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Non-Invasive Determinants of Juvenile Equine Bone Strength for Assessing Exercise Interventions
Non-Invasive Determinants of Juvenile Equine Bone Strength for Assessing Exercise Interven...
Non-Invasive Determinants of Juvenile Equine Bone Strength for Assessing Exercise Interventions

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자료유형  
 학위논문 서양
최종처리일시  
20260209102858
ISBN  
9798291575901
DDC  
621
저자명  
Moshage, Sara Grace.
서명/저자  
Non-Invasive Determinants of Juvenile Equine Bone Strength for Assessing Exercise Interventions
발행사항  
[Sl] : University of Illinois at Urbana-Champaign, 2023
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2023
형태사항  
152 p
주기사항  
Source: Dissertations Abstracts International, Volume: 87-03, Section: B.
주기사항  
Advisor: Kersh, Mariana E.;McCoy, Annette.
학위논문주기  
Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2023.
초록/해제  
요약Fractures are the leading cause of racehorse fatalities, accounting for 75-80% deaths in North America and Great Britain, and are the result of fatigue rather than trauma. More than 60% of fractures in the lower limbs occur in the third metacarpal (MC3) and proximal phalanx (P1) bones, and thus are the focus of this thesis. Although horses don't reach full skeletal maturity until approximately 4 years old, horses begin racing at 2 years old, with little preparation in terms of training. Exercise at a young age has been shown to have lifelong benefits for bone health, and may provide a route to strengthen bones in areas prone to fracture and prevent fractures in racehorses.There are many factors that influence whether an exercise intervention will result in optimal bone adaptation including duration of the intervention, speed, direction (running straight vs turning), and age of the participants. Computational models can be used to non-invasively predict the mechanical loading environment of bone in vivo and therefore provide a means for evaluating the effect of different exercise modes pre-clinically rather than adopting a trial and error approach. Subject-specific finite element models can be developed from computed tomography (CT) data using a density-modulus relationship that relates CT-derived density to a modulus obtained from mechanical tests. Several density-modulus relationships exist for horse bone using data from adult horses. However, juvenile equine bone tissue differs in terms of composition and structure from adult tissue and is therefore expected to differ mechanically. The overall goal of my research is to reduce fractures in racehorses by preparing their bones while young with targeted exercise interventions.In Aim 1, I developed density-modulus relationships for the MC3 and P1 bones in both the longitudinal and transverse directions. Bones were collected from juvenile horses (age 1 year), scanned using a clinical CT, cut into sections along the length of the bone, and cored using a drill press. The bone cores were tested in compression and the modulus was then related to the CT density. I found that the density-modulus relationships differed significantly by anatomical location (MC3 vs P1) and orientation (longitudinal vs transverse), indicating each bone and orientation required a unique density-modulus relationship. Additionally, the use of a density-modulus relationship developed with adult tissue on juvenile bone samples resulted in an 80% increase in error when predicting the modulus, indicating the sensitivity of the density-modulus relationship to subject age.In Aim 2, I evaluated the relationship between microstructure, tissue density, and mechanical properties in the same juvenile trabecular bone samples using in Aim 1. MicroCT data (resolution = 144 쨉m) for each core was used to calculate microstructural measures, and the mechanical test data from Aim 1 was used to calculate modulus, yield stress, ultimate stress, yield strain, and ultimate strain for each sample. P1 samples, in both orientations, were more ductile and had significantly different microstructure compared to MC3 samples. Tissue density, bone volume fraction, and trabecular thickness were the strongest predictors of mechanical behavior, although the strength of these relationships varied by anatomical location and orientation of the samples. These data provide relationships between mechanical properties and microstructure that can be used for in vivo predictions of bone health, or to evaluate the effects of interventions (exercise or pharmacological) on trabecular microstructure of juvenile horses.In Aim 3, I evaluated the effects of an exercise intervention on MC3 and P1 structure, density, and strength using repeated CT scans and virtual compression testing. Twelve juvenile horses were enrolled in the study (6 control, 6 exercise). Exercise horses underwent an 8 week long exercise intervention and were CT scanned before exercise, four weeks after exercise, and 16 weeks after exercise. Control horses were scanned at the same ages as exercise horses. Area fraction and density were evaluated in each cross-section along the length of the bone, as well as within each quadrant of each cross-section. Finite element (FE) models of each bone were used as virtual compression tests to evaluate whole bone stiffness as a measure of whole bone strength. I found no significant differences between control and exercise horses for any metric evaluated, at any time point. These results indicate either (1) the exercise intervention had no effect, or (2) the exercise intervention had a mild effect on bone parameters but the sample size was too small to identify statistical differences. This study is the first exercise intervention in juvenile horses to evaluate adaption along the entire length of the bone and to include a measure of whole bone strength (virtual compression testing). Additionally, this study provides an important lower threshold that future exercise interventions should exceed.Overall, this thesis lays the foundation for using finite-element models to non-invasively assess exercise interventions in juvenile horses by (1) providing the necessary density-modulus relationships that accurately describe juvenile bone, (2) highlighting the influence of microstructure and tissue density on mechanical behavior and how those relationships change between neighboring anatomical locations, and (3) evaluating an exercise intervention using longitudinal CT scans and finite-element modeling.
