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本文引用的文献

1
Regulation of the NADPH oxidase and associated ion fluxes during phagocytosis.吞噬作用过程中NADPH氧化酶及相关离子通量的调节。
Traffic. 2013 Nov;14(11):1118-31. doi: 10.1111/tra.12115. Epub 2013 Sep 16.
2
An efferocytosis-induced, IL-4-dependent macrophage-iNKT cell circuit suppresses sterile inflammation and is defective in murine CGD.一种由噬作用诱导、IL-4 依赖的巨噬细胞-iNKT 细胞回路抑制无菌性炎症,并且在 CGD 小鼠中存在缺陷。
Blood. 2013 Apr 25;121(17):3473-83. doi: 10.1182/blood-2012-10-461913. Epub 2013 Feb 20.
3
Lysosomal metal, redox and proton cycles influencing the CysHis cathepsin reaction.溶酶体金属、氧化还原和质子循环影响半胱氨酸组氨酸天冬氨酸蛋白酶反应。
Metallomics. 2013 Feb;5(2):110-24. doi: 10.1039/c2mt20156a.
4
Redox considerations in the phagosome: current concepts, controversies, and future challenges.吞噬体中的氧化还原考量:当前概念、争议及未来挑战
Antioxid Redox Signal. 2013 Feb 20;18(6):628-9. doi: 10.1089/ars.2012.4898. Epub 2012 Nov 9.
5
GILT expression in B cells diminishes cathepsin S steady-state protein expression and activity.B 细胞中 GILT 的表达降低了组织蛋白酶 S 的稳定蛋白表达和活性。
Eur J Immunol. 2013 Jan;43(1):65-74. doi: 10.1002/eji.201242379. Epub 2012 Nov 26.
6
Reactive oxygen species production in the phagosome: impact on antigen presentation in dendritic cells.吞噬体中活性氧的产生:对树突状细胞抗原呈递的影响。
Antioxid Redox Signal. 2013 Feb 20;18(6):714-29. doi: 10.1089/ars.2012.4557. Epub 2012 Sep 11.
7
Cathepsin S cannibalism of cathepsin K as a mechanism to reduce type I collagen degradation.组织蛋白酶 S 自噬组织蛋白酶 K 作为一种减少 I 型胶原蛋白降解的机制。
J Biol Chem. 2012 Aug 10;287(33):27723-30. doi: 10.1074/jbc.M111.332684. Epub 2012 Jun 22.
8
Phagosomal proteolysis in dendritic cells is modulated by NADPH oxidase in a pH-independent manner.树突状细胞吞噬体的蛋白水解作用通过 NADPH 氧化酶以 pH 非依赖的方式进行调节。
EMBO J. 2012 Feb 15;31(4):932-44. doi: 10.1038/emboj.2011.440. Epub 2011 Dec 13.
9
Alternative activation of macrophages by IL-4 enhances the proteolytic capacity of their phagosomes through synergistic mechanisms.白细胞介素 4 通过协同机制对巨噬细胞的交替激活增强了其吞噬体的蛋白水解能力。
Blood. 2011 Oct 13;118(15):4199-208. doi: 10.1182/blood-2011-01-328906. Epub 2011 Aug 16.
10
Lysosomal thiol reductase negatively regulates autophagy by altering glutathione synthesis and oxidation.溶酶体巯基还原酶通过改变谷胱甘肽的合成和氧化来负调控自噬。
Free Radic Biol Med. 2011 Aug 1;51(3):688-99. doi: 10.1016/j.freeradbiomed.2011.05.015. Epub 2011 May 23.

γ干扰素诱导的溶酶体巯基还原酶(GILT)维持替代性活化巨噬细胞中的吞噬体蛋白水解作用。

γ-Interferon-inducible lysosomal thiol reductase (GILT) maintains phagosomal proteolysis in alternatively activated macrophages.

作者信息

Balce Dale R, Allan Euan R O, McKenna Neil, Yates Robin M

机构信息

Department of Comparative Biology and Experimental Medicine, Faculty of Veterinary Medicine and University of Calgary, Calgary, Alberta T2N 4N1, Canada.

Department of Comparative Biology and Experimental Medicine, Faculty of Veterinary Medicine and University of Calgary, Calgary, Alberta T2N 4N1, Canada; Department of Biochemistry and Molecular Biology, Faculty of Medicine, University of Calgary, Calgary, Alberta T2N 4N1, Canada.

出版信息

J Biol Chem. 2014 Nov 14;289(46):31891-31904. doi: 10.1074/jbc.M114.584391. Epub 2014 Sep 24.

DOI:10.1074/jbc.M114.584391
PMID:25253686
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4231668/
Abstract

Although it is known that lysosomal cysteine cathepsins require a reducing environment for optimal activity, it is not firmly established how these enzymes are maintained in their reduced-active state in the acidic and occasionally oxidative environment within phagosomes and lysosomes. γ-Interferon-inducible lysosomal thiol reductase (GILT) has been the only enzyme described in the endosomes, lysosomes, and phagosomes with the potential to catalyze the reduction of cysteine cathepsins. Our goal in the current study was to assess the effect of GILT on major phagosomal functions with an emphasis on proteolytic efficiency in murine bone marrow-derived macrophages. Assessment of phagosomal disulfide reduction upon internalization of IgG-opsonized experimental particles confirmed a major role for GILT in phagosomal disulfide reduction in both resting and interferon-γ-activated macrophages. Furthermore we observed a decrease in early phagosomal proteolytic efficiency in GILT-deficient macrophages, specifically in the absence of an NADPH oxidase-mediated respiratory burst. This deficiency was more prominent in IL-4-activated macrophages that inherently possess lower levels of NADPH oxidase activity. Finally, we provide evidence that GILT is required for optimal activity of the lysosomal cysteine protease, cathepsin S. In summary, our results suggest a role for GILT in maintaining cysteine cathepsin proteolytic efficiency in phagosomes, particularly in the absence of high NADPH oxidase activity, which is characteristic of alternatively activated macrophages.

摘要

虽然已知溶酶体半胱氨酸组织蛋白酶需要还原环境以实现最佳活性,但这些酶如何在吞噬体和溶酶体内的酸性且偶尔具有氧化性的环境中维持其还原活性状态,目前尚未完全明确。γ-干扰素诱导的溶酶体硫醇还原酶(GILT)是在内体、溶酶体和吞噬体中描述的唯一具有催化半胱氨酸组织蛋白酶还原潜力的酶。我们当前研究的目标是评估GILT对主要吞噬体功能的影响,重点是小鼠骨髓来源巨噬细胞中的蛋白水解效率。对IgG调理的实验颗粒内化后吞噬体二硫键还原的评估证实,GILT在静息和干扰素-γ激活的巨噬细胞的吞噬体二硫键还原中起主要作用。此外,我们观察到GILT缺陷型巨噬细胞早期吞噬体蛋白水解效率降低,特别是在没有NADPH氧化酶介导的呼吸爆发的情况下。这种缺陷在固有NADPH氧化酶活性较低的IL-4激活的巨噬细胞中更为明显。最后,我们提供证据表明,溶酶体半胱氨酸蛋白酶组织蛋白酶S的最佳活性需要GILT。总之,我们的结果表明GILT在维持吞噬体中半胱氨酸组织蛋白酶的蛋白水解效率方面发挥作用,特别是在缺乏高NADPH氧化酶活性的情况下,这是替代性激活巨噬细胞的特征。