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Detection and Visualization of DNA Damage-induced Protein Complexes in Suspension Cell Cultures Using the Proximity Ligation Assay
Published on: June 9, 2017
LRRK2 interacts with ATM and regulates Mdm2-p53 cell proliferation axis in response to genotoxic stress
Zhongcan Chen1,2, Zhen Cao1, Wei Zhang1
1Neural Stem Cell Research Lab, Research Department, National Neuroscience Institute, Singapore 308433.
Abstract:
Pathogenic leucine-rich repeat kinase 2 (LRRK2) mutations are recognized as the most common cause of familial Parkinson's disease in certain populations. Recently, LRRK2 mutations were shown to be associated with a higher risk of hormone-related cancers. However, how LRRK2 itself contributes to cancer risk remains unknown. DNA damage causes cancer, and DNA damage responses are among the most important pathways in cancer biology. To understand the role of LRRK2 in DNA damage response pathway, we induced DNA damage by applying genotoxic stress to the cells with Adriamycin. We found that DNA damage enhances LRRK2 phosphorylation at Serine 910, Serine 935 and Serine 1292. We further showed that LRRK2 phosphorylation is abolished in the absence of ATM, suggesting that LRRK2 phosphorylation requires ATM. It should also be noted that LRRK2 interacts with ATM. In contrast, overexpression or knockdown of LRRK2 does not affect ATM phosphorylation, indicating that LRRK2 is the downstream target of ATM in response to DNA damage. Moreover, we demonstrated that LRRK2 increases the expression of p53 and p21 by increasing the Mdm2 phosphorylation in response to DNA damage. Loss-of-function in LRRK2 has the opposite effect to that of LRRK2. In addition, FACS analysis revealed that LRRK2 enhances cell cycle progression into S phase in response to DNA damage, a finding that was confirmed by 5-bromo-2'-deoxyuridine immunostaining. Taken together, our findings demonstrate that LRRK2 plays an important role in the ATM-Mdm2-p53 pathway that regulates cell proliferation in response to DNA damage.
Insights
Leucine-rich repeat kinase 2 (LRRK2) is involved in DNA damage response pathways. This protein kinase regulates cell cycle progression and gene expression following DNA damage, impacting cancer risk.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- Pathogenic leucine-rich repeat kinase 2 (LRRK2) mutations are linked to familial Parkinson's disease and increased cancer risk.
- The precise role of LRRK2 in cancer development, particularly in response to DNA damage, is not fully understood.
Purpose of the Study:
- To investigate the function of LRRK2 in DNA damage response pathways.
- To elucidate the mechanism by which LRRK2 influences cell proliferation and gene expression following genotoxic stress.
Main Methods:
- Genotoxic stress was induced using Adriamycin in cell models.
- Phosphorylation of LRRK2 and ATM was assessed.
- Expression levels of p53, p21, and Mdm2 were analyzed.
- Cell cycle progression was evaluated using FACS analysis and 5-bromo-2'-deoxyuridine immunostaining.
Main Results:
- DNA damage significantly enhanced LRRK2 phosphorylation at Ser910, Ser935, and Ser1292, dependent on ATM.
- LRRK2 acts downstream of ATM in the DNA damage response.
- LRRK2 promotes the expression of p53 and p21 by modulating Mdm2 phosphorylation.
- LRRK2 facilitates cell cycle progression into S phase following DNA damage.
Conclusions:
- LRRK2 plays a critical role in the ATM-Mdm2-p53 signaling pathway, which governs cell proliferation in response to DNA damage.
- These findings highlight LRRK2 as a potential therapeutic target for cancers associated with DNA damage response defects.
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