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Synergistic Interplay of Medicinal Chemistry and Formulation Strategies in Nanotechnology - From Drug Discovery to Nanocarrier Design and Development

机译:纳米技术中药化学和配方策略的协同相互作用 - 从药物发现到纳米载波设计和发展

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Over the last few decades, nanotechnology has given rise to promising new therapies and diagnostic tools for a wide range of diseases, especially cancer. The unique properties of nanocarriers such as liposomes, polymeric nanoparticles, micelles, and bioconjugates have mainly been exploited to enhance drug solubility, dissolution, and bioavailability. The most important advantage offered by nanotechnology is the ability to specifically target organs, tissues, and individual cells, which ultimately reduces the systemic side effects and improves the therapeutic index of drug molecules. The contribution of medicinal chemistry to nanotechnology is evident in the abundance of new active molecules that are being discovered but are faced with tremendous delivery challenges by conventional formulation strategies. Additionally, medicinal chemistry plays a crucial role in all the steps involved in the preparation of nanocarriers, where structure-activity relationships of the drug molecule as well as the nanocarrier are harnessed to enhance the design, efficacy, and safety of nanoformulations. The aim of this review is to provide an overview of the contributions of medicinal chemistry to nanotechnology, from supplying drug candidates and inspiring high-throughput nanocarrier design strategies, to structure-activity relationship elucidation and construction of computational models for better understanding of nanocarrier physicochemical properties and biological behavior. These two fields are undoubtedly interconnected and we will continue to see the fruits of that communion for years to come.
机译:在过去的几十年中,纳米技术对广泛的疾病,尤其是癌症的新疗法和诊断工具引起了令人兴奋的新疗法和诊断工具。纳米载体如脂质体,聚合物纳米粒子,胶束和生物缀合物的独特性质主要被利用以增强药物溶解度,溶解和生物利用度。纳米技术提供的最重要的优势是特异性靶器官,组织和个体细胞的能力,最终降低了系统副作用并改善了药物分子的治疗指标。在被发现的新型活性分子的丰富的丰富的丰富性中,药用化学对纳米技术的贡献明显明显,但通过常规的制剂策略面临巨大的递送挑战。另外,药物化学在制备纳米载体的所有步骤中起重要作用,其中利用药物分子以及纳米载体的结构 - 活性关系,以增强纳米族种类的设计,疗效和安全性。本综述的目的是提供药用化学对纳米技术的贡献,从供应毒品候选者和鼓舞人心的高通量纳米载体设计策略,以便更好地理解纳米载体物理化学性质的结构 - 活动关系阐明和构建计算模型和生物学行为。这两个领域无疑是互联的,我们将继续看到该圣餐的果实多年来。

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