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Domeier, T. L.

Publications and source records attributed to Domeier, T. L..

3 recordsLinked to original sources

TRPV4-Expressing Tissue-Resident Macrophages Regulate the Function of Collecting Lymphatic Vessels via Thromboxane A2 Receptors in Lymphatic Muscle Cells

RationaleTRPV4 channels are critical regulators of blood vascular function and have been shown to be dysregulated in many disease conditions in association with inflammation and tissue fibrosis. These are key features in the pathophysiology of lymphatic system diseases, including lymphedema and lipedema; however, the role of TRPV4 channels in the lymphatic system remains largely unexplored. TRPV4 channels are calcium permeable, non-selective cation channels that are activated by diverse stimuli, including shear stress, stretch, temperature, and cell metabolites, which may regulate lymphatic contractile function. ObjectiveTo characterize the expression of TRPV4 channels in collecting lymphatic vessels and to determine the extent to which these channels regulate the contractile function of lymphatics. Methods and ResultsPressure myography on intact, isolated, and cannulated lymphatic vessels showed that pharmacological activation of TRPV4 channels with GSK1016790A (GSK101) led to contractile dysregulation. The response to GSK101 was multiphasic and included, 1) initial robust constriction that was sustained for [≥]1 minute and in some instances remained for [≥]4 minutes; and 2) subsequent vasodilation and partial or complete inhibition of lymphatic contractions associated with release of nitric oxide. The functional response to activation of TRPV4 channels displayed differences across lymphatics from four anatomical regions, but these differences were consistent across different species (mouse, rat, and non-human primate). Importantly, similar responses were observed following activation of TRPV4 channels in arterioles. The initial and sustained constriction was prevented with the COX inhibitor, indomethacin. We generated a controlled and spatially defined single-cell RNA sequencing (scRNAseq) dataset from intact and microdissected collecting lymphatic vessels. Our data uncovered a subset of macrophages displaying the highest expression of Trpv4 compared to other cell types within and surrounding the lymphatic vessel wall. These macrophages displayed a transcriptomic profile consistent with that of tissue-resident macrophages (TRMs), including differential expression of Lyve1, Cd163, Folr2, Mrc1, Ccl8, Apoe, Cd209f, Cd209d, and Cd209g; and at least half of these macrophages also expressed Timd4. This subset of macrophages also highly expressed Txa2s, which encodes the thromboxane A2 (TXA2) synthase. Inhibition of TXA2 receptors (TXA2Rs) prevented TRPV4-mediated contractile dysregulation. TXA2R activation on LMCs caused an increase in mobilization of calcium from intracellular stores through Ip3 receptors which promoted store operated calcium entry and vasoconstriction. ConclusionsClinical studies have linked cancer-related lymphedema with an increased infiltration of macrophages. While these macrophages have known anti-inflammatory and pro-lymphangiogenic roles, as well as promote tissue repair, our results point to detrimental effects to the pumping capacity of collecting lymphatic vessels mediated by activation of TRPV4 channels in macrophages. Pharmacological targeting of TRPV4 channels in LYVE1-expressing macrophages or pharmacological targeting of TXA2Rs may offer novel therapeutic strategies to improve lymphatic pumping function and lymph transport in lymphedema. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=101 SRC="FIGDIR/small/595189v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@1ce67fforg.highwire.dtl.DTLVardef@dd1beorg.highwire.dtl.DTLVardef@1454c78org.highwire.dtl.DTLVardef@9f76a1_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

Combined Right Ventricular Preload and Afterload Challenge Induces Contractile Dysfunction and Ventricular Arrhythmia in an Age-dependent Manner in Isolated Hearts of Dystrophin-deficient Mice

Duchenne muscular dystrophy (DMD) is an X-linked recessive myopathy due to mutations in the dystrophin gene. Diaphragmatic weakness in DMD causes restrictive lung disease and excessive afterload on the right ventricle (RV). Thus, RV dysfunction in DMD develops early in disease progression. Herein, we deliver a 30-minute sustained RV preload and afterload challenge to isolated hearts of wildtype (Wt) and dystrophic (mdx4CV) mice at both young (2-6 month) and middle-age (8-12 month). Young dystrophic hearts exhibited greater pressure development than wildtype under unloaded conditions but following RV preload/afterload challenge exhibited similar contractile function as wildtype. Following RV preload/afterload challenge, young dystrophic hearts had an increased incidence of ventricular arrhythmias compared to wildtype. Hearts of middle-aged wildtype and dystrophic mice had similar contractile function during unloaded conditions, yet, after RV preload/afterload challenge, hearts of middle-aged dystrophic mice had severe RV contractile dysfunction and ventricular arrhythmogenesis, including ventricular tachycardia. Following load challenge, young and middle-aged dystrophic hearts had greater damage, measured via tissue LDH release, than wildtype mice of similar age. Our data indicate complex age-dependent changes in RV function and arrhythmogenesis with load in dystrophin deficiency, highlighting the need to avoid sustained RV load to forestall RV dysfunction and arrhythmia.

physiology↗

Atrial arrhythmogenesis in ex vivo aged mouse hearts with hypokalemia and right atrial stretch

IntroductionAtrial Fibrillation (AF) and atrial flutter (AFL) are the two most common cardiac arrhythmias in the United States. While advanced age has been correlated to AF/AFL, the lack of an appropriate animal model has hindered progress on better understanding the pathophysiology of atrial arrhythmogenesis. Both hypokalemic conditions and hemodynamic stretch have been associated with atrial tachyarrhythmias in patient populations. The purpose of this study was to examine the incidence of atrial tachyarrhythmias in an ex vivo aging C57BL/6 mouse model following hypokalemia and stretch challenges. MethodsHearts were isolated with combined cannulation of the aorta and superior vena cava in a modified right-sided working heart perfusion technique. Isolated hearts of Aged (26-29 month) male (n=14) and female (n=14) mice were subjected to normokalemic and hypokalemic conditions {+/-} atrial preload elevation to 12 cmH20 to induce atrial stretch. Heart rate, right ventricular (RV) pressure development, and incidence of atrial tachyarrhythmias were monitored using a pressure catheter and intracardiac electrocardiogram. ResultsIn response to hypokalemia, there were no changes in mean heart rate, RV pressure development, or RV Rate-Pressure Product (Rate x RV peak pressure). Atrial tachyarrhythmias were not observed under baseline conditions, and only 1 of 8 hearts exhibited atrial tachycardia following the hypokalemia challenge. In response to atrial preload elevation, there was an increase in heart rate (P=0.0006 versus baseline) with no change in RV pressure development. RV Rate-Pressure Product was significantly elevated (P=0.013 versus baseline) with atrial preload due to the increase in heart rate. Atrial tachyarrhythmias were not observed under both baseline conditions and following atrial preload elevation. In response to the combined hypokalemia and preload challenges, there was an increase in heart rate (P=0.008 versus baseline) with no change in RV pressure development or RV Rate Pressure product. Atrial tachyarrhythmias were not observed under baseline conditions, yet after the combined challenges 50% of aged hearts exhibited atrial tachycardia or AF/AFL. During bouts of AF/AFL, the AF/AFL led to a variable ventricular response and concomitant contractile dysfunction in the form of variable RV pressure development. ConclusionEx vivo aged mouse hearts exhibit atrial tachyarrhythmias in response to combined hypokalemia and right atrial stretch conditions. The aged C57BL/6 mouse model is therefore useful for pre-clinical studies of atrial arrhythmogenesis.

biophysics↗