| Literature DB >> 24559118 |
Kimberly C Wiegand, Bryan T Hennessy, Samuel Leung, Yemin Wang, Zhenlin Ju, Mollianne McGahren, Steve E Kalloger, Sarah Finlayson, Katherine Stemke-Hale, Yiling Lu, Fan Zhang, Michael S Anglesio, Blake Gilks, Gordon B Mills, David G Huntsman, Mark S Carey1.
Abstract
BACKGROUND: Ovarian cancer is now recognized as a number of distinct diseases primarily defined by histological subtype. Both clear cell ovarian carcinomas (CCC) and ovarian endometrioid carcinomas (EC) may arise from endometriosis and frequently harbor mutations in the ARID1A tumor suppressor gene. We studied the influence of histological subtype on protein expression with reverse phase protein array (RPPA) and assessed proteomic changes associated with ARID1A mutation/BAF250a expression in EC and CCC.Entities:
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Year: 2014 PMID: 24559118 PMCID: PMC3941949 DOI: 10.1186/1471-2407-14-120
Source DB: PubMed Journal: BMC Cancer ISSN: 1471-2407 Impact factor: 4.430
Figure 1Hierarchical clustering of samples and proteins analyzed by RPPA. CCC and ECs form distinct clusters separated by two major high-grade serous carcinoma (HGSC) subgroups. Differential expression of proteins was examined by significance analysis of microarray data (SAM analysis) for both CCC and EC compared to HGSC as the reference group.
Figure 2SAM Analysis of differentially expressed proteins by histotype: A. Upregulated and B. Down-regulated Proteins in Clear Cell and Endometrioid Carcinoma by SAM analysis on RPPA data, with High Grade Serous Carcinoma (HGSC) as the reference group. Proteins with FDR* of <5% are shown. Proteins that are over or under expressed in both CCC and EC are shown in the center between the two subtypes. Note: *FDR (False discovery rate): For each analysis (e.g. CCC vs. EC), the percent probability that the difference in protein expression for each comparison is attributable to chance after correcting for multiple parameter testing.
Patient/sample characteristics with known mutation status according to histotype
| | |||
|---|---|---|---|
| | | | |
| | 19 (61) | 21 (88) | 6 (17) |
| | 11 (35) | 2 (8) | 29 (83) |
| | 1 (3) | 1 (3) | |
| | | | |
| | 14 (45) | 19 (79) | 35 (100) |
| | 17 (55) | 5 (21) | 0 (0) |
| | | | |
| | 17 (55) | 13 (54) | NT |
| | 7 (23) | 4 (17) | NT |
| | 4 (13) | 4 (17) | NT |
| | 3 (9) | 3 (12) | NT |
NT = not tested.
Figure 3Heat map with samples categorized according to BAF250a IHC scores and mutation status. No obvious clustering patterns due to either BAF250a by IHC or PIK3CA mutation status are present. Note: capital letters for each sample histotype label (eg. CCC) indicates expression of BAF250a on IHC, small letters (e.g. ccc) indicates loss of BAF250a expression. For PIK3CA mutations, a + sign after the sample label (e.g. CCC+) indicates the presence of a PIK3CA mutation (either helical, kinase, or other) whereas a – sign indicates no mutation.
Effect of mutations, mutations, and BAF250a Expression on Akt phosphorylation
| | | ||||
|---|---|---|---|---|---|
| | | | | | |
| | 22 | 0.31 (0.64) | 0.24 (0.78) | 0.41 | 2.4 |
| | 33 | 0.06 (0.72) | 0.0 (0.86) | p = 0.36 | p = 0.17 |
| | | | | | |
| | 43 | 0.03 (0.67) | 0.0 (0.82) | 0.03 | 0.21 |
| | 12 | 0.63 (0.60)* | 0.41 (0.83) | p = 0.002* | p = 0.04* |
| | | | | | |
| | 11 | 0.11 (0.81) | - 0.25 (0.88) | 2.2 | 1.3 |
| | 8 | 0.50 (0.28) | 0.27 (0.39) | p = 0.02* | p = 0.39 |
| | 6 | 0.39 (0.82) | 0.50 (0.98) | | |
| | 30 | 0.05 (0.69) | 0.09 (0.86) | | |
| | | | | | |
| | 11 | 0.78 (0.97)* | 0.57 (1.3) | 0.1 | 0.24 |
| | 44 | 0.01 (0.51) | - 0.03 (0.65) | p = 0.01* | p = 0.07 |
Note: univariate mean and standard deviation values represent Iog2 relative protein expression measured by RPPA.
*significant p-value (< 0.05).
§lowest 20% of samples by RPPA.
Figure 4A) Western blot results from siRNA knockdown of BAF250a on cell lines ES2, JHOC5, and RMG1 to clarify the interaction between BAF250a expression and pAKT. Despite good knockdown of BAF250a no change in AKT phosphorylation or levels of p70S6K, a downstream signaling protein of pAKT can be seen in the ES2 and RMG1 cell lines. The baseline levels of pAKT are much higher in the JHOC5 cell line, and there is a suggestion of an increase in pAKT-Thr308 with BAF250a knockdown without obvious similar changes in pAKT-Ser473. PDK1 and PTEN levels did not change with BAF250a knockdown in any of the cell lines. B-D) Native protein AKT profiles using capillary tube isoelectric point focusing. Native AKT profiles are consistent with the western blot result in A, as little change occurs in AKT/pAKT following siRNA mediated BAF250a knockdown.