AI Article Synopsis

  • Understanding the Palaeocene-Eocene Thermal Maximum (PETM) is crucial for determining how ocean changes impacted atmospheric CO2 levels, but measuring marine productivity and oxygen levels during this time has been challenging.
  • A novel method using magnetofossils—tiny magnetite crystals made by magnetotactic bacteria—has allowed researchers to reconstruct bottom water oxygenation levels in the South Atlantic during the PETM.
  • Findings indicate that while there was a temporary bloom of magnetotactic bacteria due to increased nutrients, overall bottom water oxygen levels gradually declined from the start to the peak of the PETM, highlighting the potential of magnetofossils as indicators of past marine environments.

Article Abstract

Understanding marine environmental change and associated biological turnover across the Palaeocene-Eocene Thermal Maximum (PETM; ~56 Ma)-the most pronounced Cenozoic short-term global warming event-is important because of the potential role of the ocean in atmospheric CO drawdown, yet proxies for tracing marine productivity and oxygenation across the PETM are limited and results remain controversial. Here we show that a high-resolution record of South Atlantic Ocean bottom water oxygenation can be extracted from exceptionally preserved magnetofossils-the bioinorganic magnetite nanocrystals produced by magnetotactic bacteria (MTB) using a new multiscale environmental magnetic approach. Our results suggest that a transient MTB bloom occurred due to increased nutrient supply. Bottom water oxygenation decreased gradually from the onset to the peak PETM. These observations provide a record of microbial response to the PETM and establish the value of magnetofossils as palaeoenvironmental indicators.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6167317PMC
http://dx.doi.org/10.1038/s41467-018-06472-yDOI Listing

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