Author:
Yang Jinghong,Wang Zi,Jiang Lujun,Tang Lian,Li Zhong,Liu Yanshi
Abstract
Abstract
Introduction
The Ilizarov bone transport technique is widely recognised as an effective method for treating large segment bone defects in clinical practice. However, axial deviation is a common complication in the treatment of tibial large segment bone defects, which can have a serious impact on the clinical efficacy of bone transport. Our study aims to construct and validate a nomogram for predicting axial deviation of tibial bone transport.
Method
This study retrospectively collected data from 363 patients who underwent the tibial Ilizarov technique for bone transport. Univariate and multivariate logistic regression analyses were performed to determine the independent risk factors for axial deviation, which were later used to construct a nomogram. The nomogram was evaluated using the decision curve analysis (DCA), the calibration curve, and the area under the receiver operating characteristic curve (AUC).
Results
Of the 363 patients who underwent Ilizarov tibial bone transport, 31.7% (115/363) experienced axial deviation. Multivariate logistic regression analysis showed that gender, height, defect site, and external fixation index were important risk factors for axial deviation. The AUC value of the nomogram model was 0.705. The calibration curve and the decision curve analysis showed a good consistency between the actual axial deviation and the predicted probability.
Conclusion
The model assigns a quantitative risk score to each variable, which can be used to predict the risk of axial deviation during tibial bone transport.
Funder
Sichuan Province Science and Technology Support Program,China
Publisher
Springer Science and Business Media LLC
Reference33 articles.
1. Feng D, Zhang Y, Wu W, Jia H, Ma C. Docking site complications analysis of Ilizarov bone transport technique in the treatment of tibial bone defects. J Orthop Surg Res. 2023;18(1):889.
2. Wang J, Hu S, Ma J, Cui L, [CLINICAL OBSERVATION OF IMPROVING AXIAL OFFSET BY USING Ilizarov BONE TRANSPORT TECHNOLOGY]. Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi. 2016;30(5):546–50.
3. Wang JS, Hu SB, Sun HH, Zheng JH, Zhao JF, Liu DK, Lin L, Deng HF, Zhang YB. [Clinical observation of axial offset after treatment by Ilizarov bone transport technology]. Zhongguo Gu Shang. 2016;29(1):73–6.
4. Yalikun A, Ren P, Yushan M, Yusufu A. Clinical outcomes of bone transport using rail fixator in the treatment of femoral nonunion or bone defect caused by infection. Front Surg. 2022;9:970765.
5. Liu K, Liu Y, Cai F, Fan C, Ren P, Yusufu A. Efficacy comparison of trifocal bone transport using unilateral external fixator for femoral and tibial bone defects caused by infection. BMC Surg. 2022;22(1):141.