Institute for Molecules and Materials, Radboud University Nijmegen, The Netherlands, Heyendaalseweg 135, 6525 AJ, Nijmegen, The Netherlands.
Chem Commun (Camb). 2023 May 18;59(41):6148-6158. doi: 10.1039/d3cc00759f.
Antibiotic resistance is an enormous problem that is accountable for over a million deaths annually, with numbers expected to significantly increase over the coming decades. Although some of the underlying causes leading up to antibiotic resistance are well understood, many of the molecular processes involved remain elusive. To better appreciate at a molecular level how resistance emerges, customized chemical biology tools can offer a solution. This Feature Article attempts to provide an overview of the wide variety of tools that have been developed over the last decade, by highlighting some of the more illustrative examples. These include the use of fluorescent, photoaffinity and activatable antibiotics and bacterial components to start to unravel the molecular mechanisms involved in resistance. The antibiotic crisis is an eminent global threat and requires the continuous development of creative chemical tools to dissect and ultimately counteract resistance.
抗生素耐药性是一个巨大的问题,每年导致超过 100 万人死亡,预计在未来几十年内这个数字还会显著增加。虽然导致抗生素耐药性的一些潜在原因已经被很好地理解,但许多涉及的分子过程仍然难以捉摸。为了更好地从分子水平上了解耐药性是如何产生的,定制的化学生物学工具可以提供一种解决方案。本文试图通过突出一些更具代表性的例子,概述过去十年中开发的各种工具。这些工具包括使用荧光、光亲和和可激活的抗生素和细菌成分,以开始揭示耐药性涉及的分子机制。抗生素危机是一个迫在眉睫的全球威胁,需要不断开发创造性的化学工具来剖析并最终对抗耐药性。