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Role of phosphorylation on DNA binding and transcriptional functions of human progesterone receptors

G S Takimoto1, A R Hovland, D M Tasset

  • 1Department of Medicine, Division of Endocrinology, Metabolism and Diabetes, University of Colorado Health Sciences Center, Denver, Colorado 80262, USA.

Insights

Phosphorylation of human progesterone receptor (hPR) has subtle effects on its transcriptional activity. Key phosphorylation sites outside the AF1 domain influence transcription, but overall transactivation and isoform-specific functions remain largely intact.

Area of Science:

  • Molecular Endocrinology
  • Cellular Biology
  • Genetics

Background:

  • The human progesterone receptor (hPR) exists as two main isoforms, A and B, with distinct functions.
  • Phosphorylation is a key post-translational modification regulating protein activity, including nuclear receptors.

Purpose of the Study:

  • To investigate the functional role of specific serine phosphorylation sites in human progesterone receptor (hPR) isoforms.
  • To determine how mutations affecting phosphorylation impact hPR transcriptional activity and isoform-specific functions.

Main Methods:

  • Generated serine-to-alanine substitution mutants in conserved regions (M-series) and B-isoform-specific regions (B-series) of hPR.
  • Assessed transcriptional activity of mutants in various cellular and promoter contexts.
  • Utilized a constitutive transactivator (BUS-DBD-NLS) to study phosphorylation in isolated domains.

Main Results:

  • Mutation of specific sites (Ser190, upstream of DBD, Ser676) outside the AF1 domain reduced transcription by 20-50%.
  • Progressive mutation of B-series clusters led to dephosphorylation, but complete dephosphorylation did not abolish transactivation.
  • Mutant B-receptors retained synergistic activation and did not exhibit dominant-negative properties.

Conclusions:

  • hPR phosphorylation has subtle effects on the transcriptional repertoire distinguishing hPR isoforms.
  • Phosphorylation does not influence transactivation mediated by AF1 or AF3 but subserves other regulatory functions.
  • Key phosphorylation sites are critical for optimal, but not absolute, hPR transcriptional regulation.

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