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通过组合化学发现抗菌性三羰基锰(I)配合物

Discovery of antibacterial manganese(i) tricarbonyl complexes through combinatorial chemistry.

作者信息

Scaccaglia Mirco, Birbaumer Michael P, Pinelli Silvana, Pelosi Giorgio, Frei Angelo

机构信息

Department of Chemistry, Life Sciences and Environmental Sustainability, University of Parma 43124 Parma Italy.

Department of Chemistry, Biochemistry & Pharmaceutical Sciences, University of Bern Freiestrasse 3 3012 Bern Switzerland

出版信息

Chem Sci. 2024 Feb 13;15(11):3907-3919. doi: 10.1039/d3sc05326a. eCollection 2024 Mar 13.

Abstract

The continuous rise of antimicrobial resistance is a serious threat to human health and already causing hundreds of thousands of deaths each year. While natural products and synthetic organic small molecules have provided the majority of our current antibiotic arsenal, they are falling short in providing new drugs with novel modes of action able to treat multidrug resistant bacteria. Metal complexes have recently shown promising results as antimicrobial agents, but the number of studied compounds is still vanishingly small, making it difficult to identify promising compound classes or elucidate structure-activity relationships. To accelerate the pace of discovery we have applied a combinatorial chemistry approach to the synthesis of metalloantibiotics. Utilizing robust Schiff-base chemistry and combining 7 picolinaldehydes with 10 aniline derivatives, and 6 axial ligands, either imidazole/pyridine-based or solvent, we have prepared a library of 420 novel manganese tricarbonyl complexes. All compounds were evaluated for their antibacterial properties and 10 lead compounds were identified, re-synthesised and fully characterised. All 10 compounds showed high and broad activity against Gram-positive bacteria. The best manganese complex displayed low toxicity against human cells with a therapeutic index of >100. In initial mode of action studies, we show that it targets the bacterial membrane without inducing pore formation or depolarisation. Instead, it releases its carbon monoxide ligands around the membrane and inhibits the bacterial respiratory chain. This work demonstrates that large numbers of metal complexes can be accessed through combinatorial synthesis and evaluated for their antibacterial potential, allowing for the rapid identification of promising metalloantibiotic lead compounds.

摘要

抗生素耐药性的持续上升对人类健康构成严重威胁,每年已导致数十万人死亡。虽然天然产物和合成有机小分子构成了我们目前抗生素库的大部分,但它们在提供具有能够治疗多重耐药菌的新作用模式的新药方面存在不足。金属配合物最近作为抗菌剂显示出有前景的结果,但所研究的化合物数量仍然极少,这使得难以确定有前景的化合物类别或阐明构效关系。为了加快发现的步伐,我们应用了组合化学方法来合成金属抗生素。利用稳健的席夫碱化学,将7种吡啶甲醛与10种苯胺衍生物以及6种轴向配体(基于咪唑/吡啶或溶剂)相结合,我们制备了一个包含420种新型三羰基锰配合物的文库。对所有化合物的抗菌性能进行了评估,鉴定出10种先导化合物,并重新合成和全面表征。所有10种化合物对革兰氏阳性菌均表现出高活性和广谱活性。最佳的锰配合物对人类细胞显示出低毒性,治疗指数>100。在初步的作用模式研究中,我们表明它靶向细菌膜,不会诱导孔形成或去极化。相反,它在膜周围释放其一氧化碳配体并抑制细菌呼吸链。这项工作表明,可以通过组合合成获得大量金属配合物,并评估它们的抗菌潜力,从而快速鉴定出有前景的金属抗生素先导化合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c317/10935722/bf1da25c2237/d3sc05326a-f1.jpg

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