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第 1 期 王松, 等: 髓核固定/滑动型人工颈椎间盘应力特征对比及关节面摩擦学优化设计 85
prestige LP cervical disc replacement: clinical and radiological protect cross-linked Uhmwpe from oxidation[J]. Biomaterials, 2010,
analysis with minimum two-year follow-up[J]. Spine, 2011, 36(2): 31: 3643–3648. doi: 10.1016/j.biomaterials.2010.01.076.
105–111. doi: 10.1097/BRS.0b013e3181d76f99. [14] Brown T, Bao Q B. The use of self-mating PEEK as an alternative
[ 3 ] Malham G M, Parker R M, Ellis N J, et al. Cervical artificial disc bearing material for cervical disc arthroplasty: a comparison of
replacement with ProDisc-C: Clinical and radiographic outcomes different simulator inputs and tribological environments[J]. Eur
with long-term follow-up[J]. Journal of Clinical Neuroscience, 2014, Spine J, 2012, 21: 717–726. doi: 10.1007/s00586-012-2252-9.
21(6): 949–953. doi: 10.1016/j.jocn.2013.09.013. [15] Wang Song, Wang Fei, Liao Zhenhua, et al. Tribological behavior of
[ 4 ] Miao Jinhao, Yu Fengbin, Shen Ye, et al. Clinical and radiographic titanium alloy modified by Carbon-DLC composite film[J]. Surface
outcomes of cervical disc replacement with a new prosthesis[J]. The Engineering, 2015, 31(12): 934–941. doi: 10.1179/1743294414Y.
Spine Journal, 2014, 14(6): 878–883. doi: 10.1016/j.spinee.2013.07. 0000000452.
439. [16] Wang Song, Liao Zhenhua, Liu Yuhong, et al. Different tribological
[ 5 ] Abitbol J J, Maroon J C, Edwards W S, et al. 2-year results from
behaviors of titanium alloys modified by thermal oxidation and
four IDE study sites: CerviCore intervertebral disc vs. fusion[J]. The
spraying diamond like carbon[J]. Surface & Coatings Technology,
Spine Journal,, 2010, 10(9): 139–140.
2014, 252: 64–73.
[ 6 ] L H S Sekhon, J R Ball. Artificial cervical disc replacement:
[17] Song Wang, Zhenhua Liao, Yuhong Liu, et al. The tribological
Principles, types and techniques[J]. Neurology India, 2005, 53(4):
behaviors of three films coated on biomedical titanium alloy by
445–450. doi: 10.4103/0028-3886.22611.
chemical vapor deposition[J]. Journal of Materials Engineering and
[ 7 ] Pu Ting, Yuan Fang, Liao Zhenhua, et al. Research progresses of
Performance, 2015, 11(24): 4462–4474.
artificial cervical disc structure, material and in vitro
[18] Song Wang, Jian Song, Zhenhua Liao, et al. Comparison of wear
biomechanics[J]. Chinese Journal of Tissue Engineering Research,
behaviors for artificial cervical disc under flexion/extension and
2013, 17(26): 4888–4895 (in Chinese) [蒲婷, 原芳, 廖振华, 等. 人
axial rotation motions[J]. Materials Science and Engineering C,
工颈椎间盘结构、材料及体外生物力学研究进展[J]. 中国组织工
2016, 63: 256–265. doi: 10.1016/j.msec.2016.02.070.
程研究, 2013, 17(26): 4888–4895]. doi: 10.3969/j.issn.2095-4344.
[19] Song Wang, Zhenhua Liao, Junzhe Lu, et al. The biotribological
2013.26.019.
behavior of an artificial cervical disc model with ball-on-socket
[ 8 ] Van Ooij A, Kurtz S M, Stessels F, et al. Polyethylene wear debris
contact type under different material configurations[J]. Tribology
and long-term clinical failure of the charité disc prosthesis: A study
Letters, 2017, 65(8): Article number: 8. doi:
of 4 patients[J]. Spine, 2007, 32(2): 223–229. doi: 10.1097/01.brs.
https://doi.org/10.1007/s11249-016-0767-7..
0000251370.56327.c6.
[20] P Hyde, R Vicars, J Fisher, et al. Wear simulation of total disc
[ 9 ] Abu-Amer Y, Darwech I, Clohisy J C. Aseptic loosening of total
arthroplasties: Sensitivity to device design and test parameters[J].
joint replacements: mechanisms underlying osteolysis and potential
Journal of ASTM International, 2012, 9(2): 1–10.
therapies[J]. Arthritis Research & Therapy, 2007, 9(Suppl 1):
[21] R Vicars, P J Hyde, T D Brown, et al. The effect of anterior-
S1–S6.
posterior shear load on the wear of ProDisc-L TDR[J]. Eur Spine J,
[10] R Sonntag, J Reinders, J P Kretzer. What ’s next? Alternative
2010, 19: 1356–1362. doi: 10.1007/s00586-010-1396-8.
materials for articulation in total joint replacement[J]. Acta
[22] H Xin, D E T Shepherd, K D Dearn. A tribological assessment of a
Biomaterialia, 2012, 8: 2434–2441. doi: 10.1016/j.actbio.2012.
03.029. PEEK based self-mating total cervical disc replacement[J]. Wear,
[11] C A Love, R B Cook, T J Harvey, et al. Diamond like carbon 2013, 303: 473–479. doi: 10.1016/j.wear.2013.03.052.
coatings for potential application in biological implants-a review[J]. [23] Yanbin Zhao, Yilong Zhang, Yu Sun, et al. Application of cervical
Tribology International, 2013, 63: 141–150. doi: 10.1016/j.triboint. arthroplasty with bryan cervical disc: 10-Year Follow-up Results in
2012.09.006. China[J]. Spine, 2016, 41(2): 111–115. doi: 10.1097/BRS.000000
[12] Alessandro Bistolfi, Anuj Bellare. The relative effects of radiation 0000001145.
crosslinking and type of counterface on the wear resistance of [24] Sasso WR, Smucker JD, Sasso MP, et al. Long-term clinical
ultrahigh-molecular-weight polyethylene[J]. Acta Biomaterialia, outcomes of cervical disc arthroplasty: A prospective, randomized,
2011, 7: 3398–3403. doi: 10.1016/j.actbio.2011.05.018. controlled trial[J]. Spine, 2017, 42(4): 209–216. doi: 10.1097/BRS.
[13] Reto Lerf, Daniel Zurbrugg, Daniel Delfosse. Use of vitamin E to 0000000000001746.