Bindra Sandeep, Bose Kuntal, Thekkantavida Amrutha Chandran, Grace Thomas Parambi Della, Alsahli Tariq G, Pant Manu, Pappachen Leena K, Kim Hoon, Mathew Bijo
Department of Pharmaceutical Chemistry, Amrita School of Pharmacy, Amrita Vishwa Vidyapeetham Amrita Health Science Campus Kochi 682041 India
Department of Pharmaceutical Chemistry, College of Pharmacy, Jouf University Sakaka Aljouf 72341 Saudi Arabia.
RSC Adv. 2024 Sep 2;14(38):27657-27696. doi: 10.1039/d4ra04730c. eCollection 2024 Aug 29.
Dimethylamine (DMA) derivatives represent a promising class of compounds with significant potential in the field of medicinal chemistry. DMA derivatives exhibit a diverse range of pharmacological activities, including antimicrobial, antihistaminic, anticancer, and analgesic properties. Their unique chemical structure allows for the modulation of various biological targets, making them valuable candidates for the treatment of numerous diseases. Synthetic strategies for the preparation of DMA derivatives vary depending on the desired biological activity and target molecule. Common synthetic routes involve the modification of the DMA scaffold through functional group manipulation, scaffold hopping, or combinatorial chemistry approaches. Therapeutically, DMA derivatives have shown promise in the treatment of infectious diseases, especially bacterial infections. Additionally, by focusing on particular biochemical pathways involved in tumor growth and metastasis, DMA-based drugs have shown anticancer activity. In addition to their direct pharmacological effects, DMA derivatives can serve as valuable tools in drug delivery systems, prodrug design, and molecular imaging techniques, enhancing their utility in medicinal chemistry research. Overall, DMA derivatives represent a versatile class of compounds with immense potential in medicinal chemistry. Further research and development efforts are warranted to explore their full therapeutic capabilities and optimize their clinical utility in the treatment of various diseases. This article outlines the pharmacological properties, synthetic strategies, and therapeutic applications of DMA derivatives of FDA approved drugs, highlighting their importance in drug discovery and development.
二甲胺(DMA)衍生物是一类很有前景的化合物,在药物化学领域具有巨大潜力。DMA衍生物具有多种药理活性,包括抗菌、抗组胺、抗癌和止痛特性。它们独特的化学结构能够调节各种生物靶点,使其成为治疗多种疾病的有价值候选物。制备DMA衍生物的合成策略因所需的生物活性和目标分子而异。常见的合成路线包括通过官能团操作、骨架跃迁或组合化学方法对DMA支架进行修饰。在治疗方面,DMA衍生物在治疗传染病,尤其是细菌感染方面已显示出前景。此外,通过关注肿瘤生长和转移所涉及的特定生化途径,基于DMA的药物已显示出抗癌活性。除了其直接的药理作用外,DMA衍生物还可作为药物递送系统、前药设计和分子成像技术中的有价值工具,提高其在药物化学研究中的实用性。总体而言,DMA衍生物是一类多功能化合物,在药物化学中具有巨大潜力。有必要进一步开展研究和开发工作,以探索其全部治疗能力,并优化其在治疗各种疾病中的临床实用性。本文概述了FDA批准药物的DMA衍生物的药理特性、合成策略和治疗应用,强调了它们在药物发现和开发中的重要性。