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诱导多能干细胞在心脏组织工程3D生物打印中的研究进展与展望

Advances and Prospects in Using Induced Pluripotent Stem Cells for 3D Bioprinting in Cardiac Tissue Engineering.

作者信息

Du Baoluo, Dai Ziqiang, Wang Huan, Ren Zhipeng, Li Dianyuan

机构信息

Department of Cardiovascular Surgery, The Affiliated Suzhou Hospital of Nanjing Medical University, Suzhou Municipal Hospital, Gusu School, Nanjing Medical University, 215008 Suzhou, Jiangsu, China.

出版信息

Rev Cardiovasc Med. 2025 Mar 19;26(3):26697. doi: 10.31083/RCM26697. eCollection 2025 Mar.

Abstract

BACKGROUND

Cardiovascular diseases remain one of the leading causes of death worldwide. Given the limited self-repair capacity of cardiac tissue, cardiac tissue engineering (CTE) aims to develop strategies and materials for repairing or replacing damaged cardiac tissue by combining biology, medicine, and engineering. Indeed, CTE has made significant strides since the discovery of induced pluripotent stem cells (iPSCs) in 2006, including creating cardiac patches, organoids, and chip models derived from iPSCs, thus offering new strategies for treating cardiac diseases.

METHODS

A systematic search for relevant literature published between 2003 and 2024 was conducted in the PubMed and Web of Science databases using "Cardiac Tissue Engineering", "3D Bioprinting", "Scaffold in Tissue Engineering", "Induced Pluripotent Stem Cells", and "iPSCs" as keywords.

RESULTS

This systematic search using the abovementioned keywords identified relevant articles for inclusion in this review. The resulting literature indicated that CTE can offer innovative solutions for treating cardiac diseases when integrated with three-dimensional (3D) bioprinting and iPSC technology.

CONCLUSIONS

Despite notable advances in the field of CTE, multiple challenges remain relating to 3D-bioprinted cardiac tissues. These include maintaining long-term cell viability, achieving precise cell distribution, tissue vascularization, material selection, and cost-effectiveness. Therefore, further research is needed to optimize printing techniques, develop more advanced bio-inks, explore larger-scale tissue constructs, and ensure the biosafety and functional fidelity of engineered cardiac tissues. Subsequently, future research efforts should focus on these areas to facilitate the clinical translation of CTE. Moreover, additional long-term animal models and preclinical studies should be conducted to ensure the biosafety and functionality of engineered cardiac tissues, thereby creating novel possibilities for treating patients with heart diseases.

摘要

背景

心血管疾病仍然是全球主要死因之一。鉴于心脏组织的自我修复能力有限,心脏组织工程(CTE)旨在通过结合生物学、医学和工程学,开发修复或替换受损心脏组织的策略和材料。事实上,自2006年诱导多能干细胞(iPSC)被发现以来,心脏组织工程已经取得了重大进展,包括创建源自iPSC的心脏贴片、类器官和芯片模型,从而为治疗心脏病提供了新策略。

方法

在PubMed和Web of Science数据库中,以“心脏组织工程”、“3D生物打印”、“组织工程中的支架”、“诱导多能干细胞”和“iPSC”为关键词,对2003年至2024年发表的相关文献进行系统检索。

结果

使用上述关键词进行的系统检索确定了纳入本综述的相关文章。所得文献表明,心脏组织工程与三维(3D)生物打印和iPSC技术相结合时,可以为治疗心脏病提供创新解决方案。

结论

尽管心脏组织工程领域取得了显著进展,但与3D生物打印心脏组织相关的多重挑战仍然存在。这些挑战包括维持细胞长期活力、实现精确的细胞分布、组织血管化、材料选择和成本效益。因此,需要进一步研究来优化打印技术、开发更先进的生物墨水、探索更大规模的组织构建体,并确保工程心脏组织的生物安全性和功能保真度。随后,未来的研究工作应聚焦于这些领域,以促进心脏组织工程的临床转化。此外,应开展更多长期动物模型和临床前研究,以确保工程心脏组织的生物安全性和功能,从而为治疗心脏病患者创造新的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/83a2/11951483/2b648780d5f6/2153-8174-26-3-26697-g1.jpg

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