Integrative Physiology |
From the Institute of Biochemistry, Medical Faculty, University of Vienna, Austria.
Correspondence to Dr Georg Weitzer, Institut für Biochemie, Medizinische Fakultät, Universität Wien, Dr Bohrgasse 9/3, A-1030 Wien, Austria. E-mail gw{at}bch.univie.ac.at
AbstractCardiogenesis is a multistep process regulated by a hierarchy of factors defining each developmental stage of the heart. One of these factors, leukemia inhibitory factor (LIF), a member of the interleukin-6 family of cytokines, is expressed in embryonic and neonatal cardiomyocytes and induces cardiomyocyte hypertrophy. Many aspects of embryogenesis are faithfully recapitulated during in vitro differentiation of embryonic stem cells in embryoid bodies. We exploited this model to study effects of growth factors on commitment and differentiation of cardiomyocytes and on maintenance of their phenotype. We identified LIF as a factor affecting commitment and differentiation of cardiomyocytes in an opposite manner. Diffusible LIF inhibited mesoderm formation and hampered commitment of cardiomyocytes. Lack of both the diffusible and matrix-bound isoforms of LIF in lif-/- embryoid bodies did not interfere with commitment, but it severely suppressed early differentiation of cardiomyocytes. Onset of differentiation was rescued by very low concentrations of diffusible LIF; however, consecutive differentiation was attenuated in a concentration-dependent manner by diffusible LIF both in wild-type and lif-/- cardiomyocytes. Differentiation of cardiomyocytes was severely hampered but not completely blocked in lifr-/- embryoid bodies, suggesting additional, LIF-receptor ligand independent pathways for commitment and differentiation of cardiomyocytes. At the fully differentiated state, both paracrine and autocrine LIF promoted proliferation and increased longevity of cardiomyocytes. These findings suggest that both paracrine and autocrine and both diffusible and matrix-bound isoforms of LIF contribute to the modulation of cardiogenesis in a subtle, opposite, and developmental stagedependent manner and control proliferation and maintenance of the differentiated state of cardiomyocytes.
Key Words: leukemia inhibitory factor cardiomyocyte development embryonic stem cell embryoid body
This article has been cited by other articles:
![]() |
R. E. Davey, K. Onishi, A. Mahdavi, and P. W. Zandstra LIF-mediated control of embryonic stem cell self-renewal emerges due to an autoregulatory loop FASEB J, July 1, 2007; 21(9): 2020 - 2032. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. M. Wobus and K. R. Boheler Embryonic Stem Cells: Prospects for Developmental Biology and Cell Therapy Physiol Rev, April 1, 2005; 85(2): 635 - 678. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. F. Berry, T. J. Pirolli, V. Jayasankar, K. J. Morine, M. A. Moise, O. Fisher, T. J. Gardner, P. H. Patterson, and Y. J. Woo Targeted overexpression of leukemia inhibitory factor to preserve myocardium in a rat model of postinfarction heart failure J. Thorac. Cardiovasc. Surg., December 1, 2004; 128(6): 866 - 875. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. J. Goldenthal and J. Marin-Garcia Stem cells and cardiac disorders: an appraisal Cardiovasc Res, May 1, 2003; 58(2): 369 - 377. [Abstract] [Full Text] [PDF] |
||||
![]() |
L. Gepstein Derivation and Potential Applications of Human Embryonic Stem Cells Circ. Res., November 15, 2002; 91(10): 866 - 876. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. R. Boheler, J. Czyz, D. Tweedie, H.-T. Yang, S. V. Anisimov, and A. M. Wobus Differentiation of Pluripotent Embryonic Stem Cells Into Cardiomyocytes Circ. Res., August 9, 2002; 91(3): 189 - 201. [Abstract] [Full Text] [PDF] |
||||
|
Circulation Research Home | Subscriptions | Archives | Feedback | Authors | Help | AHA Journals Home | Search Copyright © 2000 American Heart Association, Inc. All rights reserved. Unauthorized use prohibited. |