Shobhaben Pratapbhai Patel School of Pharmacy and Technology Management, SVKM'S NMIMS, V. L. Mehta road, Vile Parle (W), Mumbai, India.
Stem Cell Rev Rep. 2020 Feb;16(1):103-117. doi: 10.1007/s12015-019-09933-z.
The utilization of stem cells as novel carriers to target tissues or organs of interest is a challenging task in delivery system. The composite cellular delivery with diverse signalling molecules as therapeutics increases stem cell capability and possesses the promising potential to augment, modify or commence localized or systemic restoration for vital applications in regenerative medicine. The inherent potential of stem cells to immigrate and reside at wounded site facilitates transportation of genes, polypeptides or nanosized molecules. Liposomes are micro- to nano-lipidic vesicles formed in aqueous solutions to encapsulate complex hydrophilic and lipophilic chemical substances. Moreover, these novel nanocarriers provide safer and efficient delivery of bioactives together with their potential applications in vaccine production, cosmeceuticals, imaging and diagnostic purpose. Tissue engineering promotes rejuvenation process and involves the synchronized utilization of cells with 3D bio-material scaffolds to fabricate living structures. This strategy requires regulated stimulus of cultured cells through combined mechanical signals and bioactive agents. This review highlights and summarizes the mechanism involved in stem cell migration, strategies to enhance homing, safety and efficacy studies of stem cells in various disease models and discusses the potential role of liposomes in prolonged and localized delivery of bioactives for regenerative medicines and tissue engineering techniques. Graphical Abstract Role of PEGylated liposomes in cancer stem cell therapy.
将干细胞用作靶向目标组织或器官的新型载体是输送系统中的一项具有挑战性的任务。含有多种信号分子的复合细胞输送作为治疗方法可提高干细胞的能力,并具有增强、修饰或启动局部或全身恢复的巨大潜力,从而在再生医学中具有重要应用价值。干细胞向损伤部位迁移和驻留的固有能力促进了基因、多肽或纳米分子的运输。脂质体是在水溶液中形成的微到纳米脂质体,用于包裹复杂的亲水性和疏水性化学物质。此外,这些新型纳米载体可更安全有效地输送生物活性物质,并具有在疫苗生产、化妆品、成像和诊断方面的潜在应用。组织工程促进了组织的再生过程,涉及到与 3D 生物材料支架同步利用细胞来构建活的结构体。该策略需要通过结合机械信号和生物活性物质来调节培养细胞的刺激。本文综述了干细胞迁移的机制,增强归巢的策略,以及在各种疾病模型中干细胞的安全性和有效性研究,并讨论了 PEG 化脂质体在生物活性物质的延长和局部输送中的潜在作用,用于再生医学和组织工程技术。
PEG 化脂质体在癌症干细胞治疗中的作用。