scholarly journals Role of specific response elements of the c-fos promoter and involvement of intermediate transcription factor(s) in the induction of Sertoli cell differentiation (transferrin promoter activation) by the testicular paracrine factor PModS.

Endocrinology ◽  
1995 ◽  
Vol 136 (7) ◽  
pp. 3046-3053 ◽  
Author(s):  
P D Whaley ◽  
J Chaudhary ◽  
A Cupp ◽  
M K Skinner
PLoS ONE ◽  
2018 ◽  
Vol 13 (12) ◽  
pp. e0208343 ◽  
Author(s):  
Lucy Cooper ◽  
Lauren Hailes ◽  
Amania Sheikh ◽  
Colby Zaph ◽  
Gabrielle T. Belz ◽  
...  

It has long been assumed that the mammalian Y chromosome either encodes, or controls the production of, a diffusible testis-determining molecule, exposure of the embryonic gonad to this molecule being all that is required to divert it along the testicular pathway. My recent finding that Sertoli cells in XX ↔ XY chimeric mouse testes are exclusively XY has led me to propose a new model in which the Y acts cell-autonomously to bring about Sertoli-cell differentiation. I have suggested that all other aspects of foetal testicular development are triggered by the Sertoli cells without further Y-chromosome involvement. This model thus equates mammalian sex determination with Sertoli-cell determination. Examples of natural and experimentally induced sex reversal are discussed in the context of this model.


2014 ◽  
Vol 127 (7) ◽  
pp. 1428-1440 ◽  
Author(s):  
F. Fang ◽  
S. M. Wasserman ◽  
J. Torres-Vazquez ◽  
B. Weinstein ◽  
F. Cao ◽  
...  

2006 ◽  
Vol 73 (4) ◽  
pp. 491-500 ◽  
Author(s):  
Terla Muir ◽  
Ingrid Sadler-Riggleman ◽  
Jeffrey D. Stevens ◽  
Michael K. Skinner

Blood ◽  
2006 ◽  
Vol 108 (11) ◽  
pp. 1416-1416
Author(s):  
Grazia Fazio ◽  
Chiara Palmi ◽  
Greta Giordano Attianese ◽  
Andrea Biondi ◽  
Antonius Rolink ◽  
...  

Abstract The PAX5/TEL chimeric gene was cloned from the translocation t(9;12)(q11;p13) in an ALL patient. Recent data indicate that the PAX5/TEL fusion defines the cytogenetic entity dic(9;12)(p13;p13), which accounts for about 1% of childhood ALL, almost exclusively B-progenitor ALL. PAX5/TEL is likely to be an aberrant transcription factor, resulting from joining the 5′ region of PAX5 (a transcription factor essential for B cell development) to the 3′ region of TEL/ETV6, containing the Ets-family DNA binding domain. We have cloned the FLAG-full length chimeric PAX5/TEL cDNA in the retroviral vector pMSCV-IRES-GFP (MigR1) to transduce target cells. We have demonstrated a specific nuclear localization of the chimeric protein in NIH3T3 by immunofluorescence analysis. Moreover, we observed a PAX5/TEL dependent decrease of the cellular growth rate in IL-3 dependent murine proB Ba/F3 cells. We further investigated the function of the PAX5/TEL chimeric protein as a potential oncoprotein in murine preBI cells, as a more physiological model. Murine PAX5 −/− preBI cells and wild type preBI cells were purified as B220+/c-KIT+ cells from mouse fetal liver and they were cultured on OP9 and DL1-OP9 stroma cells in presence of IL-7. The OP9 stroma supports B cell proliferation and survival; the DL1-OP9 stroma expresses Delta-like1, one of the Notch ligands, and it’s important to support T cell development. Both PAX5 −/− preBI cells and wild type preBI cells were transduced with the retroviral construct pMSCV-PAX5/TEL-IRES-GFP to analyze cell proliferation, differentiation and growth-dependence on IL-7. Wild type preBI cells expressing PAX5/TEL showed down modulation of CD19 when cultured on OP9 stroma in presence of IL-7; an inverse correlation was observed between the levels of expression of GFP and of CD19. The down modulation of CD19 can be involved in driving the preBI cell into differentiation block. A possible explanation of CD19 repression can rely on a potential competition between PAX5/TEL and endogenous PAX5 to bind PAX5 consensus region on DNA. On OP9 stroma, PAX5/TEL preBI cells are resistant to TGFbeta anti-proliferative and apoptotic effects, with a three-fold increased growth rate than control cells. Although the specific mechanism of PAX5/TEL disruption of TGFbeta signalling pathway remains to be investigated, we propose the TGFbeta resistance by PAX5/TEL as a way to evade the immunosurveillance. PAX5/TEL-preBI cells cultured on DL1-OP9 showed a different phenotype, with up-regulation of c-KIT and down-regulation of CD44. PAX5−/− preBI cells infected with PAX5TEL and grown on OP9 were CD19 negative even in the presence of PAX5TEL. On DL1-OP9 stroma, PAX5TEL cells were able to differentiate maintaining the developmental plasticity of PAX5 −/− preBI cells. These preliminary results indicate a role of PAX5/TEL as a transcription factor, potentially with a suppressor function, down regulating CD19 expression, thus suggesting a function on B cell differentiation. The chimera is able to interfere with TGFbeta pathway, inducing resistance and conferring an advantage in cell survival, evading the immunosurveillance. PAX5TEL do not replace PAX5 functions in PAX5−/− cells, it cannot activate PAX5 target genes as CD19, important for restoring B cell differentiation. Further analyeis are needed to better evaluate the role of PAX5/TEL protein, both in vivo and in vitro models.


