Ziyang Zhou, Peiran Song, Yan Wu, Miaomiao Wang, Congyi Shen, Zhixin Ma, Xiaoxiang Ren, Xiuhui Wang, Xiao Chen, Yan Hu, Zuhao Li, Qin Zhang, Mengmeng Li, Zhen Geng and Jiacan Su
{"title":"表面硬度可控的 DNA-丝状纤维蛋白双网络水凝胶用于调节软骨分化","authors":"Ziyang Zhou, Peiran Song, Yan Wu, Miaomiao Wang, Congyi Shen, Zhixin Ma, Xiaoxiang Ren, Xiuhui Wang, Xiao Chen, Yan Hu, Zuhao Li, Qin Zhang, Mengmeng Li, Zhen Geng and Jiacan Su","doi":"10.1039/D3MH01581E","DOIUrl":null,"url":null,"abstract":"<p >Osteoarthritis (OA) is a common joint disease known for cartilage degeneration, leading to a substantial burden on individuals and society due to its high disability rate. However, current clinical treatments for cartilage defects remain unsatisfactory due to the unclear mechanisms underlying cartilage regeneration. Tissue engineering hydrogels have emerged as an attractive approach in cartilage repair. Recent research studies have indicated that stem cells can sense the mechanical strength of hydrogels, thereby regulating their differentiation fate. In this study, we present the groundbreaking construction of dual-network DNA–silk fibroin (SF) hydrogels with controllable surface rigidity. The supramolecular networks, formed through DNA base-pairing, induce the development of β-sheet structures by constraining and aggregating SF molecules. Subsequently, SF was cross-linked <em>via</em> horseradish peroxidase (HRP)-mediated enzyme reactions to form the second network. Experimental results demonstrated a positive correlation between the surface rigidity of dual-network DNA–SF hydrogels and the DNA content. Interestingly, it was observed that dual-network DNA–SF hydrogels with moderate surface rigidity exhibited the highest effectiveness in facilitating the migration of bone marrow mesenchymal stem cells (BMSCs) and their chondrogenic differentiation. Transcriptome sequencing further confirmed that dual-network DNA–SF hydrogels primarily enhanced chondrogenic differentiation of BMSCs by upregulating the Wnt and TGF-β signaling pathways while accelerating collagen II synthesis. Furthermore, <em>in vivo</em> studies revealed that dual-network DNA–SF hydrogels with moderate surface rigidity significantly accelerated cartilage regeneration. In summary, the dual-network DNA–SF hydrogels represent a promising and novel therapeutic strategy for cartilage regeneration.</p>","PeriodicalId":87,"journal":{"name":"Materials Horizons","volume":" 6","pages":" 1465-1483"},"PeriodicalIF":10.7000,"publicationDate":"2024-01-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Dual-network DNA–silk fibroin hydrogels with controllable surface rigidity for regulating chondrogenic differentiation†\",\"authors\":\"Ziyang Zhou, Peiran Song, Yan Wu, Miaomiao Wang, Congyi Shen, Zhixin Ma, Xiaoxiang Ren, Xiuhui Wang, Xiao Chen, Yan Hu, Zuhao Li, Qin Zhang, Mengmeng Li, Zhen Geng and Jiacan Su\",\"doi\":\"10.1039/D3MH01581E\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Osteoarthritis (OA) is a common joint disease known for cartilage degeneration, leading to a substantial burden on individuals and society due to its high disability rate. 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Interestingly, it was observed that dual-network DNA–SF hydrogels with moderate surface rigidity exhibited the highest effectiveness in facilitating the migration of bone marrow mesenchymal stem cells (BMSCs) and their chondrogenic differentiation. Transcriptome sequencing further confirmed that dual-network DNA–SF hydrogels primarily enhanced chondrogenic differentiation of BMSCs by upregulating the Wnt and TGF-β signaling pathways while accelerating collagen II synthesis. Furthermore, <em>in vivo</em> studies revealed that dual-network DNA–SF hydrogels with moderate surface rigidity significantly accelerated cartilage regeneration. 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引用次数: 0
摘要
骨关节炎(OA)是一种以软骨退化而闻名的常见关节疾病,因其致残率高而给个人和社会带来沉重负担。然而,由于软骨再生的机制尚不清楚,目前临床上治疗软骨缺损的方法仍不能令人满意。组织工程水凝胶已成为一种有吸引力的软骨修复方法。最近的研究表明,干细胞可以感知水凝胶的机械强度,从而调节其分化命运。在这项研究中,我们开创性地构建了表面刚度可控的DNA-丝状纤维蛋白(SF)双网络水凝胶。通过 DNA 碱基配对形成的超分子网络通过约束和聚集 SF 分子,诱导了 β 片状结构的发展。随后,通过辣根过氧化物酶(HRP)介导的酶反应交联 SF,形成第二个网络。实验结果表明,双网络 DNA-SF 水凝胶的表面刚度与 DNA 含量呈正相关。有趣的是,据观察,表面硬度适中的双网络 DNA-SF 水凝胶在促进骨髓间充质干细胞(BMSCs)迁移及其软骨分化方面表现出最高的功效。转录组测序进一步证实,双网络DNA-SF水凝胶主要通过上调Wnt和TGF-β信号通路增强骨髓间充质干细胞的软骨分化,同时加速胶原蛋白II的合成。此外,体内研究表明,表面硬度适中的双网络 DNA-SF 水凝胶能显著加速软骨再生。总之,双网络 DNA-SF 水凝胶是一种前景广阔的新型软骨再生治疗策略。
Dual-network DNA–silk fibroin hydrogels with controllable surface rigidity for regulating chondrogenic differentiation†
Osteoarthritis (OA) is a common joint disease known for cartilage degeneration, leading to a substantial burden on individuals and society due to its high disability rate. However, current clinical treatments for cartilage defects remain unsatisfactory due to the unclear mechanisms underlying cartilage regeneration. Tissue engineering hydrogels have emerged as an attractive approach in cartilage repair. Recent research studies have indicated that stem cells can sense the mechanical strength of hydrogels, thereby regulating their differentiation fate. In this study, we present the groundbreaking construction of dual-network DNA–silk fibroin (SF) hydrogels with controllable surface rigidity. The supramolecular networks, formed through DNA base-pairing, induce the development of β-sheet structures by constraining and aggregating SF molecules. Subsequently, SF was cross-linked via horseradish peroxidase (HRP)-mediated enzyme reactions to form the second network. Experimental results demonstrated a positive correlation between the surface rigidity of dual-network DNA–SF hydrogels and the DNA content. Interestingly, it was observed that dual-network DNA–SF hydrogels with moderate surface rigidity exhibited the highest effectiveness in facilitating the migration of bone marrow mesenchymal stem cells (BMSCs) and their chondrogenic differentiation. Transcriptome sequencing further confirmed that dual-network DNA–SF hydrogels primarily enhanced chondrogenic differentiation of BMSCs by upregulating the Wnt and TGF-β signaling pathways while accelerating collagen II synthesis. Furthermore, in vivo studies revealed that dual-network DNA–SF hydrogels with moderate surface rigidity significantly accelerated cartilage regeneration. In summary, the dual-network DNA–SF hydrogels represent a promising and novel therapeutic strategy for cartilage regeneration.