The central hypothesis of this Project is that the mechanisms that control compartmentalization and function of theandrogen receptor (AR) are improperly regulated in prostate cancer. Nuclear import and export have emerged askey mechanisms for controlling the activity of transcription factors. Nuclear import of AR is thought to be linked toandrogen binding, whereby a conformational change in AR is proposed to cause chaperone release and exposureof the nuclear localization signal (NLS) to the nuclear import machinery. Few molecular details about this importpathway have been directly analyzed in normal or cancer cells, including what import receptor contacts the NLS,and how AR undergoes androgen-independent import. Nuclear export of AR is also poorly understood, though wehave identified a nuclear export signal for AR, and in our preliminary studies we have found that nuclear export ofAR is tightly controlled. We found that androgen-dependent phosphorylation of Ser650 in the hinge region of AR isnecessary for export to the cytoplasm. We also have a biochemical assay for AR export from LNCaP cell nuclei.AR export in vitro is okadaic acid-sensitive and cytosolic factor-dependent.
In Aims 1 and 2 we will identify thecomponents that mediate AR trafficking between the cytoplasm and nucleus, and determine if alterations in thenuclear transport of AR is correlated with the progression to androgen-independence.
In Aim 3 we willcharacterize how signal transduction pathways regulate nuclear export of AR. The AR regulates gene expressionin the prostate in both normal and pathophysiological states and serves as an important target for chemotherapy.The progression of prostate cancer from androgen-dependence to androgen-independence is correlated withenhanced growth factor signaling to AR, which we propose influences AR activity through one or more transportbasedmechanisms.
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Dillon, Laura W; Kumar, Pankaj; Shibata, Yoshiyuki et al. (2015) Production of Extrachromosomal MicroDNAs Is Linked to Mismatch Repair Pathways and Transcriptional Activity. Cell Rep 11:1749-59 |
Kumar, Pankaj; Mudunuri, Suresh B; Anaya, Jordan et al. (2015) tRFdb: a database for transfer RNA fragments. Nucleic Acids Res 43:D141-5 |
Earl, Julie; Rico, Daniel; Carrillo-de-Santa-Pau, Enrique et al. (2015) The UBC-40 Urothelial Bladder Cancer cell line index: a genomic resource for functional studies. BMC Genomics 16:403 |
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