[1]印钰  Freddie H. Fu M.D.①.膝关节韧带外科——匹兹堡观点[J].中国微创外科杂志,2001,01(6):321-325.
 Freddie H. Fu,M.D..Knee Ligament Surgery: The Pittsburgh Opinion[J].Chinese Journal of Minimally Invasive Surgery,2001,01(6):321-325.
点击复制

膝关节韧带外科——匹兹堡观点()
分享到:

《中国微创外科杂志》[ISSN:1009-6604/CN:11-4526/R]

卷:
01
期数:
2001年6期
页码:
321-325
栏目:
国外专家笔谈
出版日期:
2001-06-30

文章信息/Info

Title:
Knee Ligament Surgery: The Pittsburgh Opinion
作者:
印钰  Freddie H. Fu M.D.①
北京大学第三医院运动医学研究所
Author(s):
Freddie H. Fu M.D.
Chairman and David Silver Professor Department of Orthopedic Surgery Kaufamnn Bldg., Suite 1010 3471 Fifth Avenue Pittsburgh PA 15213
分类号:
R68
文献标志码:
C

参考文献/References:

[1]Passler, H.H., The history of the cruciate ligaments: some forgotten (or unknown) facts from Europe. Knee Surgery, Sports Traumatology, Arthroscopy, 1993.1:13-6.
[2]Eriksson, E., How good are the results of ACL reconstruction? [editorial; comment]. Knee Surgery, Sports Traumatology, Arthroxcopy, 1997.5:137.
[3]Dandy, D.J., Historical overview of operations for anterior cruciate ligament rupture. Knee Surgery, Sport Traumatology, Arthroscopy, 1996. 3:256-61.
[4]Xerogeanes, J.W., et al., Effect of knee flexion on the in situ force distribution in the human anterior cruciate ligament. Knee Surgery, Sport Tramatology, Arthroscopy, 1995.3:9-13.
[5]Rudy, T.W., et al., A combined robotic/universal force sensor approach to determine in situ forces of knee ligaments. Journal of Biomechanics, 1996.29:1357-60.
[6]Livesay, G.A., et al. Determination of the in situ forces and force distribution within the human anterior cruciate ligament. Annals of bomedical Engineering, 1995.23:467-74.
[7]Fujie, H., et al. The use of robotics technology to study human joint kinematics: A new methodology. Journal of biomechanical Engineering, 1993.115:211-7.
[8]Sakane, M., et al., In situ forces in the anterior cruciate ligament and its bundles in response to anterior tibial loads. Journal of Orthoaedic Research, 1997.15:285-93.
[9]Wong, E.K., et al., The force distribution in the bundles of the ACL during simulated joint moints: a computational aapproach. Journal of Biomechanical Engineering, 2001 (Submitted).
[10]Ishibashi, Y., et al., The effect of anterior cruciate ligament graft fixation site at the tibia on knee stability: evaluation using a robotic testing system. Arthroscopy, 1997. 13(2):p.1997-82.
[11]Hher, J., et al., The position of the tibia during graft fixation effects knee kinematics and graft forces for ACL reconstruction. American Journal of Sports Medicine, 2000(In-press).
[12]Woo, S.L.-Y., et al., The effectiveness of anterior cruciate ligament reconstruction by hamstrings and patellar tendon: A cadaveric study comparing anterior tibial load vs. rotational loads. Journal of Bone & Joint Surgery-American Volume, 2001(Submitted).
[13]Yagi, M., et al., The biomechanical analysis of an anatomical ACL reconstruction. American Journal of Sports Medicine, 2000(Submitted).
[14]Frank, C., et al., Normal ligament properties and ligament healing. Clin Orthop, 1985(196):p.15-25.
[15]Arnoczky, S.P., G.B. Tarvin, and J.L. Marshall, Anterior cruciate ligament replacement using patellar tendon. An evaluation of graft revascularization in the dog. J Bone Joint Surg Am, 1982.64(2):p.217-24.
[16]Kleiner, J.B., et al., Origin of replacement cells for the anterior cruciate ligament autograft. J Orthop Res, 1986. 4(4):p. 466-74.
[17]Shino, K., et al., replacement of the anterior cruciate ligament by an allogeneic tendon graft. An experimental study in the dog. J Bone Joint Surg Br, 1984.66(5):p.672-81.
