Tissue-engineered cellulose tubes for microvascular and lymphatic reconstruction: A translational and feasibility study

被引:0
作者
Will, P. A. [1 ,2 ,3 ,4 ]
Taqatqeh, F. [1 ,2 ]
Fricke, F. [5 ]
Berner, J. E. [6 ,7 ]
Lindenblatt, N. [8 ]
Kneser, U. [3 ,4 ]
Hirche, C. [3 ,4 ,9 ]
机构
[1] Tech Univ Dresden, Fac Med, Dept Plast & Hand Surg, Dresden, Germany
[2] Tech Univ Dresden, Univ Hosp Carl Gustav Carus, Dresden, Germany
[3] Burn Ctr BG Klin Ludwigshafen, Dept Hand Plast & Reconstruct Surg, Microsurg, Ludwigshafen, Germany
[4] Heidelberg Univ, Plast Surg & Hand Surg, Heidelberg, Germany
[5] German Canc Res Ctr, Appl Tumor Biol, Heidelberg, Germany
[6] Univ Oxford, Kellogg Coll, Oxford, England
[7] Newcastle Tyne Hosp NHS Fdn Trust, Dept Plast Surg, Newcastle, England
[8] Univ Hosp Zurich, Dept Plast Surg & Hand Surg, Lymphat Network Excellence, Zurich, Switzerland
[9] Goethe Univ, Affiliated Hosp, BG Unfallklin Frankfurt Main, Dept Plast Hand & Reconstruct Microsurg,Hand Traum, Frankfurt, Germany
关键词
Tissue engineering; Lymphedema; Anastomosis; surgical; Cellulose; LYMPHOVENOUS ANASTOMOSIS; BACTERIAL CELLULOSE; LYMPHEDEMA; SUPERMICROSURGERY; MICROSURGERY; EFFICACY; ARTERIES; GRAFTS; CHITIN; MODEL;
D O I
10.1016/j.bjps.2024.05.043
中图分类号
R61 [外科手术学];
学科分类号
摘要
Background: Lymphedema microsurgery is an emerging treatment modality, with dissimilar long-term outcomes. One of the main technical challenges in lymphatic microsurgery is the identification and availability of suitable donor vessels for anastomosis. Tissue engineering using biomaterials has demonstrated promise in addressing vessel quality issues in other fields, but its application in microsurgery is still limited. Methods: Decellularized cellulose tubes were developed and bioengineered by decellularizing stems of Taraxacum-Ruderalia. The microscopic structure, mechanical properties, and residual DNA content of the cellulose tubes were evaluated. Human and murine skin fibroblasts and dermal lymphatic endothelial cells were isolated and cultured for recellularization studies. Biocompatibility, proliferative capacity, and ex-vivo endothelialization of the cellulose tubes were assessed as potential interposition grafts. Finally, the engineered cellulose tubes were assessed as interposing xenografts for lymphovenous anastomoses (LVA) in an ex-vivo swine limb model. Results: The decellularized cellulose tubes exhibited a suitable microscopic structure, mechanical properties, and low residual DNA content. The tubes showed adequate biocompatibility, supported cell proliferation, and facilitated spontaneous ex-vivo endothelialization of lymphatic endothelial cells. In the swine limb model, LVA using the engineered cellulose tubes was successfully performed. Conclusion: This translational study presents the use of decellularized cellulose tubes as an adjunct for micro and supermicrosurgical reconstruction. The developed tubes demonstrated favorable structural, mechanical, and biocompatible properties, making them a potential candidate for improving long-term outcomes in lymphedema surgical treatment. The next translational step would be trialing the obtained tubes in a microsurgical in-vivo model. (c) 2024 British Association of Plastic, Reconstructive and Aesthetic Surgeons. Published by Elsevier Ltd.
