» Articles » PMID: 33846571

Aberrant CREB1 Activation in Prostate Cancer Disrupts Normal Prostate Luminal Cell Differentiation

Overview
Journal Oncogene
Date 2021 Apr 13
PMID 33846571
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

The molecular mechanisms of luminal cell differentiation are not understood well enough to determine how differentiation goes awry during oncogenesis. Using RNA-Seq analysis, we discovered that CREB1 plays a central role in maintaining new luminal cell survival and that oncogenesis dramatically changes the CREB1-induced transcriptome. CREB1 is active in luminal cells, but not basal cells. We identified ING4 and its E3 ligase, JFK, as CREB1 transcriptional targets in luminal cells. During luminal cell differentiation, transient induction of ING4 expression is followed by a peak in CREB1 activity, while JFK increases concomitantly with CREB1 activation. Transient expression of ING4 is required for luminal cell induction; however, failure to properly down-regulate ING4 leads to luminal cell death. Consequently, blocking CREB1 increased ING4 expression, suppressed JFK, and led to luminal cell death. Thus, CREB1 is responsible for the suppression of ING4 required for luminal cell survival and maintenance. Oncogenic transformation by suppressing PTEN resulted in constitutive activation of CREB1. However, the tumor cells could no longer fully differentiate into luminal cells, failed to express ING4, and displayed a unique CREB1 transcriptome. Blocking CREB1 in tumorigenic cells suppressed tumor growth in vivo, rescued ING4 expression, and restored luminal cell formation, but ultimately induced luminal cell death. IHC of primary prostate tumors demonstrated a strong correlation between loss of ING4 and loss of PTEN. This is the first study to define a molecular mechanism whereby oncogenic loss of PTEN, leading to aberrant CREB1 activation, suppresses ING4 expression causing disruption of luminal cell differentiation.

Citing Articles

The role of circular RNA targeting IGF2BPs in cancer-a potential target for cancer therapy.

Luo X, Shi J, Wang S, Jin X J Mol Med (Berl). 2024; 102(11):1297-1314.

PMID: 39287635 DOI: 10.1007/s00109-024-02488-8.


Effects of Red Sorghum-Derived Deoxyanthocyanidins and Their O-β-D-Glucosides on E-Cadherin Promoter Activity in PC-3 Prostate Cancer Cells.

Mora N, Rosa M, Touaibia M, Martin L Molecules. 2024; 29(8).

PMID: 38675711 PMC: 11054106. DOI: 10.3390/molecules29081891.


The CREB1 inhibitor 666-15 maintains cartilage homeostasis and mitigates osteoarthritis progression.

Wang Y, Wu Z, Yan G, Li S, Zhang Y, Li G Bone Joint Res. 2024; 13(1):4-18.

PMID: 38163445 PMC: 10758301. DOI: 10.1302/2046-3758.131.BJR-2023-0016.R2.


miR-125b-5p upregulation by TRIM28 induces cisplatin resistance in non-small cell lung cancer through CREB1 inhibition.

Tan Q, Ma J, Zhang H, Wu X, Li Q, Zuo X BMC Pulm Med. 2022; 22(1):469.

PMID: 36476351 PMC: 9730690. DOI: 10.1186/s12890-022-02272-9.


MicroRNA-582-5p targeting Creb1 modulates apoptosis in cardiomyocytes hypoxia/reperfusion-induced injury.

Niu R, Wang L, Yang W, Sun L, Tao J, Sun H Immun Inflamm Dis. 2022; 10(11):e708.

PMID: 36301033 PMC: 9601879. DOI: 10.1002/iid3.708.


References
1.
Frank S, Berger P, Ljungman M, Miranti C . Human prostate luminal cell differentiation requires NOTCH3 induction by p38-MAPK and MYC. J Cell Sci. 2017; 130(11):1952-1964. DOI: 10.1242/jcs.197152. View

2.
Henry G, Malewska A, Joseph D, Malladi V, Lee J, Torrealba J . A Cellular Anatomy of the Normal Adult Human Prostate and Prostatic Urethra. Cell Rep. 2018; 25(12):3530-3542.e5. PMC: 6411034. DOI: 10.1016/j.celrep.2018.11.086. View

3.
Burger P, Xiong X, Coetzee S, Salm S, Moscatelli D, Goto K . Sca-1 expression identifies stem cells in the proximal region of prostatic ducts with high capacity to reconstitute prostatic tissue. Proc Natl Acad Sci U S A. 2005; 102(20):7180-5. PMC: 1129148. DOI: 10.1073/pnas.0502761102. View

4.
Kwon O, Zhang L, Xin L . Stem Cell Antigen-1 Identifies a Distinct Androgen-Independent Murine Prostatic Luminal Cell Lineage with Bipotent Potential. Stem Cells. 2015; 34(1):191-202. PMC: 4816225. DOI: 10.1002/stem.2217. View

5.
Lamb L, Knudsen B, Miranti C . E-cadherin-mediated survival of androgen-receptor-expressing secretory prostate epithelial cells derived from a stratified in vitro differentiation model. J Cell Sci. 2010; 123(Pt 2):266-76. DOI: 10.1242/jcs.054502. View