일반주제명  
Mechanical engineering
일반주제명  
Physiology
일반주제명  
Biomechanics
일반주제명  
Kinesiology
키워드  
Equine
키워드  
Bone
키워드  
Computed tomography
키워드  
Exercise
키워드  
Finite-element
기타저자  
University of Illinois at Urbana-Champaign Mechanical Sci & Engineering
기본자료저록  
Dissertations Abstracts International. 87-03B.
전자적 위치 및 접속  
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MARC

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■1001  ▼aMoshage,  Sara  Grace.
■24510▼aNon-Invasive  Determinants  of  Juvenile  Equine  Bone  Strength  for  Assessing  Exercise  Interventions
■260    ▼a[Sl]▼bUniversity  of  Illinois  at  Urbana-Champaign▼c2023
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2023
■300    ▼a152  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  87-03,  Section:  B.
■500    ▼aAdvisor:  Kersh,  Mariana  E.;McCoy,  Annette.
■5021  ▼aThesis  (Ph.D.)--University  of  Illinois  at  Urbana-Champaign,  2023.
■520    ▼aFractures  are  the  leading  cause  of  racehorse  fatalities,  accounting  for  75-80%  deaths  in  North  America  and  Great  Britain,  and  are  the  result  of  fatigue  rather  than  trauma.  More  than  60%  of  fractures  in  the  lower  limbs  occur  in  the  third  metacarpal  (MC3)  and  proximal  phalanx  (P1)  bones,  and  thus  are  the  focus  of  this  thesis.  Although  horses  don't  reach  full  skeletal  maturity  until  approximately  4  years  old,  horses  begin  racing  at  2  years  old,  with  little  preparation  in  terms  of  training.  Exercise  at  a  young  age  has  been  shown  to  have  lifelong  benefits  for  bone  health,  and  may  provide  a  route  to  strengthen  bones  in  areas  prone  to  fracture  and  prevent  fractures  in  racehorses.There  are  many  factors  that  influence  whether  an  exercise  intervention  will  result  in  optimal  bone  adaptation  including  duration  of  the  intervention,  speed,  direction  (running  straight  vs  turning),  and  age  of  the  participants.  Computational  models  can  be  used  to  non-invasively  predict  the  mechanical  loading  environment  of  bone  in  vivo  and  therefore  provide  a  means  for  evaluating  the  effect  of  different  exercise  modes  pre-clinically  rather  than  adopting  a  trial  and  error  approach.  Subject-specific  finite  element  models  can  be  developed  from  computed  tomography  (CT)  data  using  a  density-modulus  relationship  that  relates  CT-derived  density  to  a  modulus  obtained  from  mechanical  tests.  Several  density-modulus  relationships  exist  for  horse  bone  using  data  from  adult  horses.  However,  juvenile  equine  bone  tissue  differs  in  terms  of  composition  and  structure  from  adult  tissue  and  is  therefore  expected  to  differ  mechanically.  The  overall  goal  of  my  research  is  to  reduce  fractures  in  racehorses  by  preparing  their  bones  while  young  with  targeted  exercise  interventions.In  Aim  1,  I  developed  density-modulus  relationships  for  the  MC3  and  P1  bones  in  both  the  longitudinal  and  transverse  directions.  Bones  were  collected  from  juvenile  horses  (age    1  year),  scanned  using  a  clinical  CT,  cut  into  sections  along  the  length  of  the  bone,  and  cored  using  a  drill  press.  The  bone  cores  were  tested  in  compression  and  the  modulus  was  then  related  to  the  CT  density.  I  found  that  the  density-modulus  relationships  differed  significantly  by  anatomical  location  (MC3  vs  P1)  and  orientation  (longitudinal  vs  transverse),  indicating  each  bone  and  orientation  required  a  unique  density-modulus  relationship.  Additionally,  the  use  of  a  density-modulus  relationship  developed  with  adult  tissue  on  juvenile  bone  samples  resulted  in  an  80%  increase  in  error  when  predicting  the  modulus,  indicating  the  sensitivity  of  the  density-modulus  relationship  to  subject  age.In  Aim  2,  I  evaluated  the  relationship  between  microstructure,  tissue  density,  and  mechanical  properties  in  the  same  juvenile  trabecular  bone  samples  using  in  Aim  1.  