引用
收藏
页码:200 / 211
页数:12
相关论文
共 50 条
  • [21] Femoral shaft reconstruction using tissue-engineered growth of bone
    Puelacher, WC
    Vacanti, JP
    Ferraro, NF
    Schloo, B
    Vacanti, CA
    INTERNATIONAL JOURNAL OF ORAL AND MAXILLOFACIAL SURGERY, 1996, 25 (03) : 223 - 228
  • [22] Tissue-engineered Collateral Ligament Composite Allografts for Scapholunate Ligament Reconstruction: An Experimental Study
    Endress, Ryan
    Woon, Colin Y. L.
    Farnebo, Simon J.
    Behn, Anthony
    Bronstein, Joel
    Pham, Hung
    Yan, Xinrui
    Gambhir, Sanjiv S.
    Chang, James
    JOURNAL OF HAND SURGERY-AMERICAN VOLUME, 2012, 37A (08): : 1529 - 1537
  • [23] In Vitro Cytotoxicity of Bacterial Cellulose Scaffolds Used for Tissue-engineered Bone
    Chen, Y. M.
    Xi, Tingfei
    Zheng, Yudong
    Guo, Tingting
    Hou, Jiaquan
    Wan, Yizao
    Gao, Chuan
    JOURNAL OF BIOACTIVE AND COMPATIBLE POLYMERS, 2009, 24 : 137 - 145
  • [24] Seeding cell approach for tissue-engineered urethral reconstruction in animal study: A systematic review and meta- analysis
    Xue, Jing-Dong
    Gao, Jing
    Fu, Qiang
    Feng, Chao
    Xie, Hong
    EXPERIMENTAL BIOLOGY AND MEDICINE, 2016, 241 (13) : 1416 - 1428
  • [25] The Translational Mindset Is Essential for Taking Tissue-Engineered Therapeutics from Lab to Clinic
    Tandon, Nina
    Bhumiratana, Sarindr
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2022, 8 (11) : 4629 - 4633
  • [26] The study of the feasibility of segmental bone defect repair with tissue-engineered bone membrane: a qualitative observation
    Zhao, Lin
    Zhao, Jun-Li
    Wan, Lin
    Wang, Shuan-Ke
    STRATEGIES IN TRAUMA AND LIMB RECONSTRUCTION, 2008, 3 (02): : 57 - 64
  • [27] Urethral Reconstruction with Tissue-Engineered Human Amniotic Scaffold in Rabbit Urethral Injury Models
    Wang, Fuli
    Liu, Tao
    Yang, Lijun
    Zhang, Geng
    Liu, Heliang
    Yi, Xiaomin
    Yang, Xiaojian
    Lin, Tzu-yin
    Qin, Weijun
    Yuan, Jianlin
    MEDICAL SCIENCE MONITOR, 2014, 20 : 2430 - 2438
  • [28] Construction of tissue-engineered lymphatic vessel using human adipose derived stem cells differentiated lymphatic endothelial like cells and decellularized arterial scaffold: A preliminary study
    Yang, Yi
    Yang, Jian-Tao
    Chen, Xiao-Hu
    Qin, Ben-Gang
    Li, Fu-Gui
    Chen, Yun-Xian
    Gu, Li-Qiang
    Zhu, Jia-Kai
    Li, Ping
    BIOTECHNOLOGY AND APPLIED BIOCHEMISTRY, 2018, 65 (03) : 428 - 434
  • [29] Development of a porcine acellular bladder matrix for tissue-engineered bladder reconstruction
    Massimo Garriboli
    Koichi Deguchi
    Giorgia Totonelli
    Fanourios Georgiades
    Luca Urbani
    Marco Ghionzoli
    Alan J. Burns
    Neil J. Sebire
    Mark Turmaine
    Simon Eaton
    Paolo De Coppi
    Pediatric Surgery International, 2022, 38 : 665 - 677
  • [30] Scaffold-Free Tissue-Engineered Cartilage Implants for Laryngotracheal Reconstruction
    Gilpin, David A.
    Weidenbecher, Mark S.
    Dennis, James E.
    LARYNGOSCOPE, 2010, 120 (03) : 612 - 617