TY - JOUR
T1 - Lung bioengineering
T2 - advances and challenges in lung decellularization and recellularization
AU - Uriarte, Juan J.
AU - Uhl, Franziska E.
AU - Rolandsson Enes, Sara E.
AU - Pouliot, Robert A.
AU - Weiss, Daniel J.
N1 - Publisher Copyright:
© 2018 Lippincott Williams and Wilkins. All rights reserved.
PY - 2018/12/1
Y1 - 2018/12/1
N2 - Bioengineering the lung based on its natural extracellular matrix (ECM) offers novel opportunities to overcome the shortage of donors, to reduce chronic allograft rejections, and to improve the median survival rate of transplanted patients. During the last decade, lung tissue engineering has advanced rapidly to combine scaffolds, cells, and biologically active molecules into functional tissues to restore or improve the lung’s main function, gas exchange. This review will inspect the current progress in lung bioengineering using decellularized and recellularized lung scaffolds and highlight future challenges in the field. Recent findings Lung decellularization and recellularization protocols have provided researchers with tools to progress toward functional lung tissue engineering. However, there is continuous evolution and refinement particularly for optimization of lung recellularization. These further the possibility of developing a transplantable bioartificial lung. Summary Bioengineering the lung using recellularized scaffolds could offer a curative option for patients with end-stage organ failure but its accomplishment remains unclear in the short-term. However, the state-of-the-art of techniques described in this review will increase our knowledge of the lung ECM and of chemical and mechanical cues which drive cell repopulation to improve the advances in lung regeneration and lung tissue engineering.
AB - Bioengineering the lung based on its natural extracellular matrix (ECM) offers novel opportunities to overcome the shortage of donors, to reduce chronic allograft rejections, and to improve the median survival rate of transplanted patients. During the last decade, lung tissue engineering has advanced rapidly to combine scaffolds, cells, and biologically active molecules into functional tissues to restore or improve the lung’s main function, gas exchange. This review will inspect the current progress in lung bioengineering using decellularized and recellularized lung scaffolds and highlight future challenges in the field. Recent findings Lung decellularization and recellularization protocols have provided researchers with tools to progress toward functional lung tissue engineering. However, there is continuous evolution and refinement particularly for optimization of lung recellularization. These further the possibility of developing a transplantable bioartificial lung. Summary Bioengineering the lung using recellularized scaffolds could offer a curative option for patients with end-stage organ failure but its accomplishment remains unclear in the short-term. However, the state-of-the-art of techniques described in this review will increase our knowledge of the lung ECM and of chemical and mechanical cues which drive cell repopulation to improve the advances in lung regeneration and lung tissue engineering.
KW - Decellularization
KW - Lung regeneration
KW - Lung scaffold
KW - Recellularization
UR - http://www.scopus.com/inward/record.url?scp=85055847262&partnerID=8YFLogxK
U2 - 10.1097/MOT.0000000000000584
DO - 10.1097/MOT.0000000000000584
M3 - Artículo de revisión
C2 - 30300330
AN - SCOPUS:85055847262
SN - 1087-2418
VL - 23
SP - 673
EP - 678
JO - Current Opinion in Organ Transplantation
JF - Current Opinion in Organ Transplantation
IS - 6
ER -