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Neutrophil Traps and Inflammatory Macrophages Team Up in Failing Hearts

September 24, 2026
in Biology
Kristina Jarvis
By Kristina Jarvis Scienmag Editorial Profile - Infectious Disease Medicine
Reading Time: 5 mins read
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Neutrophil Traps and Inflammatory Macrophages Team Up in Failing Hearts

Neutrophil Traps and Inflammatory Macrophages Team Up in Failing Hearts

Neutrophil Traps and Inflammatory Macrophages Team Up in Failing Hearts

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Deep inside the failing human heart, two of the body’s most versatile immune cells appear to be locked in a conversation that keeps inflammation smouldering. A new study published in the Journal of Cellular and Molecular Medicine reports that patients with end-stage heart failure show a dramatic accumulation of neutrophils undergoing NETosis, a specialised form of cell death in which these white blood cells explode their chromatin into the surrounding tissue, and that this process is tightly linked to macrophages adopting a proinflammatory identity. The findings, drawn from heart tissue removed during transplantation, offer one of the most detailed pictures yet of how innate immune cells interact within chronically diseased myocardium, and they point to a potential axis that future therapies might target.

NETosis is a relatively recent addition to the immunology lexicon. First recognised as a mechanism for trapping and killing microbes, it involves the formation of neutrophil extracellular traps, or NETs, which are web-like lattices of DNA studded with antimicrobial proteins. The process can unfold in two distinct ways. In vital NETosis, the neutrophil remains alive and functional while deploying its DNA weapon, typically in response to pathogen-associated molecular patterns derived from microbes. In suicidal or lytic NETosis, the cell perishes: its nuclear envelope disintegrates, its plasma membrane ruptures, and DNA chains decorated with citrullinated histones, neutrophil elastase and myeloperoxidase spill into the extracellular space. The molecular choreography is intricate. An enzyme called peptidyl-arginine deiminase 4 citrullinates histones, loosening the grip of chromatin, while granule enzymes translocate to the nucleus to cleave histones further, allowing the genetic material to decondense before its dramatic release.

Although NETosis has been implicated in atherosclerosis and thromboinflammation, its role in chronic heart failure remained underexplored. The research team, led by Sawa Kostin and colleagues, examined left ventricular tissue from 21 patients undergoing orthotopic heart transplantation. The patients fell into three groups matched for age, symptom severity, medication and comorbidities: seven with inflammatory cardiomyopathy following histologically proven myocarditis, seven with idiopathic dilated cardiomyopathy, and seven with ischaemic cardiomyopathy caused by severe coronary artery disease. Crucially, in the ischaemic group the researchers analysed only tissue remote from previous infarcts, ensuring that observed inflammation reflected the failing heart as a whole rather than scarred regions. As controls, they used myocardial samples from five patients with aortic stenosis whose left ventricular function was fully preserved and whose tissue showed no damage, inflammation or fibrosis.

The results were striking. Using immunolabelling for CD66b, a neutrophil marker, the team found that control myocardium contained a median of just 2.48 neutrophils per square millimetre. In the failing hearts, that figure soared to 11.4 cells in dilated cardiomyopathy, 13.9 in ischaemic cardiomyopathy and 15.5 in inflammatory cardiomyopathy, a four- to six-fold increase. To detect NETosis directly, the researchers stained for citrullinated histone 3 and myeloperoxidase, two molecular signatures of NET formation. Confocal microscopy revealed thin, long NET structures, ranging from 5 to 50 micrometres, positive for both DNA and citrullinated histone 3, weaving through the failing myocardium. No such structures appeared in control tissue.

Biochemical and molecular assays corroborated the microscopy. Western blot analysis showed that citrullinated histone 3 protein levels were 4.8-fold higher in inflammatory cardiomyopathy, 4.4-fold higher in ischaemic cardiomyopathy and 2.7-fold higher in dilated cardiomyopathy compared with controls, with all differences statistically significant. Quantitative polymerase chain reaction confirmed that myeloperoxidase messenger RNA was three to four times more abundant in the failing hearts. When the researchers counted neutrophils positive for both CD66b and citrullinated histone 3, they found medians of 7.94 cells per square millimetre in inflammatory cardiomyopathy, 5.51 in dilated cardiomyopathy and 5.79 in ischaemic cardiomyopathy, against just 1.12 in controls. Triple staining for CD66b, citrullinated histone 3 and myeloperoxidase revealed a 4.6- to 6.1-fold increase across all heart failure groups, with no significant differences between aetiologies.

Macrophages told an equally compelling story. These highly plastic cells, which can polarise into classically activated M1-like macrophages that drive inflammation or alternatively activated M2-like macrophages that promote repair and phagocytosis, are among the most active immune participants in cardiac remodelling. Counting CD68-positive cells, the team found a median of 13.3 macrophages per square millimetre in control myocardium, rising to 47.1 in dilated cardiomyopathy, 55.4 in ischaemic cardiomyopathy and 69.4 in inflammatory cardiomyopathy. Remarkably, macrophage numbers correlated very strongly with neutrophil counts, with a Spearman coefficient of 0.918, suggesting the two cell populations accumulate in lockstep within the diseased heart.

Phenotyping revealed a decisive shift. In control tissue, only about 3 percent of macrophages displayed the M1-like profile, identified by co-expression of CD68 with tumour necrosis factor alpha or interleukin-6, while roughly 6.5 percent were M2-like, marked by CD206 or arginase-1. In the failing hearts, M1-like macrophages dominated: 78.5 percent in inflammatory cardiomyopathy, 54.5 percent in ischaemic cardiomyopathy and 53.2 percent in dilated cardiomyopathy. M2-like macrophages also increased, reaching roughly 21 to 23 percent, but never matched the proinflammatory surge. The resulting M1-to-M2 ratio, a measure of inflammatory balance, stood at 3.19 in inflammatory cardiomyopathy and around 2.5 to 2.6 in the other groups, compared with just 0.63 in controls, all differences statistically significant.

