Pacheco Javier Martínez, Gabarain Victoria Berdion, Lopez Leonel E, Lehuedé Tomás Urzúa, Ocaranza Darío, Estevez José M
Fundación Instituto Leloir and IIBBA-CONICET. Av. Patricias Argentinas 435, Buenos Aires C1405BWE, Argentina; ANID - Millennium Science Initiative Program - Millennium Nucleus for the DeveIopment of Super Adaptable Plants (MN-SAP), Santiago 8370146, Chile.
ANID - Millennium Science Initiative Program - Millennium Nucleus for the DeveIopment of Super Adaptable Plants (MN-SAP), Santiago 8370146, Chile; ANID - Millennium Science Initiative Program - Millennium Institute for Integrative Biology (iBio), Santiago 8331150, Chile; Centro de Biotecnología Vegetal (CBV), Facultad de Ciencias de la Vida, Universidad Andres Bello, Santiago 8370146, Chile.
Curr Opin Plant Biol. 2023 Oct;75:102386. doi: 10.1016/j.pbi.2023.102386. Epub 2023 Jun 21.
Plants exposed to freezing and above-freezing low temperatures must employ a variety of strategies to minimize fitness loss. There is a considerable knowledge gap regarding how mild low temperatures (around 10 °C) affect plant growth and developmental processes, even though the majority of the molecular mechanisms that plants use to adapt to extremely low temperatures are well understood. Root hairs (RH) have become a useful model system for studying how plants regulate their growth in response to both cell-intrinsic cues and environmental inputs. Here, we'll focus on recent advances in the molecular mechanisms underpinning Arabidopsis thaliana RH growth at mild low temperatures and how these discoveries may influence our understanding of nutrient sensing mechanisms by the roots. This highlights how intricately linked mechanisms are necessary for plant development to take place under specific circumstances and to produce a coherent response, even at the level of a single RH cell.
暴露于冰点及高于冰点低温环境下的植物必须采用多种策略,以尽量减少适合度损失。尽管植物用于适应极低温度的大多数分子机制已为人熟知,但对于温和低温(约10°C)如何影响植物生长和发育过程,仍存在相当大的知识空白。根毛已成为一个有用的模型系统,用于研究植物如何根据细胞内在信号和环境输入来调节其生长。在这里,我们将关注拟南芥根毛在温和低温下生长的分子机制的最新进展,以及这些发现如何可能影响我们对根系养分感知机制的理解。这凸显了在特定环境下植物发育以及产生连贯反应(即使在单个根毛细胞水平)所需机制之间的复杂联系。