4.8 Article

Highly Sensitive and Specific Responses of Oyster Hemocytes to Copper Exposure: Single-Cell Transcriptomic Analysis of Different Cell Populations

期刊

ENVIRONMENTAL SCIENCE & TECHNOLOGY
卷 56, 期 4, 页码 2497-2510

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.est.1c07510

关键词

oyster; Cu exposure; scRNA-seq; granulocytes; heterogeneity responses

资金

  1. National Natural Science Foundation of China [32102815]
  2. Youth Innovation Promotion Association of the Chinese Academy of Science [2019210]

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In this study, the responses of different cell populations of hemocytes in oysters under copper exposure were investigated using single-cell transcriptome profiling. The results showed that different cell types had heterogeneous responses to copper, with the granulocyte being the most important responsive cell type and displaying heterogeneity responses of its two subtypes. These findings have significant implications for understanding the impact of copper contamination on oysters.
Oyster hemocytes are the primary vehicles transporting and detoxifying metals and are regarded as important cells for the occurrence of colored oysters due to copper (Cu) contamination. However, its heterogeneous responses under Cu exposure have not been studied. Single-cell transcriptome profiling (scRNA-seq) provides high-resolution visual insights into tissue dynamics and environmental responses. Here, we used scRNA-seq to study the responses of different cell populations of hemocytes under Cu exposure in an estuarine oyster Crassostrea hongkongensis. The 1900 population-specific Cu-responsive genes were identified in 12 clusters of hemocytes, which provided a more sensitive technique for examining Cu exposure. The granulocyte, semi-granulocyte, and hyalinocyte had specific responses, while the granulocyte was the most important responsive cell type and displayed heterogeneity responses of its two subtypes. In one subtype, Cu was transported with metal transporters and chelated with Cu chaperons in the cytoplasm. Excess Cu disturbed oxidative phosphorylation and induced reactive oxygen species production. However, in the other subtype, endocytosis was mainly responsible for Cu internalization, which was sequestered in membrane-bound granules. Collectively, our results provided the first mRNA expression profile of hemocytes in oysters and revealed the heterogeneity responses under Cu exposure.

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