Genome-wide DNA-binding profile of SRY-box transcription factor 3 (SOX3) in mouse testes

2020 ◽  
Vol 32 (16) ◽  
pp. 1260
Author(s):  
Dale McAninch ◽  
Ella P. Thomson ◽  
Paul Q. Thomas

Spermatogenesis is the male version of gametogenesis, where germ cells are transformed into haploid spermatozoa through a tightly controlled series of mitosis, meiosis and differentiation. This process is reliant on precisely timed changes in gene expression controlled by several different hormonal and transcriptional mechanisms. One important transcription factor is SRY-box transcription factor 3 (SOX3), which is transiently expressed within the uncommitted spermatogonial stem cell population. Sox3-null mouse testes exhibit a block in spermatogenesis, leading to infertility or subfertility. However, the molecular role of SOX3 during spermatogonial differentiation remains poorly understood because the genomic regions targeted by this transcription factor have not been identified. In this study we used chromatin immunoprecipitation sequencing to identify and characterise the endogenous genome-wide binding profile of SOX3 in mouse testes at Postnatal Day 7. We show that neurogenin3 (Neurog3 or Ngn3) is directly targeted by SOX3 in spermatogonial stem cells via a novel testes-specific binding site. We also implicate SOX3, for the first time, in direct regulation of histone gene expression and demonstrate that this function is shared by both neural progenitors and testes, and with another important transcription factor required for spermatogenesis, namely promyelocytic leukaemia zinc-finger (PLZF). Together, these data provide new insights into the function of SOX3 in different stem cell contexts.

2007 ◽  
Vol 56 (3) ◽  
pp. 295-303 ◽  
Author(s):  
Kuniko Kadoya ◽  
Jun-ichi Fukushi ◽  
Yoshihiro Matsumoto ◽  
Yu Yamaguchi ◽  
William B. Stallcup

In early postnatal mouse skin, the NG2 proteoglycan is expressed in the subcutis, the dermis, the outer root sheath of hair follicles, and the basal keratinocyte layer of the epidermis. With further development, NG2 is most prominently expressed by stem cells in the hair follicle bulge region, as also observed in adult human skin. During telogen and anagen phases of the adult hair cycle, NG2 is also found in stem cell populations that reside in dermal papillae and the outer root sheaths of hair follicles. Ablation of NG2 produces alterations in both the epidermis and subcutis layers of neonatal skin. Compared with wild type, the NG2 null epidermis does not achieve its full thickness due to reduced proliferation of basal keratinocytes that serve as the stem cell population in this layer. Thickening of the subcutis is also delayed in NG2 null skin due to deficiencies in the adipocyte population.


BMC Genomics ◽  
2013 ◽  
Vol 14 (1) ◽  
pp. 828 ◽  
Author(s):  
Trong Nguyen-Duc ◽  
Liesbeth van Oeffelen ◽  
Ningning Song ◽  
Gholamreza Hassanzadeh-Ghassabeh ◽  
Serge Muyldermans ◽  
...  

Science ◽  
2014 ◽  
Vol 346 (6216) ◽  
pp. 1533-1536 ◽  
Author(s):  
Daniel L. Jones ◽  
Robert C. Brewster ◽  
Rob Phillips

Variability in gene expression among genetically identical cells has emerged as a central preoccupation in the study of gene regulation; however, a divide exists between the predictions of molecular models of prokaryotic transcriptional regulation and genome-wide experimental studies suggesting that this variability is indifferent to the underlying regulatory architecture. We constructed a set of promoters in Escherichia coli in which promoter strength, transcription factor binding strength, and transcription factor copy numbers are systematically varied, and used messenger RNA (mRNA) fluorescence in situ hybridization to observe how these changes affected variability in gene expression. Our parameter-free models predicted the observed variability; hence, the molecular details of transcription dictate variability in mRNA expression, and transcriptional noise is specifically tunable and thus represents an evolutionarily accessible phenotypic parameter.


2009 ◽  
Vol 187 (7) ◽  
pp. 941-943 ◽  
Author(s):  
Andrew B. Lassar

In this issue, Gillespie et al. (Gillespie et al. 2009. J. Cell Biol. doi:10.1083/jcb.200907037) demonstrate that the mitogen-activated protein kinase isoform p38-γ plays a crucial role in blocking the premature differentiation of satellite cells, a skeletal muscle stem cell population. p38-γ puts the brakes on skeletal muscle differentiation by promoting the association of the transcription factor MyoD with the histone methyltransferase, KMT1A, which act together in a complex to repress the premature expression of the gene encoding the myogenic transcription factor Myogenin.


