Cardiovascular diseases are the leading cause of morbidity and mortality worldwide, underscoring the urgent need for novel therapeutic targets and strategies. The kinase MARK4 (MAP (microtubule-associated proteins)/microtubule affinity-regulating kinase 4) regulates microtubule-associated proteins pivotal for cell polarity, protein stability, and intracellular signaling. Animal models of heart failure revealed elevated MARK4 levels, which correlated with impaired cardiac contractility. However, the involvement of MARK4 and its potential as a molecular drug target has not yet been explored in the myocardium of cardiovascular patients. We investigated the MARK4 mRNA expression in human myocardial biopsies of 152 high-risk cardiovascular patients undergoing cardiac surgery. Comprehensive echocardiography as well as testing for sleep-disordered breathing (SDB), a critical comorbidity in heart failure, were assessed preoperatively. We observed a substantial upregulation of myocardial MARK4 expression in patients with impaired cardiac contractility, resulting in an inverse correlation with the left ventricular ejection fraction. Myocardial MARK4 expression also correlated with echocardiographic E/e’, a central parameter of diastolic dysfunction. Mechanistically, our analyses revealed that MARK4 expression increases in SDB and under hypoxic conditions, as evidenced by significant correlations between myocardial MARK4 expression and factors like mean oxygen saturation, time with oxygen saturation below 90%, and the oxygen desaturation index. Multivariable regression analysis revealed that both left ventricular ejection fraction and mean oxygen saturation were independently associated with dysregulated MARK4 levels, even when controlling for important clinical covariables as potential confounders. Taken together, our findings demonstrate that MARK4 expression is highly increased in the myocardium of cardiovascular high-risk patients, suggesting it is a potential molecular target against cardiovascular diseases.
Heart failure and cardiovascular disease represent a significant burden on healthcare systems worldwide. Recent evidence associates an increased expression of the dual-specificity tyrosine phosphorylation-regulated kinase 1B (DYRK1B) with an impaired cardiac function in mice. However, there remains a paucity of data on myocardial DYRK1B expression in patients with cardiovascular disease in the context of other comorbidities. In our study, we examined DYRK1B mRNA expression in human right atrial appendage biopsies from 159 patients undergoing elective coronary artery bypass surgery. Each patient was tested for sleep-disordered breathing the night prior to surgery. In this large representative study cohort with cardiovascular high-risk patients, we found that an impaired cardiac function as well as sleep-disordered breathing (SDB), including various oxidative stress parameters, were associated with an increased myocardial DYRK1B expression. A multivariate regression analysis revealed left ventricular ejection fraction and the presence of SDB as significant predictors of the myocardial DYRK1B expression independent of other clinical covariates. Based on these findings, DYRK1B represents a promising molecular target in patients with heart failure and reduced ejection fraction as well in patients with sleep-disordered breathing.
Heart failure with preserved ejection fraction (HFpEF) constitutes approximately half of all patients with heart failure and causes mortality similar to heart failure with reduced ejection fraction [1]. HFpEF is highly relevant as novel evidence-based therapies emerge but treatment options remain limited [1]. Diastolic dysfunction is a hallmark of HFpEF and is also very common in up to 80% of high-risk cardiovascular patients undergoing cardiac surgery [2]. Even without overt HFpEF, echocardiographic diastolic dysfunction is independently associated with increased mortality [3]. Another important characteristic of HFpEF is the frequent presence of comorbidities with one of the most important being sleep-disordered breathing (SDB). SDB affects over one billion patients in the general population and is highly prevalent in cardiovascular high-risk patients, which underscores its high socio-economic relevance [4]. Footnotes This manuscript has recently been accepted for publication in the European Respiratory Journal . It is published here in its accepted form prior to copyediting and typesetting by our production team. After these production processes are complete and the authors have approved the resulting proofs, the article will move to the latest issue of the ERJ online. Please open or download the PDF to view this article. Conflict of interest: MA received honoraria from ResMed, Philips Respironics, Inspire and Zoll and grant supports from Philips Respironics, ResMed Foundation, and ResMed. Conflict of interest: The other authors declare no conflict of interest.
Cardiovascular diseases are the leading cause of morbidity and mortality worldwide, highlighting the high socioeconomic impact. Current treatment strategies like compound-based drugs or surgeries are often limited. On the one hand, systemic administration of substances is frequently associated with adverse side effects; on the other hand, they typically provide only short-time effects requiring daily intake. Thus, new therapeutic approaches and concepts are urgently needed. The advent of CRISPR-Cas9 genome editing offers great promise for the correction of disease-causing hereditary mutations. As such mutations are often very rare, gene editing strategies to correct them are not broadly applicable to many patients. Notably, there is recent evidence that gene editing technology can also be deployed to disrupt common pathogenic signaling cascades in a targeted, specific, and efficient manner, which offers a more generalizable approach. However, several challenges remain to be addressed ranging from the optimization of the editing strategy itself to a suitable delivery strategy up to potential immune responses to the editing components. This review article discusses important CRISPR-Cas9-based gene editing approaches with their advantages and drawbacks and outlines opportunities in their application for treatment of cardiovascular diseases.