MicroCT  data  (resolution  =  144  쨉m)  for  each  core  was  used  to  calculate  microstructural  measures,  and  the  mechanical  test  data  from  Aim  1  was  used  to  calculate  modulus,  yield  stress,  ultimate  stress,  yield  strain,  and  ultimate  strain  for  each  sample.  P1  samples,  in  both  orientations,  were  more  ductile  and  had  significantly  different  microstructure  compared  to  MC3  samples.  Tissue  density,  bone  volume  fraction,  and  trabecular  thickness  were  the  strongest  predictors  of  mechanical  behavior,  although  the  strength  of  these  relationships  varied  by  anatomical  location  and  orientation  of  the  samples.  These  data  provide  relationships  between  mechanical  properties  and  microstructure  that  can  be  used  for  in  vivo  predictions  of  bone  health,  or  to  evaluate  the  effects  of  interventions  (exercise  or  pharmacological)  on  trabecular  microstructure  of  juvenile  horses.In  Aim  3,  I  evaluated  the  effects  of  an  exercise  intervention  on  MC3  and  P1  structure,  density,  and  strength  using  repeated  CT  scans  and  virtual  compression  testing.  Twelve  juvenile  horses  were  enrolled  in  the  study  (6  control,  6  exercise).  Exercise  horses  underwent  an  8  week  long  exercise  intervention  and  were  CT  scanned  before  exercise,  four  weeks  after  exercise,  and  16  weeks  after  exercise.  Control  horses  were  scanned  at  the  same  ages  as  exercise  horses.  Area  fraction  and  density  were  evaluated  in  each  cross-section  along  the  length  of  the  bone,  as  well  as  within  each  quadrant  of  each  cross-section.  Finite  element  (FE)  models  of  each  bone  were  used  as  virtual  compression  tests  to  evaluate  whole  bone  stiffness  as  a  measure  of  whole  bone  strength.  I  found  no  significant  differences  between  control  and  exercise  horses  for  any  metric  evaluated,  at  any  time  point.  These  results  indicate  either  (1)  the  exercise  intervention  had  no  effect,  or  (2)  the  exercise  intervention  had  a  mild  effect  on  bone  parameters  but  the  sample  size  was  too  small  to  identify  statistical  differences.  This  study  is  the  first  exercise  intervention  in  juvenile  horses  to  evaluate  adaption  along  the  entire  length  of  the  bone  and  to  include  a  measure  of  whole  bone  strength  (virtual  compression  testing).  Additionally,  this  study  provides  an  important  lower  threshold  that  future  exercise  interventions  should  exceed.Overall,  this  thesis  lays  the  foundation  for  using  finite-element  models  to  non-invasively  assess  exercise  interventions  in  juvenile  horses  by  (1)  providing  the  necessary  density-modulus  relationships  that  accurately  describe  juvenile  bone,  (2)  highlighting  the  influence  of  microstructure  and  tissue  density  on  mechanical  behavior  and  how  those  relationships  change  between  neighboring  anatomical  locations,  and  (3)  evaluating  an  exercise  intervention  using  longitudinal  CT  scans  and  finite-element  modeling.
■590    ▼aSchool  code:  0090.
■650  4▼aMechanical  engineering
■650  4▼aPhysiology
■650  4▼aBiomechanics
■650  4▼aKinesiology
■653    ▼aEquine
■653    ▼aBone
■653    ▼aComputed  tomography
■653    ▼aExercise
■653    ▼aFinite-element
■690    ▼a0548
■690    ▼a0575
■690    ▼a0778
■690    ▼a0648
■690    ▼a0719
■71020▼aUniversity  of  Illinois  at  Urbana-Champaign▼bMechanical  Sci  &  Engineering.
■7730  ▼tDissertations  Abstracts  International▼g87-03B.
■790    ▼a0090
■791    ▼aPh.D.
■792    ▼a2023
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17365935▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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