Blood ◽  
2012 ◽  
Vol 120 (21) ◽  
pp. 1288-1288
Author(s):  
Charles Herbaux ◽  
Guillemette Marot ◽  
Elisabeth Bertrand ◽  
Natacha Broucqsault ◽  
Sylvie Zouitna-Galiègue ◽  
...  

Abstract Abstract 1288 Background. Approximately 30% of the patients who fulfil the criteria of Waldenström macroglobulinemia (WM) are diagnosed while asymptomatic, and will not require immediate therapy; these cases are called indolent WM (IWM). However, patients with a disease-related event will be considered for therapy, these cases are called symptomatic or aggressive WM (AWM). The physiopathology of these 2 groups remains unclear, and the mechanisms of progression have not been fully understood so far. We hypothesized that a gene signature that differentiates these two categories could be identified to better understand the underlying mechanisms of progression of WM. Methods. Seventeen patients diagnosed with WM (8 IWM and 9 AWM) were included in this study. We selected tumour cells from the bone marrow (BM) using mononuclear cell isolation, then B cell enrichment (B cell isolation kit, Myltenyi-Biotec, USA). The purity was confirmed by flow cytometry. Total RNA was extracted using the Trizol method. Gene expression profiling was performed using U133A arrays (Affymetrix, USA). Gene expression was normalized using the RMA algorithm. We ranked genes by fold-change of expression levels on a first series of 11 patients (5 IWM and 6 AWM) calculated with the ‘limma’ package in R. Next, we used a supervised classification to establish a gene expression profile to distinguish IWM from AWM. Therewith, we validated this profile on an independent set of 6 patients (3 IWM and 3 AWM). We then performed a pathway analysis using Ingenuity® analysis software. We confirmed gene expression deregulation with qRT-PCR on 3 candidate genes in the first series of patients. Genome-wide detection of copy number alteration and loss of heterozygosity were performed on 13 of the 17 WM cases, using the Genome-Wide Human SNP Array 6.0 (Affymetrix, USA). Finally, we investigated the functional consequences of the deregulation of these candidate genes in BCWM1 and MWCL1, both B cell lines originated from WM. Survival was studied using a colorimetric method with MTS (Promega, USA). Proliferation was analyzed using incorporation of a nucleoside analog (EdU) into DNA during active DNA synthesis (Invitrogen, USA). Results. The differential analysis has identified 82 probes, corresponding to 48 genes, significantly deregulated and capable of differentiating samples from IWM and AWM in an unsupervised classification. Moreover, with a supervised classification, this gene expression profile accurately classified 94% of the 17 WM samples, including the 6 WM of the independent validation set. The two molecular networks that appeared to play a major role in the physiopathology of IWM versus AWM were the plasma cell differentiation pathway and the AKT pathway. We have then identified 3 key genes in those 2 pathways, BACH2 and CIITA on the one hand and PTEN, respectively. We have then confirmed the deregulation of these gene expression levels by qRT-PCR in 3 IWM and 4 AWM; these 3 genes were over-expressed in IMW relatively to AMW. BACH2 is a B-cell-specific transcription factor known to be a tumour suppressor gene. It was shown that BACH2 reduces proliferation and induces cell death when over-expressed in B lymphoma tumour cells. We have thus pharmacologically over-expressed BACH2 in BCWM1 and MWCL1 and significantly reduced the proliferation and the survival of the two cell-lines. Further studies using BACH2 specific overexpression with lentiviral infection are underway, in vitro. The data will be presented at ASH. In order to further study the mechanisms of deregulation of BACH2 in IWM and AWM, we have conducted a genome wide SNP array study of 13 patients. Among those, 7 patients (4 IWM and 3 AWM) demonstrate a deletion of long arm of chromosome 6 (del6q), the most frequent chromosomal abnormality in WM. BACH2 gene is located on the 6q15 locus. Interestingly, we found that 3 out of the 3 AWM had a del6q that took in the 6q15 region, whereas 3 out of 4 of the IWM had a del6q preserving the 6q15 region. Therefore, haploinsufficiency could participate in the under-expression of BACH2 in aggressive WM; this hypothesis will be verified by using DNA qRT-PCR of BACH2. Conclusion. To the best of our knowledge, we have identified for the first time a specific gene expression signature that differentiates IWM and AWM. We have exposed several genes from this dataset, including BACH2, which is a candidate to better understand the underlying mechanisms of progression of WM. Disclosures: No relevant conflicts of interest to declare.


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