Simultaneous K-ras activation and Keap1 deletion cause atrophy of pancreatic parenchyma

Shin Hamada1, Tooru Shimosegawa1, Keiko Taguchi2

  • 1Division of Gastroenterology, Tohoku University Graduate School of Medicine , Sendai , Japan.

Insights

Simultaneous K-ras activation and Keap1 deletion in mice did not cause pancreatic cancer. Instead, it led to progressive pancreatic atrophy, weight loss, and hypoglycemia, highlighting Nrf2

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • The Keap1-Nrf2 system regulates oxidative stress, growth, and chemoresistance in cancer.
  • Nrf2 is often constitutively activated in cancer cells, but its activation with oncogenic mutations doesn't always promote cancer.
  • KPC mice are a model for pancreatic cancer with specific K-ras and p53 mutations.

Purpose of the Study:

  • To investigate the role of constitutive Nrf2 activation via Keap1 deletion in pancreatic cancer development.
  • To determine if simultaneous K-ras activation and Nrf2 activation promotes pancreatic carcinogenesis.

Main Methods:

  • Generation of KC::Keap1 and KPC::Keap1 mice with constitutive Nrf2 activation through Keap1 deletion.
  • Histological examination of pancreatic tissue to assess cancer development and cellular changes.
  • Analysis of body weight, glucose levels, and the effect of Nrf2 deletion on observed phenotypes.

Main Results:

  • KC::Keap1 and KPC::Keap1 mice exhibited progressive pancreatic atrophy, not cancer, starting around 40 days of age.
  • Pancreatic acinar and islet cells decreased, surrounded by fibrotic tissue, leading to exocrine insufficiency.
  • Nrf2 deletion rescued the pancreatic atrophy, weight loss, and hypoglycemia, confirming Nrf2 as a key downstream target.

Conclusions:

  • Simultaneous K-ras activation and Keap1 deletion (constitutive Nrf2 activation) cause progressive pancreatic atrophy.
  • This condition leads to pancreatic exocrine insufficiency, resulting in weight loss and hypoglycemia.
  • Nrf2 plays a critical role in maintaining pancreatic homeostasis, and its aberrant activation can lead to atrophy rather than cancer under specific conditions.

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