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嗜热嗜酸菌的碳和能量代谢模式改变了其脂质组成。

Mode of carbon and energy metabolism shifts lipid composition in the thermoacidophile .

机构信息

Department of Earth Sciences, Dartmouth College, Hanover, New Hampshire, USA.

Department of Ecology, Evolution, and Marine Biology, University of California Santa Barbara, Santa Barbara, California, USA.

出版信息

Appl Environ Microbiol. 2024 Feb 21;90(2):e0136923. doi: 10.1128/aem.01369-23. Epub 2024 Jan 18.

Abstract

The degree of cyclization, or ring index (RI), in archaeal glycerol dibiphytanyl glycerol tetraether (GDGT) lipids was long thought to reflect homeoviscous adaptation to temperature. However, more recent experiments show that other factors (e.g., pH, growth phase, and energy flux) can also affect membrane composition. The main objective of this study was to investigate the effect of carbon and energy metabolism on membrane cyclization. To do so, we cultivated sp. DS80, a metabolically flexible and thermoacidophilic archaeon, on different electron donor, acceptor, and carbon source combinations (S/Fe/CO, H/Fe/CO, H/S/CO, or H/S/glucose). We show that differences in energy and carbon metabolism can result in over a full unit of change in RI in the thermoacidophile sp. DS80. The patterns in RI correlated with the normalized electron transfer rate between the electron donor and acceptor and did not always align with thermodynamic predictions of energy yield. In light of this, we discuss other factors that may affect the kinetics of cellular energy metabolism: electron transfer chain (ETC) efficiency, location of ETC reaction components (cytoplasmic extracellular), and the physical state of electron donors and acceptors (gas solid). Furthermore, the assimilation of a more reduced form of carbon during heterotrophy appears to decrease the demand for reducing equivalents during lipid biosynthesis, resulting in lower RI. Together, these results point to the fundamental role of the cellular energy state in dictating GDGT cyclization, with those cells experiencing greater energy limitation synthesizing more cyclized GDGTs.IMPORTANCESome archaea make unique membrane-spanning lipids with different numbers of five- or six-membered rings in the core structure, which modulate membrane fluidity and permeability. Changes in membrane core lipid composition reflect the fundamental adaptation strategies of archaea in response to stress, but multiple environmental and physiological factors may affect the needs for membrane fluidity and permeability. In this study, we tested how sp. DS80 changed its core lipid composition when grown with different electron donor/acceptor pairs. We show that changes in energy and carbon metabolisms significantly affected the relative abundance of rings in the core lipids of DS80. These observations highlight the need to better constrain metabolic parameters, in addition to environmental factors, which may influence changes in membrane physiology in Archaea. Such consideration would be particularly important for studying archaeal lipids from habitats that experience frequent environmental fluctuations and/or where metabolically diverse archaea thrive.

摘要

环状指数(RI)反映了古菌甘油二植烷甘油四醚(GDGT)脂质中环的程度,长期以来一直被认为反映了对温度的同型粘弹性适应。然而,最近的实验表明,其他因素(例如 pH 值、生长阶段和能量通量)也会影响膜组成。本研究的主要目的是研究碳和能量代谢对膜环化的影响。为此,我们在不同的电子供体、受体和碳源组合(S/Fe/CO、H/Fe/CO、H/S/CO 或 H/S/葡萄糖)上培养了代谢灵活且嗜热嗜酸的古菌 sp. DS80。我们表明,能量和碳代谢的差异会导致嗜热嗜酸古菌 sp. DS80 的 RI 发生一个单位以上的变化。RI 的模式与电子供体和受体之间的归一化电子转移率相关,并不总是与能量产量的热力学预测一致。有鉴于此,我们讨论了可能影响细胞能量代谢动力学的其他因素:电子传递链(ETC)效率、ETC 反应成分的位置(细胞质-细胞外)以及电子供体和受体的物理状态(气体-固体)。此外,异养过程中同化更还原形式的碳似乎会降低脂质生物合成过程中对还原当量的需求,导致 RI 降低。总之,这些结果表明细胞能量状态在决定 GDGT 环化方面起着根本作用,那些经历更大能量限制的细胞合成更多环化的 GDGT。重要性一些古菌在核心结构中形成具有不同数量的五或六个环的独特膜跨膜脂质,从而调节膜的流动性和通透性。膜核心脂质组成的变化反映了古菌应对压力的基本适应策略,但多种环境和生理因素可能会影响膜流动性和通透性的需求。在这项研究中,我们测试了当 sp. DS80 用不同的电子供体/受体对生长时,其核心脂质的组成如何变化。我们表明,能量和碳代谢的变化显著影响了 DS80 核心脂质中环的相对丰度。这些观察结果强调了需要除环境因素外,还需要更好地约束代谢参数,这些因素可能会影响古菌的膜生理学变化。对于研究经历频繁环境波动的栖息地或代谢多样化的古菌大量存在的栖息地的古菌脂质,这种考虑将尤为重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69a4/10880624/2ebfcb7a0f03/aem.01369-23.f001.jpg

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