bioRxiv Science⌕ Search

bioRxiv · 10.64898/2026.01.22.701201

Platelet-derived CXCL7 induces neutrophil extracellular traps via CXCL7/CXCR2 axis, exacerbating the pathogenesis of diabetic retinopathy

Abstract

BackgroundProlonged hyperglycemia in diabetes activates platelets and immune cells, forming platelet-immune complexes that damage blood vessels in the retina. However, the role of platelet-neutrophil interactions and neutrophil extracellular traps(NETs) in the development of diabetic retinopathy (DR) was not well studied. In this study, we investigated the mechanisms underlying platelet-mediated NET formation in DR. MethodologyPlatelet activation markers, platelet-neutrophil aggregates (PNA), and NETs markers were assessed by flowcytometry, and the circulatory level of inflammatory markers was measured by Luminex assays in healthy control(HC), type 2 diabetes mellitus(T2DM), non-proliferative DR(NPDR) and proliferative DR(PDR) subjects. In vitro studies investigated platelet-neutrophil interaction in NETs formation using an immunofluorescence assay. Proteomics analysis identified the mechanistic regulators of platelet-induced NETs in DR. Platelet pellet and plasma CXCL7 were quantified using western blot and ELISA, respectively. The role of the CXCL7/CXCR2 axis in inducing NETs formation was examined using CXCL7 recombinant protein, anti-CXCL7 antibody and CXCR2 antagonist (SB225002). ResultsPlatelet activation markers (p-selectin & PF4), PNA, and NETs markers (%NETs, proteinase-3 (PR3), neutrophil elastase (NE)) were significantly increased in the DR group. In vitro studies confirmed that DR-platelets aggregate with healthy neutrophils and form NETs compared to T2DM and HC-platelets. Furthermore, platelet activation and NETs markers were positively correlated with pro-angiogenic (ANGPT2, VEGFA) and inflammatory markers (IL18, ICAM1). In vitro studies reveal that NETs induce inflammation, endothelial dysfunction, disrupt the endothelial monolayer and exacerbate angiogenesis in RF/6A endothelial cell spheroids. Proteomics analysis of platelet-induced NETs in DR revealed dysregulation of proteins involved in platelet activation and NET formation, including CXCL7. Furthermore, increased CXCL-7 levels were observed in platelet pellet and plasma samples from the DR group. Additionally, CXCL7-treated neutrophils formed NETs via the CXCR2 receptor, and inhibition of NETosis was observed in neutrophils exposed to an anti-CXCL-7 antibody and a CXCR2 antagonist. ConclusionOur findings revealed that platelets released CXCL-7 induce NETs formation via the CXCL7/CXCR2 axis and blockade of CXCL7/CXCR2 axis inhibits the NETosis in DR, thereby inhibiting the pathogenesis of DR. Circulating CXCL7 serves as a potential prognostic marker, and the CXCL7/CXCR2 axis may be a therapeutic target for the treatment of DR. What Are the Clinical Implications?Platelets have emerged as immune cells, and platelet-neutrophil interactions are reported to play a significant role in the pathogenesis of various metabolic diseases. The role of platelet-neutrophil interactions and neutrophil extracellular traps (NETs) in the development of diabetic retinopathy (DR) remains poorly understood. Investigating the mechanistic regulators of platelet-mediated NETs in DR is crucial for identifying new therapeutic approaches. Our study observed increased platelet activation, platelet-neutrophil aggregates and NETs among DR subjects. Further, DR-platelet induces NET in healthy neutrophils, and NETs induce inflammation, angiogenesis, and disrupt endothelial barrier function in RF/6A cells in vitro. These findings strengthen the evidence that platelet-neutrophil interactions play a major role in DR pathogenesis. Proteomic analysis identified CXCL7 as a mechanistic regulator of platelet-induced NETs formation in DR. Inhibitors that target the platelet-derived CXCL7/CXCR2 axis for NETosis can be used for the prevention of retinal injury in DR. Overall, our work emphasises the mechanistic understanding of platelet-neutrophil interactions and CXCL7/CXCR2 axis as a therapeutic target for inhibiting the pathogenesis of DR. Graphical abstractScheme for the platelet-derived CXCL7 regulation of NETs in DR. Activated platelets release CXCL7 and platelet aggregates with neutrophils to form NETs via the CXCL7:CXCR2 axis. Blockade of the CXCL7:CXCR2 axis by anti-CXCL7 antibody and CXCR2 inhibitor prevents NETs formation in DR.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Nath, B., Mungase, S. B., Sharaya, R., Gupta, A., Ali, A., Kulkarni, M. J., Barman, M., Selavaraju, S., Yadav, A. K., Adela, R.. 2026-01-24. Platelet-derived CXCL7 induces neutrophil extracellular traps via CXCL7/CXCR2 axis, exacerbating the pathogenesis of diabetic retinopathy. https://doi.org/10.64898/2026.01.22.701201

