Tivari Sunil R, Kokate Siddhant V, Belmonte-Vázquez José L, Pawar Tushar Janardan, Patel Harun, Ahmad Iqrar, Gayke Manoj S, Bhosale Rajesh S, Jain Vicky D, Muteeb Ghazala, Delgado-Alvarado Enrique, Jadeja Yashwantsinh
Department of Chemistry, Marwadi University, Rajkot, Gujarat 360003, India.
Department of Chemistry, S.S.C. College, Junnar, Pune, Maharashtra 410502, India.
ACS Omega. 2023 Dec 12;8(51):48843-48854. doi: 10.1021/acsomega.3c05961. eCollection 2023 Dec 26.
Peptide synthesis has opened new frontiers in the quest for bioactive molecules with limitless biological applications. This study presents the synthesis of a series of novel isoquinoline dipeptides using advanced spectroscopic techniques for characterization. These compounds were designed with the goal of discovering unexplored biological activities that could contribute to the development of novel pharmaceuticals. We evaluated the biological activities of novel compounds including their antimicrobial, antibacterial, and antifungal properties. The results show promising activity against and potent antibacterial activity against MTCC 443 and MTCC 1688. Furthermore, these compounds demonstrate strong antifungal activity, outperforming existing standard drugs. Computational binding affinity studies of tetrahydroisoquinoline-conjugated dipeptides against DNA gyrase displayed significant binding interactions and binding affinity, which are reflected in antimicrobial activities of compounds. Our integrative significant molecular findings from both wet and dry laboratories would help pave a path for the development of antimicrobial therapeutics. The findings suggest that these isoquinoline-conjugated dipeptides could be excellent candidates for drug development, with potential applications in the fight against bacterial and fungal infections. This research represents an exciting step forward in the field of peptide synthesis and its potential to discover novel bioactive molecules with significant implications for human health.
肽合成在寻找具有无限生物学应用的生物活性分子方面开辟了新的前沿领域。本研究展示了一系列新型异喹啉二肽的合成,并使用先进的光谱技术进行表征。设计这些化合物的目的是发现尚未探索的生物活性,这可能有助于新型药物的开发。我们评估了新型化合物的生物活性,包括它们的抗微生物、抗菌和抗真菌特性。结果显示对[具体对象]有良好活性,对MTCC 443和MTCC 1688有强效抗菌活性。此外,这些化合物表现出很强的抗真菌活性,优于现有标准药物。对四氢异喹啉共轭二肽与DNA促旋酶的计算结合亲和力研究显示出显著的结合相互作用和结合亲和力,这反映在化合物的抗微生物活性中。我们从湿实验室和干实验室获得的综合重要分子研究结果将有助于为抗微生物治疗药物的开发铺平道路。研究结果表明,这些异喹啉共轭二肽可能是药物开发的优秀候选物,在对抗细菌和真菌感染方面具有潜在应用。这项研究代表了肽合成领域向前迈出的令人兴奋的一步,以及其发现对人类健康有重大影响的新型生物活性分子的潜力。