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Research Paper

Syndecan-4 promotes vascular beds formation in tissue engineered liver via thrombospondin 1

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Pages 1313-1324 | Received 27 Aug 2020, Accepted 02 Nov 2020, Published online: 29 Nov 2020

References

  • Sarin SK, Choudhury A. Acute-on-chronic liver failure: terminology, mechanisms and management. Nat Rev Gastroenterol Hepatol. 2016;13:131–149.
  • Wang Y, Nicolas CT, Chen HS, et al. Recent advances in decellularization and recellularization for tissue-engineered liver grafts. Cells Tissues Organs. 2017;203:203–214.
  • Bernal W, Auzinger G, Dhawan A, et al. Acute liver failure. Lancet. 2010;376:190–201.
  • Boulter L, Lu WY, Forbes SJ. Differentiation of progenitors in the liver: a matter of local choice. J Clin Invest. 2013;123:1867–1873.
  • Briceno J, Padillo J, Rufián S, et al. Assignment of steatotic livers by the mayo model for end-stage liver disease. Transpl Int. 2005;18:577–583.
  • Atala A. Organ preservation, organ and cell transplantation, tissue engineer- ing, and regenerative medicine: the terms may change, but the goals remain the same. Tissue Eng Part A. 2014;20:445e6.
  • Gupta SK, Mishra NC, Dhasmana A. Decellularization methods for scaffold fabrication. Methods Mol Biol. 2018;1577:1–10.
  • Badylak SF, Freytes DO, Gilbert TW. Extracellular matrix as a biological scaffold material: structure and function. Acta Biomater. 2009;5:1–13.
  • Gilbert TW, Sellaro TL, Badylak SF. Decellularization of tissues and organs. Biomaterials. 2006;27:3675–3683.
  • Hoerstrup SP, Cummings Mrcs I, Lachat M, et al. Functional growth in tissue- engineered living, vascular grafts: follow-up at 100 weeks in a large animal model. Circulation. 2006;114:I159–66.
  • Hussein KH, Park KM, Kim HM, et al. Construction of a biocompatible decellularized porcine hepatic lobe for liver bioengineering. Int J Artif Organs. 2015;38:96–104.
  • Ott HC, Matthiesen TS, Goh SK, et al. Perfusion- decellularized matrix: using nature’s platform to engineer a bioartificial heart. Nat Med. 2008;14:213–221.
  • Pan J, Yan S, Gao JJ, et al. In-vivo organ engineering: perfusion of hepatocytes in a single liver lobe scaffold of living rats. Int J Biochem Cell Biol. 2016;80:124–131.
  • Sullivan DC, Mirmalek-Sani SH, Deegan DB, et al. Decellularization methods of porcine kidneys for whole organ engineering using a high-throughput system. Biomaterials. 2012;33:7756–7764.
  • Nahmias Y, Schwartz RE, Hu WS, et al. Endothelium-mediated hepatocyte recruitment in the establishment of liver-like tissue in vitro. Tissue Eng. 2006;12:1627–1638.
  • Mirmalek-Sani SH, Sullivan DC, Zimmerman C, et al. Immunogenicity of decellularized porcine liver for bioengineered hepatic tissue. Am J Pathol. 2013;183:558–565.
  • Orlando G, Farney AC, Iskandar SS, et al. Production and implantation of renal extracellular matrix scaffolds from porcine kidneys as a platform for renal bioengineering investigations. Ann Surg. 2012;256:363–370.
  • Barakat O, Abbasi S, Rodriguez G, et al. Use of decellularized porcine liver for engineering humanized liver organ. J Surg Res. 2012;173:12.
  • Devalliere J, Chen Y, Dooley K, et al. Improving functional re- endothelialization of acellular liver scaffold using REDV cell-binding domain. Acta Biomater. 2018;78:151–164.
  • Shirakigawa N, Takei T, Ijima H. Base structure consisting of an endothelialized vascular-tree network and hepatocytes for whole liver engineering. J Biosci Bioeng. 2013;116:740–745.
