Garciamendez-Mijares Carlos Ezio, Ruiz David S Rendon, Kuang Xiao, Halabe Alejandro Said Gonzalez, Gonzalez Begoña Sanchez, Ruiz Carlos Gabriel Rivera, Mestre Francisco Lugo, Nunes Fabio Caixeta, Zhang Yu Shrike
Division of Engineering in Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Cambridge, MA, 02139, USA.
Small Methods. 2025 Jul 26:e2500733. doi: 10.1002/smtd.202500733.
Bioprinting has facilitated tissue engineering by enabling the fabrication of biologically and physiologically relevant 3D constructs. However, conventional bioprinting techniques often lack precise control over the spatial organization of cells within bioprinted structures. Acoustics, on the other hand, offers a powerful tool for non-contact, label-free, high-precision cell manipulation but is inherently limited in its ability to create complex volumetric architectures. The integration of these two technologies, termed acoustic bioprinting, holds significant promise for advancing biofabrication. In this review, the synergistic potential of acoustics in enhancing three primary bioprinting modalities-droplet, light-polymerization, and extrusion-is analyzed. The ways in which acoustic fields can improve cell patterning, alignment, and bioink-manipulation-leading to more biomimetic constructs with enhanced physiological properties-are dicussed. Additionally, novel ultrasound-polymerization-based bioprinting technologies that leverage cavitation, sono-thermal effects, and liposome-mediated polymerization to enable deep penetration biofabrication, expanding the scope of bioprinting beyond conventional methods, are explored. By leveraging the strengths of both bioprinting and acoustics, this review highlights emerging strategies that can shape the next generation of biofabrication, offering innovative solutions for tissue engineering and regenerative medicine.
生物打印通过制造具有生物学和生理学相关性的3D构建体促进了组织工程的发展。然而,传统的生物打印技术往往缺乏对生物打印结构内细胞空间组织的精确控制。另一方面,声学为非接触、无标记、高精度的细胞操作提供了一个强大的工具,但其在创建复杂的体积结构方面的能力存在固有局限。这两种技术的整合,即声学生物打印,在推进生物制造方面具有重大前景。在这篇综述中,分析了声学在增强三种主要生物打印方式——液滴、光聚合和挤出——方面的协同潜力。讨论了声场改善细胞图案化、排列和生物墨水操作的方式,从而产生具有增强生理特性的更仿生构建体。此外,还探索了基于超声聚合的新型生物打印技术,这些技术利用空化、声热效应和脂质体介导的聚合来实现深层穿透生物制造,将生物打印的范围扩展到传统方法之外。通过利用生物打印和声学的优势,本综述强调了能够塑造下一代生物制造的新兴策略,为组织工程和再生医学提供创新解决方案。