Literature DB >> 12942002

Mechanical performance of the new posterior spinal implant: effect of materials, connecting plate, and pedicle screw design.

Po-Quang Chen1, Son-Jyh Lin, Shing-Sheng Wu, Hon So.   

Abstract

STUDY
DESIGN: A newly designed spinal implant was tested to evaluate multicycle stiffness and fatigue resistance.
OBJECTIVES: To investigate the effect of different materials, connecting plate, and pedicle screw design on the mechanical performance of the spinal implant. SUMMARY OF THE BACKGROUND DATA: The addition of cross-linkages did not significantly increase implant compression/flexion stiffness, but accelerated fatigue failure at the rod junctions. Both Ti-6Al-4V spinal implants and the 316L stainless-steel counterparts have been used extensively for clinical cases; however, design factors establishing the proposed superiority of the Ti-6Al-4V implant for fatigue resistance have not, as yet, been extensively studied.
METHODS: Twenty implants with connecting plates (two materials by two screw designs by five implants) and five implants without connecting plates were assembled to UHMWPE blocks and cyclically loaded from 60 N to 600 N at a frequency of 5 Hz.
RESULTS: Failure sites for the tested prototypes were at the cephalic screw hubs or rod-plate junctions. All Ti-6Al-4V implants demonstrated reduced stiffness compared to the structurally identical 316L analogs. The use of connecting plates raised the stiffness of the 316L prototypes without cross-links. However, elimination of the connecting plate avoided stress concentration at the rod/plate junctions and increased fatigue life. The Ti-6Al-4V new system with the minimal notch effect at the screw hubs achieved greater fatigue resistance than its 316L counterpart. By contrast, enlargement of the inner-hub diameter resulted in greater gains for fatigue resistance than for stiffness, especially for Ti-6Al-4V variants.
CONCLUSIONS: Although Ti-6Al-4V was superior to 316L for endurance-limit properties, structural design of the Ti-6Al-4V implant dramatically affects fatigue resistance. This may explain the differences between existing studies and the current report, comparing fatigue life for implants made from these two materials. Our results reveal that Ti-6Al-4V must be carefully treated because of sensitivity to notch, with special consideration given to screw-hub design.

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Year:  2003        PMID: 12942002     DOI: 10.1097/01.BRS.0000058718.38533.B8

Source DB:  PubMed          Journal:  Spine (Phila Pa 1976)        ISSN: 0362-2436            Impact factor:   3.468


  6 in total

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Authors:  Mayur P Kardile; Sukhraj S Bains; Calvin C Kuo; Todd L Lincoln; Ravi S Bains
Journal:  Spine Deform       Date:  2021-02-08

2.  Half-threaded holes markedly increase the fatigue life of locking plates without compromising screw stability.

Authors:  Ching-Kong Chao; You-Lin Chen; Jinn Lin
Journal:  Bone Joint Res       Date:  2020-10-10       Impact factor: 5.853

3.  Effect of the pilot hole preparation on the anchorage of pedicle screws.

Authors:  Gustavo Silva Abrahão; Rodrigo César Rosa; Rodrigo Okubo; Antônio Carlos Shimano
Journal:  Acta Ortop Bras       Date:  2012       Impact factor: 0.513

4.  The Mechanical Effect of Rod Contouring on Rod-Screw System Strength in Spine Fixation.

Authors:  Nihat Acar; Ahmet Karakasli; Ahmet A Karaarslan; Mehmet Hilal Ozcanhan; Fatih Ertem; Mehmet Erduran
Journal:  J Korean Neurosurg Soc       Date:  2016-09-08

5.  Screw head plugs increase the fatigue strength of stainless steel, but not of titanium, locking plates.

Authors:  L-W Hung; C-K Chao; J-R Huang; J Lin
Journal:  Bone Joint Res       Date:  2019-01-04       Impact factor: 5.853

6.  Incomplete insertion of pedicle screws in a standard construct reduces the fatigue life: A biomechanical analysis.

Authors:  Yo-Lun Chu; Chia-Hsien Chen; Fon-Yih Tsuang; Chang-Jung Chiang; Yueh Wu; Yi-Jie Kuo
Journal:  PLoS One       Date:  2019-11-01       Impact factor: 3.240

  6 in total

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