Blood ◽  
2008 ◽  
Vol 112 (11) ◽  
pp. 1199-1199
Author(s):  
Patricia Vanessa Sanchez ◽  
Reid P Bissonnette ◽  
Donald E Tsai ◽  
Martin Carroll

Abstract Despite advances in understanding the molecular pathogenesis of acute myeloid leukemia (AML), therapy for relapsed disease remains inadequate with high mortalities. Clinicians at the University of Pennsylvania have demonstrated that the FDA approved retinoid X receptor (RXR) agonist bexarotene (Targretin™) stimulates leukemic cell differentiation in a subset patents with relapsed AML leading to clinical responses. This underscores the importance of identifying the mechanism by which bexarotene induces differentiation in AML in order to enhance the efficacy of this therapeutic approach. To understand the role of bexarotene and RXR receptors in leukemic cell differentiation, we initially utilized a pharmacogenetic approach to study the effects of bexarotene on AML cell lines using combinations of bexarotene with other differentiation induction agents. These studies demonstrate that bexarotene induces myeloid differentiation in MOLM14, HL60, THP-1, and NB4 cell lines but not in the myeloblastic cell line KG1a. Combination treatment of AML cell lines with bexarotene in combination with all trans retinoic acid (ATRA) enhanced differentiation suggesting that the mechanism of action for bexarotene is through RARα (retinoic acid receptor)/RXRα heterodimer stimulation. Consistent with this, differentiation induced by the drug combination was effectively blocked by the RAR antagonist, LG100815 and partially blocked by the RXR antagonist, LG101208. In contrast, bexarotene does not cooperate with valproic acid, theophylline, the PPARγ agonist rosiglitazone, or the LXR agonist T0901317. Preliminary data from quantitative RT-PCR and Affymetrix microarray analysis of bexarotene responsive AML cell lines at 3, 6, 12, and 96 hours post treatment has identified a subset of genes potentially regulated by bexarotene. CEBPε, a transcription factor known to play a critical role in granulopoiesis and PIM-1, a known oncogenic transcription factor, were among the genes that were significantly upregulated after bexarotene treatment of AML cells. Analysis of the functional role of C/EBPε in retinoid induced differentiation will be presented. Overall, this data supports the hypothesis that bexarotene, like ATRA, induces myeloid differentiation through activation of a RAR/RXR heterodimeric partner. However, other data suggests the presence of RAR independent pathways of signaling. LG100268, a pure RXR agonist induced myeloid differentiaton although not as robustly as bexarotene. Analysis of RAR and RXR mRNA expression in AML cell lines demonstrates that bexarotene does not induce expression of RARβ or p21, known targets induced by ATRA during myeloid differentiation. Chromatin immunoprecipitation assays demonstrate RXRα occupancy at RARβ and p21 promoter regions containing retinoid response elements (RARE). However, expression of these genes does not correlate with bexarotene-induced differentiation. This data suggests that although their expression has been linked to ATRA responsiveness, induction of RARβ and p21 expression is not necessary for retinoid induced myeloid differentiation. In summary, bexarotene induces myeloid differentiation through RAR dependent and independent pathways. Further analysis of the signaling events necessary for induction of myeloid differentiation by bexarotene may allow for improved selection of patients with AML who will respond to bexarotene.


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