KATP channels as biomechanical sensors in the regulation of ductus arteriosus tone
KATP channels as biomechanical sensors in the regulation of ductus arteriosus tone
批准号:
9319809
负责人:
Elaine Shelton
金额:
$19.75万
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:
2016-08-01 至 2020-06-30
关键词:
AddressAffectAreaBiologyBiomechanicsBirthBlood CirculationBlood VesselsBlood flowCantu syndromeCardiovascular DiseasesCellsClinicalCritical IllnessCultured CellsDevelopmentDevicesDiseaseDuctus ArteriosusElectrophysiology (science)Functional disorderGenesGoalsHumanImmunohistochemistryIndividualInfantIon ChannelLeadLifeLungMembraneMicrofluidicsModelingMolecularMusMutationMyographyNewborn InfantNitric OxideOxygenPatent Ductus ArteriosusPathway interactionsPatientsPatternPerfusionPharmacologyPlayPremature InfantProstaglandinsRegulationRoleShunt DeviceSignal TransductionSmooth Muscle MyocytesStretchingTestingTherapeuticUterusVasomotorWorkconstrictionexperienceexperimental studyfetalfetal bloodgain of functionhemodynamicsmechanotransductionnovelpostnatalpremature neonatespressureresponsesensorshear stressvascular bed
中文摘要
项目总结:
英文摘要
Project Summary:
The ductus arteriosus (DA) is a critical vascular shunt connecting the pulmonary and systemic
circulations during fetal life. At birth, the DA must close to allow adequate perfusion of the newly inflated lungs.
However, the DA fails to close in some cases, a condition termed patent ductus arteriosus (PDA). PDA is a
significant cardiovascular disorder affecting 1 out of every 500-2000 term infants and 30-40% of the most
critically ill premature neonates. Current therapies are limited and have worrisome off-target effects. Work over
the past thirty years has identified the “master regulators” of DA patency, namely oxygen, prostaglandins, and
nitric oxide signaling. However, the clinical conundrum of PDA persists, suggesting there are other unidentified
critical regulators of DA tone. The DA experiences a unique set of biomechanical forces that set it apart from
all other vessels in the body. Blood flow patterns and vessel wall stretching changes dramatically during the
course of DA closure. And yet, mechanosensing has not been previously investigated as a regulator of DA
tone.
Others have identified a class of ion channels, KATP channels, that sense and respond to changes in
biomechanical forces in endothelial and smooth muscle cells. We demonstrated that the DA is sensitive to
changes in biomechanical forces and that KATP channels are enriched in the DA and serve to regulate tone.
Moreover, humans with mutations in KATP channel genes suffer from Cantu Syndrome, a disorder
characterized by PDA. Therefore, the major hypothesis of this proposal is that KATP channels regulate DA tone
by acting as novel biomechanical sensors that trigger DA closure and drive circulatory adaptation at birth. We
will address this hypothesis using primary DA endothelial and smooth muscle cells cultured in microfluidic or
stretch devices. These experiments will elucidate the parameters under which DA KATP channels are activated
or inhibited by specific hemodynamic forces. Additionally we will move from individual cells to intact DAs via
flow-myography experiments in order to determine the molecular mechanism underlying KATP channel
mechanosensing in the DA. Taken together, these studies will identify a previously unknown role for KATP
channels as biomechanical sensors in the DA. Moreover, by determining the molecular mechanisms of KATP
channel mechanosensing, these studies will place KATP channels within the hierarchy of established regulators
of DA tone and add a novel biomechanical component to the current paradigm of DA closure. Finally, these
studies will allow us to integrate our findings into the pathophysiology of PDA in humans to gain a more
complete understanding of the PDAs that often occur in pre-term infants and Cantu syndrome patients with the
hopes of developing more efficient therapeutic options.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI:
10.3389/fped.2021.612242
发表时间:
2021
期刊:
Frontiers in pediatrics
影响因子:
2.6
作者:
[Sallmon H, Timme N, Atasay B, Erdeve Ö, Hansmann G, Singh Y, Weber SC, Shelton EL]
通讯作者:
Shelton EL
CYP2C9*2 is associated with indomethacin treatment failure for patent ductus arteriosus.
CYP2C9*2 与吲哚美辛治疗动脉导管未闭的失败相关。
DOI:
10.2217/pgs-2019-0079
发表时间:
2019
期刊:
Pharmacogenomics
影响因子:
2.1
作者:
[Rooney,SydneyR, Shelton,ElaineL, Aka,Ida, Shaffer,ChristianM, Clyman,RonaldI, Dagle,JohnM, Ryckman,Kelli, Lewis,TamorahR, Reese,Jeff, VanDriest,SaraL, Kannankeril,PrinceJ]
通讯作者:
Kannankeril,PrinceJ
KATP channels as biomechanical sensors in the regulation of ductus arteriosus tone
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批准号:9145915
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项目类别:
-
资助金额:$21.96万
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财政年份:2016
-
负责人:Elaine Shelton
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依托单位:
海外基金