Laboratory for Biomaterials, Materials Research Centre, Indian Institute of Science, Bengaluru, 560012, India.
Laboratory for Biomaterials, Materials Research Centre, Indian Institute of Science, Bengaluru, 560012, India; Centre for Biosystems Science and Engineering, Indian Institute of Science, Bengaluru, 560012, India.
Biomaterials. 2023 Oct;301:122271. doi: 10.1016/j.biomaterials.2023.122271. Epub 2023 Aug 8.
In the past few decades, stem cell-based regenerative engineering has demonstrated its significant potential to repair damaged tissues and to restore their functionalities. Despite such advancement in regenerative engineering, the clinical translation remains a major challenge. In the stance of personalized treatment, the recent progress in bioelectronic medicine likewise evolved as another important research domain of larger significance for human healthcare. Over the last several years, our research group has adopted biomaterials-based regenerative engineering strategies using innovative bioelectronic stimulation protocols based on either electric or magnetic stimuli to direct cellular differentiation on engineered biomaterials with a range of elastic stiffness or functional properties (electroactivity/magnetoactivity). In this article, the role of bioelectronics in stem cell-based regenerative engineering has been critically analyzed to stimulate futuristic research in the treatment of degenerative diseases as well as to address some fundamental questions in stem cell biology. Built on the concepts from two independent biomedical research domains (regenerative engineering and bioelectronic medicine), we propose a converging research theme, 'Regenerative Bioelectronics'. Further, a series of recommendations have been put forward to address the current challenges in bridging the gap in stem cell therapy and bioelectronic medicine. Enacting the strategic blueprint of bioelectronic-based regenerative engineering can potentially deliver the unmet clinical needs for treating incurable degenerative diseases.
在过去几十年中,基于干细胞的再生工程已证明其在修复受损组织和恢复其功能方面具有巨大的潜力。尽管再生工程取得了这样的进展,但临床转化仍然是一个主要挑战。在个性化治疗的立场上,生物电子医学的最新进展同样发展成为人类健康护理领域更具重要意义的另一个重要研究领域。在过去的几年中,我们的研究小组采用了基于生物材料的再生工程策略,使用基于电或磁刺激的创新生物电子刺激方案,在具有一系列弹性刚度或功能特性(电活性/磁活性)的工程生物材料上指导细胞分化。在本文中,批判性地分析了生物电子学在基于干细胞的再生工程中的作用,以激发治疗退行性疾病的未来研究,并解决干细胞生物学中的一些基本问题。基于两个独立的生物医学研究领域(再生工程和生物电子医学)的概念,我们提出了一个汇聚的研究主题,即“再生生物电子学”。此外,还提出了一系列建议,以解决在干细胞治疗和生物电子医学之间架起桥梁的当前挑战。实施基于生物电子学的再生工程的战略蓝图有可能满足治疗不可治愈退行性疾病的未满足的临床需求。