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Articles

VEGF loaded porcine decellularized adipose tissue derived hydrogel could enhance angiogenesis in vitro and in vivo

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Pages 569-589 | Received 25 May 2021, Accepted 01 Nov 2021, Published online: 21 Nov 2021

References

  • Rodrigues M, Kosaric N, Bonham CA, et al. Wound healing: a cellular perspective. Physiol Rev. 2019;99(1):665–706.
  • Erickson JR, Echeverri K. Learning from regeneration research organisms: the circuitous road to scar free wound healing. Dev Biol. 2018;433(2):144–154.
  • Keane TJ, Horejs CM, Stevens MM. Scarring vs. functional healing: Matrix-based strategies to regulate tissue repair. Adv Drug Deliv Rev. 2018;129:407–419.
  • Xue M, Zhao R, Lin H, et al. Delivery systems of current biologicals for the treatment of chronic cutaneous wounds and severe burns. Adv Drug Deliv Rev. 2018;129:219–241.
  • Murray RZ, West ZE, Cowin AJ, et al. Development and use of biomaterials as wound healing therapies. Burns Trauma. 2019;7:2.
  • Wang X, Yu T, Chen G, et al. Preparation and characterization of a chitosan/gelatin/extracellular matrix scaffold and its application in tissue engineering. Tissue Eng Part C Methods. 2017;23(3):169–179.
  • Jeong S, Kim B, Park M, et al. Improved diabetic wound healing by EGF encapsulation in gelatin-alginate coacervates. Pharmaceutics. 2020;12(4):334.
  • Keane TJ, Swinehart IT, Badylak SF. Methods of tissue decellularization used for preparation of biologic scaffolds and in vivo relevance. Methods. 2015;84:25–34.
  • Mohiuddin OA, Campbell B, Poche JN, et al. Decellularized adipose tissue: biochemical composition, in vivo analysis and potential clinical applications. Adv Exp Med Biol. 2020;1212:57–70.
  • Alvarez OM, Smith T, Gilbert TW, et al. Diabetic foot ulcers treated with porcine urinary bladder extracellular matrix and total contact cast: interim analysis of a randomized, controlled trial. Wounds. 2017;29(5):140–146.
  • Cheung HK, Han TT, Marecak DM, et al. Composite hydrogel scaffolds incorporating decellularized adipose tissue for soft tissue engineering with adipose-derived stem cells. Biomaterials. 2014;35(6):1914–1923.
  • Jeon EY, Joo KI, Cha HJ. Body temperature-activated protein-based injectable adhesive hydrogel incorporated with decellularized adipose extracellular matrix for tissue-specific regenerative stem cell therapy. Acta Biomater. 2020;114:244–255.
  • Zhang Q, Johnson JA, Dunne LW, et al. Decellularized skin/adipose tissue flap matrix for engineering vascularized composite soft tissue flaps. Acta Biomater. 2016;35:166–184.
  • Ullah I, Abu-Dawud R, Busch JF, et al. VEGF—supplemented extracellular matrix is sufficient to induce endothelial differentiation of human iPSC. Biomaterials. 2019;216:119283.
  • Fercana GR, Yerneni S, Billaud M, et al. Perivascular extracellular matrix hydrogels mimic native matrix microarchitecture and promote angiogenesis via basic fibroblast growth factor. Biomaterials. 2017;123:142–154.
  • Apte RS, Chen DS, Ferrara N. VEGF in signaling and disease: beyond discovery and development. Cell. 2019;176(6):1248–1264.
  • Engel JE, Williams E, Williams ML, et al. Targeted VEGF (vascular endothelial growth factor) therapy induces long-term renal recovery in chronic kidney disease via macrophage polarization. Hypertension. 2019;74(5):1113–1123.
  • Wheeler KC, Jena MK, Pradhan BS, et al. VEGF may contribute to macrophage recruitment and M2 polarization in the decidua. PLoS One. 2018;13(1):e191040.
  • Peach CJ, Mignone VW, Arruda MA, et al. Molecular pharmacology of VEGF-A isoforms: binding and signalling at VEGFR2. Int J Mol Sci. 2018;19(4):1264.
