期刊论文详细信息
Journal of Orthopaedic Surgery and Research
The influence of distal screw length on the primary stability of volar plate osteosynthesis—a biomechanical study
Yan Chevalier2  Dieter Pahr1  Wolf Mutschler4  Hannes Traxler3  Alexander Synek1  Sebastian F. Baumbach4 
[1] Institute of Lightweight Design and Structural Biomechanics, Vienna University of Technology, Getreidemarkt 9, Vienna, 1060, Austria;Department of Orthopedic Surgery, Physical Medicine and Rehabilitation, University Hospital of Munich (LMU), Campus Großhadern, Marchioninistrasse 15, Munich, 81377, Germany;Center of Anatomy and Cell Biology, Department of Systematic Anatomy, Medical University Vienna, Währinger Straße 13, Vienna, 1090, Austria;Department of Trauma Surgery, University Hospital of Munich (LMU), Campus Innenstadt, Nußbaumstrasse 20, Munich, 80336, Germany
关键词: Fracture;    Screw length;    Polyaxial volar locking plates;    Volar plate osteosynthesis;    Biomechanics;    Distal radius fracture;    Colles’ fracture;   
Others  :  1227819
DOI  :  10.1186/s13018-015-0283-8
 received in 2015-06-18, accepted in 2015-08-27,  发布年份 2015
PDF
【 摘 要 】

Background

Extensor tendon irritation is one of the most common complications following volar locking plate osteosynthesis (VLPO) for distal radius fractures. It is most likely caused by distal screws protruding the dorsal cortex. Shorter distal screws could avoid this, yet the influence of distal screw length on the primary stability in VLPO is unknown. The aim of this study was to compare 75 to 100 % distal screw lengths in VLPO.

Methods

A biomechanical study was conducted on 11 paired fresh-frozen radii. HRpQCT scans were performed to assess bone mineral density (BMD) and bone mineral content (BMC). The specimens were randomized pair-wise into two groups: 100 % (group A) and 75 % (group B) unicortical distal screw lengths. A validated fracture model for extra-articular distal radius fractures (AO-23 A3) was used. Polyaxial volar locking plates were mounted, and distal screws was inserted using a drill guide block. For group A, the distal screw tips were intended to be flush or just short of the dorsal cortex. In group B, a target screw length of 75 % was calculated. The specimens were tested to failure using a displacement-controlled axial compression test. Primary biomechanical stability was assessed by stiffness, elastic limit, and maximum force as well as with residual tilt, which quantified plastic deformation.

Results

Nine specimens were tested successfully. BMD and BMC did not differ between the two groups. The mean distal screw length of group A was 21.7 ± 2.6 mm (range: 16 to 26 mm), for group B 16.9 ± 1.9 mm (range: 12 to 20 mm). Distal screws in group B were on average 5.6 ± 0.9 mm (range: 3 to 7 mm) shorter than measured. No significant differences were found for stiffness (706 ± 103 N/mm vs. 660 ± 124 N/mm), elastic limit (177 ± 25 N vs. 167 ± 36 N), maximum force (493 ± 139 N vs. 471 ± 149 N), or residual tilt (7.3° ± 0.7° vs. 7.1° ± 1.3°).

Conclusion

The 75 % distal screw length in VLPO provides similar primary stability to 100 % unicortical screw length. This study, for the first time, provides the biomechanical basis to choose distal screws significantly shorter then measured.

【 授权许可】

   
2015 Baumbach et al.

【 预 览 】
附件列表
Files Size Format View
20150929094245935.pdf 3841KB PDF download
Fig. 3. 33KB Image download
Fig. 2. 67KB Image download
Fig. 1. 50KB Image download
【 图 表 】

Fig. 1.

Fig. 2.

Fig. 3.

