The overall hypothesis of this P01 Grant is that the unique properties of vimentin intermediate filaments (VIF) play a key role in regulating cytoskeletal organization and modulate the micromechanical properties of cells as well as a diverse set of cellular activities, including cell polarization, cell migration, or tissue morphogenesis. The Project Investigators and Core Leaders are all leaders in the field of cell biology and cell mechanics. Over the past funding period collaborative studies have established unique cell reagents and assays leading to key insights into the properties and functions of VIF. These insights provide a strong foundation for this renewal application. In preparation of this application further preliminary results have been collected supporting the feasibility of each of the projects. The projects are interactive conceptually, technically and programmatically, making the aggregate of the projects much greater than the sum of its parts. In Project #1, Dr. Goldman, Northwestern University, will determine the structural interactions among VIF, microtubules (MT) and actin microfilaments (MF) using high resolution microscopic techniques; determine the role of the assembly and disassembly of VIF in wound healing and motility assays; and determine the role of VIF phosphorylation in cellular signal transduction. In Project #2, Dr. Gelfand, Northwestern University will determine the dynamic mechanisms regulating VIF-MT interactions; determine the mechanisms responsible for the dynamic interactions between VIF and MF; and determine how VIF modulate the transport and distribution of membrane-bound organelles. In Project #3, Dr. Danuser, UTSW Dallas, will examine mechanisms by which VIF control MT organization and cell polarity; investigate mechanisms by which VIF control cell traction; and examine mechanisms by which VIF respond to cell-external guidance cues. In Project #4, Dr. Weitz, Harvard University, will determine the properties of reconstituted networks of VIF as well as composite networks comprised either of VIF, MF and myosin motors, or VIF, MT and their associated motors; study the micromechanical properties of VIF networks in living cells in 3D settings and in reconstituted networks derived from these cells. In Project #5, Dr. Janmey, University of Pennsylvania, will determine the mechanisms that regulate force-dependent VIF assembly in cells; study the mechanics of VIF networks under compression in vitro; and determine how VIF regulate the response of cells and tissues to compression loading. Interactions among members of all projects and data sharing will allow for integration of physical characterizations made by different groups using methods unique to their labs that cover a wide range of time and length scales. These efforts will be supported by the Cell and Tissue Core which, under the guidance of Dr. Ridge, Northwestern University, will support all PIs by maintaining the required WT and vimentin null mouse models; by engineering tissue and cell type-specific vimentin knockout animals; by isolating primary cells from various tissues of these animals; and by analyzing gene expression patterns and providing purified proteins as required.

Public Health Relevance

Intermediate Filaments (IF) are structural proteins involved in determining cell shape, movement and mechanical integrity. Our proposed studies are aimed at understanding their specific functions in the mechanical properties and movement of cells. These basic studies will provide insights into the normal functions of IF and will help explain their defective functions in the many diseases attributed to mutations in the genes encoding the different IF proteins.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Program Projects (P01)
Project #
5P01GM096971-07
Application #
9774071
Study Section
Special Emphasis Panel (ZRG1)
Program Officer
Ainsztein, Alexandra M
Project Start
2011-06-15
Project End
2022-07-31
Budget Start
2019-08-01
Budget End
2020-07-31
Support Year
7
Fiscal Year
2019
Total Cost
Indirect Cost
Name
Northwestern University at Chicago
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
005436803
City
Chicago
State
IL
Country
United States
Zip Code
60611
Robert, Amélie; Tian, Peirun; Adam, Stephen A et al. (2018) Kinesin-dependent transport of keratin filaments: a unified mechanism for intermediate filament transport. FASEB J :fj201800604R
Li, Wen; Zhang, Liyuan; Ge, Xuehui et al. (2018) Microfluidic fabrication of microparticles for biomedical applications. Chem Soc Rev 47:5646-5683
Wang, Zheng; Divanyan, Alex; Jourd'heuil, Frances L et al. (2018) Vimentin expression is required for the development of EMT-related renal fibrosis following unilateral ureteral obstruction in mice. Am J Physiol Renal Physiol 315:F769-F780
Wang, Liqun; Xia, Jing; Li, Jonathan et al. (2018) Tissue and cellular rigidity and mechanosensitive signaling activation in Alexander disease. Nat Commun 9:1899
Bucki, Robert; Durna?, Bonita; W?tek, Marzena et al. (2018) Targeting polyelectrolyte networks in purulent body fluids to modulate bactericidal properties of some antibiotics. Infect Drug Resist 11:77-86
Wu, Pei-Hsun; Aroush, Dikla Raz-Ben; Asnacios, Atef et al. (2018) A comparison of methods to assess cell mechanical properties. Nat Methods 15:491-498
Guo, Ming; Pegoraro, Adrian F; Mao, Angelo et al. (2017) Cell volume change through water efflux impacts cell stiffness and stem cell fate. Proc Natl Acad Sci U S A 114:E8618-E8627
Prakadan, Sanjay M; Shalek, Alex K; Weitz, David A (2017) Scaling by shrinking: empowering single-cell 'omics' with microfluidic devices. Nat Rev Genet 18:345-361
Costigliola, Nancy; Ding, Liya; Burckhardt, Christoph J et al. (2017) Vimentin fibers orient traction stress. Proc Natl Acad Sci U S A 114:5195-5200
Zaritsky, Assaf; Obolski, Uri; Gan, Zhuo et al. (2017) Decoupling global biases and local interactions between cell biological variables. Elife 6:

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