  • Lu Q, Li M, Zou Y, et al. Delivery of basic fibroblast growth factors from heparinized decellularized adipose tissue stimulates potent de novo adipogenesis. J Control Release. 2014;174:43–50.
  • Zhao Y, Fan J, Bai S. Biocompatibility of injectable hydrogel from decellularized human adipose tissue in vitro and in vivo. J Biomed Mater Res B Appl Biomater. 2019;107(5):1684–1694.
  • LoPresti ST, Popovic B, Kulkarni M, et al. Free radical-decellularized tissue promotes enhanced antioxidant and anti-inflammatory macrophage response. Biomaterials. 2019;222:119376.
  • Tan QW, Zhang Y, Luo JC, et al. Hydrogel derived from decellularized porcine adipose tissue as a promising biomaterial for soft tissue augmentation. J Biomed Mater Res A. 2017;105(6):1756–1764.
  • Choi YC, Choi JS, Kim BS, et al. Decellularized extracellular matrix derived from porcine adipose tissue as a xenogeneic biomaterial for tissue engineering. Tissue Eng Part C Methods. 2012;18(11):866–876.
  • Giobbe GG, Crowley C, Luni C, et al. Extracellular matrix hydrogel derived from decellularized tissues enables endodermal organoid culture. Nat Commun. 2019;10(1):5658.
  • van Dongen JA, Getova V, Brouwer LA, et al. Adipose tissue-derived extracellular matrix hydrogels as a release platform for secreted paracrine factors. J Tissue Eng Regen Med. 2019;13(6):973–985.
  • Zhang S, Lu Q, Cao T, et al. Adipose tissue and extracellular matrix development by injectable decellularized adipose matrix loaded with basic fibroblast growth factor. Plast Reconstr Surg. 2016;137(4):1171–1180.
  • Pati F, Cho DW. Bioprinting of 3D tissue models using decellularized extracellular matrix bioink. Methods Mol Biol. 2017; 1612:381–390.
  • Lin M, Ge J, Wang X, et al. Biochemical and biomechanical comparisions of decellularized scaffolds derived from porcine subcutaneous and visceral adipose tissue. J Tissue Eng. 2019;10:2041731419888168.
  • Zhou C, Zhou L, Liu J, et al. Kidney extracellular matrix hydrogel enhances therapeutic potential of adipose-derived mesenchymal stem cells for renal ischemia reperfusion injury. Acta Biomater. 2020;115:250–263.
  • Ibsirlioglu T, Elcin AE, Elcin YM. Decellularized biological scaffold and stem cells from autologous human adipose tissue for cartilage tissue engineering. Methods. 2020;171:97–107.
  • Wei S, Xu P, Yao Z, et al. A composite hydrogel with co-delivery of antimicrobial peptides and platelet-rich plasma to enhance healing of infected wounds in diabetes. Acta Biomater. 2021;124:205–218.
  • Wang M, Wang C, Chen M, et al. Efficient angiogenesis-based diabetic wound healing/skin reconstruction through bioactive antibacterial adhesive ultraviolet shielding nanodressing with exosome release. ACS Nano. 2019;13(9):10279–10293.
  • Liu Y, Li Z, Li J, et al. Stiffness-mediated mesenchymal stem cell fate decision in 3D-bioprinted hydrogels. Burns Trauma. 2020;8:a29.
  • Nyambat B, Chen CH, Wong PC, et al. Genipin-crosslinked adipose stem cell derived extracellular matrix-nano graphene oxide composite sponge for skin tissue engineering. J Mater Chem B. 2018;6(6):979–990.
  • Kim EJ, Choi JS, Kim JS, et al. Injectable and thermosensitive soluble extracellular matrix and methylcellulose hydrogels for stem cell delivery in skin wounds. Biomacromolecules. 2016;17(1):4–11.
  • Ghassemi T, Saghatoleslami N, Mahdavi-Shahri N, et al. A comparison study of different decellularization treatments on bovine articular cartilage. J Tissue Eng Regen Med. 2019;13(10):1861–1871.
  • Freytes DO, Martin J, Velankar SS, et al. Preparation and rheological characterization of a gel form of the porcine urinary bladder matrix. Biomaterials. 2008;29(11):1630–1637.

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