Panoramic lead-immune system interactome reveals diversified mechanisms of immunotoxicity upon chronic lead exposure.

IF 5.3 2区 医学 Q2 CELL BIOLOGY
Yifan Hong, Tianbao Ye, Hui Jiang, Aiting Wang, Boqian Wang, Yiyang Li, Haiyang Xie, Hongyu Meng, Chengxing Shen, Xianting Ding
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Abstract

Lead exposure is of high prevalence, and over a billion people are chronically exposed to alarming level of lead. Human immune system is highly vulnerable to lead, but the underlying mechanism remains unknown. Using single-cell mass cytometry and mass spectrometry-based proteomics, we performed a panoramic survey of lead targets at both cellular and molecular levels in murine immune system upon chronic lead exposure. We produced a single-cell landscape of lead, thiol metabolism and lead-induced toxicity across all immune cell types. We found that immune cells with extreme thiol metabolism are the most sensitive upon chronic lead exposure. It shows that CD4 + T cells and neutrophils are the most sensitive to lead, which is due respectively to a molecular mechanism rooted in their characteristic thiol metabolic capacity. Meanwhile, we found that lead accumulation by RBC further inflicted secondary toxicity to RBC phagocytes in spleen, e.g. macrophages and neutrophils. Unlike CD4 + T cells, which can be rescued by supplementation with thiol chelator, lead toxicity in these phagocytes cannot be effectively mitigated by thiol chelators. Overall, it forms a multiscale panoramic lead-immune system interactome upon chronic lead exposure, which provides valuable information for proactive prevention, therapy formulation and public health evaluation.

全景铅-免疫系统相互作用揭示了慢性铅暴露免疫毒性的多种机制。
铅接触的流行率很高,超过10亿人长期暴露于令人震惊的铅水平。人体免疫系统极易受到铅的伤害,但其潜在机制尚不清楚。利用单细胞大量细胞术和基于质谱的蛋白质组学,我们在细胞和分子水平上对慢性铅暴露后小鼠免疫系统中的铅靶点进行了全景调查。我们在所有免疫细胞类型中制作了铅、硫醇代谢和铅诱导毒性的单细胞景观。我们发现具有极端硫醇代谢的免疫细胞对慢性铅暴露最敏感。这表明CD4 + T细胞和中性粒细胞对铅最敏感,这分别是由于它们特有的硫醇代谢能力的分子机制。同时,我们发现铅在红细胞中的积累进一步对脾脏红细胞吞噬细胞,如巨噬细胞和中性粒细胞造成二次毒性。CD4 + T细胞可以通过补充硫醇螯合剂来挽救,但这些吞噬细胞中的铅毒性不能通过硫醇螯合剂有效减轻。总体而言,慢性铅暴露形成了多尺度全景铅-免疫系统相互作用,为主动预防、治疗方案制定和公共卫生评价提供了有价值的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cell Biology and Toxicology
Cell Biology and Toxicology 生物-毒理学
CiteScore
9.90
自引率
4.90%
发文量
101
审稿时长
>12 weeks
期刊介绍: Cell Biology and Toxicology (CBT) is an international journal focused on clinical and translational research with an emphasis on molecular and cell biology, genetic and epigenetic heterogeneity, drug discovery and development, and molecular pharmacology and toxicology. CBT has a disease-specific scope prioritizing publications on gene and protein-based regulation, intracellular signaling pathway dysfunction, cell type-specific function, and systems in biomedicine in drug discovery and development. CBT publishes original articles with outstanding, innovative and significant findings, important reviews on recent research advances and issues of high current interest, opinion articles of leading edge science, and rapid communication or reports, on molecular mechanisms and therapies in diseases.
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