Exposure to internal muscle tissue loads under the ischial tuberosities during sitting is elevated at abnormally high or low body mass indices

J Biomech. 2010 Jan 19;43(2):280-6. doi: 10.1016/j.jbiomech.2009.08.021. Epub 2009 Sep 16.

Abstract

Deep tissue injury (DTI) is a severe pressure ulcer characteristic of chairfast or bedfast individuals, such as those with impaired mobility or neurological disorders. A DTI differs from superficial pressure ulcers in that the onset of DTI occurs under intact skin, in skeletal muscle tissue overlying bony prominences, and progression of the wound continues subcutaneously until skin breakdown. Due to the nature of this silently progressing wound, it is highly important to screen potentially susceptible individuals for their risk of developing a DTI. Abnormally low and high values of the body mass index (BMI) have been proposed to be associated with pressure ulcers, but a clear mechanism is lacking. We hypothesize that during sitting, exposure to internal muscle tissue loads under the ischial tuberosities (IT) is elevated at abnormally high or low body mass indices. Our aims in this study were: (a) to develop biomechanical models of the IT region in the buttocks that represent an individual who is gaining or losing weight drastically. (b) To determine changes in internal tissue load measures: principal compression strain, strain energy density (SED), principal compression stress and von Mises stress versus the BMI. (c) To determine percentage volumes of muscle tissue exposed to critical levels of the above load measures, which were defined based on our previous animal and tissue engineered model experiments: strain>or=50%, stress>or=2 kPa, SED>or=0.5 kPa. A set of 21 finite element models, which represented the same individual, but with different BMI values within the normal range, above it and below it, was solved for the outcome measures listed above. The models had the same IT shape, size, distance between the IT, and (non-linear) mechanical properties for all soft tissues, but different thicknesses of gluteus muscles and fat tissue layers, corresponding to the BMI level. The resulted data indicated a trend of progressive increase in internal tissue loading, particularly in volumetric exposure to critical loading for BMI values outside the 17<or=BMI<or=22 kg/m(2) range, supporting our hypothesis for this study. We concluded that exposure to internal muscle tissue loads under the IT during sitting is optimally reduced at the low-normal BMI range, which is important not only in the context of DTI research, but also for understanding general sitting biomechanics.

MeSH terms

  • Animals
  • Biomechanical Phenomena
  • Body Mass Index
  • Buttocks / pathology
  • Buttocks / physiopathology
  • Compressive Strength
  • Computer Simulation
  • Elasticity
  • Female
  • Finite Element Analysis
  • Humans
  • Ischium / physiopathology
  • Male
  • Models, Biological*
  • Muscle, Skeletal / injuries*
  • Muscle, Skeletal / pathology
  • Muscle, Skeletal / physiopathology
  • Nonlinear Dynamics
  • Posture / physiology
  • Pressure Ulcer / etiology*
  • Pressure Ulcer / pathology
  • Pressure Ulcer / physiopathology
  • Risk Factors
  • Spinal Cord Injuries / complications
  • Spinal Cord Injuries / pathology
  • Spinal Cord Injuries / physiopathology
  • Viscosity
  • Weight-Bearing / physiology