1 |
张英泽.老年髋部骨折治疗的回顾与展望[J].中华老年骨科与康复电子杂志, 2022, 08(01): 1-3.
|
2 |
Chang SM, Hou ZY, Hu SJ, et al. Intertrochanteric femur fracture treatment in Asia: what we know and what the world can learn [J]. Orthop Clin North Am, 2020, 51(2): 189-205.
|
3 |
张宇,秦晓东,许艺荠,等.老年股骨转子间骨折术后1年死亡率及危险因素分析[J].中华老年骨科与康复电子杂志, 2018, 04(05): 277-281.
|
4 |
Kaufer H. Mechanics of the treatment of hip injuries [J]. Clin Orthop Relat Res, 1980 (146): 53-61.
|
5 |
倪明,孙万驹,张芳芳,等.股骨转子间骨折手术疗效的相关影响因素分析[J].中华创伤杂志, 2020, 36(07): 624-629.
|
6 |
聂少波,张伟,张里程,等.股骨转子间骨折术后内固定失效的危险因素研究进展[J].中华创伤骨科杂志, 2021, 23(03): 233-238.
|
7 |
袁志,毕龙.老年股骨转子间骨折的治疗趋势[J].中华骨科杂志, 2017 (17): 1057-1060.
|
8 |
张世民,张英琪,李清,等.内侧皮质正性支撑复位对老年股骨粗隆间骨折内固定效果的影响[J].中国矫形外科杂志, 2014, 22(14): 1256-1261.
|
9 |
Chang SM, Zhang YQ, Ma Z, et al. Fracture reduction with positive medial cortical support: a key element in stability Reconstruction for the unstable pertrochanteric hip fractures [J]. Arch Orthop Trauma Surg, 2015, 135(6): 811-818.
|
10 |
赵晓涛,张殿英,郁凯,等.股骨近端防旋髓内钉固定治疗股骨转子间骨折的失效原因分析[J].中华创伤骨科杂志, 2021, 23(03): 202-208.
|
11 |
Mao W, Ni H, Li L, et al. Comparison of baumgaertner and chang reduction quality criteria for the assessment of trochanteric fractures [J]. Bone Joint Res, 2019, 8(10): 502-508.
|
12 |
Chen SY, Chang SM, Tuladhar R, et al. A new fluoroscopic view for evaluation of anteromedial cortex reduction quality during cephalomedullary nailing for intertrochanteric femur fractures: the 30° oblique tangential projection [J]. BMC Musculoskelet Disord, 2020, 21(1): 719.
|
13 |
Willemsen K, Nizak R, Noordmans HJ, et al. Challenges in the design and regulatory approval of 3D-printed surgical implants:a two-case series [J]. Lancet Digit Health, 2019, 1(4): ee71-e163.
|
14 |
Lewis GS, Mischler D, Wee H, et al. Finite element analysis of fracture fixation [J]. Curr Osteoporos Rep, 2021, 19(4): 403-416.
|
15 |
Furui A, Terada N, Mito K. Mechanical simulation study of postoperative displacement of trochanteric fractures using the finite element method [J]. J Orthop Surg Res, 2018, 13(1): 300.
|
16 |
Shao Q, Zhang Y, Sun GX, et al. Positive or negative anteromedial cortical support of unstable pertrochanteric femoral fractures: A finite element analysis study [J]. Biomed Pharmacother, 2021, 138: 111473.
|
17 |
罗鹏远,赵阔,王忠正,等.关于温哥华C型股骨假体周围骨折采用不同长度锁定钢板固定的生物力学研究[J].中华老年骨科与康复电子杂志, 2020, 06(01): 18-24.
|
18 |
Park YC, Yoon SP, Yang KH. The Effects of Extramedullary Reduction in Unstable Intertrochanteric Fracture: A Biomechanical Study Using Cadaver Bone [J]. J Korean Fracture Society, 2018, 31(3).
|
19 |
李双,张世民,张立智,等.不同组合前内侧皮质支撑复位对股骨转子间骨折髓内钉术后稳定性影响的生物力学研究[J].中华创伤骨科杂志, 2019 (01): 57-64.
|
20 |
Ling L, Qu ZY, Zhou KH. Effect of fracture reduction with different medial cortical support on stability after cephalomedullary nail fixation of unstable pertrochanteric fractures: a biomechanical analysis [J]. Indian J Orthop, 2022, 56(1): 34-40.
|
21 |
Kawamura Tadashi, Minehara Hiroaki, Tazawa Ryo, et al. Biomechanical Evaluation of Extramedullary Versus Intramedullary Reduction in Unstable Femoral Trochanteric Fractures [J]. Geriatr Orthop Surg Rehabil, 2021, 12: 2151459321998611.
|
22 |
Li J, Zhang L, Zhang H, et al. Effect of reduction quality on post-operative outcomes in 31-A2 intertrochanteric fractures following intramedullary fixation: a retrospective study based on computerised tomography findings [J]. Int Orthop, 2019, 43(8): 1951-9.
|
23 |
Yamamoto N, Imaizumi T, Noda T, et al. Postoperative computed tomography assessment of anteromedial cortex reduction is a predictor for reoperation after intramedullary nail fixation for pertrochanteric fractures [J]. Eur J Trauma Emer Surg, 2022, 48(2): 1437-44.
|
24 |
Skamniotis CG, Elliott M, Charalambides MN. Computer simulations of food oral processing to engineer teeth cleaning [J]. Nat Commun, 2019, 10(1): 3571.
