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来自肽纳米纤维的缓释氯沙坦促进软骨形成。

Sustained-release losartan from peptide nanofibers promotes chondrogenesis.

作者信息

Yamaura Kohei, Sather Nicholas A, Metlushko Anna, Nishimura Haruki, Pavlović Radoslav Z, Hambright Sealy, Ravuri Sudheer K, Philippon Marc J, Stupp Samuel I, Bahney Chelsea S, Huard Johnny

机构信息

Center for Regenerative and Personalized Medicine, Steadman Philippon Research Institute, Vail, CO, United States.

Simpson Querrey Institute for Bionanotechnology, Northwestern University, Chicago, IL, United States.

出版信息

Front Bioeng Biotechnol. 2023 Feb 6;11:1122456. doi: 10.3389/fbioe.2023.1122456. eCollection 2023.

Abstract

The central pathologic feature of osteoarthritis (OA) is the progressive loss of articular cartilage, which has a limited regenerative capacity. The TGF-β1 inhibitor, losartan, can improve cartilage repair by promoting hyaline rather that fibrous cartilage tissue regeneration. However, there are concerns about side effects associated with oral administration and short retention within the joint following intra-articular injections. To facilitate local and sustained intra-articular losartan delivery we have designed an injectable peptide amphiphile (PA) nanofiber that binds losartan. The aims of this study are to characterize the release kinetics of losartan from two different PA nanofiber compositions followed by testing pro-regenerative bioactivity on chondrocytes. We tested the impact of electrostatic interactions on nanostructure morphology and release kinetics of the negatively charged losartan molecule from either a positively or negatively charged PA nanofiber. Subsequently, cytotoxicity and bioactivity were evaluated in both normal and an IL-1β-induced OA chondrocyte model using ATDC5. Both nanofiber systems promoted cell proliferation but that the positively-charged nanofibers also significantly increased glycosaminoglycans production. Furthermore, gene expression analysis suggested that losartan-encapsulated nanofibers had significant anti-inflammatory, anti-degenerative, and cartilage regenerative effects by significantly blocking TGF-β1 in this system. The results of this study demonstrated that positively charged losartan sustained-release nanofibers may be a novel and useful treatment for cartilage regeneration and OA by blocking TGF-β1.

摘要

骨关节炎(OA)的核心病理特征是关节软骨的渐进性丧失,而关节软骨的再生能力有限。转化生长因子-β1(TGF-β1)抑制剂氯沙坦可通过促进透明软骨而非纤维软骨组织再生来改善软骨修复。然而,人们担心口服给药的副作用以及关节腔内注射后氯沙坦在关节内的滞留时间较短。为了实现氯沙坦在关节腔内的局部和持续递送,我们设计了一种可注射的肽两亲分子(PA)纳米纤维,它能结合氯沙坦。本研究的目的是表征氯沙坦从两种不同的PA纳米纤维组合物中的释放动力学,随后测试其对软骨细胞的促再生生物活性。我们测试了静电相互作用对带负电荷的氯沙坦分子从带正电荷或带负电荷的PA纳米纤维的纳米结构形态和释放动力学的影响。随后,使用ATDC5在正常和白细胞介素-1β诱导的OA软骨细胞模型中评估细胞毒性和生物活性。两种纳米纤维系统均促进细胞增殖,但带正电荷的纳米纤维还显著增加了糖胺聚糖的产生。此外,基因表达分析表明,在该系统中,包裹氯沙坦的纳米纤维通过显著阻断TGF-β1具有显著的抗炎、抗退变和软骨再生作用。本研究结果表明,带正电荷的氯沙坦缓释纳米纤维可能是一种通过阻断TGF-β1实现软骨再生和治疗骨关节炎的新型有效疗法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f192/9939695/f4f0262d8d85/fbioe-11-1122456-g001.jpg

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