In-Silico Validation and Development of Chlorogenic Acid (CGA) Loaded Polymeric Nanoparticle for Targeting Neurodegenerative Disorders

V. Agarwal, S. Agarwal, R. Kaur, Pranav Pancham, Harleen Kaur, Siddhi Bhardwaj, Manisha Singh
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引用次数: 3

Abstract

Background: Recent decades witnessed a significant growth in terms of phytocompounds based therapeutics, extensively explored for almost all types of existing disorders. They have also been widely investigated in Neurodegenerative disorders (NDDs) and Chlorogenic acid (CGA), a polyphenolic compound having potential anti-inflammatory and anti-oxidative properties, emerged as a promising compound in ameliorating NDDs. Owing to its poor stability, bioavailability and release kinetics, CGA needed a suitable nanocarrier based pharmaceutical design for targeting NDDs. Objective: The current study is aimed at the in-silico validation of CGA as an effective therapeutic agent targeting various NDDs followed by the fabrication of polymeric nanoparticles-based carrier system to overcome its pharmacological limitations and improve its stability. Methods: A successful in-silico validation using molecular docking techniques along with synthesis of CGA loaded polymeric nanoparticles (CGA-NPs) by ionic gelation method was performed. The statistical optimisation of the developed CGA-NPs was done by Box Behnken method and then the optimized formulation of CGA-NPs was characterised using particle size analysis (PSA), Transmission electron microscopy (TEM), Fourier Transform Infrared spectroscopy (FTIR) along with in-vitro release kinetics analysis. Results & Conclusion: The results attained exhibited average particle size of 101.9 ± 1.5 nm, Polydispersibility (PDI) score of 0.065 and a ZP of −17.4 mV. On a similar note, TEM results showed a size range of CGA-NPs between 90 - 110 nm with a spherical shape of NPs. Also, the data from in-vitro release kinetics showed a sustained release of CGA from the NPs following the first-order kinetics suggesting the appropriate designing of nanoformulation.
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用于靶向神经退行性疾病的负载绿原酸(CGA)的聚合物纳米颗粒的硅内验证和开发
背景:近几十年来,基于植物化合物的治疗方法有了显著的发展,对几乎所有类型的现有疾病都进行了广泛的探索。它们在神经退行性疾病(NDDs)中也得到了广泛的研究,绿原酸(CGA)是一种具有潜在抗炎和抗氧化特性的多酚化合物,是一种有前途的改善NDDs的化合物。由于其较差的稳定性、生物利用度和释放动力学,CGA需要一种合适的基于纳米载体的药物设计来靶向NDDs。目的:本研究旨在通过计算机验证CGA作为一种有效的治疗剂靶向各种NDD,然后制备基于聚合物纳米颗粒的载体系统,以克服其药理学局限性并提高其稳定性。方法:使用分子对接技术进行了成功的计算机验证,并通过离子凝胶法合成了负载CGA的聚合物纳米颗粒(CGA-NPs)。通过Box-Behnken方法对所开发的CGA NPs进行统计优化,然后使用粒度分析(PSA)、透射电子显微镜(TEM)、傅里叶变换红外光谱(FTIR)以及体外释放动力学分析对CGA NP的优化配方进行表征。结果与结论:所获得的结果显示平均粒径为101.9±1.5 nm,多分散性(PDI)得分为0.065,ZP为−17.4 mV。同样,TEM结果显示CGA NPs的尺寸范围在90-110 nm之间,呈球形。此外,来自体外释放动力学的数据显示,CGA从NP的持续释放遵循一级动力学,这表明纳米制剂的适当设计。
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