重新调整用途
药物发现
灵活性(工程)
计算生物学
风险分析(工程)
计算机科学
抗真菌
鉴定(生物学)
广谱
生物技术
生化工程
生物
数据科学
药物开发
合成生物学
药物重新定位
人类健康
抗生素耐药性
药品
被忽视的热带疾病
工程类
全球卫生
Boosting(机器学习)
抗菌剂
更安全的
广泛耐药结核
疟疾
作者
Sri Mounika Bellapukonda,Muhammed Anas KT,Shivam Mishra,Ramakrishna Kodi,Subhendu Ghosh,Laxma Naik Korra,Srinivas Nanduri,Venkata Madhavi Yaddanapudi
出处
期刊:
[Figshare (United Kingdom)]
日期:2026-03-19
标识
DOI:10.6084/m9.figshare.31814015.v1
摘要
Antimicrobial resistance, a consequence of the prevalent overuse and misuse of antibiotics, has become a serious global health concern. While extensive drug discovery efforts are constantly underway to combat this, the relentless emergence of resistant pathogens demands innovative strategies beyond traditional approaches to address this pervasive health crisis. Among promising strategies, such as drug repurposing and novel chemotype development, molecular hybridization, particularly involving the versatile indole heterocycle, stands out. Its inherent structural flexibility offers unique avenues for optimizing pharmacokinetics, boosting biological activity, and enabling potent bioisosteric modifications. This review consolidates and analyzes advances in indole-based derivatives reported between 2017 and 2025, specifically as antibacterial and antifungal agents. Beyond simply listing advances, we critically integrated chemical synthesis with structure-activity relationships (SAR) and their associated biological activity emerging from a broad spectrum of indole-based modifications. By rigorously detailing these insights, we specifically aim to guide and accelerate the rational design of novel indole-based molecules, providing a vital framework for developing the next generation of antimicrobials to overcome emerging resistance mechanisms.
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