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Land plants grow throughout their life cycle via the continuous activity of stem cell reservoirs contained within their apical meristems. The shoot apical meristem (SAM) of Arabidopsis and other land plants responds to a variety of environmental cues, yet little is known about the response of meristems to seasonal changes in day length, or photoperiod. Here, the vegetative and reproductive growth of Arabidopsis wild-type and plants in different photoperiod conditions was analyzed. It was found that SAM size in wild-type Arabidopsis plants grown in long-day (LD) conditions gradually increased from embryonic to reproductive development. plants produced significantly more leaves as well as larger inflorescence meristems and more floral buds than wild-type plants in LD and short-day (SD) conditions, demonstrating that CLV3 signaling limits vegetative and inflorescence meristem activity in both photoperiods. The phenotypes were more severe in SDs, indicating a greater requirement for CLV3 restriction of SAM function when the days are short. In contrast, floral meristem size and carpel number were unchanged between LD and SD conditions, which shows that the photoperiod does not affect the regulation of floral meristem activity through the CLV3 pathway. This study reveals that CLV3 signaling specifically restricts vegetative and inflorescence meristem activity in both LD and SD photoperiods but plays a more prominent role during short days.
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http://dx.doi.org/10.3390/ijms25179357 | DOI Listing |
Physiol Plant
September 2025
CAS Key Laboratory of Tropical Plant Resources and Sustainable Use, Xishuangbanna Tropical Botanical Garden, Chinese Academy of Sciences, Menglun, China.
Balsa (Ochroma lagopus Swartz), the world's lightest wood and a crucial material in wind turbine blades, holds significant potential to contribute to carbon neutrality efforts when cultivated in tropical areas such as Xishuangbanna, China. However, balsa trees planted in Xishuangbanna exhibit early branching, resulting in reduced wood yield. Our study investigated the pivotal factors in regulating shoot apical dominance and branching by comparing an early-branching cultivar from Indonesia with a late-branching cultivar from Ecuador.
View Article and Find Full Text PDFPlant Sci
September 2025
Laboratorio de Genética Molecular, Epigenética, Desarrollo y Evolución de plantas, Instituto de Ecología, Universidad Nacional Autónoma de México, 3er Circuito Ext. Junto a J. Botánico, Ciudad Universitaria, UNAM, México D.F 04510, Mexico. Electronic address:
Epigenetic regulation by Polycomb Group (PcG) is essential for controlling gene repression. In plants, PcG is involved in all developmental processes, from embryogenesis to floral development, including root development. LIKE HETEROCHROMATIN PROTEIN 1 (LHP1) has been described as a PcG component, capable of recognizing the H3K27me3 mark, that together with CLF, a PcG histone methyltransferase, represses gene expression.
View Article and Find Full Text PDFFront Plant Sci
August 2025
College of Agriculture and Bioresources, University of Saskatchewan, Saskatoon, SK, Canada.
This article presents a novel perspective on plant embryogenesis, fundamentally differentiating it from the animal embryo model upon which plant models have long been based to discern the genetic and molecular mechanisms. We propose a plant embryonic body plan that aligns developmental and evolutionary insights across all five embryophyte groups (bryophytes, lycophytes, monilophytes, gymnosperms, and angiosperms). This conceptual model is grounded in a Reprogramming Potential (RP) involving an activation (RP1+) -suppression (RP1-) switch (RP1+/RP1-), which integrates embryonic development in a stepwise manner across diverse embryophytes.
View Article and Find Full Text PDFAdv Sci (Weinh)
September 2025
National Key Laboratory of Crop Genetic Improvement, Hubei Hongshan Laboratory, Huazhong Agricultural University, Wuhan, 430070, China.
Panicle architecture is largely determined by meristem activity. This previous study shows that DNA binding with one finger (Dof) transcription factor Short Panicle 3 (SP3) regulates panicle architecture. However, the molecular mechanisms of SP3 controlling panicle architecture remain largely unknown.
View Article and Find Full Text PDFJ Exp Bot
September 2025
Department of Biology, Kyungpook National University, Daegu 41566, Korea.
Above-ground lateral organs, such as leaves and flowers, should grow to an optimal size and develop particular structures, which are primarily laid out on the meristematic activities of their primordia. The GROWTH-REGULATING FACTOR‒GRF-INTERACTING FACTOR (GRF‒GIF) transcriptional complex and the AINTEGUMENTA (ANT) transcription factor play key roles in the establishment of the meristematic competence of lateral organ primordia with highly overlapping expression patterns, and thus functional relationships between them have long been speculated. In this study, we constructed the ant gif1 gif2 gif3 quadruple mutant, which produced much smaller and narrower leaves, sepals, and petals with far fewer cells compared with its parental lines.
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