Anti-Mouse CD94 FITC 50 ug
- Known as:
- Antibody toMouse CD94 fluorecein 50 ug
- Catalog number:
- 11-0941-81
- Category:
- -
- Supplier:
- eBioscience
- Gene target:
- Anti-Mouse CD94 FITC 50
Ask about this productRelated genes to: Anti-Mouse CD94 FITC 50 ug
- Gene:
- KLRD1 NIH gene
- Name:
- killer cell lectin like receptor D1
- Previous symbol:
- CD94
- Synonyms:
- -
- Chromosome:
- 12p13
- Locus Type:
- gene with protein product
- Date approved:
- 1998-01-16
- Date modifiied:
- 2016-01-14
Related products to: Anti-Mouse CD94 FITC 50 ug
Related articles to: Anti-Mouse CD94 FITC 50 ug
- The aim of this study was to detect genomic regions and genes associated with gastrointestinal nematodes (GIN) resistance in Pelibuey sheep, based in deworming necessity (NOD) estimated by fecal egg count (FEC). During a ten-months period, deworming criterion was based on GIN eggs per gram (EPG), then animals exceeding 1000 EPG were dewormed, and individuals were classified as cases (dewormed at least once) or controls (non-deworming at all). Animals were genotyped with the GGP Ovine50k genome profiler microarray. Quality control of dataset and case-control GWAS were carried to identify associated candidate genes and quantitative trait loci (QTL). Two genome-wide strongly associated SNPs were detected on chromosomes 2 and 3, located near FEC associated QTLs and immune-related genes: GALNT6, KLRK1, KLRD1, CLEC1B, FGF13, TMEM52B, OLR1, and CLEC7A. The identified genes are involved in key defense mechanisms such as mucus synthesis, immune signaling, and natural-killer cell activation, supporting their relevance as candidate genes for GIN-resistance selection in Pelibuey hair-sheep. - Source: PubMed
Publication date: 2026/07/04
Esparza-Acebo Leilany MargaritaOjeda-Robertos Nadia FlorenciaDe La Rosa-Reyna Xochitl FabiolaParra-Bracamonte Gaspar Manuel - The mouse estrous cycle drives cyclical remodelling of the endometrium, essential for uterine function and embryo implantation. However, the molecular mechanisms orchestrating these dynamic changes remain incompletely defined. In this study, we preliminarily staged C57BL/6 mice using vaginal smear cytology and confirmed phase-dependent morphological changes, including cyclical endometrial thickening and glandular remodelling, via histological assessment. To elucidate the underlying molecular landscape, we performed comprehensive RNA sequencing of the mouse endometrium across four distinct phases: proestrus, estrus, metestrus and diestrus. To ensure analytical rigour and identify core regulatory factors, we integrated three synergistic computational approaches: WGCNA to identify phase-specific co-expression modules, MFUZZ to characterize dynamic temporal expression trajectories, and DESeq2 to pinpoint significantly differentially expressed genes (DEGs). Functional enrichment analysis revealed that these phase-specific signatures are predominantly involved in the cell cycle, extracellular matrix organization, oxidative phosphorylation and DNA replication. Notably, we identified several high-connectivity hub genes and pathways, including Natural Killer (NK) cell-mediated cytotoxicity (Cd244a, Klra4, Klrd1), Oestrogen signalling (Ccnd1, Akt1, Prkaca) and Wnt signalling components (Cdh1, Skp1a, Pax2). Transcription factors such as Sox4 and Lef1, along with the cell cycle regulator Cks1b, exhibited phase-consistent expression patterns aligned with endometrial proliferation and preparation for implantation. Our findings delineate a complex hub-gene regulatory network coordinating cyclic endometrial regeneration. This study provides a comprehensive transcriptomic atlas of the murine endometrium, offering novel insights into uterine biology with significant implications for understanding reproductive health and uterine diseases. - Source: PubMed
Wang XinyanXu KeyiLi BintingXu XiaotongLu GangWang LePan RuolangZhang Ting - CD1d-restricted invariant natural killer (iNK) T cells are innate T cells known for their ability to shape adaptive immunity toward inflammation or immune-suppression via the rapid production of Th1-, Th2-, and Th17-type cytokines from corresponding iNKT subsets such as NKT1, NKT2, and NKT17. IL-10-producing invariant NKT cells, termed NKT10 cells, are thought to play an immunoregulatory role, but their potential clinical use remains underexplored. We characterized human NKT10 cells from cord-derived iNKT cells and investigated their therapeutic utility in allogeneic stem cell transplantation. Cord and cord-derived iNKT cells contained a high frequency of CD4CD25CD161FoxP3 iNKT cells and showed Th2/Th10-biased cytokine production upon antigenic stimulation. Accordingly, cord-derived iNKT cells displayed a distinct gene expression profile with upregulated genes related to NKT2, NKT10, and regulatory T cells compared with adult donor-derived iNKT cells. Furthermore, single-cell RNA sequencing analysis of cord-derived iNKT cells confirmed the presence of NKT10-like subset that was enriched with multiple immunoregulatory pathways and genes related to immune-checkpoints (, , , and ) and NKT10 (, , and ), whereas the NKT1/17-like subset present in adult donor-derived iNKT cells showed upregulation of genes related to cytotoxicity (, , and ), NKR (, , , and ), NKT1 ( and ), and NKT17 (). Lastly, cord-derived iNKT cells suppressed alloreactive T cell proliferation and ameliorated xenogeneic graft-versus-host disease where the immunodeficient NSG mice received human peripheral blood mononuclear cells supplemented with cord-derived iNKT cells. Thus, NKT10-enriched, cord-derived iNKT cells are candidate cell therapeutics for immune-modulation in allogeneic stem cell transplantation and other autoimmune diseases. - Source: PubMed
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