Zhou Hao, Qian Qiuping, Chen Qizhu, Chen Tao, Wu Chenyu, Chen Linjie, Zhang Zhiguang, Wu Ouqiang, Jin Yuxin, Wang Xinzhou, Guo Zhenyu, Sun Jing, Zhang Jun, Shen Shuying, Wang Xiangyang, Jones Morgan, Khan Moonis Ali, Makvandi Pooyan, Zhou Yunlong, Wu Aimin
Department of Orthopaedics, Key Laboratory of Structural Malformations in Children of Zhejiang Province, Key Laboratory of Orthopaedics of Zhejiang Province, The Second Affiliated Hospital and Yuying Children's Hospital of Wenzhou Medical University, Wenzhou, Zhejiang, 325000, China.
Zhejiang Engineering Research Center for Tissue Repair Materials, Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou, Zhejiang, 325000, China.
Small. 2024 Mar;20(13):e2308167. doi: 10.1002/smll.202308167. Epub 2023 Nov 12.
Intervertebral disc degeneration (IVDD) is a significant contributor to low back pain, characterized by excessive reactive oxygen species generation and inflammation-induced pyroptosis. Unfortunately, there are currently no specific molecules or materials available to effectively delay IVDD. This study develops a multifunctional full name of PG@Cu nanoparticle network (PG@Cu). A designed pentapeptide, bonded on PG@Cu nanoparticles via a Schiff base bond, imparts multifunctionality to the metal polyphenol particles (PG@Cu-FP). PG@Cu-FP exhibits enhanced escape from lysosomal capture, enabling efficient targeting of mitochondria to scavenge excess reactive oxygen species. The scavenging activity against reactive oxygen species originates from the polyphenol-based structures within the nanoparticles. Furthermore, Pyroptosis is effectively blocked by inhibiting Gasdermin mediated pore formation and membrane rupture. PG@Cu-FP successfully reduces the activation of the nucleotide-binding oligomerization domain-like receptor family pyrin domain-containing 3 inflammasome by inhibiting Gasdermin protein family (Gasdermin D, GSDMD) oligomerization, leading to reduced expression of Nod-like receptors. This multifaceted approach demonstrates higher efficiency in inhibiting Pyroptosis. Experimental results confirm that PG@Cu-FP preserves disc height, retains water content, and preserves tissue structure. These findings highlight the potential of PG@Cu-FP in improving IVDD and provide novel insights for future research in IVDD treatments.
椎间盘退变(IVDD)是导致腰痛的一个重要因素,其特征是活性氧过度产生和炎症诱导的细胞焦亡。不幸的是,目前尚无有效的分子或材料能够有效延缓IVDD。本研究开发了一种多功能的PG@Cu纳米颗粒网络(PG@Cu)。一种设计的五肽通过席夫碱键连接在PG@Cu纳米颗粒上,赋予金属多酚颗粒(PG@Cu-FP)多功能性。PG@Cu-FP表现出增强的从溶酶体捕获中逃逸的能力,能够有效地靶向线粒体以清除过量的活性氧。对活性氧的清除活性源于纳米颗粒内基于多酚的结构。此外,通过抑制Gasdermin介导的孔形成和膜破裂,细胞焦亡被有效阻断。PG@Cu-FP通过抑制Gasdermin蛋白家族(Gasdermin D,GSDMD)寡聚化,成功降低了含核苷酸结合寡聚化结构域样受体家族吡啉结构域3炎性小体的激活,导致Nod样受体表达降低。这种多方面的方法在抑制细胞焦亡方面显示出更高的效率。实验结果证实,PG@Cu-FP保留了椎间盘高度,保持了水分含量,并保留了组织结构。这些发现突出了PG@Cu-FP在改善IVDD方面的潜力,并为IVDD治疗的未来研究提供了新的见解。