新OS NEXUS No.1 膝関節の再建手術

出版社: メジカルビュー社
著者:
発行日: 2022-02-10
分野: 臨床医学:外科  >  整形外科学
ISBN: 9784758321518
シリーズ: 新OS NEXUS
電子書籍版: 2022-02-10 (第1版第1刷)
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「専攻医が経験すべき手術」を全20巻でほぼ網羅。メインの特集項目に加えて,手技の理解を深める解剖学的知識を示した「Anatomy Key Point」や,知っておくと有用な基本的手術・治療手技の紹介も毎号掲載し,専攻医として必要なスキルを漏れなくカバーできるシリーズ構成となっている。前シリーズからの特徴である豊富なイラストと画像に加えて今シーズンではストリーミング動画も配信し,静止画では伝わりづらい部分もよくわかる!
Season 5となる『新OS NEXUS』のオープニングを飾るNo.1のテーマは「膝関節の再建手術」。大きく「人工膝関節置換術」と「膝周囲骨切り術」の2章構成で,TKAやUKA,大腿骨・脛骨骨切り術の各種手技を解説している。巻末には「基本的手術手技」として,皮膚・血管の縫合を紹介。専攻医から中堅どころまで,長く使える定番所となっている。

目次

  • I 人工膝関節置換術
     TKAの術前計画と基本的手術手技
     後十字靱帯温存型TKA
     後十字靱帯機能代償型TKA
     両十字靱帯温存型TKA
     外反膝へのTKA
     Revision TKA
     内側fi xed型UKAの術前計画と基本的手術手技
     外側UKA
     PFAと内側UKAを組み合わせた人工膝関節二顆置換術(BiKA)

    II 膝周囲骨切り術
     内側閉鎖式遠位大腿骨骨切り術
     内側開大式高位脛骨骨切り術
     インターロッキング式外側閉鎖高位脛骨骨切り術
     ハイブリッド式外側閉鎖式高位脛骨骨切り術(HCWHTO)
     内側開大式粗面下脛骨骨切り術
     高位脛骨骨切り術+内側半月板後根修復術

