Lu Jinwei, Yang Xiaohui, He Chaofan, Chen Yazhou, Li Congsun, Li Sihao, Chen Yuewei, Wu Yifan, Xiang Zhihui, Kang Jiawei, Jiang Guangyao, Wang Cong, Diarra Mohamed Diaty, He Rongxin, Feng Gang, Yan Ruijian
Department of Orthopedic Surgery, The Second Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou, Zhejiang, PR China; Orthopedics Research Institute of Zhejiang University, Hangzhou, Zhejiang, PR China; Key Laboratory of Motor System Disease Research and Precision Therapy of Zhejiang Province, Hangzhou, Zhejiang, PR China; Clinical Research Center of Motor System Disease of Zhejiang Province, PR China.
Department of General Surgery, The Fourth Affiliated Hospital Zhejiang University School of Medicine, Yiwu 322000, China.
Acta Biomater. 2023 Apr 15;161:80-99. doi: 10.1016/j.actbio.2023.02.018. Epub 2023 Feb 17.
The regenerative capabilities including self-renewal, migration and differentiation potentials shift from the embryonic phase to the mature period of endogenous tendon stem/progenitor cells (TSPCs) characterize restricted functions and disabilities following tendon injuries. Recent studies have shown that tendon regeneration and repair rely on multiple specific transcription factors to maintain TSPCs characteristics and functions. Here, we demonstrate Yap, a Hippo pathway downstream effector, is associated with TSPCs phenotype and regenerative potentials through gene expression analysis of tendon development and repair process. Exosomes have been proven an efficient transport platform for drug delivery. In this study, purified exosomes derived from donor platelets are loaded with recombinant Yap1 protein (PLT-Exo-Yap1) via electroporation to promote the stemness and differentiation potentials of TSPCs in vitro. Programmed TSPCs with Yap1 import maintain stemness and functions after long-term passage in vitro. The increased oxidative stress levels of TSPCs are related to the phenotype changes in duplicative senescent processes. The results show that treatment with PLT-Exo-Yap1 significantly protects TSPCs against oxidative stressor-induced stemness loss and senescence-associated secretory phenotype (SASP) through the NF-κB signaling pathway. In addition, we fabricate an Exos-Yap1-functioned GelMA hydrogel with a parallel-aligned substrate structure to enhance TSPCs adhesion, promote cell stemness and force regenerative cells toward the tendon lineage for in vitro and in vivo tendon regeneration. The application of Exos-Yap1 functioned implant assists new tendon-like tissue formation with good mechanical properties and locomotor functions in a full-cut Achilles tendon defect model. Thus, PLT-Exo-Yap1-functionalized GelMA promotes the rejuvenation of TSPCs to facilitate functional tendon regeneration. STATEMENT OF SIGNIFICANCE: This is the first study to explore that the hippo pathway downstream effector Yap is involved in tendon aging and repair processes, and is associated with the regenerative capabilities of TSPCs. In this syudy, Platelet-derived exosomes (PLT-Exos) act as an appropriate carrier platform for the delivery of recombinant Yap1 into TSPCs to regulate Yap activity. Effective Yap1 delivery inhibit oxidative stress-induced senescence associated phenotype of TSPCs by blocking ROS-mediated NF-κb signaling pathway activation. This study emphasizes that combined application of biomimetic scaffolds and Yap1 loaded PLT-Exos can provide structural support and promote rejuvenation of resident cells to assist functional regeneration for Achilles tendon defect, and has the prospect of clinical setting.
内源性肌腱干/祖细胞(TSPCs)的再生能力,包括自我更新、迁移和分化潜能,从胚胎期到成熟期的转变,表现为肌腱损伤后功能受限和功能障碍。最近的研究表明,肌腱的再生和修复依赖于多种特定的转录因子来维持TSPCs的特性和功能。在此,我们通过对肌腱发育和修复过程的基因表达分析证明,Hippo信号通路的下游效应因子Yap与TSPCs的表型和再生潜能相关。外泌体已被证明是一种高效的药物递送平台。在本研究中,通过电穿孔将来自供体血小板的纯化外泌体负载重组Yap1蛋白(PLT-Exo-Yap1),以促进TSPCs在体外的干性和分化潜能。导入Yap1的程序化TSPCs在体外长期传代后仍能维持干性和功能。TSPCs氧化应激水平的升高与复制性衰老过程中的表型变化有关。结果表明,PLT-Exo-Yap1处理可通过NF-κB信号通路显著保护TSPCs免受氧化应激诱导的干性丧失和衰老相关分泌表型(SASP)的影响。此外,我们制备了一种具有平行排列基质结构的Exos-Yap1功能化GelMA水凝胶,以增强TSPCs的黏附,促进细胞干性,并促使再生细胞向肌腱谱系分化,用于体外和体内的肌腱再生。在完全切断的跟腱缺损模型中,应用Exos-Yap1功能化植入物可辅助形成具有良好力学性能和运动功能的新的肌腱样组织。因此,PLT-Exo-Yap1功能化的GelMA可促进TSPCs的年轻化,以促进功能性肌腱再生。
这是第一项探索Hippo信号通路下游效应因子Yap参与肌腱衰老和修复过程,并与TSPCs的再生能力相关的研究。在本研究中,血小板衍生的外泌体(PLT-Exos)作为一种合适的载体平台,将重组Yap1递送至TSPCs以调节Yap活性。有效的Yap1递送通过阻断ROS介导的NF-κb信号通路激活,抑制氧化应激诱导的TSPCs衰老相关表型。本研究强调,仿生支架与负载Yap1的PLT-Exos联合应用可为跟腱缺损提供结构支持并促进驻留细胞的年轻化,以辅助功能再生,具有临床应用前景。