Tamby Anandi, Sinninghe Damsté Jaap S, Villanueva Laura
Department of Marine Microbiology and Biogeochemistry (MMB), NIOZ Royal Netherlands Institute for Sea Research, Den Burg, Netherlands.
Department of Earth Sciences, Faculty of Geosciences, Utrecht University, Utrecht, Netherlands.
Front Mol Biosci. 2023 Jan 6;9:1058381. doi: 10.3389/fmolb.2022.1058381. eCollection 2022.
The deep-sea is characterized by extreme conditions, such as high hydrostatic pressure (HHP) and near-freezing temperature. Piezophiles, microorganisms adapted to high pressure, have developed key strategies to maintain the integrity of their lipid membrane at these conditions. The abundance of specific membrane lipids, such as those containing unsaturated and branched-chain fatty acids, rises with increasing HHP. Nevertheless, this strategy is not universal among piezophiles, highlighting the need to further understand the effects of HHP on microbial lipid membranes. Challenges in the study of lipid membrane adaptations by piezophiles also involve methodological developments, cross-adaptation studies, and insight into slow-growing piezophiles. Moreover, the effects of HHP on piezophiles are often difficult to disentangle from effects caused by low temperature that are often characteristic of the deep sea. Here, we review the knowledge of membrane lipid adaptation strategies of piezophiles, and put it into the perspective of marine systems, highlighting the future challenges of research studying the effects of HHP on the microbial lipid composition.
深海的特点是极端条件,如高静水压力(HHP)和接近冰点的温度。嗜压菌,即适应高压的微生物,已经开发出关键策略来在这些条件下维持其脂质膜的完整性。特定膜脂的丰度,如那些含有不饱和脂肪酸和支链脂肪酸的膜脂,会随着HHP的增加而上升。然而,这种策略在嗜压菌中并不普遍,这凸显了进一步了解HHP对微生物脂质膜影响的必要性。嗜压菌脂质膜适应性研究中的挑战还涉及方法学的发展、交叉适应性研究以及对生长缓慢的嗜压菌的深入了解。此外,HHP对嗜压菌的影响往往很难与深海通常具有的低温所造成的影响区分开来。在这里,我们回顾了嗜压菌膜脂适应策略的相关知识,并将其置于海洋系统的背景下,突出了研究HHP对微生物脂质组成影响的未来研究挑战。