    基本的手術手技
     基本的な切開・縫合法 肥厚性瘢痕や手術部位感染を予防するために
     皮膚縫合剤の使用法と注意点
     膝窩動脈・静脈の再建

この書籍の参考文献

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本参考文献は電子書籍掲載内容を元にしております。

I 人工膝関節置換術

P.13 掲載の参考文献
1) Matsuda S, Mizu-uchi H, Miura H, et al. Tibial shaft axis does not always serve as a correct coronal landmark in total knee arthroplasty for varus knees. J Arthroplasty 2003 ; 18 : 56-62.
2) Fukagawa S, Matsuda S, Mitsuyasu H, et al. Anterior border of the tibia as a landmark for extramedullary alignment guide in total knee arthroplasty for varus knees. J Orthop Res 2011 ; 29 : 919-24.
3) Nakahara H, Matsuda S, Okazaki K, et al. Sagittal cutting error changes femoral anteroposterior sizing in total knee arthroplasty. Clin Orthop Relat Res 2012 ; 470 : 3560-5.
4) Matsuda S, Hiromu Ito. Ligament balancing in total knee arthroplasty-Medial stabilizing technique. Asia Pac J Sports Med Arthrosc Rehabil Technol 2015 ; 2 : 108-13.
5) Okamoto S, Okazaki K, Mitsuyasu H, et al. Extension gap needs more than 1-mm laxity after implantation to avoid post-operative flexion contracture in total knee arthroplasty. Knee Surg Sports Traumatol Arthrosc 2014 ; 22 : 3174-80.
P.23 掲載の参考文献
1) Matsumoto T, Muratsu H. Patella Resurfacing-Never. Insall & Scott SURGERY of the KNEE. Norman SW Ed. Amsterdam : Elsevier ; 2017. p1630-6.
2) Tsubosaka M, Muratsu H, Takayama K, et al. Comparison of intraoperative soft tissue balance between cruciate-retaining and posterior-stabilized total knee arthroplasty performed by a newly developed medial preserving gap technique. J Arthroplasty 2018 ; 33 : 729-34.
3) Matsumoto T, Kuroda R, Kubo S, et al. The intra-operative joint gap in cruciate-retaining compared with posteriorstabilizsed total knee replacement. J Bone Joint Surg Br 2009 ; 91 : 475-80.
4) Matsumoto T, Takayama K, Muratsu H, et al. Relative loose flexion gap improves patient-reported clinical scores in cruciate-retaining total knee arthroplasty. J Knee Surg 2018 ; 31 : 573-9.
5) Matsumoto T, Takayama K, Ishida K, et al. Radiological and clinical evaluation of modified kinematically versus mechanically aligned total knee arthroplasty. Bone Joint J2017 ; 95-B : 640-6.
P.35 掲載の参考文献
2) Okamoto S, Okazaki K, Mitsuyasu T, et al. Lateral soft tissue laxity increases but medial laxity does not contact with varus deformity in total knee arthroplasty. Clin Orthop Relat Res 2013 ; 471 : 1334-42.
3) Yamagami R, Inui H, Taketomi S et al. Navigation-based analysis of associations between intraoperative joint gap and mediolateral laxity in total knee arthroplasty. Knee 2021 ; 30 : 314-21.
4) Inui H, Taketomi S, Yamagami R et al. The relationship between soft-tissue balance and intraoperative kinematics of guided motion total knee arthroplasty. J Knee Surg 2019 ; 32 : 91-6.
P.46 掲載の参考文献
1) Kuriyama S, Hyakuna K, Inoue S, et al. Is a "sulcus cut" technique effective for determining the level of distal femoral resection in total knee arthroplasty? Knee Surg Sports Traumatol Arthrosc 2014 ; 22 : 3060-6.
2) Takasago T, Hamada D, Wada K, et al. Insufficient lateral joint laxity after bicruciate-retaining total knee arthroplasty potentially influences kinematics during flexion : A biomechanical cadaveric study. Knee 2021 ; 28 : 311-8.
3) Hamada D, Wada K, Tkasago T, et al. Native rotational knee kinematics are lost in bicruciate-retaining total knee arthroplasty when the tibial component is replaced. Knee Surg Sports Traumatol Arthrosc 2018 ; 26 : 3249-56.
5) Tsukamoto I, Akagi M, Mori S, et al. Anteroposterior rotational references of the tibia for medial unicompartmental knee arthroplasty in Japanese patients. J Arthroplasty 2017 ; 32 : 3169-75.
P.63 掲載の参考文献
