StretchfMRI: a new technique to study the brainstem correlates of long-latency responses
StretchfMRI: a new technique to study the brainstem correlates of long-latency responses
批准号:
9896490
负责人:
Fabrizio Sergi
金额:
$45.67万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-02-01 至 2023-01-31
关键词:
AddressAdultAffectAgreementAnimal ModelBrain StemCell NucleusChronicClinicalCollaborationsDevelopmentElectromyographyEtiologyExtensorFlexorForearmFunctional ImagingFunctional Magnetic Resonance ImagingFutureGoalsHumanImpairmentIndividualKnowledgeMagnetic Resonance ImagingMeasurementMeasuresMethodsModelingMuscleNeural PathwaysNeurosciencesNoisePathway interactionsPatientsPerformanceProcessPropertyRecoveryReflex actionResearchResolutionResponse LatenciesReticular FormationRobotRoboticsRoleSignal TransductionSourceSpecificitySpeedSpinalStrokeSurfaceSystemTechniquesTestingTimeUnited StatesWorkWristWrist jointblood oxygen level dependentchronic strokedisabilitydynamic systemexperimental studyhuman diseaseimaging modalityimprovedin vivolaboratory experimentmotor controlmotor impairmentmotor recoveryneural correlateneuromuscularneuromuscular systemneurophysiologynovelpatient populationpost strokeprogramsrelating to nervous systemresponserobotic systemspasticitystretch reflexstroke survivortool
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英文摘要
PROJECT SUMMARY
Spasticity is a common condition after stroke. Clinically, spasticity can be recognized as a velocity-dependent
increase in stretch reflexes, and is one of the primary sources of motor impairment in individuals with chronic
stroke. While a lot of research has addressed how spasticity modulates the gain of short-latency reflexes,
much less is known about the neural pathways that regulate the long-latency responses, a fundamental
component of the human motor control system that is severely affected in patients with post-stroke spasticity.
In this project, we will develp StretchfMRI, a new measurement technique that combines an MRI-compatible
robot with muscle electromyography and with high-resolution functional imaging of the brainstem via fMRI.
StretchfMRI will enable, for the first time in vivo and in human, the measurement of activity of brainstem nuclei
during long-latency responses. In this project, we will use StretchfMRI to establish the direct involvement of
nuclei in the reticular formation in producing a long-latency response.
The technique developed in this project is an important step towards a quantitative understanding of basic
principles of neuromuscular control, and has important applications in assessing neuromotor impairment and
recovery after stroke. StretchfMRI lays the groundwork for establishing causality in cortico-reticular function
associated with LLRs. In future work, we plan to apply StretchfMRI in a patient population to study the neural
correlates underscoring spasticity in patients with stroke-induced motor impairment.
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