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Circulating platelet-neutrophil aggregates characterize the development of type 1 diabetes in humans and NOD mice
Sarah K. Popp, Federica Vecchio, Debra J. Brown, Riho Fukuda, Yuri Suzuki, Yuma Takeda, Rikako Wakamatsu, Mahalakshmi A. Sarma, Jessica Garrett, Anna Giovenzana, Emanuele Bosi, Antony R.A. Lafferty, Karen J. Brown, Elizabeth E. Gardiner, Lucy A. Coupland, Helen E. Thomas, Beng H. Chong, Christopher R. Parish, Manuela Battaglia, Alessandra Petrelli, Charmaine J. Simeonovic
Sarah K. Popp, Federica Vecchio, Debra J. Brown, Riho Fukuda, Yuri Suzuki, Yuma Takeda, Rikako Wakamatsu, Mahalakshmi A. Sarma, Jessica Garrett, Anna Giovenzana, Emanuele Bosi, Antony R.A. Lafferty, Karen J. Brown, Elizabeth E. Gardiner, Lucy A. Coupland, Helen E. Thomas, Beng H. Chong, Christopher R. Parish, Manuela Battaglia, Alessandra Petrelli, Charmaine J. Simeonovic
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Research Article

Circulating platelet-neutrophil aggregates characterize the development of type 1 diabetes in humans and NOD mice

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Abstract

Platelet-neutrophil aggregates (PNAs) facilitate neutrophil activation and migration and could underpin the recruitment of neutrophils to the pancreas during type 1 diabetes (T1D) pathogenesis. PNAs, measured by flow cytometry, were significantly elevated in the circulation of autoantibody-positive (Aab+) children and new-onset T1D children, as well as in pre-T1D (at 4 weeks and 10–12 weeks) and T1D-onset NOD mice, compared with relevant controls, and PNAs were characterized by activated P-selectin+ platelets. PNAs were similarly increased in pre-T1D and T1D-onset NOD isolated islets/insulitis, and immunofluorescence staining revealed increased islet-associated neutrophil extracellular trap (NET) products (myeloperoxidase [MPO] and citrullinated histones [CitH3]) in NOD pancreata. In vitro, cell-free histones and NETs induced islet cell damage, which was prevented by the small polyanionic drug methyl cellobiose sulfate (mCBS) that binds to histones and neutralizes their pathological effects. Elevated circulating PNAs could, therefore, act as an innate immune and pathogenic biomarker of T1D autoimmunity. Platelet hyperreactivity within PNAs appears to represent a previously unrecognized hematological abnormality that precedes T1D onset. In summary, PNAs could contribute to the pathogenesis of T1D and potentially function as a pre-T1D diagnostic.

Authors

Sarah K. Popp, Federica Vecchio, Debra J. Brown, Riho Fukuda, Yuri Suzuki, Yuma Takeda, Rikako Wakamatsu, Mahalakshmi A. Sarma, Jessica Garrett, Anna Giovenzana, Emanuele Bosi, Antony R.A. Lafferty, Karen J. Brown, Elizabeth E. Gardiner, Lucy A. Coupland, Helen E. Thomas, Beng H. Chong, Christopher R. Parish, Manuela Battaglia, Alessandra Petrelli, Charmaine J. Simeonovic

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Figure 1

PNA levels are elevated in NOD blood and islets during T1D development.

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PNA levels are elevated in NOD blood and islets during T1D development.
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(A) Representative histograms show CD62P geometric MFI (geometric mean fluorescence intensity) on resting platelets, CD41– neutrophils (Neuts), and CD41+ neutrophils (PNAs) in 10- to 12-week NOD blood. (B) Mean CD62P GMFI ± SEM for 10- to 12-week NOD resting platelets, CD41– neutrophils, and PNAs. n = 3–4 mice/group. Ordinary 1-way ANOVA with Tukey’s multiple comparisons test was used. (C) ImageStream flow cytometry images show bight-field, CD41+ platelets (green), Ly6G+ neutrophils (red), and platelets aggregated with neutrophils (PNAs; merged images) in pre-T1D NOD blood. Scale bar: 7 μm. (D) Circulating PNAs in NOD females at 2–18 weeks of age and at T1D onset. Data show mean ± SEM, n = 10–26/NOD group; n = 52 B6SJL adult females/group; nonparametric Kruskal-Wallis test and Dunn’s multiple comparisons test. (E) Histological assessment of host pancreata shows the percentage of islets with each score (scores 0–4), n = 154–300 islets examined/group; n = 10–25 pancreata/group except for 2 weeks, where n = 4 pancreata/group. Statistical analyses compared the percentage of islets with a histological score between NOD and B6SJL groups or between NOD groups at different ages (including T1D onset). *P = 0.0019, **P = 0.0100, ***P < 0.0001, compared with B6SJL controls; ¶P = 0.0209, 3-week versus 4-week NOD; #P < 0.0001, 6- to 8-week versus 10- to 12-week NOD; ##P = 0.0004, 16- to 18-week versus T1D-onset NOD; ###P = 0.0031, 10- to 12-week versus 16- to 18-week NOD; Fisher’s exact test. (F) Representative islet images showing histological scoring criteria: 0, intact islets without insulitis/inflammation; 1, little to mild periislet accumulation of leukocytes; 2, pronounced nondestructive insulitis; 3, destructive insulitis with islet-infiltrating leukocytes; 4, complete islet destruction with little or no islet tissue remaining. Scale bar: 50 μm. (G and H) Flow cytometry analysis of PNAs/isolated islet for NOD females at 3–18 weeks and T1D onset and corresponding CD45+ leukocytes/islet. Data show mean ± SEM; NOD/Lt, n = 5–15 donors/group; B6SJL, n = 12 donors/4 experiments/group; nonparametric Kruskal-Wallis test and Dunn’s multiple comparisons test.

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