作为多功能酶抑制剂的Aurones:最新进展,结构见解,机制和治疗潜力

Bhavna Saroha , Gourav Kumar , Suresh Kumar
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引用次数: 0

摘要

金酮属植物来源的类黄酮类杂环化合物,具有广阔的治疗潜力。aurones具有独特的苯并呋喃酮核心结构和α,β不饱和羰基,具有良好的结构适应性和电子特性,是酶靶向和药物开发的理想候选者。最近的研究强调了它们抑制关键酶的能力,包括胆碱酯酶、组织蛋白酶B、单胺氧化酶、环氧合酶和各种消化酶。这证明了它们在治疗癌症、神经退行性疾病和与这些酶过表达相关的代谢紊乱方面的潜力。aurone支架的功能化能力进一步增强了其选择性和强效酶靶向的适应性。本文综述了aurones的结构特征,它们的酶抑制作用,概述了它们的分子机制,以及它们的酶抑制背后的构效关系(SAR),并以计算方法为支持。虽然有几篇综述文章讨论了aurones的合成和一般生物学概况,但没有一篇特别关注它们的酶抑制潜力,这是本文的中心主题。这一综述为设计、合成和优化新的基于auron的化合物提供了坚实的基础和理论依据,这些化合物旨在通过靶向特定的酶来达到理想的治疗效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aurones as versatile enzyme Inhibitors: Recent advancements, structural insights, mechanisms, and therapeutic potential
Aurones belong to the flavonoid-based heterocyclic class of plant origin and are full of therapeutic potential. Characterized by their unique benzofuranone core structure and α,β unsaturated carbonyl group, aurones possess exceptional structural adaptability and electronic characteristics, making them excellent candidates for enzyme targeting and promising agents for drug development. Recent research has highlighted their ability to inhibit key enzymes, including cholinesterase, cathepsin B, monoamine oxidase, cyclooxygenase, and various digestive enzymes. This demonstrates their potential in treating cancer, neurodegenerative diseases, and metabolic disorders associated with the overexpression of these enzymes. The ability to functionalize the aurone scaffold further enhances its adaptability for selective and potent enzyme targeting. This review examines the structural features of aurones, their enzyme-inhibitory effects, an overview of their molecular mechanisms, and the structure-activity relationships (SAR) underlying their enzyme inhibition, supported by computational approaches. Although several review articles have addressed the synthetic and general biological profile of aurones, none have specifically focused on their enzyme inhibitory potential, which is the central theme of this review. This review offers a strong foundation and rationale for the design, synthesis, and optimization of novel aurone-based compounds aimed at achieving desirable therapeutic outcomes by targeting specific enzymes.
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