Tissue-engineering acellular scaffoldsThe significant influence of physical and procedural decellularization factors

被引:22
|
作者
Starnecker, F. [1 ]
Koenig, F. [1 ]
Hagl, C. [1 ]
Thierfelder, N. [1 ]
机构
[1] Ludwig Maximilians Univ Munchen, Dept Cardiac Surg, Lab Tissue Engn, Grosshadern Med Ctr, Marchioninistr 15, D-81377 Munich, Germany
关键词
decellularization; physical; procedural; ultrasound; detergent; aorta; BIOLOGIC SCAFFOLDS; HEART-VALVES; IN-VITRO; PORCINE; MATRIX; PROTOCOLS; PROSTHESES; DETERGENT; SECTIONS; COLLAGEN;
D O I
10.1002/jbm.b.33816
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The importance of decellularized medical products has significantly increased during the last years. In this paper, we evaluated the effects of selected physical and procedural decellularization (DC) factors with the aim to systematically assess their influence on DC results. 72 porcine aortic walls (AW) were divided into three groups and exposed to a DC solution for 4 h and 8 h, either continuously or in repeated cycles. The AW were rocked (90bpm), whirled (10 l/min), sonicated (120W, 45 kHz) or exposed to a combination of these treatments, followed by 10 washing cycles. Defining successful DC as removal of nuclei while keeping an intact extracellular matrix (ECM), we equalized the efficiency to the penetration depth (PD), obtained by DAPI fluorescence and H&E staining. Additionally, we performed scanning electron microscopy (SEM), Pentachrome and Picrosirius-Red staining. Results showed that significantly higher DC depths are achieved on outer compared to inner surfaces (61 +/- 7%; p<0.001). Furthermore, the PD showed a high time dependency for all samples. Compared to continuous rocking, we achieved a significant increase in the DC efficiency through cyclic treatments ( approximate to 43%), whirling ( approximate to 19%) and sonication ( approximate to 49%). The combined treatment supported these results. In all procedures, a skeletonized but intact Collagen fibrous network was obtained as confirmed by SEM analysis. In conclusion, we systematically identified essential factors to significantly enhance DC procedures. We highly recommend considering these factors in future DC protocols. (c) 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 106B: 153-162, 2018.
引用
收藏
页码:153 / 162
页数:10
相关论文
共 27 条
  • [1] Decellularization of bovine pericardium for tissue-engineering by targeted removal of xenoantigens
    Gonçalves, AC
    Griffiths, LG
    Anthony, RV
    Orton, EC
    JOURNAL OF HEART VALVE DISEASE, 2005, 14 (02): : 212 - 217
  • [2] Acellular Urethra Bioscaffold: Decellularization of Whole Urethras for Tissue Engineering Applications
    Irina N. Simões
    Paulo Vale
    Shay Soker
    Anthony Atala
    Daniel Keller
    Rute Noiva
    Sandra Carvalho
    Conceição Peleteiro
    Joaquim M. S. Cabral
    Daniel Eberli
    Cláudia L. da Silva
    Pedro M. Baptista
    Scientific Reports, 7
  • [3] Acellular Urethra Bioscaffold: Decellularization of Whole Urethras for Tissue Engineering Applications
    Simoes, Irina N.
    Vale, Paulo
    Soker, Shay
    Atala, Anthony
    Keller, Daniel
    Noiva, Rute
    Carvalho, Sandra
    Peleteiro, Conceicao
    Cabral, Joaquim M. S.
    Eberli, Daniel
    da Silva, Claudia L.
    Baptista, Pedro M.
    SCIENTIFIC REPORTS, 2017, 7
  • [4] Tissue-engineering the larynx: Effect of decellularization on human laryngeal framework and the cricoarytenoid joint
    Al-Qurayshi, Zaid
    Wafa, Emad I.
    Hoffman, Henry
    Chang, Kristi
    Salem, Aliasger K.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2021, 109 (12) : 2030 - 2040
  • [5] Novel Decellularization Scheme for Preparing Acellular Fish Scale Scaffolds for Bone Tissue Engineering
    Su, Shilong
    Wang, Ruideng
    Bai, Jinwu
    Chen, Zhengyang
    Zhou, Fang
    ACS OMEGA, 2025, 10 (01): : 230 - 238
  • [6] Construction of varying porous structures in acellular bovine pericardia as a tissue-engineering extracellular matrix
    Wei, HJ
    Liang, HC
    Lee, MH
    Huan, YC
    Chang, Y
    Sung, HW
    BIOMATERIALS, 2005, 26 (14) : 1905 - 1913
  • [7] Glottic regeneration with a tissue-engineering technique, using acellular extracellular matrix scaffold in a canine model
    Kitamura, Morimasa
    Hirano, Shigeru
    Kanemaru, Shin-ichi
    Kitani, Yoshiharu
    Ohno, Satoshi
    Kojima, Tsuyoshi
    Nakamura, Tatsuo
    Ito, Juichi
    Rosen, Clark A.
    Gilbert, Thomas W.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2016, 10 (10) : 825 - 832
  • [8] Region-Specific Decellularization of Porcine Uterine Tube Extracellular Matrix: A New Approach for Reproductive Tissue-Engineering Applications
    Almeida, Gustavo Henrique Dona Rodrigues
    da Silva, Raquel Souza
    Gibin, Mariana Sversut
    Gonzaga, Victoria Hellen de Souza
    dos Santos, Henrique
    Igleisa, Rebeca Piatniczka
    Fernandes, Leticia Alves
    Fernandes, Iorrane Couto
    Nesiyama, Thais Naomi Goncalves
    Sato, Francielle
    Baesso, Mauro Luciano
    Hernandes, Luzmarina
    Rinaldi, Jaqueline de Carvalho
    Meirelles, Flavio Vieira
    Astolfi-Ferreira, Claudete S.
    Ferreira, Antonio Jose Piantino
    Carreira, Ana Claudia Oliveira
    BIOMIMETICS, 2024, 9 (07)
  • [9] Influence of storage conditions on an acellular scaffold for conjunctival tissue engineering
    Witt, Joana
    Skornia, Adam
    Geerling, Gerd
    Spaniol, Kristina
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2023, 64 (08)
  • [10] Homologous muscle acellular matrix seeded with autologous myoblasts as a tissue-engineering approach to abdominal wall-defect repair
    Conconi, MT
    De Coppi, P
    Bellini, S
    Zara, G
    Sabatti, M
    Marzaro, M
    Zanon, GF
    Gamba, PG
    Parnigotto, PP
    Nussdorfer, GG
    BIOMATERIALS, 2005, 26 (15) : 2567 - 2574