14-3-3 phosphorylation in Parkinson's disease
14-3-3 phosphorylation in Parkinson's disease
批准号:
10630910
负责人:
Talene Alene Yacoubian
金额:
$39.56万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
未结题
起止时间:
2019-09-15 至 2025-05-31
关键词:
AffectBindingBiological AssayBrainCell CommunicationCellsClinicalDataDementia with Lewy BodiesDetergentsDiseaseDisease ProgressionDisinhibitionEventFunctional disorderGenesGoalsHumanIdiopathic Parkinson DiseaseImmunoprecipitationImpaired cognitionImpairmentInterventionKnock-inKnock-in MouseLRRK2 geneLeadLewy Body DiseaseLigationLinkMeasuresMediatingMitochondriaModelingMolecular ChaperonesMusMutationNerve DegenerationNeurodegenerative DisordersNeuronal InjuryNeurotoxinsOutcomeOxidative StressOxidative Stress InductionParkinson DiseasePathogenesisPathologicPathologyPatientsPesticidesPhosphorylationPhosphotransferasesProcessProtein IsoformsProteinsPublishingResearchRiskRisk FactorsRoleRotenoneSeveritiesStressSurface Plasmon ResonanceTestingToxic effectToxinVariantalpha synucleinautosomebrain tissuegenome wide association studyin vivolink proteinmimeticsmouse modelmutantneurotoxicitynovelparacrinepre-clinicalpreventprotective effectprotein transportresponsesporadic Parkinson&aposs Diseasetherapeutic targettooltransmission process
中文摘要
项目总结
与帕金森氏病(PD)相关的两个关键蛋白质是α-突触核蛋白(α)和LRRK2。基因突变
这两种基因中的任何一种都会导致常染色体显性形式的帕金森病,而GWAS的研究已经指出了这两种基因的变异
作为发展为特发性帕金森病的危险因素。虽然这两种蛋白质导致相似的病理结果,但如何
这两种蛋白质会导致神经元损伤,它们在疾病过程中是如何相互作用的还不清楚。
我们的关键发现是14-3-3θ是αSYN和LRRK2的主要调节者,可能是缺失的一环
在αSYN和LRRK2之间。14-3-3S是一种多功能的、高表达的大脑蛋白,充当伴侣,
影响蛋白质的运输,并调节其结合伙伴的酶活性。我们的研究强调了
这些关键蛋白在帕金森病中的作用及其与α、SYN和LRRK2的相互作用。我们观察到,
14-3-3θ充当伴侣,以减少α同步聚集和细胞间传输,并且这相同的14-3-3
异构体可降低突变体LRRK2的激酶活性和毒性。
虽然我们的数据清楚地指出了14-3-3功能障碍在帕金森病中的潜在关键作用,但一个关键
剩下的问题是14-3-3θ的S内源性功能如何在帕金森病中受损。我们建议
14-3-3-θ的异常磷酸化是关键的病理生理事件,在14-3-3θ中这种异常磷酸化增加
磷酸化促进LRRK2和α在疾病中的同步效应。为了支持这一假设,我们最近
已发表的数据显示,S232处的14-3-3θ磷酸化在洗涤剂不溶于水中显著增加
从人类PD和DLB脑中提取的组分。这种S232磷酸化的增加与认知相关
与S232磷酸化在发病机制中的作用一致
神经退行性变。此外,我们还观察到线粒体应激促进14-3-3θ
培养物中S232位的磷酸化。S232D模拟磷突变体在神经毒素中失去保护作用
和αSYN培养模式。
根据这些数据,我们假设氧化应激是过量14-3-3θ的关键上游诱因
磷酸化,导致αSYN和LRRK2毒性。我们最近创建了有条件敲入(KI)14-3-3θ
S232D小鼠品系将成为了解14-3-3磷酸化在帕金森病中的影响的关键工具。
在目标1中,我们将测试14-3-3θ磷酸化如何改变与αSYN的相互作用并调节后续的αSYN
病理学。在目标2中,我们将测试14-3-3磷酸化对其与LRRK2和LRRK2相互作用的影响
功能。在目标3中,我们将研究14-3-3θ磷酸化是否发生在散发性帕金森病的早期,以及是否
氧化应激通过过度的14-3-3磷酸化来介导毒性。
英文摘要
PROJECT SUMMARY
Two critical proteins linked to Parkinson’s disease (PD) are alpha-synuclein (αsyn) and LRRK2. Mutations in
either gene cause autosomal dominant forms of PD, and GWAS studies have pointed to variants in both genes
as risk factors for developing idiopathic PD. Although both proteins lead to a similar pathological outcome, how
these two proteins cause neuronal injury and how they interact in the disease process are not well understood.
Our key discovery is that 14-3-3θ is a major regulator of both αsyn and LRRK2 and could be the missing link
between αsyn and LRRK2. 14-3-3s are multifunctional, highly expressed brain proteins that act as chaperones,
affect protein trafficking, and modulate enzymatic activity of their binding partners. Our research has highlighted
the role of these critical proteins in PD and their interplay with both αsyn and LRRK2. We have observed that
14-3-3θ acts as a chaperone to reduce αsyn aggregation and cell-to-cell transmission, and this same 14-3-3
isoform reduces the kinase activity and toxicity of mutant LRRK2.
While our data clearly points to a potentially critical role for 14-3-3 dysfunction in Parkinson’s disease, a key
question that remains is how 14-3-3θ’s endogenous functions could become impaired in PD. We propose that
aberrant phosphorylation of 14-3-3θ is the critical pathophysiologic event, and that increases in 14-3-3θ
phosphorylation promotes LRRK2 and αsyn effects in disease. In support of this hypothesis, we recently
published data showing that 14-3-3θ phosphorylation at S232 is dramatically elevated in the detergent-insoluble
fractions from human PD and DLB brains. This increase in S232 phosphorylation correlates with cognitive
decline and pathological severity measures, consistent with a role of S232 phosphorylation in the pathogenesis
of neurodegeneration. In addition, we have observed that mitochondrial stress promotes 14-3-3θ
phosphorylation at S232 in culture. The S232D phosphomimetic mutant loses its protective effects in neurotoxin
and αsyn culture models.
Based on these data, we hypothesize that oxidative stress is a key upstream inducer of excessive 14-3-3θ
phosphorylation, leading to αsyn and LRRK2 toxicity. We recently created a conditional knock-in (KI) 14-3-3θ
S232D mouse line that will serve as the critical tool to understand the impact of 14-3-3 phosphorylation in PD.
In Aim 1, we will test how 14-3-3θ phosphorylation alters interactions with αsyn and modulates subsequent αsyn
pathology. In Aim 2, we will test the impact of 14-3-3 phosphorylation on its interaction with LRRK2 and LRRK2
function. In Aim 3, we will examine whether 14-3-3θ phosphorylation occurs early in sporadic PD and whether
oxidative stress mediates toxicity via excessive 14-3-3 phosphorylation.
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