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利用活细胞成像技术探索颗石藻细胞内的离子池。

Exploring Intracellular Ion Pools in Coccolithophores Using Live-Cell Imaging.

机构信息

Department of Plant and Environmental Sciences, Weizmann Institute of Science, Rehovot, 76100, Israel.

出版信息

Adv Biol (Weinh). 2021 Jun;5(6):e2000296. doi: 10.1002/adbi.202000296. Epub 2021 Apr 14.

DOI:10.1002/adbi.202000296
PMID:33852773
Abstract

Some microorganisms, such as coccolithophores, produce an intricate exoskeleton made of inorganic solids. Coccoliths, the calcium carbonate scales of coccolithophores, are examples of the precise bioproduction of such complex 3D structures. However, the understanding of the cellular mechanisms that control mineral formation inside the cell, specifically the ability of these microalgae to transport high fluxes of inorganic building blocks, is still limited. Recently, using cryo-electron and X-ray microscopy, several intracellular compartments are shown to store high concentrations of calcium and phosphorous and are suggested to have a dominant role in the intracellular mineralization pathway. Here, live-cell confocal microscopy and fluorescent markers are used to examine the dynamics of ion stores in coccolithophores. Using calcein and 4',6-diamidino-2-phenylindole (DAPI) as fluorescent proxies for calcium and polyphosphates, the experiments reveal an unexpected plethora of organelles with distinct fluorescent signatures over a wide range of strains and conditions. Surprisingly, the fluorescent labeling does not show changes along the calcification process and is similar between calcifying and noncalcifying cells, suggesting that these ion pools may not be a dynamic avenue for calcium transport. In such a case, the enigma behind the ability of coccolithophores to sustain intracellular calcification still awaits comprehensive elucidation.

摘要

一些微生物,如颗石藻,会产生一种由无机固体组成的复杂外壳。颗石,即颗石藻的碳酸钙鳞片,是精确生物合成这种复杂 3D 结构的例子。然而,对于控制细胞内矿物质形成的细胞机制的理解,特别是这些微藻运输无机建筑块的高通量的能力,仍然有限。最近,使用冷冻电子显微镜和 X 射线显微镜,发现了几个细胞内隔室能够储存高浓度的钙和磷,并被认为在细胞内矿化途径中起主要作用。在这里,使用活细胞共聚焦显微镜和荧光标记来研究颗石藻中离子库的动态。使用 calcein 和 4',6-二脒基-2-苯基吲哚(DAPI)作为钙和多磷酸盐的荧光探针,实验揭示了在广泛的菌株和条件下,具有不同荧光特征的细胞器数量之多令人惊讶。令人惊讶的是,荧光标记并没有沿着钙化过程发生变化,并且在钙化和非钙化细胞之间是相似的,这表明这些离子库可能不是钙运输的动态途径。在这种情况下,颗石藻能够维持细胞内钙化的能力背后的谜团仍有待全面阐明。

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Adv Biol (Weinh). 2021 Jun;5(6):e2000296. doi: 10.1002/adbi.202000296. Epub 2021 Apr 14.
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