National Engineering Research Center for Nanomedicine, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan, 430074, China.
National Engineering Research Center for Nanomedicine, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan, 430074, China; Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan, 430074, China; Hubei Key Laboratory of Bioinorganic Chemistry and Materia Medica, Huazhong University of Science and Technology, Wuhan, 430074, China.
EBioMedicine. 2024 Jul;105:105200. doi: 10.1016/j.ebiom.2024.105200. Epub 2024 Jun 13.
Nanoparticles have shown great potential for tumor targeting delivery via enhanced permeability and retention effect. However, the tumor mechanical microenvironment, characterized by dense extracellular matrix (ECM), high tumor stiffness and solid stress, leads to only 0.7% of administered dose accumulating in solid tumors and even fewer (∼0.0014%) reaching tumor cells, limiting the therapeutic efficacy of nanoparticles. Furthermore, the tumor mechanical microenvironment can regulate tumor cell stemness, promote tumor invasion, metastasis and reduce treatment efficacy. In this review, methods detecting the mechanical are introduced. Strategies for modulating the mechanical microenvironment including elimination of dense ECM by physical, chemical and biological methods, disruption of ECM formation, depletion or inhibition of cancer-associated fibroblasts, are then summarized. Finally, prospects and challenges for further clinical applications of mechano-modulating strategies to enhance the therapeutic efficacy of nanomedicines are discussed. This review may provide guidance for the rational design and application of nanoparticles in clinical settings.
纳米颗粒通过增强通透性和滞留效应显示出了在肿瘤靶向递送上的巨大潜力。然而,肿瘤的机械微环境以细胞外基质(ECM)密集、肿瘤硬度和固有力高为特征,导致只有 0.7%的给药剂量积聚在实体瘤中,甚至更少(约 0.0014%)到达肿瘤细胞,限制了纳米颗粒的治疗效果。此外,肿瘤机械微环境可以调节肿瘤细胞干性,促进肿瘤侵袭、转移,并降低治疗效果。在这篇综述中,介绍了检测力学特性的方法。然后总结了调节机械微环境的策略,包括物理、化学和生物学方法消除密集的 ECM,破坏 ECM 的形成,耗尽或抑制癌症相关成纤维细胞。最后,讨论了机械调节策略进一步临床应用以增强纳米药物治疗效果的前景和挑战。这篇综述可能为纳米颗粒在临床环境中的合理设计和应用提供指导。