[18]Jackson, D.W., et al., A comparison of patellar tendon autograft and allograft used for anterior cruciate ligament reconstruction in the goat model. Am J Sports Med, 1993. 21(2):p.176-85.
[19]Grana, W.A., et al. An analysis of autograft fixation after anterior cruciate ligament reconstruction in a rabbit model. Am J Sports Med, 1994.22(3):p.334-51.
[20]Rodeo, S.A., et al., Tendon-healing in a bone tunnel. A biomechanical and histological study in the dog. J bBone Joint Surg Am, 1993. 75(12):p.1795-803.
[21]Shelbourne, K.D. and P. Nitz, Accelerated rehabilitation after anterior cruciate ligament reconstruction. Am J Sports Med, 1990. 18(3):p.292-9.
[22]Johnson, L.L. and G.E. vanDyk, Metal and biodegradable interference screws: comparison of failure strength. Arthroscopy, 1996.12(4):p.452-6.
[23]Caborn, D.N., et al., Quadrupled semitendinosus-gracilis autograft fixation in the femoral tunnel: a comparison between a metal and a bioabsorbable interference screw. Arthroscopy, 1998. 14(3):p.241-5.
[24]Weiler, A., S.U. Scheffler, and N.P. Sudkamp,[Current aspects of anchoring hamstring tendon transplants in cruciate ligament surgery]. Chirurg, 2000. 71(9):p.1034-44.
[25]Martinek, V., et al., The fate of the poly-L-lactic acid interference screw after anterior cruciate ligament reconstruction. Arthroscopy, 2001.17(1):p.73-6.
[26]Hoher, J., et al., Hamstring gaft motion in the femoral bone tunnel when using titanium button/polyester tape fixation. Knee Surg Sports Traumatol arthrosc, 1999.7(4):p.215-9.
[27]Benjamin, M., E.J. Evans, and L. Copp, The histology of tendon attachments to bone in man. J Anat, 1986. 149:p.89-100.
[28]Trippel, S., Growth factors as therapeutic agents. Instructional Course Lectures, 1997.46:p.473-476.
[29]Schmidt, C.C., et al. Effect of growth factors on the prliferation of fibroblasts from the medial callateral and anterior cruciate ligaments. J Orthop res, 1995. 13(2):p.184-90.
[30]Collier, S. and P. Ghosh, Effect of transforming growth factor beta on proteoglycan synthesis by cell and explant cultures dervied from the knee joint meniscus. Osteoarthritis Cartilage, 1995.3(2):p.127-38.
[31]Hunziker, E.B. and L.C. Rosenberg, Repair of partial-thickness defects in articular cartilage: cell recruitment from the synovial membrane. J bone Joint Surg Am, 1996.78(5):p.721-33.
[32]Linkhart, T.A., S. Mohan, and D.J. Baylink, growth factors for bone growth and repair: IGF, TGF beta and BMP. Bone, 1996.19(1 Suppl):p.1S-12S.
[33]Luyten, F.P., Cartilage-derived morphogenetic proteins. Key regulators in chondrocyte differentation? Acta Orthop Scand Suppl, 1995.226:p.51-4.
[34]Mitchell, C.A., J.K. McGeachie, and M.D. Grounds, The exogenous administration of basic fibroblast growth factor to regenerating skeletal muscle in mice does not enhance the process of regeneration. Growth Factors, 1996.13(1-2):p.37-55.
[35]Gospodarowicz, D. and J. Cheng, Heparin protects basic and acidic FGF from inactivation. J Cell Physiol, 1986. 128(3):p.475-84.
[36]Mulligan, R.C., The basic science of gene therapy. Science, 1993. 260(5110):P.926-32.
[37]Stone, K.R., et al., regeneration of meniscal cartilage with use of a collagen scaffold. Analysis of preliminary data. J Bone Joint Surg Am, 1997. 79(12):p.1770-7.

备注/Memo

备注/Memo:
①(Chairman and David Silver Professor Department of Orthopedic Surgery Kaufamnn Bldg., Suite 1010 3471 Fifth Avenue Pittsburgh PA 15213) 
更新日期/Last Update: 2014-09-26