Chen Zhen, Lan Xiaoyun, Zhu Encan, Liu Jing, Zhang Chuangnian
Tianjin Key Laboratory of Biomaterial Research, State Key Laboratory of Advanced Medical Materials and Devices, Chinese Academy of Medical Science & Peking Union Medical College, Engineering Research Center of Pulmonary and Critical Care Medicine Technology and Device (Ministry of Education), Institute of Biomedical Engineering, Tianjin Institutes of Health Science, Tianjin 300192, China.
Tissue Eng Part B Rev. 2025 Aug 7. doi: 10.1177/19373341251364282.
Myocardial infarction (MI), a prevalent critical cardiovascular disease (CVD), poses a severe threat to patients' lives. Despite the availability of pharmacological, interventional, and surgical treatments in clinical practice, these conventional therapies encounter the bottleneck of difficulty in repairing and reconstructing damaged myocardial tissue. Additionally, novel cardiac repair approaches based on stem cell and cardiomyocyte injections are restricted by the harsh microenvironment of infarcted areas. However, biomaterial hydrogels emerge as promising candidates for MI treatment due to their strong mechanical properties, good biocompatibility, high water absorption capacity, and excellent anti-inflammatory and antioxidant properties. These features enable them to enhance the microenvironment, promote myocardial regeneration, and restore myocardial function. This article delves into the therapeutic effects of sodium alginate (SA) and its composite hydrogel materials in repairing and regenerating myocardial injuries caused by MI. Furthermore, it offers insights into the future research directions of SA and its composite hydrogel materials. It also explores their potential applications in the field of CVDs. Impact Statement This review article highlights the significance and potential impact of sodium alginate (SA)-based hydrogels in myocardial infarction (MI) treatment. It effectively communicates the importance of the research, the gap in the current treatments for MI, and how the reviewed SA hydrogels offer a promising solution with their unique properties. It also clearly states the intended contribution to the field and the potential benefits for researchers and clinicians.
心肌梗死(MI)是一种常见的严重心血管疾病(CVD),对患者的生命构成严重威胁。尽管临床实践中有药物、介入和手术治疗方法,但这些传统疗法在修复和重建受损心肌组织方面遇到了困难的瓶颈。此外,基于干细胞和心肌细胞注射的新型心脏修复方法受到梗死区域恶劣微环境的限制。然而,生物材料水凝胶因其强大的机械性能、良好的生物相容性、高吸水能力以及出色的抗炎和抗氧化性能,成为心肌梗死治疗的有希望的候选材料。这些特性使它们能够改善微环境、促进心肌再生并恢复心肌功能。本文深入探讨了海藻酸钠(SA)及其复合水凝胶材料在修复和再生心肌梗死所致心肌损伤方面的治疗效果。此外,还提供了关于SA及其复合水凝胶材料未来研究方向的见解。同时探讨了它们在心血管疾病领域的潜在应用。影响声明 这篇综述文章强调了基于海藻酸钠(SA)的水凝胶在心肌梗死(MI)治疗中的重要性和潜在影响。它有效地传达了该研究的重要性、当前心肌梗死治疗中的差距,以及所综述的SA水凝胶如何凭借其独特性能提供了一个有希望的解决方案。它还明确阐述了对该领域的预期贡献以及对研究人员和临床医生的潜在益处。