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t-DARPP regulates phosphatidylinositol-3-kinase-dependent cell growth in breast cancer
Bhavatarini Vangamudi1, Dun-Fa Peng, Qiuyin Cai
1Department of Surgery, Vanderbilt University Medical Center, Nashville, Tennessee, USA.
Background:
Recent reports have shown that t-DARPP (truncated isoform of DARPP-32) can mediate trastuzumab resistance in breast cancer cell models. In this study, we evaluated expression of t-DARPP in human primary breast tumors, and investigated the role of t-DARPP in regulating growth and proliferation in breast cancer cells.
Results:
Quantitative real time RT-PCR analysis using primers specific for t-DARPP demonstrated overexpression of t-DARPP in 36% of breast cancers (13/36) as opposed to absent to very low t-DARPP expression in normal breast tissue (p < 0.05). The mRNA overexpression of t-DARPP was overwhelmingly observed in ductal carcinomas, including invasive ductal carcinomas and intraductal carcinomas, rather than other types of breast cancers. The immunohistochemistry analysis of DARPP-32/t-DARPP protein(s) expression in breast cancer tissue microarray that contained 59 tumors and matched normal tissues when available indicated overexpression in 35.5% of primary breast tumors that were more frequent in invasive ductal carcinomas (43.7%; 21/48). In vitro studies showed that stable overexpression of t-DARPP in MCF-7 cells positively regulated proliferation and anchorage-dependent and -independent growth. Furthermore, this effect was concomitant with induction of phosphorylation of AKT(ser473) and its downstream target phospho(ser9) GSK3β, and increased Cyclin D1 and C-Myc protein levels. The knockdown of endogenous t-DARPP in HCC1569 cells led to a marked decrease in phosphorylation of AKTs(ser473) and GSK3β(ser9). The use of PI3K inhibitor LY294002 or Akt siRNA abrogated the t-DARPP-mediated phosphorylation of AKT(ser473) and led to a significant reduction in cell growth.
Conclusions:
Our findings underscore the potential role of t-DARPP in regulating cell growth and proliferation through PI3 kinase-dependent mechanism.
Insights
Truncated DARPP-32 (t-DARPP) is overexpressed in many breast cancers, promoting tumor growth and proliferation. This suggests t-DARPP is a potential therapeutic target for breast cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Recent studies link truncated DARPP-32 (t-DARPP) to trastuzumab resistance in breast cancer models.
- This study investigates t-DARPP expression in human breast tumors and its role in cancer cell growth.
Purpose of the Study:
- To evaluate t-DARPP expression in primary breast tumors.
- To determine the role of t-DARPP in regulating breast cancer cell growth and proliferation.
Main Methods:
- Quantitative real-time RT-PCR and immunohistochemistry to analyze t-DARPP mRNA and protein expression.
- In vitro studies using cell lines with stable t-DARPP overexpression or knockdown.
- Investigated downstream signaling pathways including AKT, GSK3β, Cyclin D1, and C-Myc.
Main Results:
- t-DARPP was overexpressed in 36% of breast cancers, particularly ductal carcinomas, compared to normal tissue.
- Overexpression of t-DARPP in MCF-7 cells enhanced proliferation and growth, correlating with increased AKT and GSK3β phosphorylation, and elevated Cyclin D1 and C-Myc.
- Knockdown of t-DARPP in HCC1569 cells reduced AKT and GSK3β phosphorylation; PI3K/Akt inhibition abrogated t-DARPP-mediated growth effects.
Conclusions:
- t-DARPP plays a significant role in regulating breast cancer cell growth and proliferation.
- The mechanism involves a PI3K-dependent pathway, highlighting t-DARPP as a potential therapeutic target.
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