Chinese Journal of Tissue Engineering Research ›› 2015, Vol. 19 ›› Issue (52): 8509-8516.doi: 10.3969/j.issn.2095-4344.2015.52.026
Previous Articles Next Articles
Liu Hang-hang1, Wu Chen-zhou1, Pan Wei-yi1, Su Zhi-fei1, Duan Ze-xi1, Shi Long1, Li Chun-jie1, 2
Received:
2015-10-23
Online:
2015-12-17
Published:
2015-12-17
Contact:
Li Chun-jie, Lecturer, State Key Laboratory of Oral Diseases, Sichuan University, Chengdu 610041, Sichuan Province, China; Department of Head and Neck Oncology, West China Hospital of Stomatology, Sichuan University, Chengdu 610041, Sichuan Province, China
About author:
Liu Hang-hang, State Key Laboratory of Oral Diseases, Sichuan University, Chengdu 610041, Sichuan Province, China
Wu Chen-zhou, State Key Laboratory of Oral Diseases, Sichuan University, Chengdu 610041, Sichuan Province, China
Liu Hang-hang and
Wu Chen-zhou contributed equally to this work.
Supported by:
the Scientific Research Foundation for Young Teachers in Sichuan University in 2014, No. 2014SCU11032
CLC Number:
Liu Hang-hang, Wu Chen-zhou, Pan Wei-yi, Su Zhi-fei, Duan Ze-xi, Shi Long, Li Chun-jie. The clinical application of absorbable internal fixation system in maxillofacial fractures: systematic review and Meta-analysis [J]. Chinese Journal of Tissue Engineering Research, 2015, 19(52): 8509-8516.
[1] Kommers SC,van den Bergh B,Forouzanfar T.Quality of life after open versus closed treatment for mandibular condyle fractures: a review of literature.J Craniomaxillofac Surg. 2013; 41(8):e221-e225. [2] Buijs GJ,van Bakelen NB,Jansma J,et al.A randomized clinical trial of biodegradable and titanium fixation systems in maxillofacial surgery.J Dent Res.2012;91(3): 299-304. [3] Siniscalchi EN,Catalfamo L,Allegra A,et al.Titanium miniplates: a new risk factor for the development of the bisphosphonate-related osteonecrosis of the jaw.J Craniofac Surg.2013;24(1):e1-2. [4] Jainandunsing JS,Elst M,Werken CC.Bioresorbable fixation devices for musculoskeletal injuries in adults.The Cochrane Library,2005. [5] Cochrane handbook for systematic reviews of interventions.Chichester,England: Wiley-Blackwell,2008. [6] Wittwer G,Adeyemo WL,Yerit K,et al.Complications after zygoma fracture fixation: Is there a difference between biodegradable materials and how do they compare with titanium osteosynthesis?Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2006;101(4):419-425. [7] Menon S,Chowdhury SKR.Evaluation of bioresorbable visàvis titanium plates and screws for craniofacial fractures and osteotomies.MJAFI.2007;63(4):331-333. [8] Leonhardt H,Demmrich A,Mueller A,et al.INION 03 compared with titanium osteosynthesis: a prospective investigation of the treatment of mandibular fractures.Br J Oral Maxillofac Surg.2008;46(8):631-634. [9] 周庆豪.颌面部骨折内固定方法的选择与探讨—附136 例分析[J].广西中医学院学报, 2010,13(1):37-38. [10] Lee HB,Oh JS,Kim SG,et al.Comparison of titanium and biodegradable miniplates for fixation of mandibular fractures.J Oral Maxillofac Surg.2010;68(9):2065-2069. [11] Bhatt K,Roychoudhury A,Bhutia O,et al.Equivalence randomized controlled trial of bioresorbable versus titanium miniplates in treatment of mandibular fracture: a pilot study.J Oral Maxillofac Surg.2010;68(8):1842-1848. [12] 卢军,冯兴梅,徐克,等.聚左旋丙交酯可吸收材料在下颌骨骨折中的临床应用[J].中国现代医学杂志,2011,21(32):4091-4093. [13] 唐蓬林.钛板与可吸收板治疗面部骨折临床总结[J].中国伤残医学,2012,20(10):60-61. [14] Ahmed W,Bukhari SGA,Janjua OS,et al.Bioresorbable versus titanium plates for mandibular fractures.J Coll Physicians Surg Pak.2013;23:480-483. [15] 王乃俊.不同手术方法治疗下颌骨骨折的临床疗效观察[J].中国当代医药,2013, 20(12):31-32. [16] 宋光宇,胡淑娜.不同固定方法治疗颌面部骨折的临床效果比较[J].河南医学研究,2014, 23(6):81-82. [17] 徐泽群.可吸收内固定板治疗颌骨骨折的临床疗效观察[J].口腔医学,2014,34(9): 716-718. [18] Burlini D,Conti G,Amadori F,et al.Management of paediatric maxillofacial fractures: conventional methods and resorbable materials.Eur J Paediatr Dent.2015; 16(1):24-28. [19] Roccia F,Boffano P,Bianchi FA,et al.An 11-year review of dental injuries associated with maxillofacial fractures in Turin, Italy.Oral Maxillofac Surg.2013; 17(4):269-274. [20] Bos RR.Treatment of pediatric facial fractures: the case for metallic fixation.J Oral Maxillofac Surg.2005;63(3):382-384. [21] Bos RR,Boering G,Rozema FR,et al.Resorbable poly (L-lactide) plates and screws for the fixation of zygomatic fractures.J Oral Maxillofac Surg.1987; 45(9):751-753. [22] Eppley BL,Sadove AM.Resorbable coupling fixation in craniosynostosis surgery: experimental and clinical applications.J Craniofac Surg.1995;6(6):477-482. [23] Eppley BL,Morales L,Wood R,et al.Resorbable PLLA-PGA plate and screw fixation in pediatric craniofacial surgery: clinical experience in 1883 patients.Plast Reconstr Surg. 2004;114(4):850-856. [24] Ashammakhi N,Renier D,Arnaud E,et al.Successful use of biosorb osteofixation devices in 165 cranial and maxillofacial cases: a multicenter report.J Craniofac Surg.2004;15(4): 692-701. [25] Buijs GJ,van Bakelen NB,Jansma J,et al.A randomized clinical trial of biodegradable and titanium