Investigating mechanisms regulating cytoskeletal dynamics and alignment during epithelial tissue folding
Investigating mechanisms regulating cytoskeletal dynamics and alignment during epithelial tissue folding
批准号:
10598503
负责人:
Mary Ann Collins
金额:
$7.18万
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
已结题
起止时间:
2021-04-01 至 2024-03-31
关键词:
ActomyosinAdherens JunctionAdultAffectApicalApoptosisAutomobile DrivingBehaviorCancer BiologyCell ShapeCellsCellular biologyChemicalsCollectionCongenital AbnormalityConnective TissueCytoskeletal ModelingCytoskeletonDedicationsDefectDeformityDevelopmentDevelopmental BiologyDiseaseDisease ProgressionDisputesDrosophila genusDrosophila melanogasterEmbryoEmbryonic DevelopmentEpitheliumEventF-ActinFailureFogsGene ExpressionGeneticGoalsHealthHumanImageImage AnalysisIndividualIntercellular JunctionsKnowledgeLabelLightLinkMalignant NeoplasmsMeasuresMechanicsMesenchymalMesodermMethodsMicrofilamentsMicroscopyMissionMolecularMolecular MotorsMorphogenesisMotorMovementMyosin ATPaseMyosin S-2Myosin Type IINatureNeoplasm MetastasisNeural Tube DefectsNeural tubeOrganOutcomePhysiologic pulseProcessProductionResearchRoleSeminalShapesSignal PathwaySignal TransductionStructureSurfaceTWIST1 geneTestingTissuesUnited States National Institutes of HealthWorkalpha cateninbehavior predictioncomparativeconstrictioncrosslinkdevelopmental diseasedriving forceepithelial to mesenchymal transitiongastrulationimaging modalityinnovationinsightintercellular connectionmechanical forcemechanical signalmutantmyosin phosphatasenon-muscle myosinnovelphysical propertypredictive modelingpreventquantitative imagingsingle moleculesuperresolution imagingsuperresolution microscopytraining opportunitytransmission processtumor progression
中文摘要
项目总结:
大规模的组织运动在发育过程中是至关重要的,以改变无定形的
细胞分化成具有特定结构和功能的器官。力产生信号的异常激活
调节上皮形态发生也会导致发育缺陷,如神经管畸形。
异常上皮-间充质转化和癌症转移。然而,我们并不完全了解
在分子水平上产生的机械力调节上皮重塑。在细胞层面上,大多数
肌球蛋白网络产生力量;分子马达非肌肉肌球蛋白II(Myosin)
交联化肌动蛋白细丝(F-肌动蛋白),从而产生收缩力量,并在整个
通过细胞间连接的组织。肌动球蛋白收缩的一个结果是心尖收缩,在这种情况下
细胞的顶端由于肌球蛋白脉冲的反复爆发而变窄,肌球蛋白脉冲将F-肌动蛋白皮质浓缩在
棘轮式的方式。当肌球蛋白的脉冲和棘轮被破坏时,细胞不能顶端收缩,
组织不能折叠。然而,驱动搏动性收缩和棘轮行为的机制仍然存在
知之甚少,突显出我们对上游信令事件的理解存在严重差距
错综复杂地与细胞骨架组织和行为的下游变化有关。这样做的长期目标是
该项目是为了确定在分子水平上产生的机械力如何共同驱动整个组织
形态发生变化。这项提案的总体目标是确定调节肌球蛋白的机制
通过确定扭转表达和肌球蛋白周转之间的机制联系来实现动力学和排列。
这项拟议工作的基本原理不仅是为了深入了解这些机制的性质,而且是为了
大范围组织收缩和棘齿状根尖收缩的一般规律
动静。我们的中心假设是Twist和它的下游效应器,以及组织范围的力,
通过细胞间连接,协同调节肌球蛋白动力学以驱动尖端棘轮和组织
果蝇胚胎发育中的重塑事件。这一假设将通过追求两个
具体目标:我们将(1)确定Twist促进细胞顶端稳定的机制,以及
(2)确定细胞间连通性对肌球蛋白动力学的影响。我们的方法是创新的
因为它是第一个使用综合策略直接检查肌球蛋白动力学的公司之一,
经典的果蝇遗传学和先进的显微镜方法,包括光转化和超微结构
分辨率成像。这项拟议的研究具有重要意义,因为它将促进我们对
上皮细胞中基因表达、信号通路和力产生之间的联系
形态发生,并将为正在进行的研究开发提供新的视角
疾病和癌症生物学。
英文摘要
Project Summary:
Large-scale tissue movements are critical during development to transform an amorphous collection of
cells into organs with specific structure and function. Abnormal activation of force-generating signals that
regulate epithelial morphogenesis can result in developmental defects, such as neural tube deformities, as well
as aberrant epithelial-mesenchymal transition and cancer metastasis. Yet we do not fully understand how
mechanical forces generated at the molecular level regulate epithelial remodeling. At the cellular level, most
forces are generated by the actomyosin network; the molecular motor non-muscle myosin II (myosin)
crosslinks actin filaments (F-actin), thereby generating contractile forces which are propagated throughout the
tissue via intercellular connections. One outcome of actomyosin contractility is apical contraction, in which the
apex of the cell narrows as a result of repeated bursts of myosin pulses that condense the F-actin cortex in a
ratchet-like manner. When myosin pulsing and ratcheting is disrupted, cells fail to apically constrict and the
tissue fails to fold. However, the mechanisms driving pulsatile contractions and ratcheting behavior remains
poorly understood, highlighting a critical gap in our understanding of how upstream signaling events are
intricately linked to downstream changes in cytoskeletal organization and behavior. The long-term goal of this
project is to determine how mechanical forces generated at the molecular level collectively drive tissue-wide
morphogenetic changes. The overall objective of this proposal is to identify mechanisms that regulate myosin
dynamics and alignment by determining the mechanistic link between Twist expression and myosin turnover.
The rationale for this proposed work is to gain insight not only into the nature of these mechanisms, but also
the general principles governing contractility and ratchet-like apical constriction during large-scale tissue
movements. Our central hypothesis is that Twist, and its downstream effectors, as well as tissue-wide forces,
via intercellular connections, cooperatively regulate myosin dynamics to drive apical ratcheting and tissue
remodeling events during embryonic development in Drosophila. This hypothesis will be tested by pursuing two
specific aims: we will (1) determine the mechanism through which Twist promotes cell apex stabilization, and
(2) determine how myosin dynamics are affected by intercellular connectivity. Our approach is innovative
because it is one of the first to directly examine myosin dynamics using an integrative strategy that combines
classic Drosophila genetics with advanced microscopy methods, including photo-conversion and super-
resolution imaging. The proposed research is significant because it will advance our understanding of the
connection between gene expression, signaling pathways, and force production during epithelial
morphogenesis, and will provide new perspective to ongoing research efforts investigating developmental
diseases and cancer biology.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Investigating mechanisms regulating cytoskeletal dynamics and alignment during epithelial tissue folding
-
批准号:10396453
-
项目类别:
-
资助金额:$6.76万
-
财政年份:2021
-
负责人:Mary Ann Collins
-
依托单位:
Investigating mechanisms regulating cytoskeletal dynamics and alignment during epithelial tissue folding
-
批准号:10229158
-
项目类别:
-
资助金额:$6.6万
-
财政年份:2021
-
负责人:Mary Ann Collins
-
依托单位:
海外基金