Matthews Niina, Pandolfo Berto, Moses Daniel, Gentile Carmine
School of Biomedical Engineering, Faculty of Engineering and IT, University of Technology Sydney (UTS), Sydney, NSW 2007, Australia.
School of Design, Faculty of Design, Architecture and Building, University of Technology Sydney (UTS), Sydney, NSW 2007, Australia.
Bioengineering (Basel). 2022 Feb 25;9(3):93. doi: 10.3390/bioengineering9030093.
Despite a massive global preventative effort, heart failure remains the major cause of death globally. The number of patients requiring a heart transplant, the eventual last treatment option, far outnumbers the available donor hearts, leaving many to deteriorate or die on the transplant waiting list. Treating heart failure by transplanting a 3D bioprinted patient-specific cardiac patch to the infarcted region on the myocardium has been investigated as a potential future treatment. To date, several studies have created cardiac patches using 3D bioprinting; however, testing the concept is still at a pre-clinical stage. A handful of clinical studies have been conducted. However, moving from animal studies to human trials will require an increase in research in this area. This review covers key elements to the design of a patient-specific cardiac patch, divided into general areas of biological design and 3D modelling. It will make recommendations on incorporating anatomical considerations and high-definition motion data into the process of 3D-bioprinting a patient-specific cardiac patch.
尽管全球进行了大规模的预防努力,但心力衰竭仍然是全球主要的死亡原因。需要进行心脏移植(这是最终的最后治疗选择)的患者数量远远超过了可用的供体心脏数量,导致许多患者在移植等待名单上病情恶化或死亡。通过将3D生物打印的患者特异性心脏补片移植到心肌梗死区域来治疗心力衰竭已被作为一种潜在的未来治疗方法进行研究。迄今为止,已有多项研究使用3D生物打印制造心脏补片;然而,对这一概念的测试仍处于临床前阶段。已经进行了一些临床研究。然而,从动物研究转向人体试验需要增加该领域的研究。本综述涵盖了患者特异性心脏补片设计的关键要素,分为生物设计和3D建模的一般领域。它将对在3D生物打印患者特异性心脏补片的过程中纳入解剖学考虑因素和高清运动数据提出建议。