fixation systems in maxillofacial surgery.J Dent Res.2012;91(3):299-304. [26] Buijs GJ,Stegenga B,Bos RR.Efficacy and safety of biodegradable osteofixation devices in oral and maxillofacial surgery: a systematic review.J Dent Res.2006;85(11): 980-989. [27] Yang L,Xu M,Jin X,et al.Skeletal stability of bioresorbable fixation in orthognathic surgery: A systemic review.J Craniomaxillofac Surg.2014;42(5):e176-e181. [28] Yang L,Xu M,Jin X,et al.Complications of absorbable fixation in maxillofacial surgery: a meta-analysis.PloS One.2013;8(6): e67449. [29] Dorri M,Nasser M,Oliver R.Resorbable versus titanium plates for facial fractures.Cochrane Database Syst Rev.2009;(1): CD007158. [30] Stroud CC.Absorbable implants in fracture management.Foot Ankle Clin. 2002;7(3):495-499. |
[1] | Chen Ziyang, Pu Rui, Deng Shuang, Yuan Lingyan. Regulatory effect of exosomes on exercise-mediated insulin resistance diseases [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(25): 4089-4094. |
[2] | Chen Yang, Huang Denggao, Gao Yuanhui, Wang Shunlan, Cao Hui, Zheng Linlin, He Haowei, Luo Siqin, Xiao Jingchuan, Zhang Yingai, Zhang Shufang. Low-intensity pulsed ultrasound promotes the proliferation and adhesion of human adipose-derived mesenchymal stem cells [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(25): 3949-3955. |
[3] | Yang Junhui, Luo Jinli, Yuan Xiaoping. Effects of human growth hormone on proliferation and osteogenic differentiation of human periodontal ligament stem cells [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(25): 3956-3961. |
[4] | Sun Jianwei, Yang Xinming, Zhang Ying. Effect of montelukast combined with bone marrow mesenchymal stem cell transplantation on spinal cord injury in rat models [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(25): 3962-3969. |
[5] | Gao Shan, Huang Dongjing, Hong Haiman, Jia Jingqiao, Meng Fei. Comparison on the curative effect of human placenta-derived mesenchymal stem cells and induced islet-like cells in gestational diabetes mellitus rats [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(25): 3981-3987. |
[6] | Hao Xiaona, Zhang Yingjie, Li Yuyun, Xu Tao. Bone marrow mesenchymal stem cells overexpressing prolyl oligopeptidase on the repair of liver fibrosis in rat models [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(25): 3988-3993. |
[7] | Liu Jianyou, Jia Zhongwei, Niu Jiawei, Cao Xinjie, Zhang Dong, Wei Jie. A new method for measuring the anteversion angle of the femoral neck by constructing the three-dimensional digital model of the femur [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3779-3783. |
[8] | Meng Lingjie, Qian Hui, Sheng Xiaolei, Lu Jianfeng, Huang Jianping, Qi Liangang, Liu Zongbao. Application of three-dimensional printing technology combined with bone cement in minimally invasive treatment of the collapsed Sanders III type of calcaneal fractures [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3784-3789. |
[9] | Qian Xuankun, Huang Hefei, Wu Chengcong, Liu Keting, Ou Hua, Zhang Jinpeng, Ren Jing, Wan Jianshan. Computer-assisted navigation combined with minimally invasive transforaminal lumbar interbody fusion for lumbar spondylolisthesis [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3790-3795. |
[10] | Hu Jing, Xiang Yang, Ye Chuan, Han Ziji. Three-dimensional printing assisted screw placement and freehand pedicle screw fixation in the treatment of thoracolumbar fractures: 1-year follow-up [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3804-3809. |
[11] | Shu Qihang, Liao Yijia, Xue Jingbo, Yan Yiguo, Wang Cheng. Three-dimensional finite element analysis of a new three-dimensional printed porous fusion cage for cervical vertebra [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3810-3815. |
[12] | Wang Yihan, Li Yang, Zhang Ling, Zhang Rui, Xu Ruida, Han Xiaofeng, Cheng Guangqi, Wang Weil. Application of three-dimensional visualization technology for digital orthopedics in the reduction and fixation of intertrochanteric fracture [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3816-3820. |
[13] | Sun Maji, Wang Qiuan, Zhang Xingchen, Guo Chong, Yuan Feng, Guo Kaijin. Development and biomechanical analysis of a new anterior cervical pedicle screw fixation system [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3821-3825. |
[14] | Lin Wang, Wang Yingying, Guo Weizhong, Yuan Cuihua, Xu Shenggui, Zhang Shenshen, Lin Chengshou. Adopting expanded lateral approach to enhance the mechanical stability and knee function for treating posterolateral column fracture of tibial plateau [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3826-3827. |
[15] | Zhu Yun, Chen Yu, Qiu Hao, Liu Dun, Jin Guorong, Chen Shimou, Weng Zheng. Finite element analysis for treatment of osteoporotic femoral fracture with far cortical locking screw [J]. Chinese Journal of Tissue Engineering Research, 2021, 25(24): 3832-3837. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||