Centre for Nanotechnology & Advanced Biomaterials (CeNTAB), SASTRA Deemed University, Thanjavur 613 401, India; School of Chemical and Biotechnology, SASTRA Deemed University, Thanjavur 613 401, India.
Centre for Nanotechnology & Advanced Biomaterials (CeNTAB), SASTRA Deemed University, Thanjavur 613 401, India; School of Chemical and Biotechnology, SASTRA Deemed University, Thanjavur 613 401, India; School of Arts, Sciences, Humanities & Education, SASTRA Deemed University, Thanjavur 613 401, India.
Int J Biol Macromol. 2022 May 31;208:627-641. doi: 10.1016/j.ijbiomac.2022.03.121. Epub 2022 Mar 25.
The emergence of new lifestyle disorders and pharmaco-resistant variants of diseases has necessitated the search for effective therapeutic moieties and approaches that could overcome the limitations in the existing treatment modalities. In this context, bioactives such as flavonoids, polyphenols, tannins, terpenoids and alkaloids have demonstrated promise in therapy owing to their ability to scavenge free radicals and modulate the mitochondrial function as well as regulate metabolic pathways. However, their clinical applicability is low owing to their poor bioavailability and aqueous solubility. The encapsulation of bioactives in nanodimensional particles has overcome these limitations to a large extent while simultaneously conferring additional advantages of improved circulation time, enhanced cell uptake and target specific release. A wide range of nanocarriers derived from biopolymers such as polysaccharides, lipids and proteins, have been explored for encapsulation of different bioactives and have reported significant improvement of the bioavailability and therapeutic efficacy of the encapsulated cargo. However, incorporation of cell-specific and mitochondria-specific elements on the nanocarriers has been relatively less explored. This review summarizes some of the recent attempts to treat different disorders using bioactives encapsulated in biopolymer nanostructures and few instances of mitochondria-specific delivery.
新的生活方式疾病和药物抗性疾病变体的出现,使得人们必须寻找有效的治疗药物和方法,以克服现有治疗方式的局限性。在这种情况下,由于具有清除自由基和调节线粒体功能以及调节代谢途径的能力,类黄酮、多酚、单宁、萜类化合物和生物碱等生物活性物质在治疗中显示出了希望。然而,由于其生物利用度和水溶性差,它们的临床应用率很低。将生物活性物质封装在纳米级颗粒中,在很大程度上克服了这些限制,同时还具有改善循环时间、增强细胞摄取和靶向特异性释放等额外优势。已经探索了多种源自生物聚合物(如多糖、脂质和蛋白质)的纳米载体来封装不同的生物活性物质,并报道了封装货物的生物利用度和治疗效果显著提高。然而,在纳米载体上加入细胞特异性和线粒体特异性元素的研究相对较少。本文综述了一些使用生物聚合物纳米结构封装的生物活性物质治疗不同疾病的最新尝试,以及一些线粒体特异性传递的实例。