Solid Organ Bioprinting: Strategies to Achieve Organ Function

被引:95
作者
Jorgensen, Adam M. [1 ]
Yoo, James J. [1 ]
Atala, Anthony [1 ]
机构
[1] Wake Forest Sch Med, Wake Forest Inst Regenerat Med, Winston Salem, NC 27101 USA
关键词
MICROPOROUS POLYMER SCAFFOLDS; SMALL-INTESTINAL SUBMUCOSA; PLURIPOTENT STEM-CELLS; EXTRACELLULAR-MATRIX; ISLET TRANSPLANTATION; HEART-VALVE; BETA-CELLS; MICROCHANNEL TECHNOLOGIES; DIRECTED DIFFERENTIATION; CELL/HYDROGEL CONSTRUCT;
D O I
10.1021/acs.chemrev.0c00145
中图分类号
O6 [化学];
学科分类号
070301 [无机化学];
摘要
The field of tissue engineering has advanced over the past decade, but the largest impact on human health should be achieved with the transition of engineered solid organs to the clinic. The number of patients suffering from solid organ disease continues to increase, with over 100 000 patients on the U.S. national waitlist and approximately 730 000 deaths in the United States resulting from end-stage organ disease annually. While flat, tubular, and hollow nontubular engineered organs have already been implanted in patients, in vitro formation of a fully functional solid organ at a translatable scale has not yet been achieved. Thus, one major goal is to bioengineer complex, solid organs for transplantation, composed of patient-specific cells. Among the myriad of approaches attempted to engineer solid organs, 3D bioprinting offers unmatched potential. This review highlights the structural complexity which must be engineered at nano-, micro-, and mesostructural scales to enable organ function. We showcase key advances in bioprinting solid organs with complex vascular networks and functioning microstructures, advances in biomaterials science that have enabled this progress, the regulatory hurdles the field has yet to overcome, and cutting edge technologies that bring us closer to the promise of engineered solid organs.
引用
收藏
页码:11140 / 11174
页数:35
相关论文
共 273 条
[1]
Tissue engineering of human hair follicles using a biomimetic developmental approach [J].
Abaci, Hasan Erbil ;
Coffman, Abigail ;
Doucet, Yanne ;
Chen, James ;
Jackow, Joanna ;
Wang, Etienne ;
Guo, Zongyou ;
Shin, Jung U. ;
Jahoda, Colin A. ;
Christiano, Angela M. .
NATURE COMMUNICATIONS, 2018, 9
[2]
Fibrin: A versatile scaffold for tissue engineering applications [J].
Ahmed, Tamer A. E. ;
Dare, Emma V. ;
Hincke, Max .
TISSUE ENGINEERING PART B-REVIEWS, 2008, 14 (02) :199-215
[3]
Microfabrication of scaffold-free tissue strands for three-dimensional tissue engineering [J].
Akkouch, Adil ;
Yu, Yin ;
Ozbolat, Ibrahim T. .
BIOFABRICATION, 2015, 7 (03)
[4]
In Situ Bioprinting of Autologous Skin Cells Accelerates Wound Healing of Extensive Excisional Full-Thickness Wounds [J].
Albanna, Mohammed ;
Binder, Kyle W. ;
Murphy, Sean V. ;
Kim, Jaehyun ;
Qasem, Shadi A. ;
Zhao, Weixin ;
Tan, Josh ;
El-Amin, Idris B. ;
Dice, Dennis D. ;
Marco, Julie ;
Green, Jason ;
Xu, Tao ;
Skardal, Aleksander ;
Holmes, James H. ;
Jackson, John D. ;
Atala, Anthony ;
Yoo, James J. .
SCIENTIFIC REPORTS, 2019, 9 (1)
[5]
A Photo-Crosslinkable Kidney ECM-Derived Bioink Accelerates Renal Tissue Formation [J].
Ali, Mohamed ;
Kumar, Anil P. R. ;
Yoo, James J. ;
Zahran, Faten ;
Atala, Anthony ;
Lee, Sang Jin .
ADVANCED HEALTHCARE MATERIALS, 2019, 8 (07)
[6]
Amer Diabet Assoc, 2010, DIABETES CARE, V33, pS11, DOI [10.2337/dc11-S062, 10.2337/dc10-S011, 10.2337/dc11-S011, 10.2337/dc14-S081, 10.2337/dc12-s064, 10.2337/dc12-s011, 10.2337/dc10-S062, 10.2337/dc13-S067, 10.2337/dc13-S011]
[8]
[9]
[Anonymous], 2014, CIRCULATION, DOI DOI 10.1161/01.cir.0000441139.02102.80
[10]
[Anonymous], 2018, ALL REG MED ANN REP