Lee Sang Jin, Jeong Wonwoo, Atala Anthony
Wake Forest Institute for Regenerative Medicine, Wake Forest University School of Medicine, Winston-Salem, NC, 27157, USA.
Adv Mater. 2024 Dec;36(49):e2408032. doi: 10.1002/adma.202408032. Epub 2024 Oct 17.
Advancements in bioprinting technology are driving the creation of complex, functional tissue constructs for use in tissue engineering and regenerative medicine. Various methods, including extrusion, jetting, and light-based bioprinting, have their unique advantages and drawbacks. Over the years, researchers and industry leaders have made significant progress in enhancing bioprinting techniques and materials, resulting in the production of increasingly sophisticated tissue constructs. Despite this progress, challenges still need to be addressed in achieving clinically relevant, human-scale tissue constructs, presenting a hurdle to widespread clinical translation. However, with ongoing interdisciplinary research and collaboration, the field is rapidly evolving and holds promise for personalized medical interventions. Continued development and refinement of bioprinting technologies have the potential to address complex medical needs, enabling the development of functional, transplantable tissues and organs, as well as advanced in vitro tissue models.
生物打印技术的进步推动了用于组织工程和再生医学的复杂功能性组织构建体的创建。各种方法,包括挤出、喷射和基于光的生物打印,都有其独特的优缺点。多年来,研究人员和行业领导者在改进生物打印技术和材料方面取得了重大进展,从而生产出越来越复杂的组织构建体。尽管取得了这一进展,但在实现临床相关的、人体规模的组织构建体方面仍需应对挑战,这为广泛的临床转化带来了障碍。然而,随着跨学科研究与合作的不断推进,该领域正在迅速发展,并有望实现个性化医疗干预。生物打印技术的持续发展和完善有可能满足复杂的医疗需求,促进功能性、可移植组织和器官的开发,以及先进的体外组织模型的开发。