An investigation into the hammer toe effects on the lower extremity mechanics and plantar fascia tension: A case for a vicious cycle and progressive damage.


Journal

Computers in biology and medicine
ISSN: 1879-0534
Titre abrégé: Comput Biol Med
Pays: United States
ID NLM: 1250250

Informations de publication

Date de publication:
01 2023
Historique:
received: 10 08 2022
revised: 14 10 2022
accepted: 28 11 2022
pubmed: 24 12 2022
medline: 6 1 2023
entrez: 23 12 2022
Statut: ppublish

Résumé

Hammer toes are one of the common deformities of the forefoot that can lead to compensatory changes during walking in individuals with this condition. Predicting the adverse effects of tissue damage on the performance of other limbs is very important in the prevention of progressive damage. Finite element (FE) and musculoskeletal modeling can be helpful by allowing such effects to be studied in a way where the internal stresses in the tissue could be investigated. Hence, this study aims to investigate the effects of the hammer toe deformity on the lower extremity, especially on the plantar fascia functions. To compare the joint reactions of the hammer toe foot (HTF) and healthy foot (HF), two musculoskeletal models (MSM) of the feet of a healthy individual and that of a participant with hammer toe foot were developed based on gait analysis. A previously validated 3D finite element model which was constructed using Magnetic Resonance Imaging (MRI) of the diabetic participant with the hammer toe deformity was processed at five different events during the stance phase of gait. It was found that the hammer toe deformity makes dorsiflexion of the toes and the windlass mechanism less effective during walking. Specifically, the FE analysis results showed that plantar fascia (PF) in HTF compared to HF played a less dominant role in load bearing with both medial and lateral parts of PF loaded. Also, the results indicated that the stored elastic energy in PF was less in HTF than the HF, which can indicate a higher metabolic cost during walking. Internal stress distribution shows that the majority of ground reaction forces are transmitted through the lateral metatarsals in hammer toe foot, and the probability of fifth metatarsal fracture and also progressive deformity was subsequently increased. The MSM results showed that the joint reaction forces and moments in the hammer toe foot have deviated from normal, where the metatarsophalangeal joint reactions in the hammer toe were less than the values in the healthy foot. This can indicate a vicious cycle of foot deformity, leading to changes in body weight force transmission line, and deviation of joint reactions and plantar fascia function from normal. These in turn lead to increased internal stress concentration, which in turn lead to further foot deformities. This vicious cycle cause progressive damage and can lead to an increase in the risk of ulceration in the diabetic foot.

Identifiants

pubmed: 36563541
pii: S0010-4825(22)01089-7
doi: 10.1016/j.compbiomed.2022.106381
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

106381

Informations de copyright

Copyright © 2022 Elsevier Ltd. All rights reserved.

Auteurs

M Moayedi (M)

Department of Mechanical Engineering, Amirkabir University of Technology, Iran. Electronic address: m.moayedi@aut.ac.ir.

A R Arshi (AR)

Biomechanics and Sports Engineering Groups, Biomedical Engineering Department, Amirkabir University of Technology, Iran. Electronic address: arshi@aut.ac.ir.

M Salehi (M)

Department of Mechanical Engineering, Amirkabir University of Technology, Iran. Electronic address: msalehi@aut.ac.ir.

M Akrami (M)

Department of Engineering, College of Engineering, Mathematics, and Physical Sciences, University of Exeter, UK. Electronic address: M.Akrami@exeter.ac.uk.

N Javadi Asl (N)

Department of Mechanical Engineering, Amirkabir University of Technology, Iran. Electronic address: n.javadi@aut.ac.ir.

R Naemi (R)

Centre for Biomechanics and Rehabilitation Technologies, Staffordshire University, UK. Electronic address: r.naemi@staffs.ac.uk.

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