Hypochlorite-induced structural modifications enhance the chaperone activity of human α2-macroglobulin
Amy R Wyatt1, Janet R Kumita2, Richard W Mifsud2
1Department of Chemistry, University of Cambridge, Cambridge CB2 1EW, United Kingdom; andIllawarra Health and Medical Research Institute and School of Biological Sciences, University of Wollongong, Wollongong, NSW 2522, Australia.
Abstract:
Hypochlorite, an oxidant generated in vivo by the innate immune system, kills invading pathogens largely by inducing the misfolding of microbial proteins. Concomitantly, the nonspecific activity of hypochlorite also damages host proteins, and the accumulation of damaged (misfolded) proteins is implicated in the pathology of a variety of debilitating human disorders (e.g., Alzheimer's disease, atherosclerosis, and arthritis). It is well-known that cells respond to oxidative stress by up-regulating proteostasis machinery, but the direct activation of mammalian chaperones by hypochlorite has not, to our knowledge, been previously reported. In this study, we show that hypochlorite-induced modifications of human α2-macroglobulin (α2M) markedly increase its chaperone activity by generating species, particularly dimers formed by dissociation of the native tetramer, which have enhanced surface hydrophobicity. Moreover, dimeric α2M is generated in whole-blood plasma in the presence of physiologically relevant amounts of hypochlorite. The chaperone activity of hypochlorite-modified α2M involves the formation of stable soluble complexes with misfolded client proteins, including heat-denatured enzymes, oxidized fibrinogen, oxidized LDL, and native or oxidized amyloid β-peptide (Aβ1-42). Here, we show that hypochlorite-modified α2M delivers its misfolded cargo to lipoprotein receptors on macrophages and reduces Aβ1-42 neurotoxicity. Our results support the conclusion that α2M is a specialized chaperone that prevents the extracellular accumulation of misfolded and potentially pathogenic proteins, particularly during innate immune system activity.
Insights
Hypochlorite, an immune oxidant, enhances the chaperone activity of alpha2-macroglobulin (α2M), enabling it to bind and clear misfolded proteins, thus preventing disease. This highlights α2M
Area of Science:
- Biochemistry
- Immunology
- Molecular Biology
Background:
- Hypochlorite, an innate immune oxidant, targets microbial proteins but also damages host proteins, contributing to diseases like Alzheimer's.
- Cellular responses to oxidative stress involve proteostasis machinery, but direct hypochlorite activation of mammalian chaperones is not well-understood.
Purpose of the Study:
- To investigate the direct activation of mammalian chaperones by hypochlorite.
- To characterize the effect of hypochlorite on human alpha2-macroglobulin (α2M) and its chaperone activity.
Main Methods:
- Studied hypochlorite-induced modifications of human α2M.
- Analyzed the formation of α2M dimers and their hydrophobicity.
- Assessed the binding of modified α2M to misfolded proteins (e.g., Aβ1-42, oxidized LDL).
- Investigated the uptake of α2M-misfolded protein complexes by macrophages.
Main Results:
- Hypochlorite modification significantly increases α2M chaperone activity, particularly through dimer formation.
- Dimeric α2M, with enhanced hydrophobicity, forms stable complexes with various misfolded proteins.
- Hypochlorite-modified α2M delivers cargo to macrophage lipoprotein receptors and reduces amyloid-beta neurotoxicity.
Conclusions:
- Human α2M functions as a specialized chaperone activated by hypochlorite.
- Activated α2M prevents the extracellular accumulation of misfolded proteins, especially during immune responses.
- This mechanism is crucial for mitigating protein misfolding-related pathologies.
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