题名 | Scaffold-based non-viral CRISPR delivery platform for efficient and prolonged gene activation to accelerate tissue regeneration |
作者 | |
通讯作者 | Fang,Ju; Ren,Fuzeng |
共同第一作者 | Zhong,Chuanxin; He,Shan |
发表日期 | 2024-01-02
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DOI | |
发表期刊 | |
ISSN | 1742-7061
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EISSN | 1878-7568
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卷号 | 173页码:283-297 |
摘要 | Clustered regularly interspaced short palindromic repeat activation (CRISPRa) technology has emerged as a precise genome editing tool for activating endogenous transgene expression. While it holds promise for precise cell modification, its translation into tissue engineering has been hampered by biosafety concerns and suboptimal delivery methods. To address these challenges, we have developed a CRISPRa non-viral gene delivery platform by immobilizing non-viral CRISPRa complexes into a biocompatible hydrogel/nanofiber (Gel/NF) composite scaffold. The Gel/NF scaffold facilitates the controlled and sustained release of CRISPRa complexes and also promotes cell recruitment to the scaffold for efficient and localized transfection. As a proof of concept, we employed this CRISPRa delivery platform to activate the vascular endothelial growth factor (VEGF) gene in a rat model with full-thickness skin defects. Our results demonstrate sustained upregulation of VEGF expression even at 21 days post-implantation, resulting in enhanced angiogenesis and improved skin regeneration. These findings underscore the potential of the Gel/NF scaffold-based CRISPRa delivery platform as an efficient and durable strategy for gene activation, offering promising prospects for tissue regeneration. Statement of significance: Translation of clustered regularly interspaced short palindromic repeat activation (CRISPRa) therapy to tissue engineering is limited by biosafety concerns and unsatisfactory delivery strategy. To solve this issue, we have developed a CRISPRa non-viral gene delivery platform by immobilizing non-viral CRISPRa complexes into a biocompatible hydrogel/nanofiber (Gel/NF) composite scaffold. This scaffold enables controlled and sustained release of CRISPRa and can induce cell recruitment for localized transfection. As a proof of concept, we activated vascular endothelial growth factor (VEGF) in a rat model with full-thickness skin defects, leading to sustained upregulation of VEGF expression, enhanced angiogenesis and improved skin regeneration in vivo. These findings demonstrate the potential of this platform for gene activation, thereby offering promising prospects for tissue regeneration. |
关键词 | |
相关链接 | [Scopus记录] |
收录类别 | |
语种 | 英语
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学校署名 | 第一
; 共同第一
; 通讯
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Scopus记录号 | 2-s2.0-85176431210
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来源库 | Scopus
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引用统计 | |
成果类型 | 期刊论文 |
条目标识符 | http://sustech.caswiz.com/handle/2SGJ60CL/669683 |
专题 | 工学院_材料科学与工程系 生命科学学院 生命科学学院_生物系 |
作者单位 | 1.Department of Materials Science and Engineering,Southern University of Science and Technology,Shenzhen,Guangdong,518055,China 2.Law Sau Fai Institute for Advancing Translational Medicine in Bone and Joint Diseases,School of Chinese Medicine,Hong Kong Baptist University,Hong Kong,Hong Kong 3.Department of Biology,Southern University of Science and Technology,Shenzhen,Guangdong,518055,China |
第一作者单位 | 材料科学与工程系 |
通讯作者单位 | 材料科学与工程系 |
第一作者的第一单位 | 材料科学与工程系 |
推荐引用方式 GB/T 7714 |
Zhong,Chuanxin,He,Shan,Huang,Yuhong,et al. Scaffold-based non-viral CRISPR delivery platform for efficient and prolonged gene activation to accelerate tissue regeneration[J]. Acta Biomaterialia,2024,173:283-297.
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APA |
Zhong,Chuanxin.,He,Shan.,Huang,Yuhong.,Yan,Jianfeng.,Wang,Junqin.,...&Ren,Fuzeng.(2024).Scaffold-based non-viral CRISPR delivery platform for efficient and prolonged gene activation to accelerate tissue regeneration.Acta Biomaterialia,173,283-297.
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MLA |
Zhong,Chuanxin,et al."Scaffold-based non-viral CRISPR delivery platform for efficient and prolonged gene activation to accelerate tissue regeneration".Acta Biomaterialia 173(2024):283-297.
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条目包含的文件 | 条目无相关文件。 |
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