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天然状态下钙化和非钙化微藻的成像显示,它们的钙储存细胞器具有相似性。

Native-state imaging of calcifying and noncalcifying microalgae reveals similarities in their calcium storage organelles.

机构信息

Max-Planck Institute of Molecular Plant Physiology, 14476 Potsdam-Golm, Germany.

Department of Biomaterials, Max-Planck Institute of Colloids and Interfaces, 14476 Potsdam-Golm, Germany.

出版信息

Proc Natl Acad Sci U S A. 2018 Oct 23;115(43):11000-11005. doi: 10.1073/pnas.1804139115. Epub 2018 Oct 4.

Abstract

Calcium storage organelles are common to all eukaryotic organisms and play a pivotal role in calcium signaling and cellular calcium homeostasis. In most organelles, the intraorganellar calcium concentrations rarely exceed micromolar levels. Acidic organelles called acidocalcisomes, which concentrate calcium into dense phases together with polyphosphates, are an exception. These organelles have been identified in diverse organisms, but, to date, only in cells that do not form calcium biominerals. Recently, a compartment storing molar levels of calcium together with phosphorous was discovered in an intracellularly calcifying alga, the coccolithophore , raising a possible connection between calcium storage organelles and calcite biomineralization. Here we used cryoimaging and cryospectroscopy techniques to investigate the anatomy and chemical composition of calcium storage organelles in their native state and at nanometer-scale resolution. We show that the dense calcium phase inside the calcium storage compartment of the calcifying coccolithophore and the calcium phase stored in acidocalcisomes of the noncalcifying alga have common features. Our observations suggest that this strategy for concentrating calcium is a widespread trait and has been adapted for coccolith formation. The link we describe between acidocalcisomal calcium storage and calcium storage in coccolithophores implies that our physiological and molecular genetic understanding of acidocalcisomes could have relevance to the calcium pathway underlying coccolithophore calcification, offering a fresh entry point for mechanistic investigations on the adaptability of this process to changing oceanic conditions.

摘要

钙储存细胞器存在于所有真核生物中,在钙信号和细胞内钙稳态中发挥着关键作用。在大多数细胞器中,细胞器内的钙离子浓度很少超过微摩尔水平。酸性细胞器称为钙粒小体,它们将钙与多磷酸盐一起浓缩到致密相中,是一个例外。这些细胞器已在多种生物中被识别,但迄今为止,只在不形成钙生物矿化的细胞中发现。最近,在一种细胞内钙化的藻类——颗石藻中,发现了一个储存摩尔水平钙和磷的隔室,这可能将钙储存细胞器与方解石生物矿化联系起来。在这里,我们使用冷冻成像和冷冻光谱技术,以纳米级分辨率原位研究钙储存细胞器的解剖结构和化学成分。我们表明,钙化颗石藻中钙储存隔室内致密钙相和非钙化藻类中钙粒小体储存的钙相具有共同特征。我们的观察结果表明,这种浓缩钙的策略是一种广泛存在的特征,并已适应于颗石藻的形成。我们描述的钙粒小体钙储存与颗石藻钙储存之间的联系表明,我们对钙粒小体的生理和分子遗传学理解可能与颗石藻钙化的钙途径有关,为研究该过程对海洋变化条件的适应性提供了一个新的切入点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df80/6205483/e783a9c31c91/pnas.1804139115fig01.jpg

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