Diversity Supplement to 1RF1 NS128963
Diversity Supplement to 1RF1 NS128963
批准号:
10838168
负责人:
ANNE JOUTEL
金额:
$19.35万
依托单位国家:
美国
项目类别:
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-08-15 至 2025-06-30
关键词:
3-DimensionalAffectAnimal ModelAutopsyBlood VesselsBlood capillariesBrainBrain PathologyCellsCerebral IschemiaCerebral hemisphere hemorrhageCerebral small vessel diseaseCerebrovascular CirculationCoupledData SetDementiaDevelopmentDiseaseDistalEmerging TechnologiesErythrocytesFunctional disorderHumanImageImpaired cognitionInheritedIschemiaIschemic StrokeLabelLesionMethodologyMicrospheresMusNOTCH3 geneNeurobehavioral ManifestationsPathogenesisPathologyPericytesPopulationPreparationPropertyRegulationResolutionRetinaSamplingSmooth Muscle MyocytesTechniquesTechnologyTestingTimeUltrasonographyarteriolebrain parenchymacapillary bedcerebral blood volumeclinically relevantdensityin vivoinnovationloss of function mutationmouse modelnovelpressurereceptorresponsespatiotemporalvascular contributionsvenule
中文摘要
项目总结
英文摘要
PROJECT SUMMARY
In response to the FOA, PAR-22-026, we propose an integrated and technologically/conceptually innovative
approach to advance our mechanistic understanding of how dysfunction of small brain vessels can have long-
term impacts on the brain parenchyma and cause cognitive impairment. Cerebral small vessel disease (cSVD)
accounts for up to 25% of ischemic strokes and more than 90% of spontaneous intracerebral hemorrhages
(ICHs), and as such is a major driver of dementia. Recent studies have shown that there are at least four types
of mural cells defining four major microvascular zones: smooth muscle cells (SMCs) on arterioles, contractile
pericytes (PCs) on the post-arteriole region of the capillary bed (i.e., transition zone), non-contractile PCs on
distal capillaries and venular PCs on venules. Loss of arteriolar SMCs in human post-mortem brains is a feature
shared by both multifactorial and inherited cSVD, whether associated with ischemic strokes or ICHs. We have
provided compelling evidence that loss of SMCs on arterioles coupled with enhanced function of contractile PCs
on the transition zone mutually reinforce each other to cause ICHs, and recently discovered that arteriolar SMCs
and contractile PCs in the transition zone are lost early in the brain and retina of clinically relevant mouse models
of ischemic cSVDs with gain- or loss-of-function mutations in the NOTCH3 receptor. On the basis of these and
other observations, we propose that loss of SMCs specifically in brain arterioles is a common factor underlying
the development of cSVDs and that changes in the properties/density of contractile PCs in the post-arteriole
transition zone modify disease presentation. To test this, we will explore the causal relationship between the loss
of SMCs/PCs and cSVD- related brain pathologies and cognitive symptoms (Aim 1) and determine how loss of
SMCs/contractile PCs compromises integrative vascular functions (Aim 2). To this end, we will employ existing
and novel mouse models with conditional inactivation of Notch3 in specific mural cell populations and deploy a
powerful array of new techniques, including 1) a novel coordinate-based object analysis methodology capable
of simultaneously quantifying all imageable parameters, including small vessel pathology, in massive 4D (3D
over time) imaging datasets from high-resolution sections of the entire brain; 2) a novel pressurized retina
preparation in conjunction with labeled red blood cells and microspheres for quantitatively assessing the impact
of small vessel pathology on intravascular pressure and flow across different microvascular segments; and 3)
ultrafast functional ultrasound imaging, an emerging technology that can non-invasively sample cerebral blood
volume changes in vivo in a complete coronal section of a mouse brain with a high spatiotemporal resolution, for
elucidating how small brain vessel pathologies affect cerebral blood flow regulation in deep parts of the brain.
We expect that the proposed studies will contribute to a better understanding of the mechanistic basis of deep
brain lesions and cognitive impairment in cSVDs and establish arteriolar SMCs and contractile PCs as critical
new targets.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Lesions and loss of smooth muscle cells in brain underlies small vessel disease
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批准号:10527075
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项目类别:
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资助金额:$198.93万
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财政年份:2022
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负责人:ANNE JOUTEL
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依托单位:
Notch3 signaling in small-artery-diseases
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批准号:7350196
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项目类别:
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资助金额:$16.52万
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财政年份:2006
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负责人:ANNE JOUTEL
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依托单位:
Notch3 signaling in small-artery-diseases
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批准号:7575204
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项目类别:
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资助金额:$16.52万
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财政年份:2006
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负责人:ANNE JOUTEL
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依托单位:
Notch3 signaling in small-artery-diseases
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批准号:7175351
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项目类别:
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资助金额:$16.52万
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财政年份:2006
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负责人:ANNE JOUTEL
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依托单位:
Notch3 signaling in small-artery-diseases
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批准号:7024809
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项目类别:
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资助金额:$17.01万
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财政年份:2006
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负责人:ANNE JOUTEL
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依托单位:
海外基金