切换至 "中华医学电子期刊资源库"

中华肩肘外科电子杂志 ›› 2018, Vol. 06 ›› Issue (03) : 165 -170. doi: 10.3877/cma.j.issn.2095-5790.2018.03.002

所属专题: 骨科学 文献

述评

促进肩袖愈合的生物学研究进展
向明1,(), 胡晓川1   
  1. 1. 610041 成都,四川省骨科医院上肢科
  • 收稿日期:2018-06-10 出版日期:2018-08-05
  • 通信作者: 向明

Advances in biologic augmentation for rotator cuff healing

Ming Xiang1(), Xiaochuan Hu1   

  • Received:2018-06-10 Published:2018-08-05
  • Corresponding author: Ming Xiang
引用本文:

向明, 胡晓川. 促进肩袖愈合的生物学研究进展[J]. 中华肩肘外科电子杂志, 2018, 06(03): 165-170.

Ming Xiang, Xiaochuan Hu. Advances in biologic augmentation for rotator cuff healing[J]. Chinese Journal of Shoulder and Elbow(Electronic Edition), 2018, 06(03): 165-170.

[1]
Randelli P,Bak K,Milano G. State of the art in rotator cuff repair[J]. Knee Surg Sports TraumatolArthrosc, 2015, 23(2):341-343.
[2]
Galatz LM,Ball CM,Teefey SA, et al. The outcome and repair integrity of completely arthroscopically repaired large and massive rotator cuff tears[J]. J Bone Joint Surg Am, 2004, 86-a:219-224.
[3]
Ricchetti ET,Aurora A,Iannotti JP, et al. Scaffold devices for rotator cuff repair[J]. J Shoulder Elbow Surg, 2012, 21(2):251-265.
[4]
Mall NA,Tanaka MJ,Choi LS, et al. Factors affecting rotator cuff healing[J]. J Bone Joint Surg Am, 2014, 96(9):778-788.
[5]
Galatz LM,Sandell LJ,Rothermich SY, et al. Characteristics of the rat supraspinatus tendon during tendon-to-bone healing after acute injury[J]. J Orthop Res, 2006, 24(3):541-550.
[6]
Lafosse L,Brozska R,Toussaint B, et al. The outcome and structural integrity of arthroscopic rotator cuff repair with use of the double-row suture anchor technique[J]. J Bone Joint Surg Am, 2007, 89(7):1533-1541.
[7]
Iannotti JP,Deutsch A,Green A, et al. Time to failure after rotator cuff repair: a prospective imaging study[J]. J Bone Joint Surg Am. 2013; 95:965-971.
[8]
Edwards SL,Lynch TS,Saltzman MD, et al. Biologic and pharmacologic augmentation of rotator cuff repairs[J]. J Am Acad Orthop Surg, 2011, 19(10):583-589.
[9]
Kovacevic D,Rodeo SA.Biological augmentation of rotator cuff tendon repair[J]. Clin Orthop Relat Res, 2008, 466(3):622-633.
[10]
Zumstein MA,Lädermann A,Raniga S. The biology of rotator cuff healing[J]. OrthopTraumatol Surg Res, 2017, 103(1S):S1-S10.
[11]
Patel S,Gualtieri AP,Lu HH, et al. Advances in biologic augmentation for rotator cuff repair[J]. Ann N Y Acad Sci, 2016, 1383(1):97-114.
[12]
Jo CH,Shin JS,Lee YG, et al. Platelet-rich plasma for arthroscopic repair of large to massive rotator cuff tears: a randomized, single-blind, parallel-group trial[J].Am J Sports Med, 2013, 41(10):2240-2248.
[13]
Ruiz-Moneo P,Molano-Muñoz J,Prieto E, et al. Plasma rich in growth factors in arthroscopic rotator cuff repair: a randomized, double-blind, controlled clinical trial[J]. Arthroscopy, 2013, 29(1):2-9.
[14]
Wang A,McCann P,Colliver J, et al. Do postoperative platelet-rich plasma injections accelerate early tendon healing and functional recovery after arthroscopic supraspinatus repair? A randomized controlled trial[J]. Am J Sports Med, 2015, 43(6):1430-1437.
[15]
Zhao JG,Zhao L,Jiang YX, et al. Platelet-rich plasma in arthroscopic rotator cuff repair: a meta-analysis of randomized controlled trials[J]. Arthroscopy, 2015, 31(1):125-135.
[16]
Saltzman BM,Jain A,Campbell KA, et al. Does the use of platelet-rich plasma at the time of surgery improve clinical outcomes in arthroscopic rotator cuff repair when compared with control cohorts? A systematic review of meta-analyses[J]. Arthroscopy, 2016, 32(5):906-918.
[17]
Vavken P,Sadoghi P,Palmer M, et al. Platelet-Rich plasma reduces retear rates after arthroscopic repair of small-and medium-sized rotator cuff tears but is not cost-effective[J]. Am J Sports Med, 2015, 43(12):3071-3076.
[18]
Lorda-Diez CI,Montero JA,Garcia-Porrero JA, et al. Divergent differentiation of skeletal progenitors into cartilage and tendon: lessons from the embryonic limb[J]. ACS Chem Biol, 2014, 9(1):72-79.
