Novel Diffusion MRI Encoding in Rat Spinal Cord Injury Assessment
Novel Diffusion MRI Encoding in Rat Spinal Cord Injury Assessment
批准号:
9258923
负责人:
Nathan P Skinner
金额:
$4.06万
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-12-01 至 2020-11-30
关键词:
AcuteBiologicalBiological FactorsBiophysicsCaringCerebrospinal FluidChronicClinicalContusionsCoupledDataData AnalysesDetectionDevelopmentDiagnosisDiffusionDiffusion Magnetic Resonance ImagingDoctor of PhilosophyDropsEdemaEvaluationGoalsGoldGrowthHistologicHistologyHourImaging TechniquesInjuryInterventionInvestigationMagnetic Resonance ImagingManualsMeasurementMeasuresMentorsMethodsMicroscopicModelingMusculoskeletal SystemNatureNervous System PhysiologyNervous System TraumaNervous system structureNeurologicPathologyPatient-Focused OutcomesPatientsPhysiciansPhysiologic pulseProcessPrognostic MarkerRattusRecoveryRecovery of FunctionResearchResearch TechnicsSamplingScanningScientistSeveritiesSignal TransductionSpecificitySpinal CordSpinal cord injuryTechniquesTestingTimeTissuesTrainingTranslational ResearchValidationWeightWorkaxon injurybasebiophysical propertiesclinical applicationclinically relevantcomputerized data processingdata acquisitiondesigneffective therapyexperienceexperimental studyfunctional outcomesfunctional statusimprovedin vivointerestnervous system disordernoveloutcome forecastpre-clinicalprognosticprognostic assaysprognostic valuerapid techniquerehabilitation strategyrelative effectivenessresearch clinical testingsimulationsuccesstherapy developmenttooltraining opportunitytreatment planningtreatment strategy
中文摘要
项目总结
英文摘要
Project Summary
Spinal cord injury (SCI) is a debilitating condition with significant limitations for acute evaluation of
severity, complicating prompt and effective treatment strategies. Diffusion Tensor Imaging (DTI) is a
promising magnetic resonance imaging (MRI) research technique for detecting microscopic tissue
injury in SCI, but requires long scan durations and lacks specificity for the important prognostic
marker of cellular damage, reducing its clinical usefulness. The goal of this project is to apply a novel
diffusion MRI technique to overcome these limitations and improve diagnosis and prognosis of SCI.
This technique, termed double diffusion encoding (DDE), was specifically tailored to evaluate axonal
integrity in the spinal cord, which has been shown to be the best predictor of functional outcome
following injury, by reducing its sensitivity to edema and other processes that confound diffusion
measurements. Preliminary data demonstrate that DDE measurements enable greater sensitivity to
injury than DTI with a substantially reduced acquisition time. Furthermore, the automated DDE
analysis requires minimal data post-processing and provides an important objective benefit over the
time-consuming manual region of interest drawing commonly used with DTI. Thus, the DDE
technique provides multiple benefits over DTI that increase its feasibility for potential clinical
evaluation of SCI. The aims of the project are to demonstrate the cellular basis for diffusion changes
measured with DDE and its use as a prognostic indicator for long-term functional recovery. This
method will be evaluated using a rat contusion model of SCI with graded severities induced by weight
drop injuries. Comparison of MRI measurements to gold-standard histological quantification will
demonstrate the strong association between DDE parameters and axonal injury (Aim 1). The
prognostic capabilities of this new method will also be tested in the ability of acute DDE
measurements to predict chronic nervous system function following injury (Aim 2). The results of
these studies will impact both preclinical and clinical applications of SCI evaluation where improved
sensitivity to axonal damage will better inform intervention, treatment, and rehabilitation strategies.
The translational nature of the project, coupled with training in fundamental principles of scientific
investigation, will promote continued success in my long-term goal to become an independent
physician scientist.
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