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Published on: July 17, 2016
Leukemia inhibitory factor induces differentiation of pituitary corticotroph function: an immuno-neuroendocrine
1Division of Endocrinology and Metabolism, Cedars-Sinai Research Institute, UCLA School of Medicine 90048, USA.
Insights
Leukemia inhibitory factor (LIF) reduces pituitary corticotroph cell proliferation by blocking cell cycle progression. LIF also enhances adrenocorticotrophin (ACTH) secretion and potentiates corticotrophin-releasing hormone (CRH) effects.
Area of Science:
- Endocrinology
- Cell Biology
- Molecular Biology
Background:
- Leukemia inhibitory factor (LIF) is known to promote differentiated cell function.
- LIF and its receptor are expressed in human fetal pituitary corticotrophs.
- LIF stimulates adrenocorticotrophin (ACTH) transcription, suggesting a role in corticotroph development.
Purpose of the Study:
- To investigate the action of LIF on proliferating murine corticotroph cells (AtT20).
- To determine LIF's effect on cell proliferation, ACTH secretion, and response to CRH.
Main Methods:
- Cell proliferation assays using flow cytometry and bromodeoxyuridine incorporation.
- Measurement of ACTH secretion.
- Analysis of cell cycle phase distribution and cyclin A mRNA levels.
Main Results:
- LIF significantly reduced AtT20 cell proliferation by blocking cell cycle progression from G1 to S phase.
- LIF enhanced ACTH secretion and potentiated CRH-stimulated ACTH secretion.
- LIF blunted CRH-induced G2/M phase progression and increased cyclin A mRNA levels.
Conclusions:
- LIF acts as a differentiation factor for pituitary corticotroph cells.
- LIF induces a G1/S cell cycle block, reduces proliferation, and enhances differentiated functions.
- LIF promotes a phenotypic switch from proliferation to synthetic activity in corticotrophs.
Abstract:
Leukemia inhibitory factor (LIF) promotes differentiated cell function in several systems. We recently reported LIF and LIF receptor expression in human fetal pituitary corticotrophs in vivo and demonstrated LIF stimulation of adrenocorticotrophin (ACTH) transcription in vitro, suggesting a role for LIF in corticotroph development. We therefore assessed the action of LIF on proliferating murine corticotroph cells (AtT20). LIF impairs proliferation of AtT20 cells (25% reduction versus control, P < 0.03), while simultaneously enhancing ACTH secretion (2-fold, P < 0.001) and augmenting ACTH responsiveness to corticotrophin-releasing hormone (CRH) action (4-fold, P < 0.001). This attenuation of cell growth is due to a block of cell cycle progression from G1 into S phase, as measured by flow cytometric analysis (24 +/- 0.8 versus 11.57 +/- 1.5, P < 0.001). Using bromodeoxyuridine incorporation assays, loss of cells in S phase was confirmed (25 +/- 0.08 to 9.4 +/- 1.4, P < 0.008). In contrast, CRH induced the G2/M phase (3.6 +/- 0.2 to 15.4 +/- 3, P < 0.001). This effect was blunted by LIF (P < 0.001 versus CRH alone). Cyclin A mRNA levels, which decline in S phase, were stimulated 3.5-fold by LIF and markedly suppressed by CRH. These results indicate a LIF-induced cell cycle block occurring at G1/S in corticotroph cells. Thus, LIF reduces proliferation, enhances ACTH secretion, and potentiates effects of CRH on ACTH secretion while blocking effects of CRH on the cell cycle. Responses of these three markers of differentiated corticotroph function indicate LIF to be a differentiation factor for pituitary corticotroph cells by preferential phenotypic switching from proliferative to synthetic.
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