Calcium Signaling Mechanisms Across Kingdoms.

IF 11.4 1区 生物学 Q1 CELL BIOLOGY Annual review of cell and developmental biology Pub Date : 2021-10-06 Epub Date: 2021-08-10 DOI:10.1146/annurev-cellbio-120219-035210
Sheng Luan, Chao Wang
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引用次数: 64

Abstract

Calcium (Ca2+) is a unique mineral that serves as both a nutrient and a signal in all eukaryotes. To maintain Ca2+ homeostasis for both nutrition and signaling purposes, the tool kit for Ca2+ transport has expanded across kingdoms of eukaryotes to encode specific Ca2+ signals referred to as Ca2+ signatures. In parallel, a large array of Ca2+-binding proteins has evolved as specific sensors to decode Ca2+ 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 Ca2+ signaling. We finish with several examples of Ca2+-signaling pathways, including polarized cell growth, immunity and symbiosis, and systemic signaling, to piece together specific coding and decoding mechanisms in plants versus animals.

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跨王国的钙信号机制。
钙(Ca2+)是一种独特的矿物质,在所有真核生物中都是营养物质和信号。为了维持营养和信号目的的Ca2+稳态,Ca2+运输的工具包已经扩展到真核生物的王国,以编码特定的Ca2+信号,称为Ca2+信号。与此同时,大量的Ca2+结合蛋白已经进化成解码Ca2+信号的特定传感器。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,潜在的复杂性将在未来几年挑战研究人员。考虑到主题的规模和广度,而不是文献调查,在这篇综述中,我们专注于一个概念框架,旨在向读者介绍Ca2+信号的原理和机制。我们以Ca2+信号通路的几个例子结束,包括极化细胞生长,免疫和共生,以及系统信号,拼凑出植物与动物的特定编码和解码机制。
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来源期刊
CiteScore
19.50
自引率
0.00%
发文量
21
期刊介绍: The Annual Review of Cell and Developmental Biology, established in 1985, comprehensively addresses major advancements in cell and developmental biology. Encompassing the structure, function, and organization of cells, as well as the development and evolution of cells in relation to both single and multicellular organisms, the journal explores models and tools of molecular biology. As of the current volume, the journal has transitioned from gated to open access through Annual Reviews' Subscribe to Open program, making all articles published under a CC BY license.
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