Luan Sheng, Wang Chao
Department of Plant and Microbial Biology, University of California, Berkeley, California 94720, USA; email:
Annu Rev Cell Dev Biol. 2021 Oct 6;37:311-340. doi: 10.1146/annurev-cellbio-120219-035210. Epub 2021 Aug 10.
Calcium (Ca) is a unique mineral that serves as both a nutrient and a signal in all eukaryotes. To maintain Ca homeostasis for both nutrition and signaling purposes, the tool kit for Ca transport has expanded across kingdoms of eukaryotes to encode specific Ca signals referred to as Ca signatures. In parallel, a large array of Ca-binding proteins has evolved as specific sensors to decode Ca signatures. By comparing these coding and decoding mechanisms in fungi, animals, and plants, both unified and divergent themes have emerged, and the underlying complexity will challenge researchers for years to come. Considering the scale and breadth of the subject, instead of a literature survey, in this review we focus on a conceptual framework that aims to introduce readers to the principles and mechanisms of Ca signaling. We finish with several examples of Ca-signaling pathways, including polarized cell growth, immunity and symbiosis, and systemic signaling, to piece together specific coding and decoding mechanisms in plants versus animals.
钙(Ca)是一种独特的矿物质,在所有真核生物中既是一种营养物质,也是一种信号分子。为了维持营养和信号传导目的的钙稳态,真核生物各王国中钙运输的工具包不断扩展,以编码被称为钙信号特征的特定钙信号。与此同时,大量的钙结合蛋白已经进化为解码钙信号特征的特定传感器。通过比较真菌、动物和植物中的这些编码和解码机制,出现了统一和不同的主题,其潜在的复杂性将在未来几年挑战研究人员。考虑到该主题的规模和广度,在本综述中,我们不是进行文献调查,而是专注于一个概念框架,旨在向读者介绍钙信号传导的原理和机制。我们以几个钙信号通路的例子作为结尾,包括极化细胞生长、免疫和共生以及系统信号传导,以拼凑出植物与动物中特定的编码和解码机制。