Apigenin-mediated MARK4 inhibition: a novel approach in advancing Alzheimer's disease therapeutics.

IF 3.9 2区 化学 Q2 CHEMISTRY, APPLIED Molecular Diversity Pub Date : 2025-01-22 DOI:10.1007/s11030-025-11104-x
Afzal Hussain, Deeba Shamim Jairajpuri, Saleha Anwar, Arunabh Choudhury, Mohammed F Hawwal, Anam Firdous, Mohamed F Alajmi, Md Imtaiyaz Hassan
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Abstract

Apigenin, a dietary flavonoid with notable anti-cancer properties, has emerged as a promising candidate for the treatment of neurodegenerative disorders, particularly Alzheimer's disease (AD). While extensively studied for its ability to modulate key molecular pathways in cancers, apigenin also exerts neuroprotective effects by reducing neuroinflammation, protecting neurons from oxidative stress, and enhancing neuronal survival and synaptic plasticity. This dual functionality makes apigenin an intriguing therapeutic option for diseases like AD, where kinase dysregulation plays a central role. In this study, we focus on Microtubule Affinity-Regulating Kinase 4 (MARK4), a key enzyme implicated in tauopathies associated with AD, as well as in cancer progression. Through in silico analysis, we explore the interaction between apigenin and MARK4, revealing significant structural changes within the kinase domain upon ligand binding. These computational findings were confirmed via experimental assays using purified recombinant MARK4, where apigenin demonstrated potent inhibition with an IC50 value of 2.39 µM. Fluorescence binding assays further confirmed a strong binding affinity (Ka = 108 M-1), indicating that apigenin efficiently occupies the MARK4 active site, thereby suppressing its enzymatic activity. These results position apigenin as a potent inhibitor of MARK4, offering a dual therapeutic advantage-both as an anti-cancer agent and as a neuroprotective compound for the potential treatment of AD. This study opens new avenues for the development of apigenin-based therapeutics targeting kinase dysregulation in cancer and neurodegeneration.

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芹菜素介导的MARK4抑制:推进阿尔茨海默病治疗的新途径
芹菜素是一种具有显著抗癌特性的膳食类黄酮,已成为治疗神经退行性疾病,特别是阿尔茨海默病(AD)的有希望的候选者。芹菜素在癌症中调节关键分子通路的能力被广泛研究,它还通过减少神经炎症、保护神经元免受氧化应激、增强神经元存活和突触可塑性等发挥神经保护作用。这种双重功能使芹菜素成为像阿尔茨海默病这样的疾病的一个有趣的治疗选择,其中激酶失调起着核心作用。在这项研究中,我们重点研究了微管亲和调节激酶4 (MARK4),这是一种与AD相关的tau病变以及癌症进展有关的关键酶。通过硅分析,我们探索了芹菜素和MARK4之间的相互作用,揭示了配体结合后激酶结构域的显著结构变化。这些计算结果通过纯化重组MARK4的实验分析得到证实,其中芹菜素表现出有效的抑制作用,IC50值为2.39µM。荧光结合实验进一步证实了强的结合亲和力(Ka = 108 M-1),表明芹菜素有效地占据了MARK4活性位点,从而抑制了其酶活性。这些结果表明,芹菜素是一种有效的MARK4抑制剂,具有双重治疗优势——既可以作为抗癌药物,又可以作为神经保护化合物,用于潜在的AD治疗。本研究为开发以芹菜素为基础的靶向癌症和神经变性中激酶失调的治疗方法开辟了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Diversity
Molecular Diversity 化学-化学综合
CiteScore
7.30
自引率
7.90%
发文量
219
审稿时长
2.7 months
期刊介绍: Molecular Diversity is a new publication forum for the rapid publication of refereed papers dedicated to describing the development, application and theory of molecular diversity and combinatorial chemistry in basic and applied research and drug discovery. The journal publishes both short and full papers, perspectives, news and reviews dealing with all aspects of the generation of molecular diversity, application of diversity for screening against alternative targets of all types (biological, biophysical, technological), analysis of results obtained and their application in various scientific disciplines/approaches including: combinatorial chemistry and parallel synthesis; small molecule libraries; microwave synthesis; flow synthesis; fluorous synthesis; diversity oriented synthesis (DOS); nanoreactors; click chemistry; multiplex technologies; fragment- and ligand-based design; structure/function/SAR; computational chemistry and molecular design; chemoinformatics; screening techniques and screening interfaces; analytical and purification methods; robotics, automation and miniaturization; targeted libraries; display libraries; peptides and peptoids; proteins; oligonucleotides; carbohydrates; natural diversity; new methods of library formulation and deconvolution; directed evolution, origin of life and recombination; search techniques, landscapes, random chemistry and more;
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