We have discovered a new family of nucleoproteins termed LEKs. These proteins are very large (350 kD) and have a conserved array of protein domains that include 11 leucine zippers, a spectrin repeat, an atypical Rb-binding domain, a myc-type HLH-binding domain and a nuclear localization signal (NLS). Published data confirms the functional complexity of this family. Expression patterns of various LEK proteins are dynamic and variant with reference to cell type and subcellular localization during mitosis. Importantly, any disruption of LEK protein function tested thus far disrupts cell division and/or differentiation. In addition, LEK proteins appear to play critical roles in heart development. One family member, LEK1, present in mice and the subject of this application, is ubiquitously expressed in dividing embryonic cells during their differentiation. LEK1 is down regulated during embryogenesis and is not expressed in cells of the adult. LEK1 function is dependent on proteolytic cleavage to produce cyto-LEK that is retained in the cytoplasm of cells and nuc-LEK that is translocated to the nucleus. Our previous and new data show that disruption of LEK1 function slows or halts cell cycle progression, including that of cardiac myocytes and the nuc-LEK interacts with Rb members, known regulators of cell division and differentiation. In addition, we show that nuc-LEK can transactivate muscle- and cardiac-specific gene expression. This leads to the hypothesis that LEK1 plays a critical role(s) in regulation of cell division and differentiation during embryogenesis and especially in heart development. The goal of this proposal is to determine the function of LEK1 and nuc-LEK in heart development. Data from the proposed studies will help determine the role of this novel regulator of cardiac myocyte development.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL037675-14
Application #
6621630
Study Section
Cardiovascular and Pulmonary Research A Study Section (CVA)
Program Officer
Pearson, Gail D
Project Start
1986-09-30
Project End
2005-11-30
Budget Start
2002-12-01
Budget End
2003-11-30
Support Year
14
Fiscal Year
2003
Total Cost
$302,000
Indirect Cost
Name
Vanderbilt University Medical Center
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
004413456
City
Nashville
State
TN
Country
United States
Zip Code
37212
Fenix, Aidan M; Neininger, Abigail C; Taneja, Nilay et al. (2018) Muscle-specific stress fibers give rise to sarcomeres in cardiomyocytes. Elife 7:
Pfaltzgraff, Elise R; Roth, Gretchen M; Miller, Paul M et al. (2016) Loss of CENP-F results in distinct microtubule-related defects without chromosomal abnormalities. Mol Biol Cell 27:1990-9
Waters, Aoife M; Asfahani, Rowan; Carroll, Paula et al. (2015) The kinetochore protein, CENPF, is mutated in human ciliopathy and microcephaly phenotypes. J Med Genet 52:147-56
Pfaltzgraff, Elise R; Bader, David M (2015) Heterogeneity in vascular smooth muscle cell embryonic origin in relation to adult structure, physiology, and disease. Dev Dyn 244:410-6
Pfaltzgraff, Elise R; Samade, Richard; Adams, Rebecca et al. (2015) Interprofessional projects promote and strengthen interdisciplinary collaboration. Med Educ 49:1156-7
Roth, Gretchen M; Bader, David M; Pfaltzgraff, Elise R (2014) Isolation and physiological analysis of mouse cardiomyocytes. J Vis Exp :e51109
Dees, Ellen; Miller, Paul M; Moynihan, Katherine L et al. (2012) Cardiac-specific deletion of the microtubule-binding protein CENP-F causes dilated cardiomyopathy. Dis Model Mech 5:468-80
Moynihan, Katherine L; Pooley, Ryan; Miller, Paul M et al. (2009) Murine CENP-F regulates centrosomal microtubule nucleation and interacts with Hook2 at the centrosome. Mol Biol Cell 20:4790-803
Robertson, J Brian; Zhu, Tianli; Nasreen, Shampa et al. (2008) CMF1-Rb interaction promotes myogenesis in avian skeletal myoblasts. Dev Dyn 237:1424-33
Pooley, Ryan D; Moynihan, Katherine L; Soukoulis, Victor et al. (2008) Murine CENPF interacts with syntaxin 4 in the regulation of vesicular transport. J Cell Sci 121:3413-21

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