570
Views
1
CrossRef citations to date
0
Altmetric
Research Article

Preparation of hybrid meniscal constructs using hydrogels and acellular matrices

, , & ORCID Icon
Pages 587-611 | Received 10 Jan 2022, Accepted 19 Sep 2022, Published online: 22 Oct 2022

References

  • Athanasiou KA, Sanchez-Adams J. Engineering the knee meniscus. Synthesis Lectures on Tissue Engin. 2009;1(1):1–97.
  • Makris EA, Hadidi P, Athanasiou KA. The knee meniscus: structure–function, pathophysiology, current repair techniques, and prospects for regeneration. Biomaterials. 2011;32(30):7411–7431.
  • McDermott ID, Masouros SD, Amis AA. Biomechanics of the menisci of the knee. Curr Orthopaedics. 2008;22(3):193–201.
  • Jones JC, Burks R, Owens BD, et al. Incidence and risk factors associated with meniscal injuries among active-duty US military service members. J Athletic Training. 2012;47(1):67–73.
  • Cengiz IF, Pereira H, Espregueira-Mendes J, et al. Treatments of meniscus lesions of the knee: current concepts and future perspectives. Regen Eng Transl Med. 2017;3(1):32–50.
  • McDermott ID. (İİ) Meniscal tears. Curr Orthopaedics. 2006;20(2):85–94.
  • Rath E, Richmond JC. The menisci: basic science and advances in treatment. Br J Sports Med. 2000;34(4):252–257.
  • Kwon H, Brown WE, Lee CA, et al. Surgical and tissue engineering strategies for articular cartilage and meniscus repair. Nat Rev Rheumatol. 2019;15(9):550–570.
  • ElAttar M, Dhollander A, Verdonk R, et al. Twenty-six years of meniscal allograft transplantation: is it still experimental? A meta-analysis of 44 trials. Knee Surg Sports Traumatol Arthrosc. 2011;19(2):147–157.
  • Pillai MM, Gopinathan J, Kumar RS, et al. Tissue engineering of human knee meniscus using functionalized and reinforced silk-polyvinyl alcohol composite three-dimensional scaffolds: Understanding the in vitro and in vivo behavior. J Biomed Mater Res A. 2018;106(6):1722–1731.
  • Scotti C, Hirschmann MT, Antinolfi P, et al. Meniscus repair and regeneration: review on current methods and research potential. European Cells and Materials. 2013;26:150–170.
  • Dangelmajer S, Familiari F, Simonetta R, et al. Meniscal transplants and scaffolds: a systematic review of the literature. Knee Surg Relat Res. 2017;29(1):3–10.
  • Crapo PM, Gilbert TW, Badylak SF. An overview of tissue and whole organ decellularization processes. Biomaterials. 2011;32(12):3233–3243.
  • Chen Y, Chen J, Zhang Z, et al. Current advances in the development of natural meniscus scaffolds: innovative approaches to decellularization and recellularization. Cell Tissue Res. 2017;370(1):41–52.
  • Stapleton TW, Ingram J, Katta J, et al. Development and characterization of an acellular porcine medial meniscus for use in tissue engineering. Tissue Eng Part A. 2008;14(4):505–518.
  • Stabile KJ, Odom D, Smith TL, et al. An acellular, allograft-derived meniscus scaffold in an ovine model. Arthrosc J Arthrosc Related Surg. 2010;26(7):936–948.
  • Yusof F, Sha’ban M, Azhim A. Development of decellularized meniscus using closed sonication treatment system: potential scaffolds for orthopedics tissue engineering applications. Int J Nanomedicine. 2019;14:5491–5502.
  • Nam K, Shimatsu Y, Matsushima R, et al. In-situ polymerization of PMMA inside decellularized dermis using UV photopolymerization. Eur Polym J. 2014;60:163–171.
  • Loessner D, Meinert C, Kaemmerer E, et al. Functionalization, preparation and use of cell-laden gelatin methacryloyl–based hydrogels as modular tissue culture platforms. Nat Protoc. 2016;11(4):727–746.
  • Liang J, Guo Z, Timmerman A, et al. Enhanced mechanical and cell adhesive properties of photo-crosslinked PEG hydrogels by incorporation of gelatin in the networks. Biomed Mater. 2019;14(2):024102.
