Circumferential Three-Dimensional-Printed Tracheal Grafts: Research Model Feasibility and Early Results

被引:22
作者
Bhora, Faiz Y.
Lewis, Erik E.
Rehmani, Sadiq S.
Ayub, Adil
Raad, Wissam
Al-Ayoubi, Adnan M.
Lebovics, Robert S.
机构
[1] Icahn Sch Med Mt Sinai, Dept Thorac Surg, New York, NY 10029 USA
[2] Mt Sinai Hlth Syst, Mt Sinai West, Dept Otolaryngol, New York, NY USA
关键词
TISSUE-ENGINEERED TRACHEA; AUTOLOGOUS STEM-CELLS; BIOENGINEERED TRACHEA; CARTILAGE; RECONSTRUCTION; REPLACEMENT; SCAFFOLD; AIRWAY; REGENERATION; TRANSPLANTATION;
D O I
10.1016/j.athoracsur.2017.03.064
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background. Methods for tracheal graft research have presented persistent challenges to investigators, and three-dimensional (3D)-printed biosynthetic grafts offer one potential development platform. We aimed to develop an efficient research platform for customizable circumferential 3D-printed tracheal grafts and evaluate feasibility and early structural integrity with a largeanimal model. Methods. Virtual 3D models of porcine subject tracheas were generated using preoperative computed tomography scans. Two designs were used to test graft customizability and the limits of the construction process. Designs I and II used 270-degree and 360-degree external polycaprolactone scaffolds, respectively, both encompassing a circumferential extracellular matrix collagen layer. The polycaprolactone scaffolds were made in a fused-deposition modeling 3D printer and customized to the recipient's anatomy. Design I was implanted in 3 pigs and design II in 2 pigs, replacing 4-ring tracheal segments. Data collected included details of graft construction, clinical outcomes, bronchoscopy, and gross and histologic examination. Results. The 3D-printed biosynthetic grafts were produced with high fidelity to the native organ. The fabrication process took 36 hours. Grafts were implanted without immediate complication. Bronchoscopy immediately postoperatively and at 1 week demonstrated patent grafts and appropriate healing. All animals lived beyond a predetermined 1-week survival period. Bronchoscopy at 2 weeks showed significant paraanastomotic granulation tissue, which, along with partial paraanastomotic epithelialization, was confirmed on pathology. Overall survival was 17 to 34 days. Conclusions. We propose a rapid, reproducible, resource efficient method to develop various anatomically precise grafts. Further graft refinement and strategies for granulation tissue management are needed to improve outcomes. (C) 2017 by The Society of Thoracic Surgeons
引用
收藏
页码:958 / 963
页数:6
相关论文
共 35 条
[1]   Reconstruction of Anterior Tracheal Defects Using a Bioengineered Graft in a Porcine Model [J].
Al-Ayoubi, Adnan M. ;
Rehmani, Sadiq S. ;
Sinclair, Catherine F. ;
Lebovics, Robert S. ;
Bhora, Faiz Y. .
ANNALS OF THORACIC SURGERY, 2017, 103 (02) :381-389
[2]   Extracellular matrix as a biological scaffold material: Structure and function [J].
Badylak, Stephen F. ;
Freytes, Donald O. ;
Gilbert, Thomas W. .
ACTA BIOMATERIALIA, 2009, 5 (01) :1-13
[3]  
Berg M, 2014, TISSUE ENG PT A, V20, P389, DOI [10.1089/ten.tea.2012.0514, 10.1089/ten.TEA.2012.0514]
[4]   Rapid Expansion of Human Epithelial Stem Cells Suitable for Airway Tissue Engineering [J].
Butler, Colin R. ;
Hynds, Robert E. ;
Gowers, Kate H. C. ;
Lee, Dani Do Hyang ;
Brown, James M. ;
Crowley, Claire ;
Teixeira, Vitor H. ;
Smith, Claire M. ;
Urbani, Luca ;
Hamilton, Nicholas J. ;
Thakrar, Ricky M. ;
Booth, Helen L. ;
Birchall, Martin A. ;
De Coppi, Paolo ;
Giangreco, Adam ;
O'Callaghan, Christopher ;
Janes, Sam M. .
AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2016, 194 (02) :156-168
[5]   Tissue-Engineered Tracheal Reconstruction Using Three-Dimensionally Printed Artificial Tracheal Graft: Preliminary Report [J].
Chang, Jae Won ;
Park, Su A. ;
Park, Ju-Kyeong ;
Choi, Jae Won ;
Kim, Yoo-Suk ;
Shin, Yoo Seob ;
Kim, Chul-Ho .
ARTIFICIAL ORGANS, 2014, 38 (06) :E95-E105
[6]   Clinical Translation of Tissue Engineered Trachea Grafts [J].
Chiang, Tendy ;
Pepper, Victoria ;
Best, Cameron ;
Onwuka, Ekene ;
Breuer, Christopher K. .
ANNALS OF OTOLOGY RHINOLOGY AND LARYNGOLOGY, 2016, 125 (11) :873-885
[7]   Effect of cell seeding on neotissue formation in a tissue engineered trachea [J].
Clark, Elizabeth S. ;
Best, Cameron ;
Onwuka, Ekene ;
Sugiura, Tadahisa ;
Mahler, Nathan ;
Bolon, Brad ;
Niehaus, Andrew ;
James, Iyore ;
Hibino, Narutoshi ;
Shinoka, Toshiharu ;
Johnson, Jed ;
Breuer, Christopher K. .
JOURNAL OF PEDIATRIC SURGERY, 2016, 51 (01) :49-55
[8]   Trachea transplantation: from laboratory to patient [J].
Crowley, Claire ;
Birchall, Martin ;
Seifalian, Alexander M. .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2015, 9 (04) :357-367
[9]   Learning Curve in Tracheal Allotransplantation [J].
Delaere, P. R. ;
Vranckx, J. J. ;
Meulemans, J. ;
Vander Poorten, V. ;
Segers, K. ;
Van Raemdonck, D. ;
De Leyn, P. ;
Decaluwe, H. ;
Dooms, C. ;
Verleden, G. .
AMERICAN JOURNAL OF TRANSPLANTATION, 2012, 12 (09) :2538-2545
[10]   Clinical xenotransplantation: the next medical revolution? [J].
Ekser, Burcin ;
Ezzelarab, Mohamed ;
Hara, Hidetaka ;
van der Windt, Dirk J. ;
Wijkstrom, Martin ;
Bottino, Rita ;
Trucco, Massimo ;
Cooper, David K. C. .
LANCET, 2012, 379 (9816) :672-683