|
25 |
Tutwiler Valerie, Singh Jaspreet, Litvinov Rustem I, et al. Rupture of blood clots: Mechanics and pathophysiology [J]. Sci Adv, 2020, 6(35): eabc0496.
|
26 |
Zhang Yingqi, Sun Yeqing, Liao Shenghui, et al. Three-Dimensional Mapping of Medial Wall in Unstable Pertrochanteric Fractures [J]. Biomed Res Int, 2020: 8428407.
|
27 |
Hashimoto N, Ando M, Yayama T, et al. Dynamic analysis of the resultant force acting on the hip joint during level walking [J]. Artif Organs, 2005, 29(5): 387-392.
|
28 |
Lim EJ, Sakong S, Son WS, et al. Comparison of sliding distance of lag screw and nonunion rate according to anteromedial cortical support in intertrochanteric fracture fixation:A systematic review and meta-analysis [J]. Injury, 2021, 52(10): 2787-2794.
|
29 |
He M, Liu J, Deng X, et al. The postoperative prognosis of older intertrochanteric fracture patients as evaluated by the Chang reduction quality criteria [J]. BMC Geriatrics, 2022, 22(1): 928.
|
30 |
王跃挺,张琳袁,龚伟华,等.老年转子间骨折股骨近端防旋髓内钉内固定术后骨折断端阳性支撑与阴性支撑短期疗效比较[J].中华骨与关节外科杂志, 2021, 14(03): 205-209.
|
31 |
Chang SM, Zhang YQ, Du SC, et al. Anteromedial cortical support reduction in unstable pertrochanteric fractures: a comparison of intra-operative fluoroscopy and post-operative three dimensional computerised tomography Reconstruction [J]. Int Orthop, 2018, 42(1): 183-189.
|
32 |
Kristan A, Benuli, Jakli M. Reduction of trochanteric fractures in lateral view is significant predictor for radiological and functional result after six months [J]. Injury, 2021, 52(10): 3036-3041.
|
33 |
Li SJ, Kristan A, Chang SM. Neutral medial cortical relation predicts a high loss rate of cortex support in pertrochanteric femur fractures treated by cephalomedullary nail [J]. Injury, 2021, 52(11): 3530-3531.
|
34 |
Wildemann B, Ignatius A, Leung F, et al. Non-union bone fractures [J]. Nat Rev Dis Primers, 2021, 7(1): 57.
|
35 |
Jia XY, Zhang K, Qiang MF, et al. The accuracy of intra-operative fluoroscopy in evaluating the reduction quality of intertrochanteric hip fractures [J]. Int Orthop, 2020, 44(6): 1201-1208.
|
36 |
Tian KW, Zhang LL, Liu C, et al. The positive, neutral, and negative cortex relationship in fracture reduction of per/inter-trochanteric femur fractures [J]. Int Orthop, 2020, 44(11): 2475-2476.
|
37 |
Tsukada S, Okumura G, Matsueda M. Postoperative stability on lateral radiographs in the surgical treatment of pertrochanteric hip fractures [J]. Arch Orthop Trauma Surg, 2012, 132(6): 839-846.
|
38 |
Wang ZH, Li KN, Lan H, et al. A comparative study of intramedullary nail strengthened with auxiliary locking plate or steel wire in the treatment of unstable trochanteric fracture of femur [J]. Orthop Surg, 2020, 12(1): 108-115.
|
39 |
Huang Chaoqing, Wu Xing. Surgical Selection of Unstable Intertrochanteric Fractures: PFNA Combined with or without Cerclage Cable [J]. Bio Med Res Int, 2021, 2021: 8875370.
|
40 |
Sallehuddin H, Ong T. Get up and get moving-early mobilisation after hip fracture surgery [J]. Age Ageing, 2021, 50(2): 356-357.
|
41 |
Ottesen TD, Mclynn RP, Galivanche AR, et al. Increased complications in geriatric patients with a fracture of the hip whose postoperative weight-bearing is restricted:an analysis of 4918 patients [J]. Bone Joint J, 2018, 100-b(10): 1377-1384.
|
42 |
Baumgaertner M, Curtin S, Lindskog D, et al. The value of the tip-apex distance in predicting failure of fixation of peritrochanteric fractures of the hip [J]. J Bone Joint Surg Am, 1995, 77(7): 1058-1064.
|
43 |
Choo SK, Oh HK, Ko HT, et al. Effectiveness of controlled telescoping system for lateral hip pain caused by sliding of blade following intramedullary nailing of trochanteric fracture [J]. Injury, 2017, 48(10): 2201-2206.
|
44 |
Fogagnolo F, Kfuri M, Paccola C. Intramedullary fixation of pertrochanteric hip fractures with the short AO-ASIF proximal femoral nail [J]. Arch Orthop Trauma Surg, 2004, 124(1): 31-37.
|
45 |
Lee Christopher, Kelley Ben, Gurbani Ajay, et al. Strategies for Pertrochanteric Fracture Reduction and Intramedullary Nail Placement: Technical Tips and Tricks [J]. J Am Acad Orthop Surg, 2022, 30(18):867-878.
|
46 |
He M, Liu J, Deng X, et al. The postoperative prognosis of older intertrochanteric fracture patients as evaluated by the Chang reduction quality criteria [J]. BMC Geriatr, 2022, 22(1): 928.
|
47 |
Cherian Nathan, Oladeji Lasun, Ohnoutka Cole, et al. Risk of shortening in operatively treated proximal femur fractures with cephalomedullary nails with dynamically versus statistically locked helical blades [J]. Injury, 2022: S0020-1383(22)00914-7.
|