moreover, we reveal that the miR172-AP2L pathway regulates FT1 expression in the leaves, and that this regulation is independent of VRN2 and VRN1. In addition, we show that the miR172-AP2L module and flowering are both controlled by plant age through miR156 in spring cultivars. However, in winter cultivars, flowering and the regulation of AP2L1 expression are decoupled from miR156 downregulation with age, and induction of VRN1 by vernalization is required to repress AP2L1 in the leaves and promote flowering. Interestingly, the levels of miR172 and both AP2L genes modulate the flowering response to different vernalization treatments in winter cultivars. In summary, our results show that conserved and grass specific gene networks interact to modulate the flowering response, and that natural or induced mutations in AP2L genes are useful tools for fine-tuning wheat flowering time in a changing environment.
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http://dx.doi.org/10.1371/journal.pgen.1010157 | DOI Listing |
Theor Appl Genet
September 2025
Leibniz Institute of Plant Genetics and Crop Research (IPK), 06466, Gatersleben, Germany.
To breed for climate resilient crops, an understanding of the genetic and environmental factors influencing adaptation is critical. Barley provides a model species to study adaptation to climate change. Here we present a detailed analysis of genetic variation at a major photoperiod response locus and relate this to the domestication history and dispersal of barley.
View Article and Find Full Text PDFCurr Biol
September 2025
Instituto de Biología Molecular y Celular de Plantas, CSIC-UPV, 46022 Valencia, Spain. Electronic address:
The end of flowering is determined by the proliferative arrest process (PA), which takes place after the production of a certain number of flowers and fruits and entails the cessation of all reproductive meristem activity. In this manner, PA guarantees the proper size and viability of offspring before plant death. PA regulation involves a complex interplay of genetic, hormonal, and environmental factors.
View Article and Find Full Text PDFAnn Bot
September 2025
Department of Botany, Faculty of Science, Charles University, Prague, Czech Republic.
Background And Aims: Since the Industrial Revolution, rising atmospheric CO₂, warming, and more frequent droughts have significantly impacted ecosystems. While the response of leaf functional traits to these climate change factors have been widely studied, reproductive traits remain relatively understudied, despite their key role in the diversification and distribution of flowering plants. Here, we investigated how elevated CO₂, warming, drought, and their interactions affect floral, leaf and seed traits in two model grassland species.
View Article and Find Full Text PDFPlant Sci
September 2025
Fermentation and Phytofarming Technology Division, CSIR-Institute of Himalayan Bioresource Technology, Palampur-176061, Himachal Pradesh, India; Academy of Scientific and Innovative Research (AcSIR), Ghaziabad-201002, India. Electronic address:
Auxin, one of the earliest recognized and extensively investigated phytohormones, is crucial in plant growth and survival in adverse environmental conditions. Two gene families primarily regulate auxin signaling: auxin response factors (ARFs) and auxin/indole-3-acetic acid (Aux/IAA). Aux/IAA family proteins are recognized as essential elements of the nuclear auxin signaling system, inhibiting gene transcription in their presence and facilitating gene activation upon their degradation.
View Article and Find Full Text PDFJ Exp Biol
September 2025
Department of Biology, University of Washington, Seattle, Washington, USA.
Feeding on the nutrients from fruits and flowers is vital for mosquitoes and increases their lifespan, reproduction, and flight activity. Olfaction is a key sensory modality in mediating mosquito responses to nutrient sources. Previous studies have demonstrated that fruits and flowers can vary in attractiveness to mosquitoes, with some sources preferred over others.
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