Regulation of neuroendocrine differentiation by AKT/hnRNPK/AR/β-catenin signaling in prostate cancer cells.
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ERG transcriptional networks in primary acute leukemia cells implicate a role for ERG in deregulated kinase signalingAutophagy pathway is required for IL-6 induced neuroendocrine differentiation and chemoresistance of prostate cancer LNCaP cellsHeterogeneous nuclear ribonucleoprotein K is associated with poor prognosis and regulates proliferation and apoptosis in bladder cancer.Phosphorylation of hnRNP K by cyclin-dependent kinase 2 controls cytosolic accumulation of TDP-43.The role of epithelial plasticity in prostate cancer dissemination and treatment resistanceAndrogen receptor activity is affected by both nuclear matrix localization and the phosphorylation status of the heterogeneous nuclear ribonucleoprotein K in anti-androgen-treated LNCaP cells.Dietary supplement 4-methylumbelliferone: an effective chemopreventive and therapeutic agent for prostate cancer.Xanthohumol impairs human prostate cancer cell growth and invasion and diminishes the incidence and progression of advanced tumors in TRAMP mice.Sex Difference of Egfr Expression and Molecular Pathway in the Liver: Impact on Drug Design and Cancer Treatments?Characterization of prostate neuroendocrine cancers and therapeutic management: a literature review.Wnt signaling in castration-resistant prostate cancer: implications for therapy.TDP-43 mutations causing amyotrophic lateral sclerosis are associated with altered expression of RNA-binding protein hnRNP K and affect the Nrf2 antioxidant pathway.Aberrant hnRNP K expression: All roads lead to cancerHeme oxygenase-1 regulates postnatal lung repair after hyperoxia: role of β-catenin/hnRNPK signaling.Oral administration of withaferin A inhibits carcinogenesis of prostate in TRAMP model.Comparative Proteomic Profiling Using Two-Dimensional Gel Electrophoresis and Identification via LC-MS/MS Reveals Novel Protein Biomarkers to Identify Aggressive Subtypes of WHO Grade I Meningioma.Identification of ZNF217, hnRNP-K, VEGF-A and IPO7 as targets for microRNAs that are downregulated in prostate carcinoma.Thymus neuroendocrine tumors with CTNNB1 gene mutations, disarrayed ß-catenin expression, and dual intra-tumor Ki-67 labeling index compartmentalization challenge the concept of secondary high-grade neuroendocrine tumor: a paradigm shift.MicroRNA-652 induces NED in LNCaP and EMT in PC3 prostate cancer cells.
P2860
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P2860
Regulation of neuroendocrine differentiation by AKT/hnRNPK/AR/β-catenin signaling in prostate cancer cells.
description
2011 nî lūn-bûn
@nan
2011年の論文
@ja
2011年学术文章
@wuu
2011年学术文章
@zh-cn
2011年学术文章
@zh-hans
2011年学术文章
@zh-my
2011年学术文章
@zh-sg
2011年學術文章
@yue
2011年學術文章
@zh
2011年學術文章
@zh-hant
name
Regulation of neuroendocrine d ...... ling in prostate cancer cells.
@en
Regulation of neuroendocrine d ...... ling in prostate cancer cells.
@nl
type
label
Regulation of neuroendocrine d ...... ling in prostate cancer cells.
@en
Regulation of neuroendocrine d ...... ling in prostate cancer cells.
@nl
prefLabel
Regulation of neuroendocrine d ...... ling in prostate cancer cells.
@en
Regulation of neuroendocrine d ...... ling in prostate cancer cells.
@nl
P2093
P2860
P50
P356
P1476
Regulation of neuroendocrine d ...... aling in prostate cancer cells
@en
P2093
Cecilia Balbi
Monica Ciarlo
Ottavia Barbieri
Simona Minghelli
P2860
P304
P356
10.1002/IJC.26402
P577
2011-10-20T00:00:00Z