【 参考文献 】
  • [1]Knudsen R, Bahadirov Z, Damborg F. High rate of complications following volar plating of distal radius fractures. Dan Med J. 2014; 61(10):A4906.
  • [2]Bentohami A, De Burlet K, De Korte N, van den Bekerom MPJ, Goslings JC, Schep NWL. Complications following volar locking plate fixation for distal radial fractures: a systematic review. J Hand Surg Eur. 2014; 39(7):745-54.
  • [3]Arora R, Lutz M, Deml C, Krappinger D, Haug L, Gabl M. A prospective randomized trial comparing nonoperative treatment with volar locking plate fixation for displaced and unstable distal radial fractures in patients sixty-five years of age and older. J Bone Joint Surg Am. 2011; 93(23):2146-53.
  • [4]Arora R, Lutz M, Hennerbichler A, Krappinger D, Espen D, Gabl M. Complications following internal fixation of unstable distal radius fracture with a palmar locking-plate. J Orthop Trauma. 2007; 21(5):316-22.
  • [5]Drobetz H, Kutscha-Lissberg E. Osteosynthesis of distal radial fractures with a volar locking screw plate system. Int Orthop. 2003; 27(1):1-6.
  • [6]Berglund LM, Messer TM. Complications of volar plate fixation for managing distal radius fractures. J Am Acad Orthop Surg. 2009; 17(6):369-77.
  • [7]Flinkkilä T, Sirniö K, Hippi M, Hartonen S, Ruuhela R, Ohtonen P et al.. Epidemiology and seasonal variation of distal radius fractures in Oulu. Finland Osteoporos Int. 2011; 22(8):2307-12.
  • [8]Plant CE, Hickson C, Hedley H, Parsons NR, Costa ML. Is it time to revisit the AO classification of fractures of the distal radius? Inter- and intra-observer reliability of the AO classification. Bone Joint J. 2015; 97-B(6):818-23.
  • [9]Jupiter J, Rikli D, Fricker R, Jupiter J, Kastelec M. Distal radius 23-A2.2 ORIF Palmar Plating. AO Foundation Surgical References. Editor: Steve Krikler. AO-Foundation: Switzerland; 2014. https://www2. aofoundation.org/wps/portal/!ut/p/a1/04_Sj9CPykssy0xPLMnMz0vMAfGjzOKN_A0M3D2DDbz9_UMMDRyDXQ3dw9wMDAwCTYEKIvEocDQnTr8BDuBoQEi_l35Uek5-EtCp4U76UdqqBolReekgUx3zkowt0vWjilLTUotSi_Qy8otL9CPKy8uN9BLz0_JL81LAftTLL0rXL8gNjajyLHYEAJqV_LU!/dl5/d5/L0lDU0lKSWdrbUEhIS9JRFJBQUlpQ2dBek15cXchLzRKQ2hEb01kdshowPage=redfix&bone=Radius&segment=Distal&classification=23-A2.2&treatment=operative&method=ORIF+-+Open+reduction+internal+fixation&implantstype=Palmar+plating&approach=&redfix_url= webcite
  • [10]Perez EA. Fractures of the shoulder, arm, and forearm. 2nd ed. Campbell’s Operative Orthopaedics, Philadelphia; 2012.
  • [11]Wall LB, Brodt MD, Silva MJ, Boyer MI, Calfee RP. The effects of screw length on stability of simulated osteoporotic distal radius fractures fixed with volar locking plates. J Hand Surg [Am]. 2012; 37(3):446-53.
  • [12]Varga P, Pahr DH, Baumbach S, Zysset PK. HR-pQCT based FE analysis of the most distal radius section provides an improved prediction of Colles’ fracture load in vitro. Bone. 2010; 47(5):982-8.
  • [13]Baumbach SF, Dall Ara E, Weninger P, Antoni A, Traxler H, Dörr M et al.. Assessment of a novel biomechanical fracture model for distal radius fractures. BMC Musculoskelet Disord. 2012; 13(1):252.
  • [14]Baumbach SF, Schmidt R, Varga P, Heinz T, Vécsei V, Zysset PK. Where is the distal fracture line location of dorsally displaced distal radius fractures? J Orthop Res. 2011; 29(4):489-94.
  • [15]Varga P, Baumbach S, Pahr D, Zysset PK. Validation of an anatomy specific finite element model of Colles’ fracture. J Biomech. 2009; 42(11):1726-31.
  • [16]Greenberg JA, Warden S, Izadi KD. The effect of screw length on fracture stability in volar locked plating of distal radius fractures. Annual Meeting of the American Association of Orthopaedic Surgeons. 2010.
  • [17]Hart A, Collins M, Chhatwal D, Steffen T, Harvey EJ, Martineau PA. Can the use of variable-angle volar locking plates compensate for suboptimal plate positioning in unstable distal radius fractures? A biomechanical study. J Orthop Trauma. 2015; 29(1):e1-6.
  • [18]Sokol SC, Amanatullah DF, Curtiss S, Szabo RM. Biomechanical properties of volar hybrid and locked plate fixation in distal radius fractures. J Hand Surg [Am]. 2011; 36(4):591-7.
  • [19]Mehling I, Müller LP, Delinsky K, Mehler D, Burkhart KJ, Rommens PM. Number and locations of screw fixation for volar fixed-angle plating of distal radius fractures: biomechanical study. J Hand Surg [Am]. 2010; 35(6):885-91.
  • [20]Chen L, Dai Q, Wongworawat MD. A biomechanical comparison between two volar locking plate systems for distal radius fractures. Orthopedics. 2006; 29(10):927-9.
