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The Neural Basis of Grasp Impairments in Children with Unilateral Spastic Cerebral Palsy
The Neural Basis of Grasp Impairments in Children with Unilateral Spastic Cerebral Palsy
The Neural Basis of Grasp Impairments in Children with Unilateral Spastic Cerebral Palsy

상세정보

자료유형  
 학위논문 서양
최종처리일시  
20250211151154
ISBN  
9798382780054
DDC  
612
저자명  
Gutterman, Jennifer.
서명/저자  
The Neural Basis of Grasp Impairments in Children with Unilateral Spastic Cerebral Palsy
발행사항  
[Sl] : Columbia University, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
180 p
주기사항  
Source: Dissertations Abstracts International, Volume: 85-12, Section: B.
주기사항  
Advisor: Gordon, Andrew M.
학위논문주기  
Thesis (Ph.D.)--Columbia University, 2024.
초록/해제  
요약Children with unilateral spastic cerebral palsy (USCP) have impairments affecting upper limb function, particularly in grasping abilities. Specifically, children with USCP may display precision grip impairments, which can lead to activity limitations. The interplay between feedforward and feedback control is essential for successful grasping, requiring somatosensory information to be integrated with the motor output. This integration occurs through the transmission of somatosensory information through the dorsal column medial lemniscus (DCML) pathway, while independent finger movement to grasp an object is controlled by the motor cortex via the corticospinal tract (CST). While previous studies demonstrated the CST relates to anticipatory control of grasping, this may not explain all the variance of grasp impairments in children with USCP. Although studies have highlighted the importance of sensory information in grasping in typically developing (TD) adults, there are no studies examining the relationship between brain structure and function in terms of precision grip impairments in children with USCP. Additionally, sensorimotor integration plays an important role in precision grip. In some children with USCP, the lesion that occurs in the brain can cause the CST to reorganize to the contralesional hemisphere. This results in the sensory and motor tracts in different hemispheres, impacting motor impairments. When this sensory-motor dissociation occurs or when there are successive lifts of an object with each hand, it is thought that the information is transferred through the corpus callosum (CC). However, damage to the CC can restrict somatosensory processing, which can further impair grasping abilities. Previous studies have only looked at precision grip impairments in relation to the CST. Therefore, an integrative approach is necessary to fully understand the mechanisms of precision grip impairments in children with USCP. In this study our aim was to examine the neural basis of precision grip in children with USCP. Twenty-seven children participated in an MRI assessment. This included the acquisition of structural and diffusion-weighted images (DWI) to extract diffusion metrics of the CST, DCML pathway, and CC. Children also participated in clinical sensory measures, including the stereognosis test, grating orientation task, and the two-point discrimination task. Additionally, children performed precision grip lifts using a custom-made object. All children were asked to grasp an object with interchangeable surfaces (i.e., sandpaper and rayon) to measure adaptation of grip force (GF) to object texture. They were also asked to grasp the same object, hold it in the air and slowly release their grip so that the object gradually slips from their fingertips. Twenty-seven children performed these tasks with their less affected hand, and 16 with their more affected hand. Additionally, 17 participants grasped an object with various weights with each lifting sequence consisting of lifting an object in succession with the same hand and then one lift with the contralateral hand. The results demonstrate the greater reduction of integrity (more damage) of the DCML pathway, the poorer the grasp task performance, as indicated through the safety margin (the difference between the minimum amount of force needed to prevent slipping and the applied grip force). Regression analyses and cluster analyses display that CST integrity and organization may also contribute to safety margin. This suggests that diffusion metrics of multiple pathways and CST organization when considered together contribute to grasping impairments in children with USCP. To assess this further, we examined the relative difference in the peak rate of force between objects with various weights during successive lifts with each hand. Children with USCP did demonstrate anticipatory control within hands and a generalization of anticipatory control between hands. However, a loss of the transfer information was shown when first grasping the object with their less affected hand and then their more affected hand, in children with an absent contralateral CST. Therefore, the results suggest precision grip impairments may not exclusively be due to sensory impairments, but instead how the sensory information is integrated with the motor output of the same hand.
일반주제명  
Kinesiology
일반주제명  
Neurosciences
일반주제명  
Pediatrics
키워드  
Cerebral palsy
키워드  
Corticospinal tract
키워드  
Dorsal column medial lemniscus
키워드  
Fingertip forces
키워드  
Grasp impairments
키워드  
Sensorimotor integration
기타저자  
Columbia University TC: Kinesiology
기본자료저록  
Dissertations Abstracts International. 85-12B.
전자적 위치 및 접속  
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MARC