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Common viral infections seed regionally distinct resident memory T cells in the human CNS

T cells persist in the central nervous system (CNS) and can drive both protection and neurological disease. How these cells are organized in humans and what they recognize is largely unknown. Here, we profiled CD8 T cells across anatomically distinct CNS regions, obtained through on-site autopsies and temporal lobe resection surgeries, using single-cell RNA sequencing, paired T cell receptor sequencing, and DNA-barcoded tetramers. Resident memory T cells (TRM) specific for Epstein-Barr virus, cytomegalovirus, influenza A, and SARS-CoV-2 were identified across CNS compartments. Anatomical location was the strongest correlate of TRM cell state, with leptomeningeal cells adopting a cytokine-poised TRM program, whereas brain TRM cells were transcriptionally restrained. Cells of the same clonotype spanned tissues yet adopted local transcriptional states. Viral specificity added another layer of TRM heterogeneity with GZMK/GZMA-expressing EBV-specific populations and interferon-stimulated gene signatures in SARS-CoV-2 and Influenza A-specific cells. The human CNS thus harbors regionally distinct CD8+ TRM shaped by common viral exposures.

immunology↗

A regulatory T cell signature provides a shared molecular basis for the therapeutic window of opportunity in rheumatic disease

Rheumatic diseases, including rheumatoid arthritis (RA), spondyloarthritis (SpA) and osteoarthritis (OA), show distinct phenotypes yet respond to overlapping therapies, implicating shared immune mechanisms. In the Transimmunom cohort, we profiled peripheral blood from 240 individuals (47 healthy, 44 OA, 91 RA, 58 SpA) across deep immunophenotyping, immunoproteomics and Treg-Teff transcriptomics. Single-layer analyses revealed broader Treg than Teff remodeling, along with a shared pattern of reduced activated Tregs and expanded Helios+ Tregs across all diseases, alongside a decrease in functional Treg subpopulations, including CTLA4+ and CD45RA- Tregs. In RA specifically, LAG3+ Tregs were also expanded. Combining omics layers outperformed single-layer approaches for disease classification. Among individual layers, Treg transcriptomes were most discriminative, and integration uncovered disease-specific programs. Unsupervised clustering identified a cross-disease cluster independent of activity, treatment and age, mapping to early disease (<= years) and dominated by a Treg dysfunction-associated program. These results provide a biological rationale for the therapeutic "window of opportunity" concept and duration-stratified Treg-directed trials.

immunology↗

Inhibitory Fc Receptor sets a time limit on macrophage response to IgG

Antibodies engage both activating Fc Receptors and the inhibitory receptor Fc{gamma}RIIB. Why macrophages need a dedicated inhibitory receptor rather than simply tuning activating receptor signaling is unclear. Using DNA-based chimeric receptors and in silico modeling, we independently controlled activating and inhibitory Fc Receptors. We found that Fc{gamma}RIIB imposed a time limit on macrophage phagocytosis and ERK signaling. The time limit is due to activating Fc Receptors converting PI(4,5)P2 to PI(3,4,5)P3, which is subsequently converted to PI(3,4)P2 by Fc{gamma}RIIB. This leads to a pulse of active signaling, which is sufficient for phagocytosis of small bacteria-sized targets but not phagocytosis of large targets and TNF secretion. Unlike engaging Fc{gamma}RIIB, reducing activating Fc Receptor signaling decreased initiation of phagocytosis, the speed of PI(3,4,5)P3 generation, and the amplitude of ERK signaling. Our results demonstrate that Fc{gamma}RIIB controls the duration of IgG signaling, while the activating Fc Receptors control sensitivity.

immunology↗