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早古生代海洋缺氧和全球变暖是由浅埋生物演化驱动的。

Early Palaeozoic ocean anoxia and global warming driven by the evolution of shallow burrowing.

机构信息

Department of Chemistry, Analytical, Environmental and Geo-Chemistry, Vrije Universiteit Brussel, Pleinlaan 2, 1050, Brussel, Belgium.

Ecosystem Management Research Group, Department of Biology, Universiteit Antwerpen, Universiteitsplein 1, 2610, Wilrijk, Belgium.

出版信息

Nat Commun. 2018 Jul 2;9(1):2554. doi: 10.1038/s41467-018-04973-4.

Abstract

The evolution of burrowing animals forms a defining event in the history of the Earth. It has been hypothesised that the expansion of seafloor burrowing during the Palaeozoic altered the biogeochemistry of the oceans and atmosphere. However, whilst potential impacts of bioturbation on the individual phosphorus, oxygen and sulphur cycles have been considered, combined effects have not been investigated, leading to major uncertainty over the timing and magnitude of the Earth system response to the evolution of bioturbation. Here we integrate the evolution of bioturbation into the COPSE model of global biogeochemical cycling, and compare quantitative model predictions to multiple geochemical proxies. Our results suggest that the advent of shallow burrowing in the early Cambrian contributed to a global low-oxygen state, which prevailed for ~100 million years. This impact of bioturbation on global biogeochemistry likely affected animal evolution through expanded ocean anoxia, high atmospheric CO levels and global warming.

摘要

穴居动物的进化是地球历史上的一个决定性事件。据推测,古生代海底穴居的扩张改变了海洋和大气的生物地球化学。然而,虽然已经考虑了生物扰动对单个磷、氧和硫循环的潜在影响,但尚未研究其综合影响,这导致对地球系统对生物扰动进化的响应的时间和幅度存在重大不确定性。在这里,我们将生物扰动的进化纳入全球生物地球化学循环的 COPSE 模型中,并将定量模型预测与多种地球化学示踪剂进行比较。我们的结果表明,早寒武世浅层穴居的出现导致了全球低氧状态,这种状态持续了约 1 亿年。生物扰动对全球生物地球化学的这种影响可能通过扩大海洋缺氧、高大气 CO 水平和全球变暖来影响动物进化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbf8/6028391/d84dda30873b/41467_2018_4973_Fig1_HTML.jpg

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