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■1001  ▼aGutterman,  Jennifer.
■24510▼aThe  Neural  Basis  of  Grasp  Impairments  in  Children  with  Unilateral  Spastic  Cerebral  Palsy
■260    ▼a[Sl]▼bColumbia  University▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a180  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  85-12,  Section:  B.
■500    ▼aAdvisor:  Gordon,  Andrew  M.
■5021  ▼aThesis  (Ph.D.)--Columbia  University,  2024.
■520    ▼aChildren  with  unilateral  spastic  cerebral  palsy  (USCP)  have  impairments  affecting  upper  limb  function,  particularly  in  grasping  abilities.  Specifically,  children  with  USCP  may  display  precision  grip  impairments,  which  can  lead  to  activity  limitations.  The  interplay  between  feedforward  and  feedback  control  is  essential  for  successful  grasping,  requiring  somatosensory  information  to  be  integrated  with  the  motor  output.  This  integration  occurs  through  the  transmission  of  somatosensory  information  through  the  dorsal  column  medial  lemniscus  (DCML)  pathway,  while  independent  finger  movement  to  grasp  an  object  is  controlled  by  the  motor  cortex  via  the  corticospinal  tract  (CST).  While  previous  studies  demonstrated  the  CST  relates  to  anticipatory  control  of  grasping,  this  may  not  explain  all  the  variance  of  grasp  impairments  in  children  with  USCP.  Although  studies  have  highlighted  the  importance  of  sensory  information  in  grasping  in  typically  developing  (TD)  adults,  there  are  no  studies  examining  the  relationship  between  brain  structure  and  function  in  terms  of  precision  grip  impairments  in  children  with  USCP.  Additionally,  sensorimotor  integration  plays  an  important  role  in  precision  grip.  In  some  children  with  USCP,  the  lesion  that  occurs  in  the  brain  can  cause  the  CST  to  reorganize  to  the  contralesional  hemisphere.  This  results  in  the  sensory  and  motor  tracts  in  different  hemispheres,  impacting  motor  impairments.  When  this  sensory-motor  dissociation  occurs  or  when  there  are  successive  lifts  of  an  object  with  each  hand,  it  is  thought  that  the  information  is  transferred  through  the  corpus  callosum  (CC).  However,  damage  to  the  CC  can  restrict  somatosensory  processing,  which  can  further  impair  grasping  abilities.  Previous  studies  have  only  looked  at  precision  grip  impairments  in  relation  to  the  CST.  Therefore,  an  integrative  approach  is  necessary  to  fully  understand  the  mechanisms  of  precision  grip  impairments  in  children  with  USCP.  In  this  study  our  aim  was  to  examine  the  neural  basis  of  precision  grip  in  children  with  USCP.  Twenty-seven  children  participated  in  an  MRI  assessment.  This  included  the  acquisition  of  structural  and  diffusion-weighted  images  (DWI)  to  extract  diffusion  metrics  of  the  CST,  DCML  pathway,  and  CC.  Children  also  participated  in  clinical  sensory  measures,  including  the  stereognosis  test,  grating  orientation  task,  and  the  two-point  discrimination  task.  Additionally,  children  performed  precision  grip  lifts  using  a  custom-made  object.  All  children  were  asked  to  grasp  an  object  with  interchangeable  surfaces  (i.e.,  sandpaper  and  rayon)  to  measure  adaptation  of  grip  force  (GF)  to  object  texture.  They  were  also  asked  to  grasp  the  same  object,  hold  it  in  the  air  and  slowly  release  their  grip  so  that  the  object  gradually  slips  from  their  fingertips.  Twenty-seven  children  performed  these  tasks  with  their  less  affected  hand,  and  16  with  their  more  affected  hand.  Additionally,  17  participants  grasped  an  object  with  various  weights  with  each  lifting  sequence  consisting  of  lifting  an  object  in  succession  with  the  same  hand  and  then  one  lift  with  the  contralateral  hand.  The  results  demonstrate  the  greater  reduction  of  integrity  (more  damage)  of  the  DCML  pathway,  the  poorer  the  grasp  task  performance,  as  indicated  through  the  safety  margin  (the  difference  between  the  minimum  amount  of  force  needed  to  prevent  slipping  and  the  applied  grip  force).  Regression  analyses  and  cluster  analyses  display  that  CST  integrity  and  organization  may  also  contribute  to  safety  margin.  This  suggests  that  diffusion  metrics  of  multiple  pathways  and  CST  organization  when  considered  together  contribute  to  grasping  impairments  in  children  with  USCP.  To  assess  this  further,  we  examined  the  relative  difference  in  the  peak  rate  of  force  between  objects  with  various  weights  during  successive  lifts  with  each  hand.  Children  with  USCP  did  demonstrate  anticipatory  control  within  hands  and  a  generalization  of  anticipatory  control  between  hands.  However,  a  loss  of  the  transfer  information  was  shown  when  first  grasping  the  object  with  their  less  affected  hand  and  then  their  more  affected  hand,  in  children  with  an  absent  contralateral  CST.  Therefore,  the  results  suggest  precision  grip  impairments  may  not  exclusively  be  due  to  sensory  impairments,  but  instead  how  the  sensory  information  is  integrated  with  the  motor  output  of  the  same  hand.
■590    ▼aSchool  code:  0054.
■650  4▼aKinesiology
■650  4▼aNeurosciences
■650  4▼aPediatrics
■653    ▼aCerebral  palsy
■653    ▼aCorticospinal  tract
■653    ▼aDorsal  column  medial  lemniscus
■653    ▼aFingertip  forces
■653    ▼aGrasp  impairments
■653    ▼aSensorimotor  integration
■690    ▼a0575
■690    ▼a0317
■690    ▼a0767
■71020▼aColumbia  University▼bTC:  Kinesiology.
■7730  ▼tDissertations  Abstracts  International▼g85-12B.
■790    ▼a0054
■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17161046▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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