1) Tsubosaka M, Matsumoto T, Takayama K, et al. Two cases of late medial instability of the knee due to hip disease after total knee arthroplasty. Int J Surg Case Rep 2017 ; 37 : 200-4.
2) Minoda Y, Nakagawa S, Sugama R, et al. Decreased extension gap and valgus alignment after implantation of total knee prosthesis in primary varus knees. Knee Surg Sports Traumatol Arthrosc 2016 ; 24 : 3642-7.
3) Minoda Y, Nakagawa S, Sugama R, et al. Joint gap in midflexion is not a predictor of postoperative flexion angle after total knee arthroplasty. J Arthroplasty 2018 ; 33 : 735-9.
P.71 掲載の参考文献
1) Morgan-Jones, R, Oussedik S I S, Graichen H, et al. Zonal fixation in revision total knee arthroplasty. Bone Joint J 2015 ; 97-B : 147-9.
2) Nakamura S, Morita Y, Ito H, et al. Morphology of the proximal tibia at different levels of bone resection in Japanese knees. J Arthroplasty 2015 ; 30 : 2323-7.
3) Mason M, Belisle A, Bonutti P, et al. An accurate and reproducible method for locating the joint line during a revision total knee arthroplasty. J Arthroplasty 2006 ; 21 : 1147-53.
4) Kobayashi S, Niki Y, Harato K, et al. The effects of barbed suture on watertightness after knee arthrotomy closure : a cadaveric study. J Orthop Surg Res 2018 ; 13 : 323.
P.83 掲載の参考文献
2) Tensho K, Iwaasa T, Koyama S, et al Potential risk of medial cortex perforation due to peg position of morphometric tibial component in unicompartmental knee arthroplasty : a computer simulation study. Knee Surg Sports Traumatol Arthrosc 2020 ; doi : 10.1007/s00167-020-06242-8.
3) Hamilton TW, Pandit HG, Lombardi AV et al. Radiological Decision Aid to determine suitability for medial unicompartmental knee arthroplasty : development and preliminary validation. Bone Joint J 2016 ; 98-B : 3-10.
4) Tashiro Y, Matsuda S, Okazaki K, et al. The coronal alignment after medial unicompartmental knee arthroplasty can be predicted : usefulness of full-length valgus stress radiography for evaluating correctability. Knee Surg Sports Traumatol Arthrosc 2014 ; 22 : 3142-9.
P.99 掲載の参考文献
1) Scott RD. Lateral unicompartmental replacement : a road less traveled. Orthopedics 2005 ; 28 : 983-4.
2) Ohdera T, Tokunaga J, Kobayashi A. Unicompartmental knee arthroplasty for lateral gonarthrosis, J Arthroplasty 2001 ; 16 : 196-200.
3) 王寺享弘. 外側型変形性膝関節症に対する単顆置換術. 新OS NOW 24. 東京 ; メジカルビュー社 : 2004. p.102-9.
4) Ollivier M, Abdel MP, Parratte S, et al. Lateral unicondylar knee arthroplasty (UKA) : contemporary indications, surgical technique, and results. Int Orthop 2014 ; 38 : 449-55.
5) 飛田祐一, 平中崇文. 外側UKAのコツと問題点. MB Orthop 2019 ; 32 : 78-86.
6) Zimmer Biomet. Persona(R) Partial Knee System手術手技書. 2017.
7) Berend KR, Turnbull NJ, Howell RE, et al. The current trends for lateral unicondylar knee arthroplasty. Orthop Clin North Am 2014 ; 46 : 177-84.
8) 吉本栄治. UKA周術期における患者満足度向上のコツと注意点. MB Orthop 2019 ; 32 : 61-9.
P.109 掲載の参考文献
2) Muller W. The Knee. Form, Function, and Ligament Reconstruction. Springer-Verlag ; Berlin Heiderberg : 1982. p.16-7.
3) Beard DJ, Pandit H, Gill HS, et al. The influence of the presence and severity of pre-existing patellofemoral degenerative changes on the outcome of the Oxford medial unicompartmental knee replacement. J Bone Joint Surg Br 2007 ; 89 : 1597-601.
4) Berger RA, Meneghini RM, Sheinkop MB, et al. The progression of patellofemoral arthrosis after medial unicompartmental replacement : results at 11 to 15 years. Clin Orthop Relat Res 2004 : 92-9.
5) Hernigou P, Deschamps G. Alignment influences wear in the knee after medial unicompartmental arthroplasty. Clin Orthop Relat Res 2004 : 161-5.
6) Paratte S, Pauly V, Aubaniac JM, et al. Survival of bicompartmental knee arthroplasty at 5 to 23 years. Clin Orthop 2010 ; 468 : 64-72.

