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Van Wauwe, J.

Publications and source records attributed to Van Wauwe, J..

2 recordsLinked to original sources

Neutrophil Peptidylarginine Deiminase 4 is Essential for Detrimental Age-related Cardiac Remodeling and Dysfunction in Mice

AimsWe aimed to study the long-term effect of neutrophils on cardiac health during the process of natural aging. We hypothesized that neutrophil PAD4, via its role in neutrophil extracellular trap (NET) formation, is involved in myocardial remodeling and cardiac fibrosis development, resulting in turn in impaired cardiac function. Methods and resultsWe generated mice with deletion of Padi4, a NET-essential gene, under the neutrophil-specific promoter S100A8 (PAD4fl/flMRP8Cre+). These mice and their littermate controls were aged for two years (coinciding with approximately 70 years of age in humans; the age at which HF is the number one cause of hospitalization), after which cardiac function and remodeling were evaluated. We performed a comprehensive echocardiography analysis including both structural and functional parameter measurements. Deletion of PAD4 in neutrophils resulted in a protection against both systolic, and diastolic dysfunction. Interestingly, these mice showed protection against age induced fibrosis, detected as through the absence of cardiac collagen deposition. To explore this further, cardiac gene expression and plasma cytokine levels were evaluated. Here we saw a clear impact of PAD4-deficiency on cardiac neutrophil recruitment, with both cardiac genes as well as plasma cytokines involved in neutrophil recruitment being downregulated in aged PAD4fl/flMRP8Cre+ animals in comparison to littermate PAD4fl/fl controls, including decreased plasma levels of C-X-C ligand 1 (CXCL1). ConclusionOur data confirms neutrophil PAD4 involvement in heart failure progression by promoting cardiac remodeling, leading to cardiac dysfunction with old age. We saw that the deletion of PAD4 specifically in neutrophils had an influence on the CXCL1-CXCR2 axis, which is known to be involved in HF development. Translational perspectiveIn the developed world, an estimated 2% of the population lives with heart failure (HF). HF can be viewed as an upcoming pandemic, which is only expected to increase due to the aging of the global population. Therefore, research in HF development and progression are needed to establish new avenues for treatment and improved therapies. In our study, we were able to show the contribution of neutrophil PAD4 to HF pathogenesis, providing new supporting evidence for the involvement of NETs in detrimental cardiac remodeling.

physiology↗

Prdm16 and Notch functionally and physically interact during artery development

Proper arterial versus venous endothelial lineage identity is required to establish a hierarchical network of arteries and veins and prevent the occurrence of life-threatening arteriovenous malformations. The molecular mechanisms that govern arteriovenous lineage specification remain however incompletely understood. Here, we demonstrate that the transcription factor Prdm16 is expressed in arterial but not venous endothelial cells (ECs) from the earliest stages of development, where it actively promotes arterial EC identity by enhancing canonical Notch activity, while simultaneously suppressing the alternative venous cell fate. Concordantly, our results in zebrafish show that Prdm16 coordinates proper arterial development and arteriovenous lineage specification together with canonical Notch signaling, as combined loss of prdm16 and notch in zebrafish invariably leads to arteriovenous malformations (AVMs). Although the arterializing effect of Prdm16 in human ECs is dependent on the absolute levels of the cleaved intracellular domain of the Notch receptors (NICD), Prdm16 does not increase NICD levels per se. Rather, Prdm16 physically and functionally interacts with NICD to potentiate its effect. Prdm16 further finetunes Notch signaling and arterial development by complexing with the Notch downstream effector Hey2, which regulates arterial lineage specification and development across species. Together, our data demonstrate that Prdm16 act as a rheostat for endothelial Notch activity and suggest that Prdm16 signaling may constitute a novel therapeutic target for AVMs.

developmental biology↗