[1] |
Sevinc B, Okus A, Ay S, et al. Randomized prospective comparison of long-term results of onlay and sublay mesh repair techniques for incisional hernia[J]. Turk J Surg, 2018, 34(1): 17-20.
|
[2] |
Shahida PA, Rameez AS, Akram R. Complication of onlay and sublay mesh plasty in ventral abdominal hernia repair[J]. J Surg Pak(Intern), 2015, 20(2): 48-51.
|
[3] |
李骥宇, 崔明, 刘泽刚, 等. 直接穿刺法建立第一穿刺孔及气腹在腹腔镜切口疝修补术中的应用[J/CD]. 中华疝和腹壁外科杂志(电子版), 2019, 13(1): 36-38.
|
[4] |
倪敏, 申英末, 刘静, 等. 肌后间隙修补法治疗腹壁切口疝患者的疗效[J/CD]. 中华疝和腹壁外科杂志(电子版), 2018, 12(5): 360-362.
|
[5] |
Smith CT, Katz MG, Foley D, et al. Incidence and risk factors of incisional hernia formation following abdominal organ transplantation[J]. Surg Endosc, 2015, 29(2): 398-404.
|
[6] |
Massarweh NN, Clayton JL, Mangum CA, et al. High body mass index and short-and long-term renal allograft survival in adults[J]. Transplantation, 2005, 80(10): 1430-1434.
|
[7] |
Singh D, Lawen J, Alkhudair W. Does Pretransplant obesity affect the outcome in kidney transplant recipients?[J]. Transplant Proc, 2005, 37(2): 717-720.
|
[8] |
Birolini C. Prosthetic repair of incisional hernia in kidney transplant patients. A technique with onlay polypropylene mesh[J]. Hernia, 2001, 5(1): 31-35.
|
[9] |
Mahdavi R, Mehrabi M. Incisional Hernia after Renal Transplantation and Its Repair with Propylene Mesh[J]. Urol J, 2004, 1(4): 259-262.
|
[10] |
Mazzucchi E, Nahas WC, Antonopoulos I, et al. Incisional hernia and its repair with polypropylene mesh in renal transplant recipients[J]. J Urol, 2001, 166(3): 816-819.
|
[11] |
Varga M, Matia I, Kucera M, et al. Polypropylene mesh repair of incisional hernia after kidney transplantation: Single-center experience and review of the literature[J]. Ann Transplant, 2011, 16(3): 121-125.
|
[12] |
Humar A, Ramcharan T, Denny R, et al. Are wound complications after a kidney transplant more common with modern immunosuppression? [J]. Transplantation, 2001, 72(12): 1920-1923.
|
[13] |
Clemente Ramos LM, Burgos Revilla FJ, Gómez Dosantos V, et al. Reconstructive surgery with polypropylene mesh associated with kidney transplant[J]. Actas Urol Esp, 1998, 22(4): 320-325.
|
[14] |
Flechner SM, Zhou L, Derweesh I, et al. The impact of sirolimus, mycophenolate mofetil, cyclosporine, azathioprine, and steroids on wound healing in 513 kidney-transplant recipients[J]. Transplantation, 2003, 76(12): 1729-1734.
|
[15] |
Ooms L S, Verhelst J, Jeekel J, et al. Incidence, risk factors, and treatment of incisional hernia after kidney transplantation: An analysis of 1, 564 consecutive patients[J]. Surgery, 2016, 159(5): 1407-1411.
|
[16] |
Mele TS, Halloran PF. The use of mycophenolate mofetil in transplant recipients[J]. Immunopharmacology, 2000, 47(2/3): 215-245.
|
[17] |
Meier-Kriesche HU, Friedman G, Jacobs M, et al. Infectious complications in geriatric renal transplant patients: comparison of two immunosuppressive protocols[J]. Transplantation, 1999, 68(10): 1496-1502.
|
[18] |
Filocamo MT, Zanazzi M, Marzi VL, et al. The Approach by Midline Incision for Extraperitoneal Kidney Transplantation[J]. Transplant Proc, 2007, 39(10): 3077-3080.
|
[19] |
Knight RJ, Villa M, Laskey R, et al. Risk factors for impaired wound healing in sirolimus-treated renal transplant recipients[J]. Clin Transplant, 2007, 21(4): 460-465.
|
[20] |
Troppmann C, Pierce JL, Gandhi MM, et al. Higher surgical wound complication rates with sirolimus immunosuppression after kidney transplantation: a matched-pair pilot study[J]. Transplantation, 2003, 76(2): 426-429.
