'Reduced malignancy as a mechanism for longevity in mice with adenylyl cyclase type 5 disruption'

Mariana S De Lorenzo1, Wen Chen, Erdene Baljinnyam

  • 1Department of Cell Biology & Molecular Medicine and the Cardiovascular Research Institute, New Jersey Medical School, Rutgers University, The State University of New Jersey, 185 South Orange Avenue, MSB G609, Newark, NJ, 07103, USA.

Aging Cell
|August 21, 2013
PubMed

Insights

Genetic disruption of adenylyl cyclase type 5 (AC5) knockout (KO) delays cancer and extends lifespan. Pharmacological inhibition of AC5 also reduces tumor growth, suggesting a new cancer prevention strategy.

Area of Science:

  • Biochemistry
  • Oncology
  • Genetics

Background:

  • Adenylyl cyclase type 5 (AC5) knockout (KO) models longevity.
  • Malignancy is a leading cause of death and reduced lifespan in mice.
  • Translating genetic discoveries in mice to human therapies is challenging.

Purpose of the Study:

  • To investigate the role of AC5 inhibition in cancer protection.
  • To explore both genetic (KO) and pharmacological inhibition of AC5 against cancer.
  • To determine if AC5 inhibition can serve as a cancer prevention mechanism.

Main Methods:

  • Utilized AC5 knockout (KO) mice.
  • Examined AC5KO × MMTV-HER-2 neu mice for mammary tumor development.
  • Assessed the effect of adenine 9-β-D-arabinofuranoside (Vidarabine/AraAde), an AC5 inhibitor, on LP07 lung and B16F10 melanoma tumor growth in syngeneic mice.

Main Results:

  • AC5KO significantly delayed age-related tumor incidence.
  • AC5KO protected against mammary tumor development and B16F10 melanoma growth.
  • The AC5 inhibitor Vidarabine reduced LP07 lung and B16F10 melanoma tumor growth.

Conclusions:

  • AC5 inhibition is a novel mechanism for preventing age-related cancers.
  • Targeting AC5 with available pharmacologic inhibitors may extend lifespan.
  • This study provides a unique combined genetic and pharmacological approach to cancer research.

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