II 膝周囲骨切り術

P.122 掲載の参考文献
1) Stahelin T, Hardegger F, Ward JC. Supracondylar osteotomy of the femur with use of compression Osteosynthesis with a malleable implant. J Bone Joint Surg Am 2000 ; 82 : 712-22.
2) Wylie JD, Jones DL, Hartley MK, et al. Distal femoral osteotomy for the valgus knee : medial closing wedge versus lateral opening wedge : a systematic review. Arthroscopy 2016 ; 32 : 2141-7.
3) Brinkman JM, Hurschler C, Staubli AE, et al. Axial and torsional stability of an improved single-plane and a new bi-plane osteotomy technique for supracondylar femur osteotomies. Knee Surg Sports Traumatol Arthrosc 2011 ; 19 : 1090-8.
4) Brinkman JM, Hurschler C, Agneskirchner JD, et al. Axial and torsional stability of supracondylar femur osteotomies : biomechanical comparison of the stability of five different plate and osteotomy configurations. Knee Surg Sports Traumatol Arthrosc 2011 ; 19 : 579-87.
5) van der Woude JAD, van Heerwaarden RJ, Bleys RLAW. Periosteal vascularization of the distal femur in relation to distal femoral osteotomies : a cadaveric study. J Exp Orthop 2016 ; 3 : 6.
6) Bisicchia S, Rosso F, Pizzimenti MA, et al. Injury risk to extraosseous knee vasculature during osteotomies : a cadaveric study with CT and dissection analysis. Clin Orthop Relat Res 2015 ; 473 : 1030-9.
P.134 掲載の参考文献
1) Nakamura R, Komatsu N, Murao T, et al. The validity of the classification for lateral hinge fractures in open wedge high tibial osteotomy. Bone Joint J 2015 ; 97-B : 1226-31.
2) Goshima K, Sawaguchi T, Sakagoshi D, et al. Age does not affect the clinical and radiological outcomes after openwedge high tibial osteotomy. Knee Surg Sports Traumatol Arthrosc 2017 ; 25 : 918-23.
3) Schroter S, Freude T, Kopp MM, et al. Smoking and unstable hinge fractures cause delayed gap filling irrespective of early weight bearing after open wedge osteotomy. Arthroscopy 2015 ; 31 : 254-65.
4) Anoka N, Nyland J, McGinnis M, et al. Consideration of growth factors and bio-scaffolds for treatment of combined grade II MCL and ACL injury. Knee Surg Sports Traumatol Arthrosc 2012 ; 20 : 878-88.
5) Li TY. Distension of the medial collateral ligament bursa of the knee with possible bursitis : a sonographic case series. J Diagn Med Sonogr 2017 ; 33 : 22-30.
6) Jung WH, Takeuchi R, Chun CW, et al. Efficacy of periarticular multimodal drug injection after medial openingwedge high tibial osteotomy : a randomized, controlled study. Arthroscopy 2014 ; 30 : 1261-8.
7) Nakamura R, Komatsu N, Fujita K, et al. Appropriate hinge position for prevention of unstable lateral hinge fracture in open wedge high tibial osteotomy. Bone Joint J 2017 ; 99-B : 1313-8.
8) Takeuchi R, Woon-Hwa J, Ishikawa H, et al. Primary stability of different plate positions and the role of bone substitute in open wedge high tibial osteotomy. Knee 2017 ; 24 : 1299-306.
9) Itou J, Itoh M, Maruki C, et al. Deep peroneal nerve has a potential risk of injury during open-wedge high tibial osteotomy. Knee Surg Sports Traumatol Arthrosc 2020 ; 28 : 1372-9.
P.147 掲載の参考文献
1) Ogata K. Interlocking wedge osteotomy of the proximal tibia for gonarthrosis. Clin Orthop Relat Res 1984 ; 186 : 129-34.
2) Okazaki K. Interlocking closed-wedge high tibial osteotomy modified with oblique osteotomy lines and a locking plate fixation. Arthrosc Tech 2021 ; 10 : e1061-6.
P.163 掲載の参考文献
1) Takeuchi R. et al. A novel closed wedge high tibial osteotomy procedure to treat osteoarthritis of the knee : hybrid technique and rehabilitation measures. Arthroscopy Tech 2014 ; 3 : e431-7.
2) Loia MC, Vanni S, Rosso F, et al. High tibial osteotomy in varus knees : indications and limits. Joints 2016 ; 4 : 98-110.
