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Pinaud, E.

Publications and source records attributed to Pinaud, E..

2 recordsLinked to original sources

A dual function for the chromatin organizer Special A-T rich Binding Protein 1 in B-lineage cells

SATB1 (Special A-T rich Binding protein 1) is a cell type specific factor involved in chromatin remodelling events that participate in the regulation of the genetic network in developing T cells and neurons. In T cells, SATB1 is a key factor required for lineage commitment, VDJ recombination, development and maturation. In B cells, SATB1 is described as binding to the MARs-E{micro} regions of the IgH locus. Considering that its expression varies during differentiation, the involvement of this factor needed to be clarified in B cells. Using a KO mouse model deleting SATB1 from the pro-B cell stage, we were able to examine the consequences of SATB1 deletion in naive and activated B cell subsets. Our model indicates firstly that SATB1 is not essential for B cell development and the establishment of a broad IgH repertoire. Second, we show that this factor exhibits an ambivalent function in mature B cells, acting sequentially as a positive and negative regulator of Ig gene transcription in naive and activated cells, respectively. Third, our study indicates that the negative regulatory function of SATB1 in B cells extends to the germinal center response in which this factor limits somatic hypermutation of Ig genes. This finding suggests that SATB1 may limit the introduction of unwanted mutations into B cells.

immunology↗

The IgH Eμ-MAR regions promote UNG-dependent error-prone repair to optimize somatic hypermutation

Two scaffold/matrix attachment regions (5- and 3-MARsE) flank the intronic core enhancer (cE) within the immunoglobulin heavy chain locus (IgH). Besides their conservation in mice and humans, the physiological role of MARsE is still unclear and their involvement in somatic hypermutation (SHM) has never been deeply evaluated. By analysing a mouse model devoid of MARsE, we observed an inverted substitution pattern: SHM being decreased upstream from cE and increased downstream of it. Strikingly, the SHM defect induced by MARsE-deletion was accompanied by an increase of sense transcription of the IgH V region, excluding a direct transcription-coupled effect. Interestingly, by breeding to DNA repair-deficient backgrounds, we showed that the SHM defect, observed upstream from cE in this model, was not due to a decrease in AID deamination but rather the consequence of a defect in base excision repair-associated unfaithful repair process. Our study pointed out an unexpected "fence" function of MARsE regions in limiting the error-prone repair machinery to the variable region of Ig gene loci.

immunology↗