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Cayford, J.

Publications and source records attributed to Cayford, J..

4 recordsLinked to original sources

Chromatin Changes Associated with Neutrophil Extracellular Trap (NET) Formation in Whole Blood Reflect Complex Immune Signaling

BackgroundNeutrophils are key players in innate immunity, forming neutrophil extracellular traps (NETs) to defend against infections. However, excess NET formation is implicated in inflammatory conditions such as sepsis and immunothrombosis. Studying NET formation in isolated neutrophils provides important mechanistic insights but does not reflect the complexity of immune interactions in whole blood, limiting our understanding of neutrophil responses. MethodsThis study investigates chromatin accessibility changes using Assay for Transposase-Accessible Chromatin with sequencing (ATAC-Seq) during phorbol 12-myristate 13-acetate (PMA) induced NET formation in whole blood. We compared chromatin accessibility patterns in neutrophils following PMA treatment in isolation and whole blood to assess the impact of other immune cells and signaling environment. ResultsWhole blood PMA stimulation elicited consistent chromatin accessibility changes across donors, demonstrating organized chromatin decondensation during NET formation. The chromatin response was characterized by increased accessibility in genomic regions enriched for immune-specific pathways, highlighting the role of immune cell interactions in NET formation. Differentially accessible regions (DARs) present following PMA induction in whole blood and isolated neutrophils showed greater association with NET-related and inflammatory transcription factors, while DARs specific to isolated neutrophils showed fewer relevant motifs. Pathway analysis indicated that whole blood responses involved more robust activation of immune-specific pathways, such as interleukin and cytokine signaling, compared to isolated neutrophils. ConclusionsOur findings underscore the importance of studying NET formation within a whole blood environment to capture the complexity of neutrophil responses and immune cell interactions. This understanding is crucial for identifying effective therapeutic targets in NET-associated inflammatory diseases.

immunology↗

Understanding Complex Chromatin Dynamics of Primary Human Neutrophils During PMA Induced NETosis

BackgroundPrimary human neutrophils play a pivotal role in innate immunity, mainly through the formation of neutrophil extracellular traps (NETs) in a process known as NETosis. This cell-death pathway is crucial for combating infections but is also implicated in many inflammatory diseases such as sepsis, systemic lupus erythematosus, rheumatoid arthritis, and others. MethodsThe study presented here investigates chromatin dynamics during NETosis by stimulating primary human neutrophils with phorbol 12-myristate 13-acetate (PMA). We adapt the ATAC-seq (Assay for Transposase-Accessible Chromatin using sequencing) method to isolated neutrophils and characterize a time-dependent chromatin response. ResultsWe find that chromatin accessibility patterns are consistent across individual donors and most chromatin changes occur within 30 minutes, with many continuing across the 90 minutes assessed in this study. Regulatory regions gaining accessibility are associated with activity of pathways that have been implicated in NOX-dependent NET formation. ConclusionsOur findings enhance the understanding of the chromatin changes underlying NETosis and also identify potential early-acting targets for modulating this process in inflammatory diseases.

immunology↗

Long-read sequencing reveals aberrant fragmentation patterns and origins of circulating DNA in cancer

Circulating cell-free DNA (cfDNA) carries fragmentation patterns that serve as biomarkers of cancer, but standard sequencing approaches miss large portions of the fragment length spectrum. In addition to altered fragmentation patterns, cancer patients often have elevated levels of cfDNA, but the underlying mechanisms are not well understood. To address both questions, we analyzed cancer cases with elevated cfDNA levels using Oxford Nanopore (ONT) sequencing. Long-read ONT sequencing captures the full spectrum of cfDNA fragment lengths and enables cell type inference based on DNA methylation markers. One cohort included cases from several cancer types with elevated cfDNA levels, and a second consisted of patients from a single neuroendocrine cancer study. In each cohort, cases with the highest cfDNA levels showed either hypofragmentation (excess fragments of 1-4 kb) or hyperfragmentation (excess fragments <145 bp). Hypofragmentation reflected blood cell DNA released during delayed sample processing, bearing DNASE1L3-associated hallmarks, while in one cohort we also observed ultra-long fragments (>7.5 kb) lacking these hallmarks and consistent with plasma lysis. By contrast, hyperfragmented samples often had elevated levels of both cancer- and blood-derived DNA, indicating an inflammatory or other system process rather than cancer-specific origin. These findings clarify the distinction between biological and artifactual fragmentation, expand our understanding of cfDNA biology, and highlight long-read sequencing as a powerful tool for biomarker discovery.

cancer biology↗

Novel rapid high-throughput method of NETosis Induction and Inhibition with physiological triggers and inhibitors

Neutrophils, the most abundant white blood cells in humans, play pivotal roles in innate immunity, rapidly migrating to sites of infection and inflammation to phagocytose, neutralize, and eliminate invading pathogens. Neutrophil Extracellular Trap (NET) formation in response to pathogens is increasingly recognized as an essential rapid innate immune response, but when dysregulated contributes to pathogenesis of sepsis and immunothrombotic disease. Current models of NETosis are limited, routinely employing non-physiological triggers that can bypass natural NET regulatory pathways. Models utilizing isolated neutrophils and immortalized cell lines, do not reflect the complex biology underlying neutrophil activation and NETosis, that occurs in whole-blood. Here we describe a novel, high-throughput ex-vivo whole blood induced NETosis model using combinatorial pooling of native NETosis inducing factors in a more biologically relevant Synthetic-Sepsis model. We found different combinations of factors evoked distinct neutrophil responses in the rate of NET generation and/or magnitude of NETosis. Despite inter-donor variability, similar sets of pro-inflammatory molecules induced consistent responses across donors. We found at least three biological triggers were necessary to induce NETosis in our system including either TNF- or LT-. To our knowledge, we report the first human ex-vivo model utilizing naturally occurring molecules to induce NETosis in whole blood. This approach could be used for drug screening and, importantly, inadvertent activators of NETosis. These findings emphasize the importance of investigating neutrophil physiology in a biologically relevant context to enable a better understanding of disease pathology, risk factors, and therapeutic targets, potentially, providing novel strategies for disease intervention and treatment. EssentialsO_LINETosis is a vital immune response, but dysregulation leads to disastrous health outcomes. C_LIO_LICurrent NETosis models dont reflect the complex endogenous signaling that occurs in whole blood C_LIO_LINetosis induction stimuli differs between isolated neutrophils and whole blood. C_LIO_LIA minimum of three physiological factors are required to induce NETosis in whole blood. C_LI

immunology↗