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深入了解基于 MoS2 的纳米载体在抗癌药物输送和治疗中的双重作用。

An insight into the dual role of MoS2-based nanocarriers in anticancer drug delivery and therapy.

机构信息

Department of Biomedical Engineering, Chang Gung University, Taoyuan 33302, Taiwan.

Department of Biomedical Engineering, Chang Gung University, Taoyuan 33302, Taiwan; Department of Ophthalmology, Chang Gung Memorial Hospital, Linkou, Taoyuan 33305, Taiwan; Department of Materials Engineering, Ming Chi University of Technology, New Taipei City 24301, Taiwan; Research Center for Chinese Herbal Medicine, College of Human Ecology, Chang Gung University of Science and Technology, Taoyuan 33303, Taiwan; Center for Biomedical Engineering, Chang Gung University, Taoyuan 33302, Taiwan.

出版信息

Acta Biomater. 2024 Apr 15;179:36-60. doi: 10.1016/j.actbio.2024.03.019. Epub 2024 Mar 27.

Abstract

Over the years, nanomaterials have been exploited as drug delivery systems and therapeutic agents in cancer treatment. Special emphasis has been placed on structure and shape-mediated drug loading and release. Functional materials, including molybdenum disulfide (MoS), have shown promising results because of their tunable structure and unmatched physicochemical properties. Specifically, easy surface functionalization and high drug adsorption ability make them ideal candidates. Although the large surface area of nanosheets/nanoflakes may result in high drug loading, the encapsulation efficiency is better for MoS nanoflower structures. Due to its high targeting abilities, the loading of chemotherapeutic drugs onto MoS may minimize nonspecific cellular death and undesired side effects. Furthermore, due to their strong light-absorption ability, MoS nanostructures have been widely exploited as photothermal and photodynamic therapeutic agents. The unexplored dimensions of cancer therapy, including chemodynamic (Fenton-like reaction) and piezo-catalytic (ultrasound-mediated reactive oxygen generation), have been recently unlocked, in which the catalytic properties of MoS are utilized to generate toxic free radicals to eliminate cancer. Intriguingly, combining these therapeutic modalities often results in high therapeutic efficacy at low doses and minimizes side effects. With a plethora of recent studies, a thorough analysis of current findings is crucial. Therefore, this review discusses the major advances in this field of research. A brief commentary on the limitations/future outlook/ethical issues of the clinical translation of MoS-mediated cancer treatments is also deliberated. Overall, in our observations, the MoS-based nanoformulations hold great potential for future cancer therapy applications. STATEMENT OF SIGNIFICANCE: Development of nanomedicines based on MoS has opened new avenues in cancer treatment. The MoS with different morphologies (nanosheet/nanoflower/QDs) has shown promising results in controlled and targeted drug delivery, leading to minimized side effects and increased therapeutic efficacy. While existing reviews have primarily focused on the optical/thermal properties utilized in photodynamic/photothermal therapy, the outstanding catalytic properties of MoS utilized in cancer therapies (chemodynamic/piezo-catalytic) are often overlooked. This review critically highlights and praises/criticizes individual articles reporting the MoS-based nanoplatforms for cancer therapy applications. Additionally, MoS-based combined therapies for synergistic effects are discussed. Furthermore, a brief commentary on the future prospects for clinical translations is also deliberated, which is appealing to various research communities engaged in cancer theranostics and biomedical sciences research.

摘要

多年来,纳米材料已被开发为药物输送系统和癌症治疗中的治疗剂。特别强调了结构和形状介导的药物加载和释放。功能材料,包括二硫化钼(MoS),由于其可调谐的结构和无与伦比的物理化学性质,已经显示出了很有前景的结果。具体来说,易于表面功能化和高药物吸附能力使它们成为理想的候选者。尽管纳米片/纳米片的大表面积可能导致高药物载量,但 MoS 纳米花结构的包封效率更好。由于其高靶向能力,将化疗药物加载到 MoS 上可以最大程度地减少非特异性细胞死亡和不良的副作用。此外,由于其强吸光能力,MoS 纳米结构已被广泛用作光热和光动力治疗剂。最近,癌症治疗的未探索维度,包括化学动力学(类芬顿反应)和压电催化(超声介导的活性氧生成),已经被解锁,其中 MoS 的催化特性被利用来产生有毒的自由基以消除癌症。有趣的是,将这些治疗方式结合起来,通常可以在低剂量下实现高治疗效果并最小化副作用。随着最近大量研究的出现,对当前研究结果进行全面分析至关重要。因此,本综述讨论了该研究领域的主要进展。还对 MoS 介导的癌症治疗的临床转化的局限性/未来展望/伦理问题进行了简要评论。总的来说,在我们的观察中,基于 MoS 的纳米制剂为未来的癌症治疗应用提供了巨大的潜力。

意义声明

基于 MoS 的纳米医学的发展为癌症治疗开辟了新途径。具有不同形态(纳米片/纳米花/QD)的 MoS 在控制和靶向药物输送方面显示出了很有前景的结果,导致副作用最小化和治疗效果最大化。虽然现有的综述主要集中在光/热性质在光动力/光热治疗中的应用,但 MoS 在癌症治疗中(化学动力学/压电催化)的突出催化特性往往被忽视。本综述批判性地突出了并赞扬/批评了报告 MoS 基纳米平台用于癌症治疗应用的个别文章。此外,还讨论了基于 MoS 的联合治疗以实现协同作用。此外,还对临床转化的未来前景进行了简要评论,这吸引了从事癌症治疗和生物医学科学研究的各个研究社区。

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