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Amyloidogenic Propensity of Metabolites in the Uric Acid Pathway and Urea Cycle Critically Impacts the Etiology of Metabolic Disorders

尿素循环 代谢物 尿酸 生物化学 硫黄素 尿素 化学 代谢途径 生物 病因学 淀粉样蛋白(真菌学) 药理学 代谢组学 线粒体 代谢紊乱 新陈代谢 氢键 病态的 医学
作者
Monisha Patel,Ankita Jaiswal,Anam Naseer,Ankita Tripathi,Aayushi Joshi,Tarun Minocha,Aanand Kautu,Shilpi Gupta,Khashti Ballabh Joshi,Manoj Kumar Pandey,Randhir Kumar,Kshatresh Dutta Dubey,Aamir Nazir,Sandeep Verma,Nidhi Gour
出处
期刊:ACS Chemical Neuroscience [American Chemical Society]
卷期号:15 (5): 916-931 被引量:8
标识
DOI:10.1021/acschemneuro.3c00563
摘要

Novel insights into the etiology of metabolic disorders have recently been uncovered through the study of metabolite amyloids. In particular, inborn errors of metabolism (IEMs), including gout, Lesch-Nyhan syndrome (LNS), xanthinuria, citrullinemia, and hyperornithinemia-hyperammonemia-homocitrullinuria (HHH) syndrome, are attributed to the dysfunction of the urea cycle and uric acid pathway. In this study, we endeavored to understand and mechanistically characterize the aggregative property exhibited by the principal metabolites of the urea cycle and uric acid pathway, specifically hypoxanthine, xanthine, citrulline, and ornithine. Employing scanning electron microscopy (SEM), transmission electron microscopy (TEM), and atomic force microscopy (AFM), we studied the aggregation profiles of the metabolites. Insights obtained through molecular dynamics (MD) simulation underscore the vital roles of π-π stacking and hydrogen bonding interactions in the self-assembly process, and thioflavin T (ThT) assays further corroborate the amyloid nature of these metabolites. The in vitro MTT assay revealed the cytotoxic trait of these assemblies, a finding that was substantiated by in vivo assays employing the Caenorhabditis elegans (C. elegans) model, which revealed that the toxic effects were more pronounced and dose-specific in the case of metabolites that had aged via longer preincubation. We hence report a compelling phenomenon wherein these metabolites not only aggregate but transform into a soft, ordered assembly over time, eventually crystallizing upon extended incubation, leading to pathological implications. Our study suggests that the amyloidogenic nature of the involved metabolites could be a common etiological link in IEMs, potentially providing a unified perspective to study their pathophysiology, thus offering exciting insights into the development of targeted interventions for these metabolic disorders.
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