Recent advancement of decellularization extracellular matrix for tissue engineering and biomedical application

被引:45
作者
Yang, Jiamin [1 ]
Dang, Hangyu [1 ]
Xu, Yi [1 ]
机构
[1] Univ Shanghai Sci & Technol, Sch Med Instrument & Food Engn, Shanghai 200093, Peoples R China
基金
中国国家自然科学基金;
关键词
biomedical applications; decellularization; decellularized extracellular matrix; regenerative medicine; tissue engineering; PORCINE KIDNEYS; ECM SCAFFOLD; STEM-CELLS; ORGAN; TRANSPLANTATION; REGENERATION; PRESERVATION; IMPROVE;
D O I
10.1111/aor.14126
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Background Decellularized extracellular matrixs (dECMs) derived from organs and tissues have emerged as a promising tool, as they encompass the characteristics of an ideal tissue scaffold: complex composition, vascular networks and unique tissue-specific architecture. Consequently, their use has propagated throughout tissue engineering and regenerative medicine. dECM can be easily obtained from various tissues/organs by appropriate decellularization protocolsand is entitled to provide necessary cues to cells homing. Methods In this review, we describe the decellularization and sterilization methods that are commonly used in recent research, the effects of these methods upon biologic scaffold material are discussed. Also, we summarize the recent developments of recellularization and vascularization techniques in regeneration medicine. Additionally, dECM preservation methods is mentioned, which provides the basis for the establishment of organ bank. Results Biomedical applications and the status of current research developments relating to dECM biomaterials are outlined, including transplantation in vivo, disease models and drug screening, organoid, 3D bioprinting, tissue reconstruction and rehabilitation and cell transplantation and culture. Finally, critical challenges and future developing technologies are discussed. Conclusions With the development of tissue engineering and regenerative medicine, dECM will have broader applications in the field of biomedicine in the near future.
引用
收藏
页码:549 / 567
页数:19
相关论文
共 77 条
[51]   Efficiency of skeletal muscle decellularization methods and their effects on the extracellular matrix [J].
Reyna, William E. ;
Pichika, Rajeswari ;
Ludvig, Daniel ;
Perreault, Eric J. .
JOURNAL OF BIOMECHANICS, 2020, 110
[52]   Mouse stem cells seeded into decellularized rat kidney scaffolds endothelialize and remodel basement membranes [J].
Ross, Edward A. ;
Abrahamson, Dale R. ;
St John, Patricia L. ;
Clapp, William L. ;
Williams, Matthew J. ;
Terada, Naohiro ;
Hamazaki, Takashi ;
Ellison, Gary W. ;
Batich, Christopher D. .
ORGANOGENESIS, 2012, 8 (02) :49-55
[53]   Mechanical characterization of native and sugar-modified decellularized kidneys [J].
Sant, Snehal ;
Wang, Dan ;
Abidi, Minhal ;
Walker, Gwyneth ;
Ferrell, Nicholas .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2021, 114
[54]   Riboflavin-mediated photooxidation to improve the characteristics of decellularized human arterial small diameter vascular grafts [J].
Schneider, Karl H. ;
Rohringer, Sabrina ;
Kapeller, Barbara ;
Grasl, Christian ;
Kiss, Herbert ;
Heber, Stefan ;
Walter, Ingrid ;
Teuschl, Andreas H. ;
Podesser, Bruno K. ;
Bergmeister, Helga .
ACTA BIOMATERIALIA, 2020, 116 :246-258
[55]   Tracheal Replacement With Cryopreserved, Decellularized, or Glutaraldehyde-Treated Aortic Allografts [J].
Seguin, Agathe ;
Radu, Dana ;
Holder-Espinasse, Muriel ;
Bruneval, Patrick ;
Fialaire-Legendre, Anne ;
Duterque-Coquillaud, Martine ;
Carpentier, Alain ;
Martinod, Emmanuel .
ANNALS OF THORACIC SURGERY, 2009, 87 (03) :861-868
[56]   3D bioprinting of mechanically tuned bioinks derived from cardiac decellularized extracellular matrix [J].
Shin, Yu Jung ;
Shafranek, Ryan T. ;
Tsui, Jonathan H. ;
Walcott, Jelisha ;
Nelson, Alshakim ;
Kim, Deok-Ho .
ACTA BIOMATERIALIA, 2021, 119 :75-88
[57]   Regeneration and experimental orthotopic transplantation of a bioengineered kidney [J].
Song, Jeremy J. ;
Guyette, Jacques P. ;
Gilpin, Sarah E. ;
Gonzalez, Gabriel ;
Vacanti, Joseph P. ;
Ott, Harald C. .
NATURE MEDICINE, 2013, 19 (05) :646-651
[58]   Decellularized human amniotic membrane associated with adipose derived mesenchymal stromal cells as a bioscaffold: Physical, histological and molecular analysis [J].
Sous Naasani, Liliana Ivet ;
Damo Souza, Aline Francielle ;
Rodrigues, Cristiano ;
Vedovatto, Samlai ;
Azevedo, Jessica Goncalves ;
Santin Bertoni, Ana Paula ;
Fernandes, Marilda Da Cruz ;
Buchner, Silvio ;
Wink, Marcia Rosangela .
BIOCHEMICAL ENGINEERING JOURNAL, 2019, 152
[59]   Decellularization methods of porcine kidneys for whole organ engineering using a high-throughput system [J].
Sullivan, David C. ;
Mirmalek-Sani, Sayed-Hadi ;
Deegan, Daniel B. ;
Baptista, Pedro M. ;
Aboushwareb, Tamer ;
Atala, Anthony ;
Yoo, James J. .
BIOMATERIALS, 2012, 33 (31) :7756-7764
[60]   Decellularization optimizes the inhibitory microenvironment of the optic nerve to support neurite growth [J].
Sun, Jia-Hui ;
Li, Ge ;
Wu, Ting-Ting ;
Lin, Zi-Jing ;
Zou, Jian-Long ;
Huang, Li-Jun ;
Xu, Hao-Yu ;
Wang, Jun-Hua ;
Ma, Yuan-Huan ;
Zeng, Yuan-Shan .
BIOMATERIALS, 2020, 258