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纳米载体克服二维和三维癌症模型中化疗药物多药耐药性所诱导的生物屏障。

Nanocarriers overcoming biological barriers induced by multidrug resistance of chemotherapeutics in 2D and 3D cancer models.

作者信息

Petrikaite Vilma, D'Avanzo Nicola, Celia Christian, Fresta Massimo

机构信息

Laboratory of Drug Targets Histopathology, Institute of Cardiology, Lithuanian University of Health Sciences, Sukilėlių pr. 13, LT-50162 Kaunas, Lithuania; Institute of Biotechnology, Life Sciences Center, Vilnius University, Saulėtekio al. 7, LT-10257 Vilnius, Lithuania.

Department of Pharmacy, University of Chieti - Pescara "G. d'Annunzio", Via dei Vestini 31, 66100 Chieti, Italy; Department of Experimental and Clinical Medicine, University "Magna Græcia" of Catanzaro Campus Universitario-Germaneto, Viale Europa, 88100 Catanzaro, Italy.

出版信息

Drug Resist Updat. 2023 May;68:100956. doi: 10.1016/j.drup.2023.100956. Epub 2023 Mar 12.

Abstract

Multidrug resistance (MDR) is currently a big challenge in cancer therapy and limits its success in several patients. Tumors use the MDR mechanisms to colonize the host and reduce the efficacy of chemotherapeutics that are injected as single agents or combinations. MDR mechanisms are responsible for inactivation of drugs and formbiological barriers in cancer like the drug efflux pumps, aberrant extracellular matrix, hypoxic areas, altered cell death mechanisms, etc. Nanocarriers have some potential to overcome these barriers and improve the efficacy of chemotherapeutics. In fact, they are versatile and can deliver natural and synthetic biomolecules, as well as RNAi/DNAi, thus providing a controlled release of drugs and a synergistic effect in tumor tissues. Biocompatible and safe multifunctional biopolymers, with or without specific targeting molecules, modify the surface and interface properties of nanocarriers. These modifications affect the interaction of nanocarriers with cellular models as well as the selection of suitable models for in vitro experiments. MDR cancer cells, and particularly their 2D and 3D models, in combination with anatomical and physiological structures of tumor tissues, can boost the design and preparation of nanomedicines for anticancer therapy. 2D and 3D cancer cell cultures are suitable models to study the interaction, internalization, and efficacy of nanocarriers, the mechanisms of MDR in cancer cells and tissues, and they are used to tailor a personalized medicine and improve the efficacy of anticancer treatment in patients. The description of molecular mechanisms and physio-pathological pathways of these models further allow the design of nanomedicine that can efficiently overcome biological barriers involved in MDR and test the activity of nanocarriers in 2D and 3D models of MDR cancer cells.

摘要

多药耐药性(MDR)目前是癌症治疗中的一大挑战,限制了其在部分患者中的治疗成效。肿瘤利用多药耐药机制在宿主体内定植,并降低作为单一药物或联合用药注射的化疗药物的疗效。多药耐药机制负责使药物失活,并在癌症中形成生物屏障,如药物外排泵、异常的细胞外基质、缺氧区域、改变的细胞死亡机制等。纳米载体具有克服这些屏障并提高化疗药物疗效的潜力。事实上,它们具有多功能性,能够递送天然和合成生物分子以及RNA干扰/DNA干扰,从而在肿瘤组织中实现药物的控释和协同效应。具有或不具有特定靶向分子的生物相容性和安全性多功能生物聚合物可改变纳米载体的表面和界面性质。这些修饰会影响纳米载体与细胞模型的相互作用以及体外实验合适模型的选择。多药耐药癌细胞,尤其是其二维和三维模型,与肿瘤组织的解剖和生理结构相结合,能够推动用于抗癌治疗的纳米药物的设计和制备。二维和三维癌细胞培养是研究纳米载体的相互作用、内化和疗效、癌细胞和组织中多药耐药机制的合适模型,它们被用于定制个性化药物并提高患者抗癌治疗的疗效。对这些模型的分子机制和生理病理途径的描述进一步有助于设计能够有效克服多药耐药相关生物屏障的纳米药物,并在多药耐药癌细胞的二维和三维模型中测试纳米载体的活性。

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