  • Burdick JA, Chung C, Jia X, et al. Controlled degradation and mechanical behavior of photopolymerized hyaluronic acid networks. Biomacromolecules. 2005;6(1):386–391.
  • Wang Y, Ma M, Wang J, et al. Development of a photo-crosslinking, biodegradable GelMA/PEGDA hydrogel for guided bone regeneration materials. Materials. 2018;11(8):1345.
  • 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.
  • Uyanıklar M, Günal G, Tevlek A, et al. Hybrid cornea: Cell laden hydrogel ıncorporated decellularized matrix. ACS Biomater Sci Eng. 2020;6(1):122–133.
  • Hoch E, Schuh C, Hirth T, et al. Stiff gelatin hydrogels can be photo-chemically synthesized from low viscous gelatin solutions using molecularly functionalized gelatin with a high degree of methacrylation. J Mater Sci Mater Med. 2012;23(11):2607–2617.
  • Balan V, Mihai C-T, Cojocaru F-D, et al. Vibrational spectroscopy fingerprinting in medicine: from molecular to clinical practice. Materials. 2019;12(18):2884.
  • Jiang P, Mao Z, Gao C. Combinational effect of matrix elasticity and alendronate density on differentiation of rat mesenchymal stem cells. Acta Biomater. 2015;19:76–84.
  • Wang Y, Cao X, Ma M, et al. A GelMA-PEGDA-NHA composite hydrogel for bone tissue engineering. Materials. 2020;13(17):3735.
  • Brey DM, Erickson I, Burdick JA. Influence of macromer molecular weight and chemistry on poly (β‐amino ester) network properties and initial cell interactions. J Biomed Mater Res A. 2008;85(3):731–741.
  • Khalili S, Khorasani SN, Neisiany RE, et al. Theoretical cross‐link density of the nanofibrous scaffolds. Mat Design Process Comm. 2019;1(1):e22.
  • Monibi FA, Cook JL. Tissue-derived extracellular matrix bioscaffolds: emerging applications in cartilage and meniscus repair. Tissue Eng Part B Rev. 2017;23(4):386–398.
  • Vanderploeg EJ, Wilson CG, Imler SM, et al. Regional variations in the distribution and colocalization of extracellular matrix proteins in the juvenile bovine meniscus. J Anat. 2012;221(2):174–186.
  • Gao S, Yuan Z, Xi T, et al. Characterization of decellularized scaffold derived from porcine meniscus for tissue engineering applications. Front Mater Sci. 2016;10(2):101–112.
  • Lakes EH, Matuska AM, McFetridge PS, et al. Mechanical integrity of a decellularized and laser drilled medial meniscus. J Biomech Eng. 2016;138(3):4032381.
  • Pahoff S, Meinert C, Bas O, et al. Effect of gelatin source and photoinitiator type on chondrocyte redifferentiation in gelatin methacryloyl-based tissue-engineered cartilage constructs. J Mater Chem B. 2019;7(10):1761–1772.
  • Modaresifar K, Hadjizadeh A, Niknejad H. Design and fabrication of GelMA/chitosan nanoparticles composite hydrogel for angiogenic growth factor delivery. Artif Cells Nanomed Biotechnol. 2018;46(8):1799–1808.
  • Fouassier JP, Allonas X, Lalevée J, et al. Photochemistry and Photophysics of Polymer Materials. New Jersey (NJ): John Wiley&Sons Inc.; 2010.
  • Nguyen AK, Goering PL, Reipa V, et al. Toxicity and photosensitizing assessment of gelatin methacryloyl-based hydrogels photoinitiated with lithium phenyl-2, 4, 6-trimethylbenzoylphosphinate in human primary renal proximal tubule epithelial cells. Biointerphases. 2019;14(2):021007.
  • Wulandari D, Triatmojo S, Erwanto Y, et al. Physicochemical properties and amino acid and functional group profiles of gelatin extracted from bovine split hide cured by acid. Pakistan J Nutr. 2016;15(7):655–661.
  • Muyonga J, Cole C, Duodu K. Fourier transform infrared (FTIR) spectroscopic study of acid soluble collagen and gelatin from skins and bones of young and adult Nile perch (Lates niloticus). Food Chem. 2004;86(3):325–332.
