Center for 3D Organ Printing and Stem Cells, Pohang University of Science and Technology (POSTECH), Pohang, 37563, Republic of Korea.
Department of Convergence IT Engineering (POSTECH), Pohang, 37666, Republic of Korea.
Biosens Bioelectron. 2024 Sep 15;260:116420. doi: 10.1016/j.bios.2024.116420. Epub 2024 May 22.
Bioengineered hearts, which include single cardiomyocytes, engineered heart tissue, and chamber-like models, generate various biosignals, such as contractility, electrophysiological, and volume-pressure dynamic signals. Monitoring changes in these signals is crucial for understanding the mechanisms of disease progression and developing potential treatments. However, current methodologies face challenges in the continuous monitoring of bioengineered hearts over extended periods and typically require sacrificing the sample post-experiment, thereby limiting in-depth analysis. Thus, a biohybrid system consisting of living and nonliving components was developed. This system primarily features heart tissue alongside nonliving elements designed to support or comprehend its functionality. Biohybrid printing technology has simplified the creation of such systems and facilitated the development of various functional biohybrid systems capable of measuring or even regulating multiple functions, such as pacemakers, which demonstrates its versatility and potential applications. The future of biohybrid printing appears promising, with the ongoing exploration of its capabilities and potential directions for advancement.
生物工程心脏,包括单个心肌细胞、工程化心脏组织和类似腔室的模型,会产生各种生物信号,如收缩性、电生理和容积-压力动力学信号。监测这些信号的变化对于理解疾病进展的机制和开发潜在的治疗方法至关重要。然而,目前的方法在生物工程心脏的长时间连续监测方面面临挑战,通常需要在实验后牺牲样本,从而限制了深入分析。因此,开发了一种由活体和非活体成分组成的生物混合系统。该系统的主要特点是心脏组织以及旨在支持或理解其功能的非活体元件。生物混合打印技术简化了此类系统的创建,并促进了各种功能生物混合系统的发展,这些系统能够测量甚至调节多种功能,如起搏器,这展示了其多功能性和潜在应用。生物混合打印的未来前景广阔,人们正在不断探索其能力和潜在的发展方向。