Investigating the role of a novel non muscle myosin II network in apical domain organization of enterocytes
Investigating the role of a novel non muscle myosin II network in apical domain organization of enterocytes
批准号:
9911150
负责人:
Colbie Chinowsky
金额:
$3.02万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-03-01 至 2021-11-30
关键词:
ActinsAntibodiesApicalArchitectureBrush BorderCell Culture SystemCell Culture TechniquesCell surfaceCellsComplexCytoskeletonDataDevelopmentDiseaseDistalEnterocytesEpithelial CellsEukaryotic CellExhibitsFarming environmentFilamentFingersFunctional disorderGastrointestinal DiseasesGenesGrowthHeadImageIndividualInternetIntestinesInvestigationKineticsKnowledgeLeadLengthLigandsLightLightingLinkLocationLongevityMaintenanceMechanicsMembraneMicrofilamentsMicroscopyModelingMorphologyMotorMusMutationMyosin ATPaseMyosin Type IIN-terminalNonmuscle Myosin Type IIAOrganOrganismPerfusionPharmaceutical PreparationsPharmacotherapyPhosphotransferasesPlayPoint MutationPositioning AttributePreventionProcessProtein IsoformsProteinsResearchResolutionRoleS-nitro-N-acetylpenicillamineScanningSiteSmall IntestinesStainsStructureSurfaceSystemTailTestingThick FilamentTissuesbaseblebbistatincellular microvillusdimerexperimental studyfluorophoregastrointestinalgastrointestinal epitheliumgastrointestinal functioninhibitor/antagonistinsightintestinal epitheliumintestinal homeostasisknock-downnon-muscle myosinnovelnutrient absorptionoverexpressionpathogenregenerativeresponse
中文摘要
项目总结
在肠道内,营养吸收发生在灌木丛边缘,这是一个密集排列的肌动蛋白区域。
肠上皮细胞顶面有突起。这些被称为微绒毛的突起也形成了第一条线
对流明病原体的防御。画笔边框的正确排列取决于正确的排列
微绒毛聚集。微绒毛是被膜覆盖的突起,每个突起含有一束20-30个肌动蛋白
细丝,正端位于远端,负端锚定在细胞的已知区域
作为终端网。肠细胞不断更新,因此微绒毛的生长在整个过程中至关重要。
有机体的整个生命周期。然而,人们对推动经济增长的机制和
微绒毛的组织,或终末纤网的确切作用。
多年前的超微结构研究表明,微绒毛肌动蛋白束内嵌有致密的
终端网,尽管这种结构的组成和功能仍然不明确。我们的初步研究
提示这种结构的主要成分是非肌肉肌球蛋白II(NMII),它是一种形成细丝的肌球蛋白马达
在所有真核细胞中都有表达。在肠道中,有三种不同的NMII亚型表达:A、B和C,与
肠上皮细胞主要表达NMII-A和NMII-C。我的初步超分辨率图像显示
NMII-C在末端网络水平上形成了一个跨越肠上皮细胞顶端区域的新型网络。行扫描
沿微绒毛轴方向显示,NMII-C在微绒毛肌动蛋白束的尖端附近富含。在……里面
利用肌球蛋白II抑制剂Blebbistatin在小鼠肠道组织中获得天然微绒毛的初步研究
明显变短,并且似乎失去了相对于细胞表面的直立方向。基于我的
初步数据,我假设横跨顶域的非肌肉肌球蛋白II网络提供
为微绒毛的生长和维护提供必要的张力和机械支持。为了检验这一假设,我将:
(目标1)确定心尖下非肌肉肌球蛋白II网络的组织,并(目标2)确定其作用
NMII-C在微绒毛生长和组织中的作用。对这种新型肌球蛋白II阵列的研究将具有重要意义
加深对微绒毛形成和维持的物理机制的理解,以及
与非肌肉肌球蛋白II基因突变有关的疾病。
英文摘要
PROJECT SUMMARY
Within the intestine, nutrient absorption occurs at the brush border, a region of densely packed actin based
protrusions on the apical surface of enterocytes. These protrusions, known as microvilli, also form the first line
of defense against luminal pathogens. Proper formation of the brush border is dependent on the correct formation
and clustering of microvilli. Microvilli are membrane covered protrusions, each containing a bundle of 20-30 actin
filaments, with the plus ends located at the distal tips, and the minus ends anchored in a region of the cell known
as the terminal web. Enterocytes are continually being renewed, thus growth of microvilli is critical throughout
an organism’s entire lifespan. However, little is known about the mechanisms that drive the growth and
organization of microvilli, or the precise role of the terminal web.
Ultrastructural studies revealed many years ago that microvillar actin bundles are embedded in the dense
terminal web, although the composition and function of this structure remain ambiguous. Our preliminary studies
suggest that a major constituent of this structure is non-muscle myosin II (NMII), a filament-forming myosin motor
expressed in all eukaryotic cells. In the intestine, three different isoforms of NMII are expressed; A, B and C, with
NMII-A and NMII-C dominating expression in enterocytes. My preliminary super-resolution images reveal that
NMII-C forms a novel network across the enterocyte apical domain at the level of the terminal web. Line scans
along the microvillar axis show that NMII-C is enriched near the pointed-ends of microvillar actin bundles. In
preliminary studies using Blebbistatin, a myosin II inhibitor, native microvilli in mouse intestinal tissue get
noticeably shorter, and appear to lose their upright orientation relative the surface of the cell. Based on my
preliminary data, I hypothesize that a non-muscle myosin II network spanning the apical domain provides
necessary tension and mechanical support for microvillar growth and maintenance. To test this hypothesis, I will:
(Aim 1) define the organization of the sub-apical non-muscle myosin II network, and (Aim 2) determine the role
of NMII-C in the growth and organization of microvilli. Investigation of this novel myosin II array will significantly
deepen our understanding of the physical mechanisms of microvillar formation and maintenance, as well as
diseases linked to mutations in non-muscle myosin IIs.
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