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Published on: March 9, 2012
BAP1 regulates IP3R3-mediated Ca2+ flux to mitochondria suppressing cell transformation
Angela Bononi1, Carlotta Giorgi2, Simone Patergnani2
1University of Hawaii Cancer Center, University of Hawaii, Honolulu, Hawaii 96813 USA.
Abstract:
BRCA1-associated protein 1 (BAP1) is a potent tumour suppressor gene that modulates environmental carcinogenesis. All carriers of inherited heterozygous germline BAP1-inactivating mutations (BAP1+/-) developed one and often several BAP1-/- malignancies in their lifetime, mostly malignant mesothelioma, uveal melanoma, and so on. Moreover, BAP1-acquired biallelic mutations are frequent in human cancers. BAP1 tumour suppressor activity has been attributed to its nuclear localization, where it helps to maintain genome integrity. The possible activity of BAP1 in the cytoplasm is unknown. Cells with reduced levels of BAP1 exhibit chromosomal abnormalities and decreased DNA repair by homologous recombination, indicating that BAP1 dosage is critical. Cells with extensive DNA damage should die and not grow into malignancies. Here we discover that BAP1 localizes at the endoplasmic reticulum. Here, it binds, deubiquitylates, and stabilizes type 3 inositol-1,4,5-trisphosphate receptor (IP3R3), modulating calcium (Ca2+) release from the endoplasmic reticulum into the cytosol and mitochondria, promoting apoptosis. Reduced levels of BAP1 in BAP1+/- carriers cause reduction both of IP3R3 levels and of Ca2+ flux, preventing BAP1+/- cells that accumulate DNA damage from executing apoptosis. A higher fraction of cells exposed to either ionizing or ultraviolet radiation, or to asbestos, survive genotoxic stress, resulting in a higher rate of cellular transformation. We propose that the high incidence of cancers in BAP1+/- carriers results from the combined reduced nuclear and cytoplasmic activities of BAP1. Our data provide a mechanistic rationale for the powerful ability of BAP1 to regulate gene-environment interaction in human carcinogenesis.
Insights
BRCA1-associated protein 1 (BAP1) mutations impair its nuclear and cytoplasmic functions, leading to cancer. Reduced BAP1 levels prevent apoptosis after DNA damage, promoting tumor development in carriers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- BRCA1-associated protein 1 (BAP1) is a tumor suppressor crucial for genome integrity.
- Inherited BAP1 mutations (BAP1+/-) lead to various cancers, including mesothelioma and uveal melanoma.
- BAP1's nuclear role in DNA repair is established, but its cytoplasmic function remains unclear.
Purpose of the Study:
- To investigate the unknown cytoplasmic functions of BAP1.
- To elucidate the role of BAP1 in cellular response to DNA damage and environmental carcinogens.
- To understand the mechanistic basis of cancer development in BAP1+/- carriers.
Main Methods:
- Localization studies to determine BAP1's subcellular compartment.
- Biochemical assays to identify BAP1 interacting partners and substrates.
- Calcium flux measurements and apoptosis assays in cells with varying BAP1 levels.
- Assessment of cellular transformation following genotoxic stress exposure.
Main Results:
- BAP1 was found to localize at the endoplasmic reticulum.
- BAP1 binds, deubiquitylates, and stabilizes type 3 inositol trisphosphate receptor (IP3R3).
- Reduced BAP1 levels impair calcium release and apoptosis induction following DNA damage, increasing cellular transformation rates.
Conclusions:
- BAP1's cytoplasmic activity at the endoplasmic reticulum is critical for apoptosis induction and tumor suppression.
- Deficiency in both nuclear and cytoplasmic BAP1 functions contributes to cancer development in BAP1+/- carriers.
- BAP1 plays a key role in regulating gene-environment interactions during carcinogenesis.
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