|
[21] |
Cao W, Mohacsi P, Shorthouse R, et al. Effects of rapamycin on growth factor-stimulated vascular smooth muscle cell DNA synthesis. Inhibition of basic fibroblast growth factor and platelet-derived growth factor action and antagonism of rapamycin by FK506[J]. Transplantation, 1995, 59(3): 390-395.
|
[22] |
Monte AIL, Damiano G, Maione C, et al. Use of Intraperitoneal ePTFE gore dual-mesh plus in a giant incisional hernia after kidney transplantation: a case report[J]. Transplant Proc, 2009, 41(4): 1398-1401.
|
[23] |
O"Dwyer PJ, Courtney CA. Factors involved in abdominal wall closure and subsequent incisional hernia[J]. Surgeon, 2003, 1(1): 17-22.
|
[24] |
Grantcharov TP, Rosenberg J. Vertical compared with transverse incisions in abdominal surgery[J]. Eur J Surg, 2001, 167(4): 260-267.
|
[25] |
Greenall MJ, Evans M, Pollock AV. Midline or transverse laparotomy? A random controlled clinical trial. Part I: Influence on healing[J]. Br J Surg, 1980, 67(3): 188-190.
|
[26] |
Nanni G, Tondolo V, Citterio F, et al. Comparison of Oblique Versus Hockey-Stick Surgical Incision for Kidney Transplantation[J]. Transplant Proc, 2005, 37(6): 2479-2481.
|
[27] |
Yildız I, Koca YS. What kind of incision should be made to reduce the risk of incisional hernia in kidney transplantation?[J]. Ann Transplant, 2017, 22: 689-693.
|
[28] |
Israelsson LA, Millbourn D. Prevention of incisional hernias how to close a midline incision[J]. Surg Clin North Am, 2013, 93(5): 1027-1040.
|
[29] |
Högström H, Haglund U, Zederfeldt B. Suture technique and early breaking strength of intestinal anastomoses and laparotomy wounds[J]. Acta Chir Scand, 1985, 151(5): 441-443.
|
[30] |
Usher FC, Ochsner J, Tuttle LL. Use of marlex mesh in the repair of incisional hernias[J]. Am Surg, 1958, 24(24): 969-974.
|
[31] |
Clemente Ramos LM, Burgos Revilla FJ, Gómez Dosantos V, et al. Reconstructive surgery with polypropylene mesh associated with kidney transplant[J]. Actas Urol Esp, 1998, 22(4): 320-325.
|
[32] |
Beasley KA, Mcalister VC, Luke PPW. Mesh hood fascial closure in renal allograft compartment syndrome[J]. Transplant Proc, 2003, 35(7): 2418-2419.
|
[33] |
Antonopoulos IM, Nahas WC, Mazzucchi E, et al. Is polypropylene mesh safe and effective for repairing infected incisional hernia in renal transplant recipients?[J]. Urology, 2005, 66(4): 874-877.
|
[34] |
Birolini C, Utiyama EM, Rodrigues AJ, et al. Elective colonic operation and prosthetic repair of incisional hernia: does contamination contraindicate abdominal wall prosthesis use?[J]. J Am Coll Surg, 2000, 191(4): 366-372.
|
[35] |
Martin P, Barbora E, Andrej L, et al. Abdominal closure reinforcement by using polypropylene mesh functionalized with poly-ε-caprolactone nanofibers and growth factors for prevention of incisional hernia formation[J]. Int J Nanomedicine, 2014, 9(1): 3263-3277.
|
[36] |
Jakubova R, Mickova A, Buzgo M, et al. Immobilization of thrombocytes on PCL nanofibres enhances chondrocyte proliferation in vitro[J]. Cell Prolif, 2011, 44(2): 183-191.
|
[37] |
Chen M, Patra PK, Warner SB, et al. Role of Fiber Diameter in Adhesion and Proliferation of NIH 3T3 Fibroblast on Electrospun Polycaprolactone Scaffolds[J]. Tissue Eng, 2007, 13(3): 579-587.
|
[38] |
Rampichová M, Chvojka J, Buzgo M, et al. Elastic three-dimensional poly(ε-caprolactone) nanofibre scaffold enhances migration, proliferation and osteogenic differentiation of mesenchymal stem cells[J]. Cell Prolif, 2013, 46(1): 23-37.
|
[39] |
Ebersole GC, Buettmann EG, Macewan MR, et al. Development of novel electrospun absorbable polycaprolactone(PCL) scaffolds for hernia repair applications[J]. Surg Endosc, 2012, 26(10): 2717-2728.
|
[40] |
Santangelo ML, Carlomagno N, Spiezia S, et al. Use of biological prostheses in transplant patients with incisional hernias. Preliminary experience[J]. Ann Ital Chir, 2013, 84(4): 471-475.
|