Homkajorn Benjaporn, Nilsu Thanasan, Suntararuks Sumitra, Saparpakorn Patchreenart, Ingkaninan Kornkanok, Limpeanchob Nanteetip, Satayavivad Jutamaad, Ruchirawat Somsak, Thasana Nopporn
Laboratory of Pharmacology, Chulabhorn Research Institute, Bangkok, 10210, Thailand.
Applied Biological Sciences Program, Chulabhorn Graduate Institute, Bangkok, 10210, Thailand.
Chem Asian J. 2025 Jun;20(12):e202401950. doi: 10.1002/asia.202401950. Epub 2025 Apr 7.
To date, there has been no effective treatment available for the Alzheimer's disease (AD); hence, novel compounds with AD inhibitory effects are highly desirable. Huperzine A (HupA), a natural Lycopodium alkaloid, is a potent acetylcholinesterase (AChE) inhibitor for AD treatment. In this study, HupA derivatives, huperzil, N-hippurylhuperzine A, pyrrolhuperzine A, maleicamide-huperzine A and phthaleicamide-huperzine A, were synthesized and their in silico computation as the central nervous system (CNS) drug was performed. All derivatives exhibited lower anti-AChE activity than HupA. However, we found other non-cholinergic functions in AD-mimicking models using differentiated SH-SY5Y. HupA and derivatives significantly suppressed the Aβ cytotoxicity and showed recovery effects against arsenic- induced AD pathologies including reactive oxygen species generation, neurite outgrowth shortening, amyloid precursor protein suppression and the elevation of β-secretase, endogenous Aβ peptide, and Tau and neurofilament light proteins. In summary, we prepared three potential compounds with dual-AChE cholinergic and non-cholinergic functions. Further development of these compounds will be beneficial for the future use as an alternate compound against AD.
迄今为止,尚无针对阿尔茨海默病(AD)的有效治疗方法;因此,非常需要具有AD抑制作用的新型化合物。石杉碱甲(HupA)是一种天然的石松生物碱,是用于AD治疗的强效乙酰胆碱酯酶(AChE)抑制剂。在本研究中,合成了HupA衍生物石杉醇、N-马尿酸石杉碱甲、吡咯石杉碱甲、马来酰胺-石杉碱甲和邻苯二甲酰胺-石杉碱甲,并对其作为中枢神经系统(CNS)药物进行了计算机模拟计算。所有衍生物的抗AChE活性均低于HupA。然而,我们在使用分化的SH-SY5Y的AD模拟模型中发现了其他非胆碱能功能。HupA及其衍生物显著抑制Aβ细胞毒性,并对砷诱导的AD病理表现出恢复作用,包括活性氧生成、神经突生长缩短、淀粉样前体蛋白抑制以及β-分泌酶、内源性Aβ肽、Tau和神经丝轻链蛋白的升高。总之,我们制备了三种具有双重AChE胆碱能和非胆碱能功能的潜在化合物。这些化合物的进一步开发将有利于未来作为AD替代化合物的应用。