Sep 2026· New Phytologist· Vol 252· 0 citations· 151 references
Medicine
TL;DR
This Tansley review synthesizes advances in how the SAM perceives and integrates key environmental signals including light, temperature, oxygen, and humidity to direct adaptive growth to highlight conserved sensing and signalling modules within meristematic tissues that influence plant growth plasticity.
Abstract
Plants exhibit striking developmental plasticity, driven by stem cell populations within meristematic tissues such as the shoot apical meristem (SAM). While the genetic networks governing stem cell homeostasis are well‐characterized, recent studies reveal that the SAM also functions as an active environmental sensor to modulate growth plasticity. This Tansley review synthesizes advances in how the SAM perceives and integrates key environmental signals – including light, temperature, oxygen, and humidity – to direct adaptive growth. We detail the molecular mechanisms, such as photoreceptor‐mediated activation, thermal resilience pathways, hypoxia sensing, hydraulic dynamics, and mechanical signalling, that regulate stem cell activity. Furthermore, we explore how these environmental cues couple with developmental programs to fine‐tune meristem function and organogenesis. By drawing parallels to the environmental regulation of root meristem development, we highlight conserved sensing and signalling modules within meristematic tissues that influence plant growth plasticity. Examining this interplay both in shoot and in root meristems, from evolutionary and applied perspectives, underscores how environmental responsiveness of stem cell niches regulates plant adaptation, informing strategies for engineering climate‐resilient crops.
In plants, the shoot and root apical meristems drive post-embryonic development by tightly coordinating stem cell maintenance, cell proliferation, and differentiation. Among the hormonal regulators governing these processes, brassinosteroids (BRs) have emerged as important modulators of meristem function. Although BRs...
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Throughout their life cycle, plants are capable of forming organs by differentiating from special tissues called meristems. The shoot apical meristem (SAM) produces all above ground organs, such as leaves, axillary shoots, and flowers, through the continuous regeneration of stem cells. A delicate balance exists between...
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High salinity severely restricts root growth in most plants, yet the extremophyte model Schrenkiella parvula maintains growth under otherwise inhibitory conditions through a previously unrecognized developmental reorganization of the primary root. Under high salinity, the elongation zone rapidly reorganizes into two di...
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This review synthesizes recent progress across diverse plant species and tissues, showing that gene expression is not only cell-type specific but also tightly organized by position within organs and developmental niches, establishing spatial gene expression as a fundamental organizing principle of plant development and...
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