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可编程 DNA 水凝胶为增强基于自噬的治疗方法在椎间盘退变治疗中提供合适的微环境。

Programmable DNA hydrogel provides suitable microenvironment for enhancing autophagy-based therapies in intervertebral disc degeneration treatment.

机构信息

Department of Spine Surgery Renji Hospital, Shanghai JiaoTong University School of Medicine, 160 Pujian Road, Shanghai, 200127, P. R. China.

Department of Ophthalmology and Vision Science, Ear, Nose and Throat Hospital, Shanghai Eye, Fudan University, Shanghai, China.

出版信息

J Nanobiotechnology. 2023 Sep 28;21(1):350. doi: 10.1186/s12951-023-02109-5.

Abstract

The pathogenesis of intervertebral disc degeneration (IVDD) is attributed to metabolic dysregulation within the extracellular matrix and heightened apoptosis of nucleus pulposus cells (NPC). Therefore, a potential therapeutic strategy for managing IVDD involves the reestablishment of metabolic equilibrium within the extracellular matrix and the suppression of excessive myeloid cell apoptosis. The microRNA, miR-5590, displays marked differential expression in degenerative nucleus pulposus (NP) tissues and exerts a direct influence on the regulation of DDX5 expression. This, in turn, modulates mammalian target of rapamycin (mTOR) phosphorylation, thereby impacting autophagy and apoptosis. However, ensuring the smooth delivery of miRNA to a specific injury site poses a significant challenge. To address this issue, a multifunctional DNA hydrogel was developed and subsequently loaded with miR-5590 via spherical nucleic acids (SNAs) for the treatment of IVDD. The hydrogel, which exhibits versatility, has the potential to be administered through injection at the site of injury, resulting in a consistent and prolonged release of miR-5590. This leads to the creation of a genetic microenvironment within the NP, which triggers the onset of autophagy in NPCs and subsequently suppresses apoptosis. As a result, this process regulates the metabolic equilibrium within the extracellular matrix, thereby impeding the in vitro and in vivo progression of IVDD. The amalgamation of miRNAs and biomaterials offers a promising therapeutic strategy for the management of IVDD in clinical settings.

摘要

椎间盘退变(IVDD)的发病机制归因于细胞外基质代谢失调和髓核细胞(NPC)凋亡增加。因此,管理 IVDD 的潜在治疗策略涉及在细胞外基质内重建代谢平衡和抑制过多的髓样细胞凋亡。miR-5590 在退变的髓核(NP)组织中表达明显不同,并直接影响 DDX5 的表达调控。这反过来又调节哺乳动物雷帕霉素靶蛋白(mTOR)磷酸化,从而影响自噬和细胞凋亡。然而,确保 miRNA 顺利递送到特定的损伤部位是一个重大挑战。为了解决这个问题,开发了一种多功能 DNA 水凝胶,并通过球形核酸(SNAs)将 miR-5590 加载到其中,用于治疗 IVDD。这种水凝胶具有多功能性,可通过注射到损伤部位进行给药,从而实现 miR-5590 的持续和延长释放。这在 NP 内创造了一个遗传微环境,触发 NPC 中的自噬,进而抑制细胞凋亡。因此,这一过程调节了细胞外基质内的代谢平衡,从而阻碍了 IVDD 在体外和体内的进展。miRNAs 和生物材料的结合为临床管理 IVDD 提供了一种有前途的治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a54d/10537074/0e5908c215aa/12951_2023_2109_Fig1_HTML.jpg

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