  • Morejon A, Norberg CD, De Rosa M, et al. Compressive properties and hydraulic permeability of human meniscus: relationships with tissue structure and composition. Front Bioeng Biotechnol. 2020;8:622552.
  • Fabbriciani C, Lucania L, Milano G, et al. Meniscal allografts: cryopreservation vs deep-frozen technique An experimental study in goats. Knee Surg Sports Traumatol Arthrosc. 1997;5(2):124–134.
  • Guo L, Qu J, Zheng C, et al. Preparation and characterization of a novel decellularized fibrocartilage “book” scaffold for use in tissue engineering. PLoS One. 2015;10(12):e0144240.
  • Nordberg RC, Charoenpanich A, Vaughn CE, et al. Enhanced cellular infiltration of human adipose-derived stem cells in allograft menisci using a needle-punch method. J Orthop Surg Res. 2016;11(1):1–10.
  • Walker PS, Arno S, Bell C, et al. Function of the medial meniscus in force transmission and stability. J Biomech. 2015;48(8):1383–1388.
  • Tanaka ML, Vest N, Ferguson CM, et al. Comparison of biomechanical properties of native menisci and bacterial cellulose implant. Int J Polymeric Mater Polymeric Biomater. 2014;63(17):891–897.
  • Leslie B, Gardner D, McGeough J, et al. Anisotropic response of the human knee joint meniscus to unconfined compression. Proc Inst Mech Eng H. 2000;214(6):631–635.
  • Zhang K, Li L, Yang L, et al. Effect of degenerative and radial tears of the meniscus and resultant meniscectomy on the knee joint: a finite element analysis. J Orthop Translat. 2019;18:20–31.
  • Chia HN, Hull M. Compressive moduli of the human medial meniscus in the axial and radial directions at equilibrium and at a physiological strain rate. J Orthop Res. 2008;26(7):951–956.
  • Bursac P, Arnoczky S, York A. Dynamic compressive behavior of human meniscus correlates with its extra-cellular matrix composition. Biorheology. 2009;46(3):227–237.
  • Lim JJ, Shamos MH. Evaluation of kinetic parameters of thermal decomposition of native collagen by thermogravimetric analysis. Biopolym Original Res Biomol. 1974;13(9):1791–1807.
  • Choi J-B, Kim Y-K, Byeon S-M, et al. Fabrication and characterization of biodegradable gelatin methacrylate/biphasic calcium phosphate composite hydrogel for bone tissue engineering. Nanomaterials. 2021;11(3):617.
  • Velasco-Rodriguez B, Diaz-Vidal T, Rosales-Rivera LC, et al. Hybrid methacrylated gelatin and hyaluronic acid hydrogel scaffolds. Preparation and systematic characterization for prospective tissue engineering applications. IJMS. 2021;22(13):6758.
  • Rongen JJ, van Tienen TG, van Bochove B, et al. Biomaterials in search of a meniscus substitute. Biomaterials. 2014;35(11):3527–3540.
  • Nichol JW, Koshy ST, Bae H, et al. Cell-laden microengineered gelatin methacrylate hydrogels. Biomaterials. 2010;31(21):5536–5544.
  • Kessler L, Gehrke S, Winnefeld M, et al. Methacrylated gelatin/hyaluronan-based hydrogels for soft tissue engineering. J Tissue Eng. 2017;8:2041731417744157.
  • Koh RH, Jin Y, Kang B-J, et al. Chondrogenically primed tonsil-derived mesenchymal stem cells encapsulated in riboflavin-induced photocrosslinking collagen-hyaluronic acid hydrogel for meniscus tissue repairs. Acta Biomater. 2017;53:318–328.
  • Murakami T, Otsuki S, Okamoto Y, et al. Hyaluronic acid promotes proliferation and migration of human meniscus cells via a CD44-dependent mechanism. Connect Tissue Res. 2019;60(2):117–127.
  • Visser J, Levett PA, te Moller NC, et al. Crosslinkable hydrogels derived from cartilage, meniscus, and tendon tissue. Tissue Eng Part A. 2015;21(7–8):1195–1206.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.