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脂肪血管基质成分复合骨软骨一体化支架的体外(5)

来源:冶金与材料 【在线投稿】 栏目:期刊导读 时间:2021-02-03
作者:网站采编
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摘要:[14] 舒雄,杰永生,郑蕊,等.激活的富血小板血浆促进Pellet 培养的脂肪间充质干细胞成软骨样分化[J].中国医药生物技术,2018,13(4):328-333. [15] ZHOU W, LIN J, ZHAO K,

[14] 舒雄,杰永生,郑蕊,等.激活的富血小板血浆促进Pellet 培养的脂肪间充质干细胞成软骨样分化[J].中国医药生物技术,2018,13(4):328-333.

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[29] MORANDI EM, PLONER C, WOLFRAM D, et al. Risk factors and complications after body-contouring surgery and the amount of stromal vascular fraction cells found in subcutaneous tissue. Int Wound J. 2019;16(6):1545-1552.

[30] ZANATA F, BOWLES A, FRAZIER T, et al. Effect of Cryopreservation on Human Adipose Tissue and Isolated Stromal Vascular Fraction Cells: In Vitro and In Vivo Analyses. Plast Reconstr Surg. 2018;141(2):232e-243e.

[31] MEHRANFAR S, RAD IA, MOSTAFAV E, et al. The use of stromal vascular fraction (SVF), platelet-rich plasma (PRP) and stem cells in the treatment of osteoarthritis: an overview of clinical trials. Artif Cells Nanomed Biotechnol. 2019;47(1):882-890.

[32] YOKOTA N, HATTORI M, OHTSURU T, et al. Comparative Clinical Outcomes After Intra-articular Injection With Adipose-Derived Cultured Stem Cells or Noncultured Stromal Vascular Fraction for the Treatment of Knee Osteoarthritis. Am J Sports Med. 2019;47(11):2577-2583.

[33] FRANKLIN SP, STOKER AM, BOZYNSKI CC, et al. Comparison of Platelet-Rich Plasma, Stromal Vascular Fraction (SVF), or SVF with an Injectable PLGA Nanofiber Scaffold for the Treatment of Osteochondral Injury in Dogs. J Knee Surg. 2018;31(7):686-697.

[34] DONGEN JA, HARMSEN MC, STEVENS HP, et al. Isolation of Stromal Vascular Fraction by Fractionation of Adipose Tissue. Methods Mol Biol. 2019;1993:91-103.

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[36] SCHNEIDER MC, CHU S, RANDOLPH MA, et al. An in vitro and in vivo comparison of cartilage growth in chondrocyte-laden matrix metalloproteinase-sensitive poly(ethylene glycol) hydrogels with localized transforming growth factor β3. Acta Biomater. 2019;93:97-110.

[37] JIA ZF, WANG SJ, LIANG YJ, et al. Combination of kartogenin and transforming growth factor-β3 supports synovial fluid-derived mesenchymal stem cell-based cartilage regeneration. Am J Transl Res.2019;11(4):2056-2069.

[38] QU D, ZHU JP, CHILDS HR, et al. Nanofiber-based transforming growth factor-β3 release induces fibrochondrogenic differentiation of stem cells. Acta Biomater. 2019;93:111-122.

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