Plantar soft tissue loading under the medial metatarsals in the standing diabetic foot

被引:215
作者
Gefen, A [1 ]
机构
[1] Tel Aviv Univ, Dept Biomed Engn, Fac Engn, IL-69978 Tel Aviv, Israel
关键词
biomechanical model; plantar pressure; diabetes mellitus; therapeutic footwear; finite element method;
D O I
10.1016/S1350-4533(03)00029-8
中图分类号
R318 [生物医学工程];
学科分类号
0831 [生物医学工程];
摘要
Diabetes mellitus (type 2) is the most frequent cause of non-traumatic lower-limb amputations. The major cause of impairment to the feet of diabetics is persistent hyperglycemia, potentially leading to peripheral neuropathy as well as to pathological changes in plantar soft tissue, which stiffen its structure and diminish its ability to effectively distribute foot-ground contact loads. In this study, a computational model of the foot structure in the standing position was utilized to evaluate stress distributions in plantar soft tissue under the medial metatarsal heads of simulated diabetic versus normal feet. The model comprises five anatomic planar cross-sections in the directions of the foot rays, which were solved for internal stresses under static ankle joint reaction (300 N) and triceps surae muscle forces (150 N) using the finite element method. Tissues were assumed to be homogenous, isotropic and elastic materials, with nonlinear stress-strain relations for the ligaments, fascia and plantar tissue. The model revealed significant tension stress concentrations (90-150 KPa) in the plantar pad of the simulated diabetic forefoot: they were four times the normal maximum stress under the first metatarsal head and almost eight times the normal maximum stress under the second metatarsal head. It was shown that with increased severity of stiffening of the plantar pad, as related to glucose-exposure, peak forefoot contact stresses may rise by 38 and 50% under the first and second metatarsal heads, respectively. The increase in averaged (von Mises) internal stresses within the plantar soft tissue is even more pronounced, and may rise by 82 and 307% for the tissue under the first and second metatarsal heads, respectively. These results, which conform to experimental data gathered over the last two decades, suggest that the process of injury in diabetic feet is very likely to initiate not on the skin surface, but in deeper tissue layers, and the tissues underlying the distal bony prominences of the medial metatarsals are the most vulnerable ones. (C) 2003 IPEM. Published by Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:491 / 499
页数:9
相关论文
共 40 条
[1]
BIOMECHANICAL CHANGES IN CONNECTIVE TISSUES INDUCED BY EXPERIMENTAL DIABETES [J].
ANDREASSEN, TT ;
SEYERHANSEN, K ;
OXLUND, H .
ACTA ENDOCRINOLOGICA, 1981, 98 (03) :432-436
[2]
[Anonymous], 1982, THESIS TEL AVIV U TE
[3]
Armstrong DG, 1998, J REHABIL RES DEV, V35, P1
[4]
Magnetic resonance imaging techniques demonstrate soft tissue damage in the diabetic foot [J].
Brash, PD ;
Foster, J ;
Vennart, W ;
Anthony, P ;
Tooke, JE .
DIABETIC MEDICINE, 1999, 16 (01) :55-61
[5]
ASSESSMENT AND MANAGEMENT OF FOOT DISEASE IN PATIENTS WITH DIABETES [J].
CAPUTO, GM ;
CAVANAGH, PR ;
ULBRECHT, JS ;
GIBBONS, GW ;
KARCHMER, AW .
NEW ENGLAND JOURNAL OF MEDICINE, 1994, 331 (13) :854-860
[6]
Cavanagh P, 1992, DIABETIC FOOT, P199
[7]
PRESSURE DISTRIBUTION UNDER SYMPTOM-FREE FEET DURING BAREFOOT STANDING [J].
CAVANAGH, PR ;
RODGERS, MM ;
IIBOSHI, A .
FOOT & ANKLE, 1987, 7 (05) :262-276
[8]
Cavanagh PR, 2000, DIABETES-METAB RES, V16, pS6, DOI 10.1002/1520-7560(200009/10)16:1+<::AID-DMRR130>3.0.CO
[9]
2-Z
[10]
3-DIMENSIONAL FINITE-ELEMENT STRESS-ANALYSIS OF THE POLYPROPYLENE, ANKLE-FOOT ORTHOSIS - STATIC ANALYSIS [J].
CHU, TM ;
REDDY, NP ;
PADOVAN, J .
MEDICAL ENGINEERING & PHYSICS, 1995, 17 (05) :372-379