The pivotal finding emerged when the researchers correlated NETosis with macrophage polarisation. The percentage of M1-like macrophages correlated positively and significantly with the number of neutrophils undergoing NETosis, with a correlation coefficient of 0.79 for triple-positive citH3/MPO/CD66b cells and 0.68 for citH3/CD66b cells. In contrast, M2-like macrophages showed no meaningful association with NETosis, with coefficients near zero and non-significant p-values. Triple immunolabelling for citrullinated histone 3, tumour necrosis factor alpha and CD206 provided visual confirmation: NET-forming neutrophils were consistently surrounded by far more TNF-alpha-positive M1-like macrophages than CD206-positive M2-like cells.

What might this interplay mean mechanistically? Prior work offers intriguing clues. Co-culture experiments have shown that both M1- and M2-like macrophages can degrade NETs, with M1-like cells dominating the early phagocytic response and M2-like cells completing clearance later. Studies in acute pulmonary ischaemia-reperfusion injury have described a mutual feedback loop in which NETosis drives M1-like polarisation, which in turn promotes further NETosis. The authors suggest that in chronic heart failure this reciprocal interaction may create a positive feedback loop that sustains low-grade myocardial inflammation, a recognised hallmark of the disease. Alternatively, the M1 skewing could represent a compensatory attempt to clear excessive NETs, one that fails to suppress NET formation itself. The concurrent rise in M2-like macrophages, albeit more modest, may reflect involvement in clearing dead cardiomyocytes and contributing to fibrosis, given that the failing heart loses an estimated 20 percent of its cardiomyocytes each year in terminal stages.

The authors are careful to note that correlation does not establish causation, and that the observed associations may be consequences of chronic heart failure rather than drivers of it. The study’s limitations include the small number of patients, the differing aetiologies across groups and considerable interindividual variability. Nevertheless, the consistency of the findings across inflammatory, dilated and ischaemic forms of the disease, and the earlier observation that neutrophil and macrophage accumulation precedes overt heart failure in compensated hypertrophy, lend weight to the idea that this immune axis matters. Recent research also implicates extracellular vesicles released by injured cardiomyocytes in promoting neutrophil-driven inflammation and macrophage polarisation, suggesting multiple routes by which tissue damage could ignite the NETosis-macrophage circuit. If future studies confirm a causal role, inhibiting NETosis or restoring the balance between M1- and M2-like macrophages could become genuine therapeutic strategies for chronic heart failure, a condition that still lacks treatments targeting its inflammatory underpinnings. For now, the study provides a rigorous anatomical and molecular map of that circuit in human tissue, and a clear hypothesis for the next generation of experiments.

Subject of Research: The association between neutrophil extracellular trap formation and proinflammatory macrophage polarisation in human heart failure

Article Title: Increased NETosis in Patients With Heart Failure Is Associated With Macrophage Activation Towards a Proinflammatory Phenotype

Article References: Kostin, S., Cabrera‐Fuentes, H. A., Richter, M., Krizanic, F., Ritter, O., Boisvert, W. A., Preissner, K. T., Kelesidis, T., Siasos, G., & Pagonas, N. (2026). Increased NETosis in Patients With Heart Failure Is Associated With Macrophage Activation Towards a Proinflammatory Phenotype. Journal of Cellular and Molecular Medicine, 30(17), Article e71306. https://doi.org/10.1111/jcmm.71306

Image Credits: AI Generated

DOI: 10.1111/jcmm.71306

Keywords: heart failure, NETosis, neutrophils, macrophages, M1 polarisation, myocardial inflammation, citrullinated histone 3, myeloperoxidase, cardiac remodelling, innate immunity, cardiomyopathy, immunohistochemistry

Cite Scienmag News

Kristina Jarvis. (September 24, 2026). Neutrophil Traps and Inflammatory Macrophages Team Up in Failing Hearts. Scienmag. https://scienmag.com/neutrophil-traps-and-inflammatory-macrophages-team-up-in-failing-hearts/

Kristina Jarvis. "Neutrophil Traps and Inflammatory Macrophages Team Up in Failing Hearts." Scienmag, 24 September 2026, https://scienmag.com/neutrophil-traps-and-inflammatory-macrophages-team-up-in-failing-hearts/. Accessed 24 September 2026.

Kristina Jarvis. "Neutrophil Traps and Inflammatory Macrophages Team Up in Failing Hearts." Scienmag. September 24, 2026. https://scienmag.com/neutrophil-traps-and-inflammatory-macrophages-team-up-in-failing-hearts/

Tags: cardiac remodellingcardiomyopathycellular mechanisms of heart tissue inflammationcitrullinated histone 3heart failureimmune cell interactions in cardiac tissueimmune mechanisms of chronic heart diseaseimmune-targeted therapies for heart failureimmunohistochemistryinflammation in myocardiuminnate immune response in cardiac failureinnate immunityM1 polarisationmacrophage polarization in heart failuremacrophagesmyeloperoxidasemyocardial inflammationNETosisNETosis in cardiovascular pathologyneutrophil and macrophage crosstalk in myocardiumNeutrophil extracellular traps in heart failureneutrophilsproinflammatory macrophages in failing heartsrole of neutrophils in heart disease
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