Autocrine TGFbeta signaling mediates vitamin D3 analog-induced growth inhibition in breast cells

L Yang1, J Yang, S Venkateswarlu

  • 1Department of Surgery, University of Texas Health Science Center, San Antonio, San Antonio, Texas 78229, USA.

Insights

Vitamin D3 analogs inhibit breast cell growth by activating TGFbeta signaling. This pathway, involving Vitamin D Receptor and Smad3, is crucial for the anti-proliferative effects, with PI 3-kinase mediating the crosstalk.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Endocrinology

Background:

  • Vitamin D3 analogs exhibit anti-proliferative effects on breast cells.
  • The precise mechanisms underlying vitamin D3 analog-induced growth inhibition are not fully understood.
  • Transforming Growth Factor beta (TGFbeta) signaling is implicated in cell growth regulation.

Purpose of the Study:

  • To investigate whether TGFbeta signaling mediates vitamin D3 analog-induced growth inhibition in breast cells.
  • To explore the role of autocrine TGFbeta activity and its relationship with Vitamin D Receptor (VDR) signaling.
  • To identify key mediators and pathways involved in the crosstalk between TGFbeta and vitamin D signaling.

Main Methods:

  • Assessing sensitivity of various breast cell lines (normal, immortalized, malignant) to vitamin D3 analogs and TGFbeta.
  • Utilizing TGFbeta neutralizing antibodies and TGFbeta receptor-transfected cells.
  • Analyzing the expression of TGFbeta isoforms and receptors.
  • Measuring nuclear VDR protein levels and VDR-dependent transactivation.
  • Investigating the role of Smad3 and the PI 3-kinase pathway.

Main Results:

  • Sensitivity to vitamin D3 analogs correlated with sensitivity to TGFbeta across different breast cell lines.
  • Autocrine TGFbeta signaling mediates the anti-proliferative effects of vitamin D3 analogs.
  • Vitamin D3 analogs induced TGFbeta and/or TGFbeta receptor expression in sensitive cells but not in resistant cells.
  • Smad3 coactivated VDR-dependent transactivation in sensitive cells, enhancing both TGFbeta and vitamin D3 signaling.
  • PI 3-kinase pathway inhibition disrupted the synergy between TGFbeta and vitamin D3 analog treatment.

Conclusions:

  • Autocrine TGFbeta signaling is a key mediator of vitamin D3 analog-induced growth inhibition in sensitive breast cells.
  • Vitamin D3 analogs enhance TGFbeta signaling by inducing TGFbeta pathway components and coactivating VDR via Smad3.
  • The crosstalk between TGFbeta and vitamin D signaling is dependent on the PI 3-kinase pathway and involves factors beyond Smad3 in resistant cells.

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