[19]
Kabuto Y,Morihara T,Sukenari T, et al. Stimulation ofrotator cuff repair by sustained release of bone morphogeneticprotein-7 using a gelatinhydrogel sheet[J]. Tissue Eng Part A, 2015, 21(13-14):2025-2033.
[20]
Seeherman HJ1,Archambault JM,Rodeo SA, et al.rhBMP-12 accelerates healing of rotator cuff repairs in a sheep model[J].J Bone Joint Surg Am, 2008, 90(10):2206-2219.
[21]
Murray DH,Kubiak EN,Jazrawi LM, et al. The effect of cartilage-derived morphogenetic protein 2 on initial healing of a rotator cuff defect in a rat model[J]. J Shoulder Elbow Surg, 2007, 16(2):251-254.
[22]
Bedi A,Fox AJ,Kovacevic D, et al. Doxycycline-mediated inhibition of matrix metalloproteinases improves healing after rotator cuff repair[J]. Am J Sports Med. 2010; 38:308-317.
[23]
Litwiniuk M,Bikowska B,Niderla-Bielinska J, et al. Potential role of metalloproteinase inhibitors from radiationsterilized amnion dressings in the healing of venous leg ulcers[J]. Mol Med Rep, 2012, 6:723-728.
[24]
Beitzel K,Solovyova O,Cote MP, et al.The future role of mesenchymal stem cells in the management of shoulder disorders[J]. Arthroscopy, 2013, 29(10):1702-1711.
[25]
Jo CH,Shin JS,Park IW, et al. Multiple channeling improves the structural integrity of rotator cuff repair[J]. Am J Sports Med, 2013, 41(11):2650-2657.
[26]
Gulotta LV,Kovacevic D,Ehteshami JR, et al.Application of bone marrow-derived mesenchymal stem cells in a rotator cuff repair model[J]. Am J Sports Med, 2009, 37(11):2126-2133.
[27]
Kim YS,Lee HJ,Ok JH, et al. Survivorship of implanted bone marrow-derived mesenchymal stem cells in acute rotator cuff tear[J]. J Shoulder Elbow Surg, 2013, 22(8):1037-1045.
[28]
Kida Y,Morihara T,Matsuda K, et al.Bonemarrow-derived cells from the footprint infiltrate into the repaired rotator cuff[J]. J Shoulder Elb Surg, 2013; 22(2):197-205.
[29]
Hernigou P,FlouzatLachaniette CH,Delambre J, et al. Biologic augmentation of rotator cuff repair with mesenchymal stem cells during arthroscopy improves healing and prevents further tears: a case-controlled study[J]. Int Orthop, 2014, 38(9):1811-1818.
[30]
Kim YS,Sung CH,Chung SH, et al. Does an injectionof adipose-derived mesenchymal stem cells loaded in fibrin glue influence rotator cuff repair outcomes? A clinical and magnetic resonance imaging study[J]. Am J Sports Med, 2017, 45(9):2010-2018.
[31]
Badylak SF,Freytes DO,Gilbert TW. Extracellular matrix as a biological scaffold material: Structure and function[J]. Acta Biomater, 2009, 5(1):1-13.
[32]
Adams JE,Zobitz ME,Reach JS Jr, et al.Rotator cuff repair using an acellular dermal matrix graft: an in vivo study in a canine model[J]. Arthroscopy, 2006, 22(7):700-709.
[33]
Sclamberg SG,Tibone JE,Itamura JM, et al. Six-month magnetic resonance imaging follow-up of large and massive rotator cuff repairs reinforced with porcine small intestinal submucosa[J]. J Shoulder Elb Surg, 2004, 13(5):538-541.
[34]
Iannotti JP,Codsi MJ,Kwon YW, et al. Porcine small intestine submucosa augmentation of surgical repair of chronic two-tendon rotator cuff tears. A randomized, controlled trial[J]. J Bone Joint Surg am, 2006, 88(6):1238-1244.
[35]
Walton JR,Bowman NK,Khatib Y, etal. Restoreorthobiologic implant: not recommended for augmentation of rotator cuff repairs[J]. J Bone Joint Surg Am, 2007, 89(4):786-791.
[36]
Gilbert TW,Freund JM,Badylak SF. Quantification of DNA in biologic scaffold materials[J]. J Surg Res, 2009, 152(1):135-139.
[37]
Valentin JE,Badylak JS,McCabe GP, et al. Extracellular matrix bioscaffolds for orthopaedicapplications:A comparative histologic study[J]. J Bone Joint Surg Am, 2006, 88(12):2673-2686.
[38]
Badhe SP,Lawrence TM,Smith FD, et al. An assessment of porcine dermal xenograft as an augmentation graft in the treatment of extensive rotator cuff tears[J]. J Shoulder Elbow Surg, 2008, 17(1 suppl):35S-39S.
[39]
