Constitutively active Akt1 expression in mouse pancreas requires S6 kinase 1 for insulinoma formation

Samira Alliouachene1, Robyn L Tuttle, Stephanie Boumard

  • 1INSERM U845, Paris, France.

Insights

Activating Akt1 promotes pancreatic beta cell growth but can cause insulinomas. S6K1 is essential for this tumor formation, suggesting it as an anticancer target.

Area of Science:

  • Endocrinology
  • Molecular Biology
  • Oncology

Background:

  • Insulin and IGF signaling pathways regulate pancreatic beta cell growth and function.
  • Akt and S6 kinase (S6K) are key components of these signaling cascades, but their interplay in beta cell regulation is unclear.

Purpose of the Study:

  • To investigate the role of Akt1 and S6K1 in pancreatic beta cell growth, function, and tumorigenesis.
  • To determine the contribution of S6K1 to Akt1-induced insulinoma formation.

Main Methods:

  • Generated transgenic mice overexpressing constitutively active Akt1 (RIP-MyrAkt1).
  • Crossed RIP-MyrAkt1 mice with S6K1-deficient mice.
  • Assessed beta cell mass, insulin secretion, glucose tolerance, and tumor development.

Main Results:

  • RIP-MyrAkt1 mice exhibited enlarged beta cells, hyperinsulinemia, improved glucose tolerance, and developed insulinomas.
  • S6K1 deficiency in RIP-MyrAkt1 mice reduced insulinemia and glycemia but did not affect beta cell size increase.
  • S6K1 was critical for the hyperplastic transformation and tumor formation in RIP-MyrAkt1 mice, correlating with PTEN nuclear exclusion.

Conclusions:

  • Akt1 activation promotes beta cell growth and can lead to insulinoma formation.
  • S6K1 is a critical mediator of Akt1-induced beta cell hyperplasia and tumorigenesis.
  • Targeting S6K1 downstream of mTOR may offer a therapeutic strategy for preventing or treating these tumors.

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