Whole Organ Engineering: Approaches, Challenges, and Future Directions

被引:29
作者
Sohn, Sogu [1 ,2 ]
Van Buskirk, Maxwell [2 ,3 ]
Buckenmeyer, Michael J. [2 ,4 ,5 ]
Londono, Ricardo [2 ]
Faulk, Denver [2 ]
机构
[1] Univ Texas Austin, Biomed Engn, 107 W Dean Keeton, Austin, TX 78712 USA
[2] Organoid Therapeut Inc, 372 North Craig St, Pittsburgh, PA 15213 USA
[3] Carnegie Mellon Univ, Biomed Engn, 5000 Forbes Ave, Pittsburgh, PA 15213 USA
[4] Univ Pittsburgh, Bioengn Dept, 3700 OHara St, Pittsburgh, PA 15260 USA
[5] McGowan Inst Regenerat Med, 450 Technol Dr, Pittsburgh, PA 15219 USA
来源
APPLIED SCIENCES-BASEL | 2020年 / 10卷 / 12期
关键词
whole organ engineering; extracellular matrix; biologic scaffolds; constructive remodeling; tissue remodeling; wound healing; decellularization; genetic engineering; tissue engineering; regenerative medicine; stem cells; MESENCHYMAL STEM-CELLS; EXTRACELLULAR-MATRIX; REGENERATIVE MEDICINE; ORTHOTOPIC TRANSPLANTATION; SMALL-INTESTINE; BIOLOGIC SCAFFOLDS; TISSUE CONSTRUCTS; HUMAN PANCREAS; SMOOTH-MUSCLE; BETA-CELLS;
D O I
10.3390/app10124277
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Featured Application The specific application of this review article is for the advancement of commercially translatable technologies in the field of whole organ engineering. End-stage organ failure remains a leading cause of morbidity and mortality across the globe. The only curative treatment option currently available for patients diagnosed with end-stage organ failure is organ transplantation. However, due to a critical shortage of organs, only a fraction of these patients are able to receive a viable organ transplantation. Those patients fortunate enough to receive a transplant must then be subjected to a lifelong regimen of immunosuppressant drugs. The concept of whole organ engineering offers a promising alternative to organ transplantation that overcomes these limitations. Organ engineering is a discipline that merges developmental biology, anatomy, physiology, and cellular interactions with enabling technologies such as advanced biomaterials and biofabrication to create bioartificial organs that recapitulate native organs in vivo. There have been numerous developments in bioengineering of whole organs over the past two decades. Key technological advancements include (1) methods of whole organ decellularization and recellularization, (2) three-dimensional bioprinting, (3) advanced stem cell technologies, and (4) the ability to genetically modify tissues and cells. These advancements give hope that organ engineering will become a commercial reality in the next decade. In this review article, we describe the foundational principles of whole organ engineering, discuss key technological advances, and provide an overview of current limitations and future directions.
引用
收藏
页数:42
相关论文
共 50 条
  • [21] Engineering Myocardium for Heart Regeneration-Advancements, Considerations, and Future Directions
    Jarrell, Dillon K.
    Vanderslice, Ethan J.
    VeDepo, Mitchell C.
    Jacot, Jeffrey G.
    FRONTIERS IN CARDIOVASCULAR MEDICINE, 2020, 7
  • [22] Editorial: Tissue engineering and regenerative medicine: advances, controversies, and future directions
    Ziaran, Stanislav
    Danisovic, Lubos
    Hammer, Niels
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2025, 13
  • [23] Recent Advances in Biomaterial-Based Scaffolds for Guided Bone Tissue Engineering: Challenges and Future Directions
    Tupe, Akshay
    Patole, Vinita
    Ingavle, Ganesh
    Kavitkar, Gaurav
    Mishra Tiwari, Ruchi
    Kapare, Harshad
    Baheti, Radhika
    Jadhav, Pranali
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2024, 35 (11)
  • [24] Tissue Engineering and Regenerative Medicine Approaches to Enhance the Functional Response to Skeletal Muscle Injury
    Sicari, Brian M.
    Dearth, Christopher L.
    Badylak, Stephen F.
    ANATOMICAL RECORD-ADVANCES IN INTEGRATIVE ANATOMY AND EVOLUTIONARY BIOLOGY, 2014, 297 (01): : 51 - 64
  • [25] Regenerative Medicine and Organ Transplantation: Past, Present, and Future
    Orlando, Giuseppe
    Wood, Kathryn J.
    Stratta, Robert J.
    Yoo, James J.
    Atala, Anthony
    Soker, Shay
    TRANSPLANTATION, 2011, 91 (12) : 1310 - 1317
  • [26] Graphene-based 3D scaffolds in tissue engineering: fabrication, applications, and future scope in liver tissue engineering
    Bai, Renu Geetha
    Muthoosamy, Kasturi
    Manickam, Sivakumar
    Hilal-Alnaqbi, Ali
    INTERNATIONAL JOURNAL OF NANOMEDICINE, 2019, 14 : 5753 - 5783
  • [27] Perfusion-decellularized pancreas as a natural 3D scaffold for pancreatic tissue and whole organ engineering
    Goh, Saik-Kia
    Bertera, Suzanne
    Olsen, Phillip
    Candiello, Joseph E.
    Halfter, Willi
    Uechi, Guy
    Balasubramani, Manimalha
    Johnson, Scott A.
    Sicari, Brian M.
    Kollar, Elizabeth
    Badylak, Stephen F.
    Banerjee, Ipsita
    BIOMATERIALS, 2013, 34 (28) : 6760 - 6772
  • [28] Advancements and Challenges in Hydrogel Engineering for Regenerative Medicine
    Omidian, Hossein
    Chowdhury, Sumana Dey
    Wilson, Renae L.
    GELS, 2024, 10 (04)
  • [29] Approaches to cutaneous wound healing: basics and future directions
    Zeng, Ruijie
    Lin, Chuangqiang
    Lin, Zehuo
    Chen, Hong
    Lu, Weiye
    Lin, Changmin
    Li, Haihong
    CELL AND TISSUE RESEARCH, 2018, 374 (02) : 217 - 232
  • [30] The Crosstalk between Tissue Engineering and Pharmaceutical Biotechnology: Recent Advances and Future Directions
    Pacheco, Daniela P.
    Reis, Rui L.
    Correlo, Vitor M.
    Marques, Alexandra P.
    CURRENT PHARMACEUTICAL BIOTECHNOLOGY, 2015, 16 (11) : 1012 - 1023