Study the role of integrin tension in cell migration, platelet contraction and invadopodium dynamics

Information

  • Research Project
  • 10226271
  • ApplicationId
    10226271
  • Core Project Number
    R35GM128747
  • Full Project Number
    5R35GM128747-04
  • Serial Number
    128747
  • FOA Number
    PAR-17-190
  • Sub Project Id
  • Project Start Date
    8/10/2018 - 5 years ago
  • Project End Date
    7/31/2023 - 11 months ago
  • Program Officer Name
    XU, JIANHUA
  • Budget Start Date
    8/1/2021 - 2 years ago
  • Budget End Date
    7/31/2022 - a year ago
  • Fiscal Year
    2021
  • Support Year
    04
  • Suffix
  • Award Notice Date
    7/27/2021 - 2 years ago
Organizations

Study the role of integrin tension in cell migration, platelet contraction and invadopodium dynamics

Project Summary/Abstract The PI?s laboratory studies cell mechanobiology at the molecular tension level. Force is essential for the life of cells. Integrin-transmitted cellular force at the cell-matrix interface mechanically drives short-term cellular functions such as cell adhesion, contraction and migration. In long term, cellular force is also transduced to biochemical signals to regulate cell proliferation, differentiation, cancer cell metastasis, etc. Because of its fundamental importance, integrin-transmitted cellular force has been extensively studied at the bulk level by the well-developed cell traction force microscopies. However, integrin tension, the force transmitted by individual integrin molecules, despite its fundamental role in integrin signaling, is much less understood in most cellular functions. The PI?s lab specializes in studying cell mechanobiology using innovative molecular tension tools that measure, map and manipulate integrin tension in live cells. A tension sensor named ITS was developed by the PI to convert integrin tension to fluorescent signal and enable integrin tension mapping directly by fluorescence imaging with high spatial resolution. A tension modulator named TGT was developed to quantitatively restrict integrin tension in whole cells under a designed level for the study of regulative role of integrin tension in specific cellular functions. With these tools, the PI?s lab initiated the study of integrin tension in migrating cells, platelets and micro-sized invadopodia of cancer cells. The preliminary experiments have demonstrated the feasibility and versatility of these integrin tension tools in the research of cell mechanobiology at the molecular tension level. With these innovative tension tools, the elusive integrin tension can now be visualized, quantified and controlled along with cell structure and biochemical factors in live cells with comparable resolution, sensitivity and precision. In next five years, the PI?s lab will study the correlation, co-localization and causality among integrin tension, cell structure and local biochemical activities in live cells. The MIRA fund provides the PI?s lab with the flexibility to continue the study of integrin tension in three distinct cellular processes. The PI will combine molecular tension tools, genetic methods and fluorescence imaging to investigate the range, source, distribution and function of integrin tension in migrating cells, and reveal how cells exert and control integrin tension locally to coordinate cell protrusion and retraction. For platelet study, the force source and biological function of integrin tension during platelet adhesion, contraction and aggregation will be investigated in both 2D and 3D contexts. The integrin tension map will also be tested as a diagnostic assay for the assessment of platelet activity in stemming bleeding. For invadopodium study, the role of integrin tension in invadopodium formation and matrix degradation during cancer cell invasion will be comprehensively investigated. The proposed research will reveal valuable insights to the fundamental role of integrin tension in these various cellular processes. This project will also provide the field with innovative molecular tension sensor and tension modulator that are expected to be widely useful for cellular force study with unprecedented resolution and sensitivity.

IC Name
NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES
  • Activity
    R35
  • Administering IC
    GM
  • Application Type
    5
  • Direct Cost Amount
    250000
  • Indirect Cost Amount
    119111
  • Total Cost
    369111
  • Sub Project Total Cost
  • ARRA Funded
    False
  • CFDA Code
    859
  • Ed Inst. Type
    SCHOOLS OF ARTS AND SCIENCES
  • Funding ICs
    NIGMS:369111\
  • Funding Mechanism
    Non-SBIR/STTR RPGs
  • Study Section
    ZGM1
  • Study Section Name
    Special Emphasis Panel
  • Organization Name
    IOWA STATE UNIVERSITY
  • Organization Department
    PHYSICS
  • Organization DUNS
    005309844
  • Organization City
    AMES
  • Organization State
    IA
  • Organization Country
    UNITED STATES
  • Organization Zip Code
    500112025
  • Organization District
    UNITED STATES