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MinD2调节古细菌中的细胞形状和运动性。

MinD2 modulates cell shape and motility in the archaeon .

作者信息

Patro Megha, Grünberger Felix, Sivabalasarma Shamphavi, Gfrerer Sabrina, Rodriguez-Franco Marta, Nußbaum Phillip, Grohmann Dina, Ithurbide Solenne, Albers Sonja-Verena

机构信息

Molecular Biology of Archaea, Institute of Biology, Faculty of Biology, University of Freiburg, Freiburg, Germany.

Spemann Graduate School of Biology and Medicine, University of Freiburg, Freiburg, Germany.

出版信息

Front Microbiol. 2024 Nov 12;15:1474570. doi: 10.3389/fmicb.2024.1474570. eCollection 2024.

Abstract

In bacteria and archaea, proteins of the ParA/MinD family of ATPases regulate the spatiotemporal organization of various cellular cargoes, including cell division proteins, motility structures, chemotaxis systems, and chromosomes. In bacteria, such as , MinD proteins are crucial for the correct placement of the Z-ring at mid-cell during cell division. However, previous studies have shown that none of the 4 MinD homologs present in the archaeon have a role in cell division, suggesting that these proteins regulate different cellular processes in haloarchaea. Here, we show that while deletion of MinD2 in () does not affect cell growth or division, it impacts cell shape and motility by mispositioning the chemotaxis arrays and archaellum motors. Finally, we explore the links between MinD2 and MinD4, which has been previously shown to modulate the localization of chemosensory arrays and archaella in , finding that the two MinD homologues have synergistic effects in regulating the positioning of the motility machinery. Collectively, our findings identify MinD2 as an important link between cell shape and motility in and further our understanding of the mechanisms by which multiple MinD proteins regulate cellular functions in haloarchaea.

摘要

在细菌和古菌中,ATP酶的ParA/MinD家族蛋白调节各种细胞货物的时空组织,包括细胞分裂蛋白、运动结构、趋化系统和染色体。在诸如大肠杆菌等细菌中,MinD蛋白对于细胞分裂期间Z环在细胞中部的正确定位至关重要。然而,先前的研究表明,古菌中存在的4种MinD同源物均在细胞分裂中不起作用,这表明这些蛋白在嗜盐古菌中调节不同的细胞过程。在这里,我们表明,虽然在嗜盐嗜碱杆菌(Natronobacterium gregoryi)中缺失MinD2不影响细胞生长或分裂,但它会通过错误定位趋化阵列和鞭毛马达而影响细胞形状和运动性。最后,我们探索了MinD2和MinD4之间的联系,先前已证明MinD4可调节嗜盐嗜碱杆菌中化学感应阵列和鞭毛的定位,发现这两种MinD同源物在调节运动机制的定位方面具有协同作用。总的来说,我们的研究结果确定MinD2是嗜盐嗜碱杆菌中细胞形状和运动性之间的重要联系,并进一步加深了我们对多种MinD蛋白调节嗜盐古菌细胞功能机制的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c889/11588486/970d9e45bdda/fmicb-15-1474570-g001.jpg

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