DDR1 regulates thyroid cancer cell differentiation via IGF-2/IR-A autocrine signaling loop

Veronica Vella1,2, Maria Luisa Nicolosi2, Patrizia Cantafio3

  • 1School of Human and Social Sciences, 'Kore' University of Enna, Enna, Italy.

Endocrine-Related Cancer
|August 20, 2018
PubMed

Insights

Targeting DDR1 in thyroid cancer may restore radioiodine sensitivity. Silencing DDR1 blocks the IGF-2/IR-A loop, reducing stemness and promoting cell differentiation in poorly differentiated tumors.

Area of Science:

  • Oncology
  • Molecular Biology
  • Endocrinology

Background:

  • Radioiodine (RAI)-refractory thyroid cancers have limited treatment options and poor survival rates.
  • Multikinase inhibitors show limited success; alternative strategies focus on inducing cell differentiation to restore RAI sensitivity.
  • The insulin receptor isoform A (IR-A) and its ligand IGF-2 loop are implicated in aggressive, de-differentiated, and stem-like thyroid tumors.

Purpose of the Study:

  • To investigate the role of discoidin domain receptor 1 (DDR1) in the IGF-2/IR-A signaling loop within undifferentiated human thyroid cancer cells.
  • To evaluate the impact of DDR1 modulation on cellular differentiation and stemness markers in thyroid cancer.

Main Methods:

  • Silencing or downregulation of DDR1 expression in undifferentiated human thyroid cancer cells.
  • Assessment of IR-A, IGF-2, differentiation markers (NIS, Tg, TSH, TPO), epithelial-to-mesenchymal transition (EMT) markers, and stemness markers (OCT-4, SOX-2, ABCG2, Nanog).
  • Overexpression of DDR1 and a kinase-inactive variant (K618A) to assess phenotypic changes.

Main Results:

  • DDR1 silencing significantly reduced IR-A and IGF-2 expression, increased differentiation markers, and decreased EMT and stemness markers.
  • These effects were independent of collagen stimulation.
  • Overexpression of DDR1 or its kinase-inactive variant promoted a less differentiated, stem-like phenotype.

Conclusions:

  • In poorly differentiated thyroid cancer, DDR1 silencing effectively blocks the IGF-2/IR-A autocrine loop.
  • DDR1 downregulation induces cellular differentiation, suggesting a potential therapeutic strategy.
  • These findings may pave the way for novel therapeutic approaches targeting DDR1 in thyroid cancer.

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