| Gene information | Literature | Expression | lncRNA | Mutation | Homolog |
Basic Information | |
|---|---|
Gene ID | 5076 |
Name | PAX2 |
Synonymous | paired box 2;PAX2;paired box 2 |
Definition | paired box homeotic gene 2|paired box protein Pax-2 |
Position | 10q24 |
Gene type | protein-coding |
Title | Abstract |
| Expression of the developmental and oncogenic PAX2 gene in human prostate cancer. | PURPOSE: In the human prostate cancer cell lines LNCaP, DU145 and PC3, 27 primary prostate cancers, 10 benign prostatic hyperplasia specimens and 5 normal prostates we investigated the expression pattern of PAX2, a member of the PAX family of developmental control genes. PAX2 is expressed at high levels in developing undifferentiated cells of the urogenital system and is repressed upon terminal differentiation with no expression in normal adult cells. It is also been shown to be a proto-oncogene in mice and is expressed in human renal cell carcinoma. MATERIALS AND METHODS: PAX2 expression was assessed at the RNA level by reverse transcriptase-polymerase chain reaction and Southern blot analysis using specific sets of nucleotides. The expression pattern of PAX2 was reconfirmed at the protein level by immunofluorescence in the cell lines, and by Western blot analysis in primary human prostate cancers and benign prostatic tissue. RESULTS: Using reverse transcription-polymerase chain reaction combined with Southern hybridization PAX2 expression was detected in 52% of primary cancers and ALL 3 cell lines. PAX2 expression in these samples was confirmed at a protein level using immunoblotting and immunofluorescence. PAX2 messenger RNA was not detected in any benign or normal prostatic samples. Immunoblotting of protein from benign prostatic hyperplasia samples confirmed the lack of expression of PAX2 protein. CONCLUSIONS: The expression of PAX2 in prostate cancer compared to nonmalignant prostates is statistically significant (Fisher s exact test p = 0.0004). These results suggest a possible role for PAX2 in prostate cancer. Although previous studies have suggested a role for PAX2 for supporting proliferation in undifferentiated cells, no correlation of PAX2 expression with Gleason score was found in prostate cancer. |
| Expression of the PAX2 oncogene in human breast cancer and its role in progesterone-dependent mammary growth. | In this study, we first describe expression of the paired domain transcription factor PAX2 in the normal and cancerous human breast, then demonstrate in a murine model a novel function for PAX2 in the regulation of progesterone stimulation of secondary ductal growth. In human mammary tissue, PAX2 expression was coincident with sub-populations of mammary ductal cells, some of which possessed an undifferentiated histiotype, and was also found in >50% of the human breast tumors surveyed (n=38). In the mouse, mammary parenchyma with a targeted deletion of PAX2 developed normal ductal systems when grafted into wild-type host mammary fat pads, but failed to undergo higher order side-branching and lobular development in response to progesterone. A previously unsuspected PAX2/WT1 (Wilms tumor suppressor gene) regulatory axis in the mammary gland was also indicated. Using RT-PCR, a significant reduction in WT1 mRNA expression was detected in the PAX2 mutant glands compared to wild-type counterparts and double-antibody immunohistochemistry detected the co-localization of PAX2 and WT1 in the nuclei of normal and cancerous breast cells. These data indicate a role for PAX2 (and possibly WT1) in the regulation of the progesterone response of the mature mammary gland. The potential contribution of PAX2 to breast tumor pathogenesis is discussed. |
| PAX2 oncogene negatively regulates the expression of the host defense peptide human beta defensin-1 in prostate cancer. | Human beta defensin-1 (hBD1) is a component of the immune system which links the innate and adaptive immune responses. We have demonstrated that hBD1 induces rapid cytolysis of prostate cancer cells and that it may also possess tumor suppressive abilities. In addition, there is a high frequency of cancer-specific loss of hBD1 expression which further suggests its potential role in tumor progression. However, the factors responsible for the loss of hBD1 expression are not known. PAX2, a transcriptional regulator normally expressed during early development, has been implicated as an oncogene in carcinomas of the kidney, prostate, breast and ovary. It is known that expression of PAX2 in these tumor cells mediates the evasion of cell death through the suppression of cell death pathways involving the p53 tumor suppressor. However, we have demonstrated that knock-down of PAX2 expression results in cell death independent of p53 status, thus suggesting that additional cell death pathways are negatively regulated by PAX2. Here we describe a novel pathway in which PAX2 represses hBD1 expression through binding of the PAX2 homeodomain to the hBD1 promoter. Furthermore, knock-down of PAX2 expression results in the re-expression of hBD1, and subsequently prostate cancer cell death. These findings are the first to demonstrate that the PAX2 oncogene suppresses hBD1 expression in cancer and further implicate PAX2 as a novel therapeutic target for prostate cancer treatment. |
| Angiotensin II up-regulates PAX2 oncogene expression and activity in prostate cancer via the angiotensin II type I receptor. | BACKGROUND: Paired homeobox 2 gene (PAX2) is a transcriptional regulator, aberrantly expressed in prostate cancer cells and its down-regulation promotes cell death in these cells. The molecular mechanisms of tumor progression by PAX2 over-expression are still unclear. However, it has been reported that angiotensin-II (A-II) induces cell growth in prostate cancer via A-II type 1 receptor (AT1R) and is mediated by the phosphorylation of mitogen activated protein kinase (MAPK) as well as signal transducer and activator of transcription 3 (STAT3). METHODS: Here we have demonstrated that A-II up-regulates PAX2 expression in prostate epithelial cells and prostate cancer cell lines resulting in increased cell growth. Furthermore, AT1R receptor antagonist losartan was shown to inhibit A-II induced PAX2 expression in prostate cancer. Moreover, analysis using pharmacological inhibitors against MEK1/2, ERK1/2, JAK-II, and phospho-STAT3 demonstrated that AT1R-mediated stimulatory effect of A-II on PAX2 expression was regulated in part by the phosphorylation of ERK1/2, JAK II, and STAT3 pathways. In addition, we have showed that down-regulation of PAX2 by an AT1R antagonist as well as JAK-II and STAT3 inhibitors suppress prostate cancer cell growth. RESULTS: Collectively, these findings show for the first time that the renin-angiotensin system (RAS) may promote prostate tumorigenesis via up-regulation of PAX2 expression. CONCLUSIONS: Therefore, PAX2 may be a novel therapeutic target for the treatment of carcinomas such as prostate cancer via the down-regulation of its expression by targeting the AT1R signaling pathways. |