Search bioRxiv⌕ Search

Biology subjects

Kutschke, W.

Publications and source records attributed to Kutschke, W..

3 recordsLinked to original sources

Activation of developmental transcription factors using RNA technology promotes heart repair

Ischemic injury and adverse post-infarction myocardial remodeling are major causes of heart failure. We previously reported that microRNA (miR)-200c inhibition in murine embryos increased cardiogenic transcription factors (TFs) Tbx5, Gata4, and Mef2c to activate an immature cardiomyocyte cell state, suggesting miR-200 inhibition as a therapy for cardiac repair. We performed permanent ligation of the left anterior descending artery (a severe myocardial infarct, MI) on PMIS-miR-200c (inhibition of miR-200c; PMIS-C), PMIS-A (inhibition of miR-200a) and wildtype adult mice. Echocardiographic left ventricular (LV) ejection fraction (EF) at 3 WPI (weeks post-injury) was 22% {+/-} 4.31% (WT) but increased to 56% {+/-} 4.25% (PMIS-C) (p [≤] 0.0001). Post-infarction LV chamber dilation was reversed in PMIS-C mice compared to WT, and trichrome staining showed a decrease in fibrosis 3 WPI. By 9 WPI, PMIS-C heart function was like that of WT mice before injury. Tbx5, Gata4, Mef2c, and Isl-1 were increased after MI in PMIS-C hearts. PMIS-C mice recover cardiac function and reverse ischemic pathology of acute cardiac injury in adult mice. Inhibition of miR-200c activates several important pathways in heart development and repair mechanisms after an MI in adult hearts. The PMIS-miR-200c transgenic mice demonstrate an important role for miR-200c in regulating heart repair after ischemic injury. Novelty and SignificanceO_ST_ABSWhat is known?C_ST_ABS*The microRNA-200 (miR-200) family targets several heart factors in vitro. *miR-200c inhibition was shown to protect cardiomyocytes in a myocardial ischemia-reperfusion injury, myocardial cellular model. *miR-200 may play a role in cardiovascular fibrosis, however there are no in vivo reports of the role miR-200 plays in heart repair. What New Information Does This Article Contribute?*PMIS-miR-200c transgenic mice reveal a role for miR-200c inhibition in rapid repair of the heart after a myocardial infarct (MI). After an MI, miR-200c expression increases, to levels observed during early heart development. *Inhibition of miR-200c allows for expression of Tbx5, Gata4, Pitx2, Mef2c, Yap, Nppa and Sox5 factors to repair the heart after ischemic injury. *PMIS-miR-200c mice have increased cardiomyocyte proliferation and reduced cardiac fibroblasts resulting in decreased fibrosis. *Heart function in PMIS-miR-200c mice is significantly restored 3-weeks post-MI. While microRNAs have been extensively studied in heart development and ischemic injury, little is known about the miR-200 family in the cardiovascular system. In other cell types and systems, miR-200 is upregulated under oxidative stress and hypoxia. miR-200c targets Zeb1, eNOS, Sirt1 and Fox01 to regulate cell growth and arrest, apoptosis and senescence in other tissues. miR-200 members are increased in response to ischemia, but this has not been evaluated in the heart. We show a direct effect of miR-200c inhibition and decreased fibrosis in the MI heart. The miR-200 family targets stem cell factors such as Sox2, Klf4, and Bmi1 and our recent sn-RNA multiomics analyses of PMIS-miR-200c mice revealed de-differentiated or immature cardiomyocytes. Thus, inhibition of miR-200c reactivates transcription factors after an MI, important for cardiomyocyte renewal. This research demonstrates how inhibition of miR-200 regulates cardiac function after an MI.

developmental biology↗

Genetic Deletion of ASIC3 Alters Left Ventricular Remodeling and Autonomic Function After Myocardial Infarction in Mice

Chronic overactivation of neurohormonal systems is the principal driver of adverse cardiac remodeling following myocardial infarction (MI). Recent data suggest that ablating cardiac afferent neurons in rats attenuates left ventricular (LV) remodeling following MI by blocking this overactivation. Our lab has shown that acid-sensing ion channels (ASICs) are highly expressed in cardiac afferents and may sense myocardial acidosis. We hypothesized that genetic deletion of ASICs might abrogate disadvantageous remodeling after MI by disrupting afferent signaling pathways otherwise resulting in overactivation of neurohormonal responses. To test this hypothesis, we induced MI by coronary artery ligation in wild type (WT) and ASIC3-/- mice and assessed cardiac remodeling by serial echocardiography. We found that ASIC3-/- mice had less LV dilation relative to MI size, increased LV mass, and increased stroke volume compared to WT mice after MI. To investigate a potential role of the autonomic nervous system, we measured renal and splanchnic sympathetic nerve activity, heart rate and systolic blood pressure variability (sBPV), and hemodynamic responses to atropine and propranolol. In addition, we assessed baroreceptor-heart rate and baroreceptor-renal sympathetic nerve activity (RSNA) reflex function. Following MI, ASIC3-/- mice had lower baroreceptor-RSNA reflex sensitivity than WT mice, associated with elevated sBPV. Importantly, sBPV correlated significantly with post-MI changes in LV mass in ASIC3-/- but not WT mice. Our data shows that ASIC3 plays an important role in cardiac remodeling after MI potentially via modulation of baroreflex sensitivity and sBPV. ASIC3 may be further investigated as a potential therapeutic target in heart failure.

physiology↗

SUMOylation of the Cardiac Sodium Channel NaV1.5 Modifies Inward Current and Cardiac Excitability

BackgroundDecreased peak sodium current (INa) and increased late sodium current (INa,L), through the cardiac sodium channel NaV1.5 encoded by SCN5A, cause arrhythmias. Many NaV1.5 post-translational modifications have been reported by us and others. A recent report concluded that acute hypoxia increases INa,L by increasing a Small Ubiquitin-like MOdifier (SUMOylation) at K442-NaV1.5. ObjectiveTo determine whether and by what mechanisms SUMOylation alters INa, INa,L and cardiac electrophysiology. MethodsSUMOylation of NaV1.5 was detected by immunoprecipitation and immunoblotting. INa was measured by patch clamp with/without SUMO1 overexpression in HEK293 cells expressing wild type (WT) or K442R-NaV1.5 and in neonatal rat cardiac myocytes (NRCMs). SUMOylation effects were studied in vivo by electrocardiograms and ambulatory telemetry using Scn5a heterozygous knockout (SCN5A+/-) mice and the de-SUMOylating protein SENP2 (AAV9-SENP2) or the SUMOylation inhibitor anacardic acid. NaV1.5 trafficking was detected by immunofluorescence. ResultsNaV1.5 was SUMOylated in HEK293 cells, NRCMs and human heart tissue. HyperSUMOylation at NaV1.5-K442 increased INa in NRCMs and in HEK cells overexpressing WT but not K442R-Nav1.5. SUMOylation did not alter other channel properties including INa,L. AAV9-SENP2 or anacardic acid treatment of SCN5A+/- mice decreased INa, prolonged QRS duration, and produced heart block and ventricular arrhythmias. SUMO1 overexpression enhanced membrane localization of NaV1.5. ConclusionSUMOylation of K442-Nav1.5 increases peak INa without changing INa,L, at least in part by altering membrane abundance. Our findings do not support SUMOylation as a mechanism for changes in INa,L. Nav1.5 SUMOylation may modify arrhythmic risk in disease states and represents a potential target for pharmacological manipulation.

physiology↗