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Published on: September 28, 2017
Phenotypic effects of the circadian gene Cryptochrome 2 on cancer-related pathways
Aaron E Hoffman1, Tongzhang Zheng, Yue Ba
1Department of Epidemiology and Public Health, Yale University School of Medicine, New Haven, CT, USA.
Background:
Circadian genes continue to gain attention as important transcriptional regulators with the potential to influence a variety of biological pathways, including many cancer-related processes. The core circadian gene cryptochrome 2 (CRY2) is essential for proper circadian timing, and is a key component of the negative arm of the circadian feedback loop. As such, aberrant expression of CRY2 may influence carcinogenic processes and thereby impact cancer susceptibility.
Methods:
We silenced CRY2 in breast cancer cell lines (MCF-7) using small-interfering oligos (siRNA) and measured the impact of CRY2 knockdown on a number of cancer-relevant parameters. Cell cycle distribution, cell viability, and apoptotic response were measured in CRY2 knockdown (CRY2-) and normal (CRY2+) cell populations using flow cytometry in cells with and without exposure to a mutagen challenge. DNA damage accumulation was measured using the single cell gel electrophoresis (comet) assay, and damage was quantified using the Olive tail moment, which considers the amount and distance of DNA migration away from the nucleus, indicative of DNA strand breaks. Expression changes in cancer-relevant transcripts were measured by whole genome microarray. The Student's t-test was used for statistical comparisons, and P-values obtained from the microarray were adjusted for multiple comparisons using the false discovery rate correction, in order to obtain an adjusted Q-value for each observation.
Results:
The comet assay results indicated that upon exposure to the same dose of chemical mutagen, CRY2- cells accumulate significantly more unrepaired DNA damage than CRY2+ cells (P = 0.040), suggesting that CRY2 may be important for DNA repair. In addition, a number of transcripts with relevance for DNA damage repair displayed altered expression following CRY2 silencing. These included BCCIP (Q = 0.002), BCL2 (Q = 0.049), CCND1 (Q = 0.009), CDKN1A (Q < 0.001), GADD45A (Q = 0.002), HERC5 (Q < 0.001), MCM5 (Q = 0.042), PPP1R15A (Q < 0.001), SUMO1 (Q < 0.001), and UBA1 (Q = 0.023). However, no significant influence of CRY2 knockdown on cell cycle distributions, cell cycle checkpoints in response to mutagen challenge, or apoptotic response was detected.
Conclusions:
In total, these data suggest a limited, but potentially important role for CRY2 in the regulation of DNA damage repair and the maintenance of genomic stability. Future investigations may focus on identifying the mechanisms by which CRY2 may regulate the expression of transcripts with known relevance for carcinogenesis.
Insights
The circadian gene cryptochrome 2 (CRY2) plays a role in DNA repair. Silencing CRY2 in breast cancer cells increased DNA damage accumulation, suggesting CRY2’s importance in maintaining genomic stability.
Area of Science:
- Genetics
- Cancer Biology
- Molecular Biology
Background:
- Circadian genes, like cryptochrome 2 (CRY2), are increasingly recognized for their influence on biological pathways, including cancer.
- CRY2 is crucial for circadian timing and may impact cancer susceptibility due to its role in carcinogenic processes.
Purpose of the Study:
- To investigate the role of CRY2 in DNA damage repair and genomic stability in breast cancer cells.
- To assess the impact of CRY2 knockdown on cancer-relevant parameters.
Main Methods:
- CRY2 was silenced in MCF-7 breast cancer cells using small-interfering oligos (siRNA).
- Cell cycle, viability, and apoptosis were analyzed using flow cytometry.
- DNA damage was quantified using the comet assay and Olive tail moment.
- Gene expression changes were measured via whole genome microarray.
Main Results:
- CRY2-deficient cells accumulated significantly more unrepaired DNA damage after mutagen exposure compared to normal cells (P=0.040).
- Silencing CRY2 altered the expression of several DNA damage repair-related transcripts, including BCCIP, BCL2, and CDKN1A.
- No significant effects of CRY2 knockdown were observed on cell cycle distribution or apoptotic response.
Conclusions:
- CRY2 appears to have a role in regulating DNA damage repair and maintaining genomic stability.
- Further research is needed to elucidate the specific mechanisms by which CRY2 influences carcinogenesis-related gene expression.
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