凝聚的甲同位素在环境中的微量生物能源
Jiarui Liu1, Edward D Young1, André Pellerin2
1Department of Earth, Planetary and Space Sciences, University of California, Los Angeles, CA 90095, USA.
Science advances
|June 25, 2025
概括
微生物甲同位素组成揭示了环境能量水平. 甲凝聚同位素表明甲的生产是否能量有限或能量丰富,为生物地质化学循环提供了洞察力.
科学领域:
- 地质化学 地质化学
- 微生物学 微生物学
- 环境科学 环境科学
背景情况:
- 甲是一个重要的温室气体,是全球生物地化学循环的组成部分.
- 微生物甲同位素的特征在表面环境 (不平衡) 和深层地下沉积物 (近平衡) 之间有所不同.
- 深地下甲中接近平衡的同位素特征的来源 (甲生成与甲无氧氧化 (AOM)) 尚不清楚.
研究的目的:
- 研究控制不同环境中甲同位素成分的因素.
- 为了确定甲凝聚同位素是否可以作为甲生产期间生物能源条件的代理.
- 阐明在自然环境中甲代谢和能量可用性之间的关系.
主要方法:
- 在深海沉积物,盐沼和热岩湖中分析甲和凝聚的同位素组成.
- 在不同的能量可用性条件下,与甲无氧氧化 (AOM) 进行同位素特征比较.
主要成果:
- 来自能量有限的深海沉积物 (没有AOM) 的微生物甲接近热力学平衡.
- 来自能量丰富的盐沼和热岩湖环境的甲显示出显著的同位素不平衡.
- 发现甲的聚合同位素反映了产生甲的环境的生物能量状态.
结论:
- 能量限制驱动甲同位素组成向热力学平衡.
- 高的自由能量可用性导致微生物甲中的同位素不平衡.
- 甲凝聚同位素是评估甲生产环境的生物能量学和了解甲代谢的宝贵工具.
相关概念视频
Mass Spectrometry: Isotope Effect
2.5K
Most elements exist in nature as a mixture of isotopes. The isotopes differ in weight due to their respective number of neutrons. The molecular weight of a molecule is different depending on the specific isotope of its elements involved. As a result, the mass spectrum of the molecule exhibits peaks from the same fragment at multiple positions. The positions of these mass signals depend on the difference between the molecular mass. Furthermore, the intensity of these signals is dependent on the...
2.5K
Overview of Archaea
161
Archaea, named after the Archaean eon, represent a unique domain of life, distinct from bacteria and eukaryotes, with remarkable traits. Their cellular and molecular features, ecological adaptability, and industrial relevance highlight their importance in understanding life processes and leveraging biotechnology.Cellular and Molecular CharacteristicsA defining feature of archaea is their unique membrane composition. Archaeal membranes contain ether-linked isoprenoid lipids, which confer...
161
Mass Spectrum
2.3K
A mass spectrum is the graphical representation of the relative abundance of the charged fragments in an analyte plotted against their mass-to-charge ratio (m/z). The plot's x axis represents the ratio of the mass of the charged fragment to the elementary charge it carries. The y axis of the plot represents the relative abundance of each charged species. The relative abundance is calculated from the signal intensity of each charged species recorded at the detector. The most intense signal...
2.3K
Mass Spectrometry: Long-Chain Alkane Fragmentation
1.8K
The molecular ions of linear alkanes prefer to fragment at the carbon-carbon bond away from the end of the chain since the cleavage of an inner bond creates a stable carbocation and a stable radical. Consequently, the mass signals of linear alkanes feature intense peaks in the middle of the mass-to-charge ratio plot with weaker peaks on either end. The fragmentation of each carbon-carbon bond with the release of a methyl group in each splitting leads to prominent peaks in the mass spectra...
1.8K
Metabolism of Chemolithotrophs
188
Chemolithotrophs are microorganisms that obtain energy by oxidizing inorganic molecules such as hydrogen gas (H₂), ammonia (NH₃), reduced sulfur compounds (H₂S, S²⁻), and ferrous iron (Fe²⁺). Unlike heterotrophic organisms that rely on organic carbon, chemolithotrophs transfer electrons from these inorganic donors to the electron transport chain (ETC), generating a proton motive force (PMF) that drives ATP synthesis through oxidative phosphorylation.
188
Mass Spectrometry: Branched Alkane Fragmentation
1.1K
This lesson delves into the mass spectrometry of branched alkane fragmentation. Branched alkanes possess secondary or tertiary carbon atoms, which generate relatively stable carbocations if the cleavage occurs at the branching point. The high stability of carbocations drives the instant fragmentation of branched alkanes. Accordingly, the branched alkane's molecular ion peak is very weak or invisible in the mass spectra, especially in comparison to a linear alkane.
1.1K


