Department of Chemistry and Centre of Advanced Studies in Chemistry, Panjab University, Chandigarh 160014, India.
Department of Chemistry and Centre of Advanced Studies in Chemistry, Panjab University, Chandigarh 160014, India; National Interdisciplinary Centre of Vaccine, Immunotherapeutics and Antimicrobials, Panjab University, Chandigarh 160014, India.
Eur J Med Chem. 2021 Oct 5;221:113536. doi: 10.1016/j.ejmech.2021.113536. Epub 2021 May 13.
Malaria, even though an avoidable and treatable disease, can be fatal if ignored. Artemisinin Combination Therapy (ACT) and RTS, S/AS01 vaccine (Mosquirix™) are the only modest means available with humans to overcome malaria, a lethal affliction wreaking havoc across the globe. Employment of ACT is associated with problems such as 'Artemisinin Resistance' and the 'Hypnozoite conundrum' that hinder the complete eradication of malaria. In this view, the natural products specifically comprising β-carboline scaffold have shown good antiplasmodial responses against different strains of malaria. Taking these observations forward, researchers have performed structure-activity relationship (SAR) studies around three different β-carboline skeletons (tetrahydro β-carbolines, dihydro β-carbolines, β-carbolines) to design new β-carboline derived heterocyclic structures or modified naturally occurring derivatives. In addition, different approaches such as dimerization and linkage to other moieties have also been adopted to enhance the antimalarial activity. The present review describes a comprehensive SAR study encapsulating various natural and synthetic β-carbolines to elaborate upon the utility of these skeletons in designing drugs to subdue this deadly disease.
疟疾虽然是一种可预防和可治疗的疾病,但如果忽视它,也可能致命。青蒿素联合疗法(ACT)和 RTS,S/AS01 疫苗(Mosquirix™)是人类克服疟疾的唯一有效手段,疟疾是一种在全球范围内肆虐的致命疾病。ACT 的应用存在一些问题,如“青蒿素耐药性”和“休眠疟原虫难题”,这些问题阻碍了疟疾的完全根除。在这种情况下,包含β-咔啉支架的天然产物已显示出对不同疟原虫株的良好抗疟反应。基于这些观察结果,研究人员围绕三种不同的β-咔啉骨架(四氢β-咔啉、二氢β-咔啉、β-咔啉)进行了构效关系(SAR)研究,以设计新的β-咔啉衍生杂环结构或修饰天然存在的衍生物。此外,还采用了二聚化和与其他部分连接等不同方法来增强抗疟活性。本综述描述了一项全面的 SAR 研究,其中包含各种天然和合成的β-咔啉,以详细说明这些骨架在设计药物以抑制这种致命疾病方面的应用。