School of Pharmacy, Jiangsu Key Laboratory of Inflammation and Molecular Drug Targets, Nantong University, Nantong, Jiangsu, 226001, China.
Biomater Sci. 2022 Oct 11;10(20):5756-5785. doi: 10.1039/d2bm01044e.
Nanomaterials have shown significant advantages in cancer theranostics, owing to their enhanced permeability and retention effect in tumors and multi-function integration capability. Biological membranes, which are collected from various cells and their secreted membrane structures, can further be applied to establish membrane-based nanomaterials with perfect biocompatibility, tumor-targeting capacity, immune-stimulatory activity and adjustable versatility for cancer therapy. In this review, according to their source, membranes are divided into four groups: (1) cell membranes; (2) secretory membranes; (3) engineered membranes; and (4) hybrid membranes. First, cell membranes can be extracted from natural cells of the body, tumor tissue cells, and bacteria. Furthermore, secretory membranes mainly refer to exosome, apoptotic body and bacterial outer membrane vesicle, and membranes with specific protein/peptide expression or therapeutic inclusions are obtained from engineered cells. Finally, a hybrid membrane will be constituted by two or more of the abovementioned membranes. These membranes can form drug-carrying nanoparticles themselves or coat multi-functional nanoparticles, further realizing efficient cancer therapy. We summarize the application of various biological membrane-based nanomaterials in cancer therapy and point out their advantages as well as the places that need to be further improved, providing systematic knowledge of this field and a strategy for further optimization.
纳米材料在癌症诊治中表现出显著优势,这归因于它们在肿瘤中的增强渗透和滞留效应以及多功能集成能力。生物膜来源于各种细胞及其分泌的膜结构,可以进一步应用于建立具有完美生物相容性、肿瘤靶向能力、免疫刺激性和可调节多功能性的基于膜的纳米材料,用于癌症治疗。在本综述中,根据其来源,膜分为四组:(1)细胞膜;(2)分泌膜;(3)工程膜;和(4)混合膜。首先,细胞膜可以从体内的天然细胞、肿瘤组织细胞和细菌中提取。此外,分泌膜主要是指外泌体、凋亡小体和细菌外膜囊泡,并且可以从工程细胞中获得具有特定蛋白/肽表达或治疗性内含物的膜。最后,混合膜将由两种或更多种上述膜组成。这些膜可以自行形成载药纳米颗粒,或包覆多功能纳米颗粒,从而进一步实现有效的癌症治疗。我们总结了各种基于生物膜的纳米材料在癌症治疗中的应用,并指出了它们的优势以及需要进一步改进的地方,为该领域提供了系统的知识和进一步优化的策略。