  • [21]Weninger P, Schueller M, Drobetz H, Jamek M, Redl H, Tschegg E. Influence of an additional locking screw on fracture reduction after volar fixed-angle plating-introduction of the “protection screw” in an extra-articular distal radius fracture model. J Trauma. 2009; 67(4):746-51.
  • [22]Kandemir U, Matityahu A, Desai R, Puttlitz C. Does a volar locking plate provide equivalent stability as a dorsal nonlocking plate in a dorsally comminuted distal radius fracture?: a biomechanical study. J Orthop Trauma. 2008; 22(9):605-10.
  • [23]Koh S, Morris RP, Patterson RM, Kearney JP, Buford WL, Viegas SF. Volar fixation for dorsally angulated extra-articular fractures of the distal radius: a biomechanical study. J Hand Surg [Am]. 2006; 31(5):771-9.
  • [24]Dunning CE, Lindsay CS, Bicknell RT, Johnson JA, King GJ, Patterson SD. Ilizarov hybrid external fixation for fractures of the distal radius: part II. Internal fixation versus Ilizarov hybrid external fixation: stability as assessed by cadaveric simulated motion testing. J Hand Surg [Am]. 2001; 26(2):218-27.
  • [25]Gesensway D, Putnam MD, Mente PL, Lewis JL. Design and biomechanics of a plate for the distal radius. J Hand Surg [Am]. 1995; 20(6):1021-7.
  • [26]Ekenstam F, Hagert CG. The distal radio ulnar joint. The influence of geometry and ligament on simulated Colles’ fracture. An experimental study. Scand J Plast Reconstr Surg. 1985; 19(1):27-31.
  • [27]Martineau PA, Waitayawinyu T, Malone KJ, Hanel DP, Trumble TE. Volar plating of AO C3 distal radius fractures: biomechanical evaluation of locking screw and locking smooth peg configurations. J Hand Surg [Am]. 2008; 33(6):827-34.
  • [28]Willis AA, Kutsumi K, Zobitz ME, Cooney WP. Internal fixation of dorsally displaced fractures of the distal part of the radius. A biomechanical analysis of volar plate fracture stability. J Bone Joint Surg Am. 2006; 88(11):2411-7.
  • [29]Blythe M, Stoffel K, Jarrett P, Kuster M. Volar versus dorsal locking plates with and without radial styloid locking plates for the fixation of dorsally comminuted distal radius fractures: a biomechanical study in cadavers. J Hand Surg [Am]. 2006; 31(10):1587-93.
  • [30]Klitscher D, Mehling I, Nowak L, Nowak T, Rommens PM, Müller LP. Biomechanical comparison of dorsal nail plate versus screw and K-wire construct for extra-articular distal radius fractures in a cadaver bone model. J Hand Surg [Am]. 2010; 35(4):611-8.
  • [31]Osada D, Fujita S, Tamai K, Iwamoto A, Tomizawa K, Saotome K. Biomechanics in uniaxial compression of three distal radius volar plates. J Hand Surg [Am]. 2004; 29(3):446-51.
  • [32]Rikli DA, Honigmann P, Babst R, Cristalli A, Morlock MM, Mittlmeier T. Intra-articular pressure measurement in the radioulnocarpal joint using a novel sensor: in vitro and in vivo results. J Hand Surg [Am]. 2007; 32(1):67-75.
  • [33]Drobetz H, Schueller M, Tschegg EK, Heal C, Redl H, Muller R. Influence of screw diameter and number on reduction loss after plating of distal radius fractures. ANZ J Surg. 2011; 81(1–2):46-51.
  • [34]Crosby SN, Fletcher ND, Yap ER, Lee DH. The mechanical stability of extra-articular distal radius fractures with respect to the number of screws securing the distal fragment. J Hand Surg [Am]. 2013; 38(6):1097-105.
  • [35]Rausch S, Klos K, Stephan H, Hoffmeier K, Gras F, Windolf M et al.. Evaluation of a polyaxial angle-stable volar plate in a distal radius C-fracture model—a biomechanical study. Injury. 2011; 42(11):1248-52.
  • [36]von Recum J, Matschke S, Jupiter JB, Ring D, Souer J-S, Huber M et al.. Characteristics of two different locking compression plates in the volar fixation of complex articular distal radius fractures. Bone Joint Res. 2012; 1(6):111-7.
  • [37]Fowler JR, Ilyas AM. Prospective evaluation of distal radius fractures treated with variable-angle volar locking plates. J Hand Surg [Am]. 2013; 38(11):2198-203.
  • [38]Weninger P, Dall’ara E, Leixnering M, Pezzei C, Hertz H, Drobetz H et al.. Volar fixed-angle plating of extra-articular distal radius fractures—a biomechanical analysis comparing threaded screws and smooth pegs. J Trauma. 2010; 69(5):E46-55.
  • [39]Drobetz H, Weninger P, Grant C, Heal C, Muller R, Schuetz M et al.. More is not necessarily better. A biomechanical study on distal screw numbers in volar locking distal radius plates. Injury. 2013; 44(4):535-9.
  • [40]Rausch S, Schlonski O, Klos K, Gras F, Gueorguiev B, Hofmann GO et al. Volar versus dorsal latest-generation variable-angle locking plates for the fixation of AO type 23C 2.1 distal radius fractures: a biomechanical study in cadavers. Injury. 2012. doi:10.1016/j.injury.2012.08.048.
  文献评价指标  
  下载次数:8次 浏览次数:13次