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金属络合用于癌症治疗中吉西他滨配方的合理设计。

Metal Complexation for the Rational Design of Gemcitabine Formulations in Cancer Therapy.

机构信息

Department of Pharmaceutics and Center for Pharmaceutical Engineering and Sciences - School of Pharmacy, Virginia Commonwealth University, Richmond, Virginia 23284, United States.

Dipartimento di Scienze Chimiche, Biologiche, Farmaceutiche ed Ambientali, Università di Messina, Viale F. Stagno d'Alcontres 31, 98166 Messina, Italy.

出版信息

ACS Appl Mater Interfaces. 2024 Oct 23;16(42):56789-56800. doi: 10.1021/acsami.4c12550. Epub 2024 Oct 8.

Abstract

Nanoformulation of chemotherapies represents a promising strategy to enhance outcomes in cancer therapy. Gemcitabine is a chemotherapeutic agent approved by the Food and Drug Administration for the treatment of various solid tumors. Nevertheless, its therapeutic effectiveness is constrained by its poor metabolic stability and pharmacokinetic profile. Nanoformulations of gemcitabine in lipid and polymer nanocarriers usually lead to poor loading capability and an inability to effectively control its release profile due to the physicochemical characteristics of the drug and matrices. Here, we propose metal-gemcitabine complexation with biorelevant metal cations as a strategy to alter the properties of gemcitabine in a noncovalent manner, paving the way for the development of novel nanoformulations. A speciation study on gemcitabine and Mn, Zn, and Ca was performed with the aim of investigating the extent of the interaction between the drug and the proposed metal cations, and selecting the best conditions of temperature, pH, and drug-to-metal molar ratio that optimize such interactions. Also, a series of density functional theory calculations and spin-polarized molecular dynamics simulations were carried out to achieve insights on the atomistic modalities of these interactions. Mn-gemcitabine species demonstrated the ability to maintain gemcitabine's biological activity . The scientific relevance of this study lies in its potential to propose metal-gemcitabine as a valuable strategy for developing nanoformulations with optimized quality target product profiles. The work is also clinically relevant because it will lead to improved treatment outcomes, including enhanced efficacy and pharmacokinetics, decreased toxicity, and new clinical possibilities for this potent therapeutic molecule.

摘要

化疗药物的纳米制剂是提高癌症治疗效果的一种很有前途的策略。吉西他滨是一种已被美国食品和药物管理局批准用于治疗各种实体瘤的化疗药物。然而,由于其代谢稳定性和药代动力学特征较差,其治疗效果受到限制。吉西他滨在脂质和聚合物纳米载体中的纳米制剂通常由于药物和基质的物理化学性质而导致负载能力差,并且无法有效控制其释放曲线。在这里,我们提出了用生物相关金属阳离子与吉西他滨形成金属-药物配合物的策略,以非共价方式改变吉西他滨的性质,为开发新型纳米制剂铺平道路。进行了吉西他滨与 Mn、Zn 和 Ca 的形态研究,目的是研究药物与拟议金属阳离子之间相互作用的程度,并选择最佳的温度、pH 和药物与金属摩尔比条件,以优化这种相互作用。此外,还进行了一系列密度泛函理论计算和自旋极化分子动力学模拟,以深入了解这些相互作用的原子模式。Mn-吉西他滨配合物表现出维持吉西他滨生物活性的能力。这项研究的科学意义在于它有可能提出金属-吉西他滨作为开发具有优化质量目标产品特性的纳米制剂的有价值策略。这项工作在临床上也具有相关性,因为它将导致治疗效果的改善,包括增强疗效和药代动力学、降低毒性以及为这种有效的治疗分子提供新的临床可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a6d0/11503523/b3c4eac7da5e/am4c12550_0001.jpg

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