Gupta AK,Hug K,Boggess B, et al. Massive or 2-tendon rotator cuff tears in active patients with minimal glenohumeral arthritis: clinical and radiographic outcomes of reconstruction using dermal tissue matrix xenograft[J]. Am J Sports Med, 2013, 41(4):872-879.
[40]
Cho CH,Lee SM,Lee YK, et al. Miniopen suture bridge repair with porcine dermal patch augmentation for massive rotator cuff tear: Surgical technique and preliminary results[J]. Clin Orthop Surg, 2014, 6(3):329-335.
[41]
Sclamberg SG,Tibone JE,Itamura JM, et al. Six-month magnetic resonance imaging follow-up of large and massive rotator cuff repairs reinforced with porcine small intestinal submucosa[J]. J Shoulder Elbow Surg, 2004, 13(5):538-541.
[42]
Soler JA,Gidwani S,Curtis MJ. Early complications from the use of porcine dermal collagen implants (Permacol) as bridging constructs in the repair of massive rotator cuff tears: A report of 4 cases[J]. Acta Orthop Belg, 2007, 73(4):432-436.
[43]
Gupta AK,Hug K,Boggess B,Gavigan M, et al.Massive or 2-tendon rotator cuff tears in active patients with minimal glenohumeral arthritis: Clinical and radiographic outcomes of reconstruction using dermal tissue matrix xenograft[J]. Am J Sports Med, 2013, 41(4):872-879.
[44]
Derwin KA,Baker AR,Spragg RK, et al.Commercial extracellular matrix scaffolds for rotator cuff tendon repair: Biomechanical, biochemical, and cellular properties[J]. J Bone Joint Surg Am, 2006, 88(12):2665-2672.
[45]
Barber FA,Burns JP,Deutsch A, etal. Aprospective,randomized evaluation of acellular human dermal matrix augmentation for arthroscopic rotator cuff repair[J]. Arthroscopy, 2012, 28(1):8-15.
[46]
Agrawal V. Healing rates for challenging rotator cuff tears utilizing an acellular human dermal reinforcement graft[J]. Int J Shoulder Surg, 2012, 6(2):36-44.
[47]
Ferguson DP,Lewington MR,Smith TD, et al. Graft utilization in the augmentation of large-to-massive rotator cuff repairs: a systematic review[J]. Am J Sports Med, 2016, 44(11):2984-2992.
[48]
Steinhaus ME,Makhni EC,Cole BJ, et al. Outcomes after patch use in rotator cuff repair[J]. Arthroscopy, 2016, 32(8):1676-1690.
[49]
Gillespie RJ,Knapik DM,Akkus O. Biologic and synthetic grafts in the reconstruction of large to massive rotator cuff tears[J]. J Am Acad Orthop Surg, 2016, 24(12):823-828.
[50]
McCormack RA,Shreve M,Strauss EJ. Biologic augmentation in rotator cuff repair: Should we do it, who should getit, and has it worked? [J].Bull Hosp Jt Dis(2013), 2014, 72(1):89-96.
[51]
Proctor CS. Long-term successful arthroscopic repair of large and massive rotator cuff tears with a functional and degradable reinforcement device[J]. J Shoulder Elbow Surg, 2014, 23(10):1508-1513.
[52]
Encalada-Diaz I,Cole BJ,Macgillivray JD, et al. Rotator cuff repair augmentation using a novel polycarbonate polyurethane patch: preliminary results at 12 months' follow-up[J]. J Shoulder Elbow Surg, 2011, 20(5):788-794.
[53]
Ciampi P,Scotti C,Nonis A, et al.The benefit of synthetic versus biological patch augmentation in the repair of posterosuperior massive rotator cuff tears:A 3-year follow-up study[J]. Am J Sports Med, 2014,42(5):1169-1175.
[54]
Tornero-Esteban P,Hoyas JA,Villafuertes E, et al. Efficacy of supraspinatus tendon repair using mesenchymal stem cells along with a collagen I scaffold[J]. J Orthop Surg Res, 2015, 10:124.
[55]
Thangarajah T,Sanghani-Kerai A,Henshaw F, et al. Application of a demineralized cortical bone matrix and bone marrow-derived mesenchyma stem cells in a model of chronic rotator cuff degeneration[J]. Am J Sports Med, 2017, 46(1):98-108.
[56]
潘海乐,张一翀,吕松岑,等. 使用单排缝合技术和缝线桥技术修补中度肩袖撕裂的结果比较[J/CD]. 中华肩肘外科电子杂志, 2014(2):85-90.
[57]
刘玉雷,敖英芳,闫辉,等. 关节镜下双排缝合桥固定技术治疗全层肩袖撕裂的中期疗效[J/CD]. 中华肩肘外科电子杂志, 2015, 3(4):219-226.
[58]
徐青镭,李飞,韩国一. 巨大肩袖损伤并发肩关节假性瘫痪的危险因素分析[J/CD]. 中华肩肘外科电子杂志, 2016, 4(1):35-40.
[59]
叶鹏,李奉龙,姜春岩,等. 巨大及不可修复肩袖损伤的治疗进展[J/CD]. 中华肩肘外科电子杂志, 2017, 5(3):231-236.
No related articles found!
阅读次数
全文


摘要