  • Crapo PM, Gilbert TW, Badylak SF. An overview of tissue and whole organ decellularization processes. Biomaterials. 2011;32:3233–3243.
  • Croce S, Peloso A, Zoro T, et al. A hepatic scaffold from decellularized liver tissue: food for thought. Biomolecules. 2019;9:813.
  • Song JJ, Ott HC. Organengineeringbasedondecellularized matrix scaffolds. Trends Mol Med. 2011;17:424–432.
  • Kim JJ, Hou L, Huang NF. Vascularization of three-dimensional engineered tissues for regenerative medicine applications. Acta Biomater. 2016;41:17–26.
  • Evans DW, Moran EC, Baptista PM, et al. Scale-dependent mechanical properties of native and decellularized liver tissue. Biomech Model Mechanobiol. 2013;12:569–580.
  • Moran EC, Baptista PM, Evans DW, et al. Evaluation of parenchymal fluid pressure in native and decellularized liver tissue. Biomed Sci Instrum. 2012;48:303–309.
  • Sánchez-Romero N, Sainz-Arnal P, Pla-Palacín I, et al. The role of extracellular matrix on liver stem cell fate: a dynamic relationship in health and disease. Differentiation. 2019;106:49–56.
  • Park KM, Park SM, Yang SR, et al. Preparation of immunogen-reduced and biocompatible extracellular matrices from porcine liver. J Biosci Bioeng. 2013;115:207–215.
  • Hussein KH, Park KM, Teotia PK, et al. Sterilization using electrolyzed water highly retains the biological properties in tissue-engineered porcine liver scaffold. Int J Artif Organs. 2013;36:781–792.
  • Mattei G, Di Patria V, Tirella A, et al. Mechanostructure and composition of highly reproducible decellularized liver matrices. Acta Biomater. 2014;10:875–882.
  • Hussein KH, Park KM, Kang KS, et al. Heparin-gelatin mixture improves vascular reconstruction efficiency and hepatic function in bioengineered liver. Acta Biomater. 2016;38:82–93.
  • Wu Q, Li Y, Wang Y, et al. The effect of heparinized decellularized scaffolds on angiogenic capability. J Biomed Mater Res A. 2016;104(12):3021–3030.
  • De Rossi G, Whiteford JR. Syndecans in angiogenesis and endothelial cell biology. Biochem Soc Trans. 2014;42(6):1643–1646.
  • Couchman JR. Transmembrane Signaling Proteoglycans. Annu Rev Cell Dev Biol. 2010;26:89–114.
  • Baeyens N, Mulligan-Kehoe MJ, Corti F, et al. Syndecan 4 is required for endothelial alignment in flow and atheroprotective signaling. Proc Natl Acad Sci USA. 2014;111:17308–17313.
  • Bellin RM, Kubicek JD, Frigault MJ, et al. Defining the role of syndecan-4 in mechanotransduction using surface-modification approaches. Proc Natl Acad Sci USA. 2009;106:2102–22107.
  • Karimi F, Daniel E. Heath, biomaterials functionalized with nanoclusters of integrin- and syndecan-binding ligands improve cell adhesion and mechanosensing under shear flow conditions. J Biomed Mater Res A. 2020 June 3. DOI:10.1002/jbm.a.37024
  • Hanahan D, Folkman J. Patterns and emerging mechanisms of the angiogenic switch during tumorigenesis. Cell. 1996;86(3):353–364.
  • Chen -L-L. SDC4 gene silencing favors human papillary thyroid carcinoma cell apoptosis and inhibits epithelial mesenchymal transition via Wnt/β-catenin pathway. Mol Cells. 2018 Sept 30;41(9):853–867.
  • Ochieng J. Extracellular histones are the ligands for the uptake of exosomes and hydroxyapatite-nanoparticles by tumor cells via syndecan-4. FEBS Lett. 2018 Oct;592(19):3274–3285.
  • Habes C. Sulfated glycoaminoglycans and proteoglycan syndecan-4 are involved in membrane fixation of LL-37 and its pro-migratory effect in breast cancer cells. Biomolecules. 2019 Sept 12;9(9):481.