Structural basis of KATP Channel Gating
Structural basis of KATP Channel Gating
批准号:
8131340
负责人:
Show-Ling Shyng
金额:
$30.8万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-03-06 至 2015-03-31
关键词:
ATP-Binding Cassette TransportersAddressAffectAffinityBasic ScienceBindingCardiacCellsChemicalsChildhoodComplexCouplingDataDevelopmentDiabetes MellitusDiagnosisDiazoxideDiseaseExhibitsFamilyFosteringFunctional disorderGeneticGlucoseGoalsHealth SciencesHomeostasisHumanHyperinsulinismInfantIon ChannelKir6.2 channelKnowledgeLeadLinkMediatingMembraneMetabolicMetabolismMgADPMolecularMolecular ConformationMutagenesisMutateMutationMyopathyN-terminalNeurologicNeuronsNon-Insulin-Dependent Diabetes MellitusNucleotidesPancreasPathway interactionsPersistent Hyperinsulinemia Hypoglycemia of InfancyPhosphatidylinositol 4,5-DiphosphatePhosphatidylinositolsPhysiologicalPlayPotassiumProbabilityProteinsPublishingRegulationResearchRoleScanningScreening procedureSignal TransductionSignal Transduction PathwayStructural ModelsStructure-Activity RelationshipSulfonylurea CompoundsTestingTherapeutic AgentsWorkbasecell typecrosslinkhuman diseaseinnovationinsulin secretionmemberneonatal diabetes mellitusnovelnovel therapeuticsresponsesulfonylurea receptor
中文摘要
描述(由申请人提供):ATP敏感钾(KATP)通道将细胞代谢与膜兴奋性联系起来。它们通过引发与代谢信号相适应的生理反应,在能量平衡中起着至关重要的作用。作为内向整流钾(KIR)通道家族的一员,KATP通道的独特之处在于它需要Kir6.2与磺脲受体(SUR)共同组装才能实现功能表达。在胰腺细胞中,由Kir6.2和SUR1形成的KATP通道介导葡萄糖刺激的胰岛素分泌。降低通道功能的Kir6.2或SUR1突变会导致先天性高胰岛素血症,而增加通道功能的突变会导致新生儿糖尿病。Kir6.2和SUR1在通道复杂的门控调节中都起着不可或缺的作用。该项目的长期目标是了解与门控有关的通道蛋白的结构-功能关系。上一个周期的工作已经确定并阐明了成孔亚单位Kir6.2的几个结构特征在通道门控中的作用。在这一更新应用中,我们将解决SUR1和Kir6.2之间的功能耦合机制。SUR1增加Kir6.2的开放概率(Po),使Kir6.2对ATP的抑制作用和膜上磷脂酰肌醇的刺激作用超敏,并赋予MgADP以及药物磺脲类和二氮嗪对Kir6.2的作用。因此,SUR1和Kir6.2之间的功能耦合对于通道门控是必不可少的;然而,关于SUR1对Kir6.2产生多重影响的机制仍然存在重大的知识空白。此次更新申请的目的是阐明SUR1和Kir6.2之间功能偶联的机制和结构基础。基于我们的初步数据,我们提出了一个统一的假设来解释SUR1是如何对Kir6.2门控施加多重影响的。具体地说,我们假设SUR1通过SUR1中TMD0的短细胞质环上的残基与Kir6.2的N-末端结构域之间的分子相互作用将Kir6.2稳定在PIP2结合的开放状态,从而赋予KATP通道的内在Po;ATP、MgADP和药物通过改变SUR1-Kir6.2界面进而调节通道的活性,以加强或减弱通道-PIP2的相互作用。我们将使用疾病突变、引导突变筛选、化学交联和结构建模方法来交织前向遗传学方法来检验假设。这项研究具有创新性,因为它为该领域提供了一个新的概念。从人类健康和基础科学的角度来看,这项研究都具有重要意义。它将确定新的疾病机制,以直接促进几种罕见但破坏性的婴儿/儿童疾病的诊断和治疗,并将导致更好地了解经络的结构-功能关系,以促进关于如何调节经络活动以治疗由经络功能障碍引起的疾病的新想法,包括II型糖尿病。这也将使我们更好地理解沉默的ABC转运体如何调节离子通道,从而同时推进ABC转运体和离子通道场。
与公共健康相关:在许多类型的细胞中,ATP敏感钾(KATP)通道在将代谢信号与生理反应联系起来方面发挥着关键作用。KATP通道功能障碍会导致人类疾病,包括糖尿病、高胰岛素血症、心肌病和神经功能障碍。这个项目的目标是了解通道根据代谢信号打开或关闭的能力背后的分子基础,以促进开发新的治疗通道功能障碍引起的疾病的药物。
英文摘要
DESCRIPTION (provided by applicant): ATP-sensitive potassium (KATP) channels couple cell metabolism to membrane excitability. They play a vital role in energy homeostasis by eliciting physiological response appropriate to metabolic signals. A member of the inwardly rectifying potassium (Kir) channel family, KATP channels are unique in requiring co-assembly of Kir6.2 with a sulfonylurea receptor (SUR), an ABC transporter, for functional expression. In pancreatic ¿- cells, KATP channels formed by Kir6.2 and SUR1 mediate glucose-stimulated insulin secretion. Mutations in Kir6.2 or SUR1 that reduce channel function cause congenital hyperinsulinism whereas those that increase channel function cause neonatal