化石细胞中最古老的甲状腺体直接证明了氧化光合作用
Catherine F Demoulin1, Yannick J Lara2, Alexandre Lambion2
1Early Life Traces & Evolution-Astrobiology, UR Astrobiology, University of Liège, Liège, Belgium. cdemoulin@uliege.be.
Nature
|January 3, 2024
概括
这项研究发现了古老的蓝藻菌化石中最古老的甲状腺膜的直接证据. 这一发现使得氧光合成器的化石记录延迟了12亿年.
科学领域:
- 古生物学
- 地质学
- 生物化学
背景情况:
- 氧化光合作用是蓝藻菌独有的,对地球的氧化还原化学和生物圈进化产生了深远的影响.
- 了解菌的多样化是地球生命共同进化的关键,但它们的早期化石记录是模两可的.
- 蓝藻细菌在约20亿至27亿年前分为没有甲状腺素和含甲状腺素的群体.
研究的目的:
- 报告最古老的直接证据 甲状腺膜在古老的蓝藻菌.
- 为了确定甲状腺素携带的蓝藻细菌分化的最低年龄.
- 为早期地球生态系统提供新的氧化还原代理.
主要方法:
- 澳大利亚 (1.78-1.73亿年前) 和加拿大 (1.01-0.9亿年前) 的Navifusa majensis的微化石分析.
- 对化石细胞超结构的检查,特别是甲状腺膜的安排.
- 使用含有微化石的岩石形成的地质年代.
主要成果:
- 在微化石中发现甲状腺膜的平行到扭曲和状排列.
- 延长了至少 12 亿年的甲状腺携带蓝藻的化石记录.
- 确定甲状腺素携带的蓝藻细菌分化的最低年龄为1.75亿年.
结论:
- 提供了早期氧光合成器的明确化石证据.
- 突出了超结构分析对于解读生命早期演变的重要性.
- 为重建早期地球环境提供了一种新的氧化还原代理.
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