细胞内脱氢催化导致还原性应激和免疫抑制

IF 38.1 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jie Jiang, Huizhen Zheng, Zhenzhen Wang, Xinlian Wang, Qianqian Xie, Xi Liu, Qing Yang, Xiaoming Cai, Xingfa Gao, Ruibin Li, Chunying Chen
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引用次数: 0

摘要

不平衡的氧化还原内平衡,包括氧化应激或还原应激,可以深刻地影响细胞功能,导致各种疾病。虽然氧化应激对纳米颗粒不利影响的影响已经被广泛研究,但我们对纳米氧化还原系统相互作用背景下的还原性应激的理解仍然有限。在这里,我们阐明了由过渡金属硼化物脱氢酶活性引发的多米诺骨牌效应。具体来说,7种过渡金属硼化物被确定为模拟天然脱氢酶的酶活性,导致细胞中关键生物氧化还原对中的还原性成分水平升高。大量细胞计数分析提供了令人信服的证据,表明还原性应激启动了肺组织内的免疫抑制环境,促进了乳腺癌细胞向肺的转移。总之,我们的研究揭示了纳米诱导的还原性应激的化学基础,并建立了脱氢酶样活性、还原性应激、免疫抑制和肿瘤转移之间的机制轴。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Intracellular dehydrogenation catalysis leads to reductive stress and immunosuppression

Intracellular dehydrogenation catalysis leads to reductive stress and immunosuppression

Imbalanced redox homeostasis, involving either oxidative stress or reductive stress, can profoundly impact cellular functions, contributing to various diseases. While the implications of oxidative stress in the adverse effects of nanoparticles have been extensively studied, our comprehension of reductive stress within the context of nano-redox system interactions remains limited. Here we illuminate a domino effect initiated by the dehydrogenase-like activity of transition metal borides. Specifically, seven transition metal borides were identified to emulate the enzymatic activity of natural dehydrogenases, resulting in heightened levels of reductive constituents within critical biological redox pairs in cells. Mass cytometry analysis provides compelling evidence that reductive stress initiates an immunosuppressive environment within lung tissues, promoting the metastasis of breast cancer cells to the lungs. In summary, our study unveils the chemical basis of nano-induced reductive stress and establishes a mechanistic axis that interlinks dehydrogenase-like activity, reductive stress, immunosuppression and tumour metastasis.

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来源期刊
Nature nanotechnology
Nature nanotechnology 工程技术-材料科学:综合
CiteScore
59.70
自引率
0.80%
发文量
196
审稿时长
4-8 weeks
期刊介绍: Nature Nanotechnology is a prestigious journal that publishes high-quality papers in various areas of nanoscience and nanotechnology. The journal focuses on the design, characterization, and production of structures, devices, and systems that manipulate and control materials at atomic, molecular, and macromolecular scales. It encompasses both bottom-up and top-down approaches, as well as their combinations. Furthermore, Nature Nanotechnology fosters the exchange of ideas among researchers from diverse disciplines such as chemistry, physics, material science, biomedical research, engineering, and more. It promotes collaboration at the forefront of this multidisciplinary field. The journal covers a wide range of topics, from fundamental research in physics, chemistry, and biology, including computational work and simulations, to the development of innovative devices and technologies for various industrial sectors such as information technology, medicine, manufacturing, high-performance materials, energy, and environmental technologies. It includes coverage of organic, inorganic, and hybrid materials.
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