4.6 Article

Sulfur and Oxygen Isotope Records of Sulfate-Driven Anaerobic Oxidation of Methane in Diffusion-Dominated Marine Sediments

期刊

FRONTIERS IN EARTH SCIENCE
卷 10, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/feart.2022.862333

关键词

organoclastic sulfate reduction; sulfate-driven anaerobic oxidation of methane; sulfur and oxygen isotopes in sulfate; methane diffusing environments; South China Sea

资金

  1. China Postdoctoral Council [20180053]
  2. National Key Research and Development Program of China [20180053]
  3. Natural Science Foundation of China [2018YFC0310004, 41806049, 41876038]
  4. Fundamental Research Funds for the Central Universities [91128101]
  5. China Postdoctoral Science Foundation [18lgpy28]
  6. Guangdong Special Fund for Economic Development (Marine Economy) [2018M631015]
  7. China Geological Survey Project for South China Sea Gas Hydrate Resource Exploration [GDME-2018D001]
  8. [DD20160211]

向作者/读者索取更多资源

Organoclastic sulfate reduction (OSR) and sulfate-driven anaerobic oxidation of methane (SD-AOM) are two major microbial pathways in the marine sulfur cycle. The isotopic compositions of pore water sulfate provide insights into the mechanism of sulfur and oxygen partitioning during OSR and SD-AOM, indicating distinct trends based on the mode of sulfate reduction.
Organoclastic sulfate reduction (OSR) and sulfate-driven anaerobic oxidation of methane (SD-AOM) are the two major microbial pathways for sulfate consumption in marine sulfur cycle. The relative changes of sulfur and oxygen isotope ratios in pore water sulfate are affected by the mode of microbial sulfate reduction and have been applied as an indicator for assessing methane excess environments. However, so far, this isotope proxy fails to distinguish sulfate reduction processes fueled by the oxidation of organic matter or by diffusing methane. To better understand the mechanism of sulfur and oxygen isotope partitioning during OSR and SD-AOM, coupled sulfur and oxygen isotopic compositions of pore water sulfate (delta S-34(SO4) and delta O-18(SO4)) were investigated from four methane diffusing sites (CL56, CL57, CL59, and CL60) of the South China Sea, supplemented by carbon isotopic composition of dissolved inorganic carbon (DIC) and sulfur isotopic composition of pyrite in bulk sediments. Pore water sulfate and DIC concentrations, as well as calculated net sulfate reduction rates suggest that the sulfate reduction at site CL57 was mainly dominated by OSR, whereas sites CL56, CL59, and CL60 were likely impacted by both OSR and SD-AOM. Furthermore, the trend of cross-plotting delta O-18(SO4) versus delta S-34(SO4) values from site CL57 was distinguishable from sites CL56, CL59, and CL60, although all study sites show similar patterns to those derived from methane limited environments. This further indicates the trajectory of sulfur and oxygen isotope partitioning was affected by the mode of sulfate reduction (i.e., OSR vs. SD-AOM). At site CL57, the low net sulfate reduction rate would lead to enhanced oxidation of intermediate sulfur species during OSR, thus leading to a higher slope in the delta O-18(SO4) vs. delta S-34(SO4) cross-plot (1.26). In contrast, the higher net sulfate reduction rates at sites CL56, CL59, and CL60 due to the impact from SD-AOM would lead to lower slopes in the delta O-18(SO4) vs. delta S-34(SO4) cross-plots (0.78 +/- 0.11). This study provides new insights into the sulfur and oxygen isotope systematics during microbial sulfate reduction processes in methane diffusing environments.

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