3) Akamatsu Y, Kumagai K, Kobayashi H, et al. Effect of increased coronal inclination of the tibial plateau after opening wedge high tibial osteotomy. J Arthroscopy 2018 ; 34 : 2158-69.
4) Ishimatsu T, Takeuchi R, Ishikawa H, et al. Femoral morphology afects postoperative alignment of the lower extremities in hybrid closed-wedge high tibial osteotomy. Arch Orthop Trauma Surg 2021. doi : 10.1007/s00402-021-03974-1.
5) Lee SS, Lee HI, Cho ST, et al. Comparison of the outcomes between two different target points after open wedge high tibial osteotomy : The Fuzisawa point versus the lateral tibial spine. Knee 2020 ; 27 : 915-22.
6) 大澤克成, 竹内良平, 藤間保晶. 骨粗鬆症患者に対する高位脛骨骨切り術. 骨粗鬆症患者に対する手術と成功の秘訣. 藤啓広 編. 東京 ; メジカルビュー社 ; 2019. 138-49.
P.175 掲載の参考文献
1) Horikawa T, Kubota K, Hara S, et al. Distal tuberosity osteotomy in open-wedge high tibial osteotomy does not exacerbate patellofemoral osteoarthritis on arthroscopic evaluation. Knee Surg Sports Traumatol Arthrosc 2020 ; 28 : 1750-6.
2) Gaasbeek RD, Sonneveld H, van Heerwaarden RJ, et al. Distal tuberosity osteotomy in open wedge high tibial osteotomy can prevent patella infera : a new technique. Knee 2004 ; 11 : 457-61.
3) Stoffel K, Willers C, Korshid O, et al. Patellofemoral contact pressure following high tibial osteotomy : a cadaveric study. Knee Surg Sports Traumatol Arthrosc 2007 ; 15 : 1094-100.
4) Brinkman JM, Lobenhoffer P, Agneskirchner JD, et al. Osteotomies around the knee : patient selection, stability of fixation and bone healing in high tibial osteotomies. J Bone Joint Surg Br 2008 ; 90 : 1548-57.
P.187 掲載の参考文献
1) Fujisawa Y, Masuhara K, Shiomi S. The effect of high tibial osteotomy on osteoarthritis of the knee. An arthroscopic study of 54 knee joints. The Orthopedic clinics of North America 1979 ; 10 : 585-608.
2) Prakash J, Song EK, Lim HA, et al. High tibial osteotomy accelerates lateral compartment osteoarthritis in discoid meniscus patients. Knee Surg Sports Traumatol Arthrosc 2018 ; 26 : 1845-50.
3) Dugdale TW, Noyes FR, Styer D. Preoperative planning for high tibial osteotomy. The effect of lateral tibiofemoral separation and tibiofemoral length. Clin Orthop Relat Res 1992 : 248-64.
4) Nakayama H, Schroter S, Yamamoto C, et al. Large correction in opening wedge high tibial osteotomy with resultant joint-line obliquity induces excessive shear stress on the articular cartilage. Knee Surg Sports Traumatol Arthrosc 2018 ; 26 : 1873-8.
5) Goshima K, Sawaguchi T, Shigemoto K, et al. Large opening gaps, unstable hinge fractures, and osteotomy line below the safe zone cause delayed bone healing after open-wedge high tibial osteotomy. Knee Surg Sports Traumatol Arthrosc 2019 ; 27 : 1291-8.
6) Otakara E, Nakagawa S, Arai Y, et al. Large deformity correction in medial open-wedge high tibial osteotomy may cause degeneration of patellofemoral cartilage : A retrospective study. Medicine 2019 ; 98 : e14299.
7) Koga H, Watanabe T, Horie M, et al. Augmentation of the pullout repair of a medial meniscus posterior root tear by arthroscopic centralization. Arthrosc Tech 2017 ; 6 : e1335-e9.
8) Koga H, Nakamura T, Nakagawa Y, et al. Arthroscopic centralization using knotless anchors for extruded medial meniscus. Arthrosc Tech 2021 ; 10 : e639-e45.
9) Nakayama H, Iseki T, Kanto R, et al. Physiologic knee joint alignment and orientation can be restored by the minimally invasive double level osteotomy for osteoarthritic knees with severe varus deformity. Knee Surg Sports Traumatol Arthrosc 2020 ; 28 : 742-50.
10) Ishimatsu T, Takeuchi R, Ishikawa H, et al. Hybrid closed wedge high tibial osteotomy improves patellofemoral joint congruity compared with open wedge high tibial osteotomy. Knee Surg Sports Traumatol Arthrosc 2019 ; 27 : 1299-309.

