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Mokry, M.

Publications and source records attributed to Mokry, M..

2 recordsLinked to original sources

Genome wide association analysis in dilated cardiomyopathy reveals two new key players in systolic heart failure on chromosome 3p25.1 and 22q11.23

We present the results of the largest genome wide association study (GWAS) performed so far in dilated cardiomyopathy (DCM), a leading cause of systolic heart failure and cardiovascular death, with 2,719 cases and 4,440 controls in the discovery population. We identified and replicated two new DCM-associated loci, one on chromosome 3p25.1 (lead SNP rs62232870, p = 8.7 x 10-11 and 7.7 x 10-4 in the discovery and replication step, respectively) and the second on chromosome 22q11.23 (lead SNP rs7284877, p = 3.3 x 10-8 and 1.4 x 10-3 in the discovery and replication step, respectively) while confirming two previously identified DCM loci on chromosome 10 and 1, BAG3 and HSPB7. The genetic risk score constructed from the number of lead risk-alleles at these four DCM loci revealed that individuals with 8 risk-alleles were at a 27% increased risk of DCM compared to individuals with 5 risk alleles (median of the referral population). We estimated the genome wide heritability at 31% {+/-} 8%. In silico annotation and functional 4C-sequencing analysis on iPSC-derived cardiomyocytes strongly suggest SLC6A6 as the most likely DCM gene at the 3p25.1 locus. This gene encodes a taurine and beta-alanine transporter whose involvement in myocardial dysfunction and DCM is supported by recent observations in humans and mice. Although less easy to discriminate the better candidate at the 22q11.23 locus, SMARCB1 appears as the strongest one. This study provides both a better understanding of the genetic architecture of DCM and new knowledge on novel biological pathways underlying heart failure, with the potential for a therapeutic perspective.

genomics

Human regulatory T cells at the maternal-fetal interface show functional site-specific adaptation with tumor-infiltrating-like features

ObjectivesRegulatory T cells (Tregs) are crucial for maintaining immune tolerance against the semi-allogeneic fetus during pregnancy. Since their functional profile at the human maternal-fetal interface is still elusive, we investigated the transcriptional profile and functional adaptation of human uterine Tregs (uTregs) during pregnancy.\n\nMethodsBlood and uterine biopsies from the placental bed (=maternal-fetal interface) and incision site (=control), were obtained from women with uneventful pregnancies undergoing primary Caesarean section. Tregs and CD4+ non-Tregs (Tconv) were isolated for transcriptomic profiling by Cel-Seq2. Results were validated on protein and single cell level by flow cytometry.\n\nResultsPlacental bed uterine Tregs (uTregs) showed elevated expression of Treg signature markers compared to blood Tregs, including FOXP3, CTLA4 and TIGIT. The uTreg transcriptional profile was indicative of late-stage effector Treg differentiation and chronic activation with high expression of immune checkpoints GITR, TNFR2, OX-40, 4-1BB, genes associated with suppressive capacity (CTLA4, HAVCR2, IL10, IL2RA, LAYN, PDCD1), activation (HLA-DR, LRRC32), and transcription factors MAF, PRDM1, BATF, and VDR. uTregs mirrored uTconv Th1 polarization, and characteristics indicating tissue-residency, including high CD69, CCR1, and CXCR6. The particular transcriptional signature of placental bed uTregs overlapped strongly with the specialized profile of human tumor-infiltrating Tregs, and, remarkably, was more pronounced at the placental bed than uterine control site.\n\nConclusionuTregs at the maternal-fetal interface acquire a highly differentiated effector Treg profile similar to tumor-infiltrating Tregs, which is locally enriched compared to a distant uterine site. This introduces the novel concept of site-specific transcriptional adaptation of human Tregs within one organ.

immunology