BakerBMMauckRL. The effect of nanofiber alignment on the maturation of engineered meniscus constructs. Biomaterials. 2007;28(11):1967-1977.
2.
BelkoffSMHautRC. Microstructurally based model analysis of gamma-irradiated tendon allografts. J Orthop Res. 1992;10(3):461-464.
3.
FidelerBMVangsnessCTJrLuBOrlandoCMooreT. Gamma irradiation: effects on biomechanical properties of human bone–patellar tendon–bone allografts. Am J Sports Med. 1995;23(5):643-646.
4.
GentlemanELayANDickersonDANaumanEALivesayGADeeKC. Mechanical characterization of collagen fibers and scaffolds for tissue engineering. Biomaterials. 2003;24(21):3805-3813.
5.
GibbonsMJButlerDLGroodESBylski-AustrowDILevyMSNoyesFR. Effects of gamma irradiation on the initial mechanical and material properties of goat bone–patellar tendon–bone allografts. J Orthop Res. 1991;9(2):209-218.
6.
HangodyGSzebenyiGAbonyiBKissRHangodyLPapK. Does a different dose of gamma irradiation have the same effect on five different types of tendon allografts? A biomechanical study. Int Orthop. 2017;41(2):357-365.
7.
Juncosa-MelvinNMatlinKSHoldcraftRWNirmalanandhanVSButlerDL. Mechanical stimulation increases collagen type I and collagen type III gene expression of stem cell–collagen sponge constructs for patellar tendon repair. Tissue Eng. 2007;13(6):1219-1226.
8.
KalamajskiSOldbergA. The role of small leucine-rich proteoglycans in collagen fibrillogenesis. Matrix Biol. 2010;29(4):248-253.
9.
LeeKILeeJSKangKT, et al. In vitro and in vivo performance of tissue-engineered tendons for anterior cruciate ligament reconstruction. Am J Sports Med. 2018;46(7):1641-1649.
10.
LeeKILeeJSKimJG, et al. Mechanical properties of decellularized tendon cultured by cyclic straining bioreactor. J Biomed Mater Res A. 2013;101(11):3152-3158.
11.
MehranNMoutzourosVBBediA. A review of current graft options for anterior cruciate ligament reconstruction. JBJS Rev. 2015;3(11):01874474-201511000-00003.
12.
PalmerJERussellJPGrieshoberJ, et al. A biomechanical comparison of allograft tendons for ligament reconstruction. Am J Sports Med. 2017;45(3):701-707.
13.
QinTWSunYLThoresonAR, et al. Effect of mechanical stimulation on bone marrow stromal cell-seeded tendon slice constructs: a potential engineered tendon patch for rotator cuff repair. Biomaterials. 2015;51:43-50.
14.
RasmussenTJFederSMButlerDLNoyesFR. The effects of 4 Mrad of gamma irradiation on the initial mechanical properties of bone–patellar tendon–bone grafts. Arthroscopy. 1994;10(2):188-197.
15.
RaspantiMViolaMForlinoATenniRGruppiCTiraME. Glycosaminoglycans show a specific periodic interaction with type I collagen fibrils. J Struct Biol. 2008;164(1):134-139.
16.
RigozziSMullerRStemmerASnedekerJG. Tendon glycosaminoglycan proteoglycan sidechains promote collagen fibril sliding: AFM observations at the nanoscale. J Biomech. 2013;46(4):813-818.
17.
SaberSZhangAYKiSH, et al. Flexor tendon tissue engineering: bioreactor cyclic strain increases construct strength. Tissue Eng Part A. 2010;16(6):2085-2090.
18.
SalehpourAButlerDLProchFS, et al. Dose-dependent response of gamma irradiation on mechanical properties and related biochemical composition of goat bone–patellar tendon–bone allografts. J Orthop Res. 1995;13(6):898-906.
19.
SetoAGattCJJrDunnMG. Radioprotection of tendon tissue via crosslinking and free radical scavenging. Clin Orthop Relat Res. 2008;466(8):1788-1795.
20.
SnowdenJM. The stabilization of in vivo assembled collagen fibrils by proteoglycans/glycosaminoglycans. Biochim Biophys Acta. 1982;703(1):21-25.
21.
StamovDGrimmerMSalchertKPompeTWernerC. Heparin intercalation into reconstituted collagen I fibrils: impact on growth kinetics and morphology. Biomaterials. 2008;29(1):1-14.
22.
SwankKRBehnAWDragooJL. The effect of donor age on structural and mechanical properties of allograft tendons. Am J Sports Med. 2015;43(2):453-459.