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Duddu, S.

Publications and source records attributed to Duddu, S..

2 recordsLinked to original sources

DOT1L-AF10-mediated H3K79me3 promotes NF-kB p65-dependent inflammatory activation in endothelial cells

DOT1L-catalyzed H3K79 methylation is a hallmark of actively transcribed genes and has been extensively studied in developmental and disease contexts. While DOT1L inhibition has emerged as a promising therapeutic strategy in cancer, its role in pro-atherogenic endothelial inflammation remains unclear. To investigate this, we utilized an in vivo partial carotid artery ligation model and observed increased DOT1L expression and H3K79me3 level. Consistently, in vitro studies employing a 3D-printed human coronary artery model and TNF- stimulation corroborated these results, showing elevated DOT1L expression and H3K79me3 deposition, while levels of H3K79me and me2 remained unchanged. Further analyses identified key DOT1L-containing complex (DotCom) components, AF10 and AF9 (upregulated) and AF17 (downregulated), as contributors to the enhanced H3K79me3 landscape. CUT&RUN sequencing showed prominent H3K79me3 enrichment at the RELA (NF-{kappa}B p65) promoter, corresponding with increased NF-{kappa}B p65 expression and activation. Notably, inhibition/knockdown of the methyltransferase DOT1L or overexpression of the demethylase FBXL10 significantly reduced H3K79me3 levels, thereby suppressing NF-{kappa}B p65 expression and attenuating endothelial inflammation, independent of canonical NF-{kappa}B p65 activation. These findings establish DOT1L-mediated H3K79me3 as a crucial epigenetic regulator of endothelial inflammation, highlighting a potential therapeutic avenue for mitigating NF-{kappa}B p65-driven pro-atherogenic endothelial dysfunction.

cell biology↗

Apolipoprotein E reduces the number and activation of non-invariant Natural Killer T cells

Natural Killer T (NKT) cells, which modulate atherosclerosis, include two groups - invariant (iNKT) and variant (vNKT). These subsets differentially regulate the disease progression. Yet, the role of vNKTs in atherosclerosis remains unclear. We induced atherosclerosis by feeding high-fat diet (HFD) to Apoe-/- and analyzed the vNKTs in the liver and spleen. The vNKTs were termed non-iNKTs since they were negatively selected within the NKT population. Available literature suggests NKTs as lipid-recognizing cells; however, to our surprise, the non-iNKT numbers and phenotype remained unchanged between HFD-fed and chow-fed Apoe-/-. This was a blindsiding and unexpected outcome of the non-iNKTs being unaltered and unaffected with or without HFD, indicating no observable impact of atherosclerosis on these subsets. Albeit remaining unperturbed by atherosclerosis, these non-iNKTs demonstrated an identical but unique increase and upregulated activation in both the chow and HFD-fed Apoe-/-. These results instigated an investigation of the baseline correlation of the non-iNKTs between young C57BL/6 (WT) and Apoe-/-. Previously unknown and confounding results revealed upregulated activation and increased non-iNKT numbers but decreased IL-4+ non-iNKTs in the Apoe-/- compared to WT. Furthermore, HFD-fed WT that developed dyslipidemia, elucidated increased hepatic non-iNKTs and splenic IFN-{gamma}+ non-iNKTs compared to chow-fed WT controls. These results were not perceived in chow and HFD-fed Apoe-/-. Although lipid-responsive, non-iNKTs in Apoe-/- mice failed to respond to lipid stress, unlike those in dyslipidemic WT mice. These findings reveal that loss of Apoe, rather than atherosclerosis itself, drives altered non-iNKT biology. Thus, Apoe deficiency intrinsically dysregulates non-iNKTs, masking disease-associated immune changes. Apoe loss alters non-iNKT number and function, independent of atherosclerosis, and challenges the interpretation of immune responses by NKT subsets in Apoe-/- models. Therefore, this study warrants the use of Apoe null mice in studying NKT cells.

immunology↗