Zarepour Arezou, Bal Öztürk Ayça, Koyuncu Irmak Duygu, Yaşayan Gökçen, Gökmen Aylin, Karaöz Erdal, Zarepour Atefeh, Zarrabi Ali, Mostafavi Ebrahim
Radiology Department, Kashan University of Medical Sciences, Kashan, Isfahan, Iran.
Department of Stem Cell and Tissue Engineering, Institute of Health Sciences, Istinye University, Istanbul, Turkey; Department of Analytical Chemistry, Faculty of Pharmacy, Istinye University, Zeytinburnu, Turkey.
Eur J Pharm Biopharm. 2022 Aug;177:224-240. doi: 10.1016/j.ejpb.2022.07.004. Epub 2022 Jul 16.
As a part of the central nervous system, the spinal cord (SC) provides most of the communications between the brain and other parts of the body. Any damage to SC interrupts this communication, leading to serious problems, which may remain for the rest of their life. Due to its significant impact on patients' quality of life and its exorbitant medical costs, SC injury (SCI) is known as one of the most challengeable diseases in the world. Thus, it is critical to introduce highly translatable therapeutic platforms for SCI treatment. So far, different strategies have been introduced, among which utilizing various types of stem cells is one of the most interesting ones. The capability of stem cells to differentiate into several types of cell lines makes them promising candidates for the regeneration of injured tissues. One of the other interesting and novel strategies for SCI treatment is the application of nanomaterials, which could appear as a carrier for therapeutic agents or as a platform for culturing the cells. Combining these two approaches, stem cells and nanomaterials, could provide promising therapeutic strategies for SCI management. Accordingly, in this review we have summarized some of the recent advancements in which the applications of different types of stem cells and nanomaterials, alone and in combination forms, were evaluated for SCI treatment.
作为中枢神经系统的一部分,脊髓为大脑与身体其他部位之间提供了大部分通信联系。脊髓的任何损伤都会中断这种通信,导致严重问题,这些问题可能会伴随患者终生。由于脊髓损伤(SCI)对患者生活质量有重大影响且医疗成本高昂,它被认为是世界上最具挑战性的疾病之一。因此,引入高度可转化的治疗平台来治疗脊髓损伤至关重要。到目前为止,已经提出了不同的策略,其中利用各种类型的干细胞是最有趣的策略之一。干细胞能够分化为多种细胞系,这使其成为受损组织再生的有潜力的候选者。脊髓损伤治疗的另一个有趣且新颖的策略是应用纳米材料,纳米材料可以作为治疗剂的载体或作为细胞培养的平台。将干细胞和纳米材料这两种方法结合起来,可以为脊髓损伤的管理提供有前景的治疗策略。因此,在本综述中,我们总结了一些近期的进展,其中评估了不同类型的干细胞和纳米材料单独及组合形式在脊髓损伤治疗中的应用。