基本的手術手技

P.193 掲載の参考文献
1) Levenson SM, Geever EF, Crowley LV, et al. The healing of rat skin wounds. Ann Surg 1965 ; 161 : 293-308.
2) Noishiki C, Hayasaka Y, Ogawa R. Sex differences in keloidogenesis : an analysis of 1659 keloid patients in Japan. Dermatol Ther (Heidelb) 2019 ; 9 : 747-54.
3) Ogawa R. Keloid and hypertrophic scars are the result of chronic inflammation in the reticular dermis. Int J Mol Sci 2017 ; 18 : 606.
4) Ogawa R, Dohi T, Tosa M, et al. The latest strategy for keloid and hypertrophic scar prevention and treatment : The Nippon Medical School (NMS) protocol. J Nippon Med Sch 2021 ; 88 : 2-9.
P.196 掲載の参考文献
1) Bao Z, Gao M, Sun Y, et al. The recent progress of tissue adhesives in design strategies, adhesive mechanism and applications. Mater Sci Eng C Mater Biol Appl C 2020 ; 111 : 110796.
2) Halvorson JJ, Anz A, Langfitt M, et al. Vascular injury associated with extremity trauma : initial diagnosis and management. J Am Acad Orthop Surg 2011 ; 19 : 495-504.
2) Dumville JC, Coulthard P, Worthington HV, et al. Tissue adhesives for closure of surgical incisions. Cochrane Database Syst Rev 2014 ; 28 : CD004287.
3) El-Gazzar Y, Smith DC, Kim SJ, et al. The use of dermabond(R) as an adjunct to wound closure after total knee arthroplasty : examining immediate post-operative wound drainage. J Arthroplasty 2013 ; 28 : 553-6.
3) 前川尚宜. 重症開放性骨折の現状と課題. 関節外科 2020 ; 39 : 1362-4.
4) Yamamoto N, Kiyosawa T. Histological effects of occlusive dressing on healing of incisional skin wounds. Int Wound J 2014 ; 11 : 616-21.
4) Zhu YL, Xu YQ, Li J, et al. Medial approach for popliteal artery injuries. Chin J Traumatol 2010 ; 13 : 83-6.
5) 土田芳彦. 血管損傷を伴う膝周囲骨折に対する手術. 図3, 4. OS NOW Instruction No.20 : 東京 ; メジカルビュー社, 2011, p17.
5) Parvizi D, Friedl H, Schintler MV, et al. Use of 2-octyl cyanoacrylate together with a self-adhering mesh (Dermabond(TM) Prineo(TM)) for skin closure following abdominoplasty : an open, prospective, controlled, randomized, clinical study. Aesthetic Plast Surg 2013 ; 37 : 529-37.
P.202 掲載の参考文献
1) Stayner LR, Coen MJ. Historic perspectives of treatment algorithms in knee dislocation. Clin Sports Med 2000 ; 19 : 399-413.

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