diabetes. Both Kir6.2 and SUR1 play an integral role in the channel's complex gating regulation. The long-term goal of this project is to understand the structure-function relationship of channel proteins with respect to gating. Work in the previous cycle has identified and elucidated the role of several structural features of the pore-forming subunit Kir6.2 in channel gating. In this renewal application, we will address the mechanisms of functional coupling between SUR1 and Kir6.2. SUR1 increases the open probability (Po) of Kir6.2, hypersensitizes Kir6.2 to the inhibitory effect of ATP and stimulatory effect of membrane phosphoinositides, and confers the effects of MgADP as well as the pharmacological agent sulfonylureas and diazoxide on Kir6.2. Functional coupling between SUR1 and Kir6.2 is thus essential to channel gating; yet significant knowledge gaps remain regarding the mechanisms by which SUR1 exerts its multiple effects on Kir6.2. The goal of this renewal application is to elucidate the mechanisms and structural basis that are responsible for functional coupling between SUR1 and Kir6.2. Based on our preliminary data, we propose a unifying hypothesis to explain how SUR1 imposes its multiple effects on Kir6.2 gating. Specifically, we hypothesize that SUR1 confers the intrinsic Po of KATP channels by stabilizing Kir6.2 in the PIP2-bound open state via molecular interactions between residues in the short cytoplasmic loops of TMD0 in SUR1 and those in the N-terminal domain of Kir6.2; and ATP, MgADP and pharmacological agents modulate channel activity in turn by changing the SUR1-Kir6.2 interface to strengthen or weaken channel-PIP2 interactions. We will interweave forward genetics approach employing disease mutations, guided mutagenesis screening, chemical cross-linking and structural modeling approaches to test the hypothesis. The research is innovative because it presents a novel concept to the field. The research is significant from both the human health and basic science standpoints. It will identify new disease mechanisms to directly facilitate diagnosis and treatment of several rare but devastating infant/childhood diseases and will lead to a better understanding of the structure-function relationship of the channel to foster new ideas on how to modulate channel activity to treat diseases caused by channel dysfunction, including type II diabetes. It will also lead to a better understanding of how a silent ABC transporter regulates an ion channel to advance both the ABC transporter and the ion channel fields.
PUBLIC HEALTH RELEVANCE: The ATP-sensitive potassium (KATP) channels play a key role in linking metabolic signals to physiological responses in many cell types. Dysfunction of KATP channels causes human disease including diabetes, hyperinsulinism, cardiac myopathy and neurological deficits. The goal of this project is to understand the molecular basis underlying the ability of the channel to open or close according to metabolic signals to facilitate development of novel therapeutic agents for disease caused by channel dysfunction.
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