While your nightly symphony may be testing your loved one’s patience, it could also be giving your own heart reasons to complain [...]
BackgroundObstructive sleep apnea (OSA) has been linked to various pathologies, including arrhythmias such as atrial fibrillation. Specific treatment options for OSA are mainly limited to symptomatic approaches. We previously showed that increased production of reactive oxygen species (ROS) stimulates late sodium current through the voltage-dependent Na+ channels via Ca2+/calmodulin-dependent protein kinase IIδ (CaMKIIδ), thereby increasing the propensity for arrhythmias. However, the impact on atrial intracellular Na+ homeostasis has never been demonstrated. Moreover, the patients often exhibit a broad range of comorbidities, making it difficult to ascertain the effects of OSA alone.ObjectiveWe analyzed the effects of OSA on ROS production, cytosolic Na+ level, and rate of spontaneous arrhythmia in atrial cardiomyocytes isolated from an OSA mouse model free from comorbidities.MethodsOSA was induced in C57BL/6 wild-type and CaMKIIδ-knockout mice by polytetrafluorethylene (PTFE) injection into the tongue. After 8 weeks, their atrial cardiomyocytes were analyzed for cytosolic and mitochondrial ROS production via laser-scanning confocal microscopy. Quantifications of the cytosolic Na+ concentration and arrhythmia were performed by epifluorescence microscopy.ResultsPTFE treatment resulted in increased cytosolic and mitochondrial ROS production. Importantly, the cytosolic Na+ concentration was dramatically increased at various stimulation frequencies in the PTFE-treated mice, while the CaMKIIδ-knockout mice were protected. Accordingly, the rate of spontaneous Ca2+ release events increased in the wild-type PTFE mice while being impeded in the CaMKIIδ-knockout mice.ConclusionAtrial Na+ concentration and propensity for spontaneous Ca2+ release events were higher in an OSA mouse model in a CaMKIIδ-dependent manner, which could have therapeutic implications.
Cardiovascular diseases are the most common cause of worldwide morbidity and mortality, highlighting the necessity for advanced therapeutic strategies. Ca2+/calmodulin-dependent protein kinase IIδ (CaMKIIδ) is a prominent inducer of various cardiac disorders, which is mediated by 2 oxidation-sensitive methionine residues within the regulatory domain. We have previously shown that ablation of CaMKIIδ oxidation by CRISPR-Cas9 base editing enables the heart to recover function from otherwise severe damage following ischemia/reperfusion (IR) injury. Here, we extended this therapeutic concept toward potential clinical translation. We generated a humanized CAMK2D knockin mouse model in which the genomic sequence encoding the entire regulatory domain was replaced with the human sequence. This enabled comparison and optimization of two different editing strategies for the human genome in mice. To edit CAMK2D in vivo, we packaged the optimized editing components into an engineered myotropic adeno-associated virus (MyoAAV 2A), which enabled efficient delivery at a very low AAV dose into the humanized mice at the time of IR injury. CAMK2D-edited mice recovered cardiac function, showed improved exercise performance, and were protected from myocardial fibrosis, which was otherwise observed in injured control mice after IR. Our findings identify a potentially effective strategy for cardioprotection in response to oxidative damage.
AIMS:Heart failure with preserved ejection fraction (HFpEF) causes substantial morbidity and mortality. Importantly, atrial remodelling and atrial fibrillation are frequently observed in HFpEF. Sodium-glucose cotransporter 2 inhibitors (SGLT2i) have recently been shown to improve clinical outcomes in HFpEF, and post-hoc analyses suggest atrial anti-arrhythmic effects. We tested if isolated human atrial cardiomyocytes from patients with HFpEF exhibit an increased Na influx, which is known to cause atrial arrhythmias, and if that is responsive to treatment with the SGTL2i empagliflozin. METHODS AND RESULTS:Cardiomyocytes were isolated from atrial biopsies of 124 patients (82 with HFpEF) undergoing elective cardiac surgery. Na influx was measured with the Na-dye Asante Natrium Green-2 AM (ANG-2). Compared to patients without heart failure (NF), Na influx was doubled in HFpEF patients (NF vs. HFpEF: 0.21 ± 0.02 vs. 0.38 ± 0.04 mmol/L/min (N = 7 vs. 18); P = 0.0078). Moreover, late INa (measured via whole-cell patch clamp) was significantly increased in HFpEF compared to NF. Western blot and HDAC4 pulldown assay indicated a significant increase in CaMKII expression, CaMKII autophosphorylation, CaMKII activity, and CaMKII-dependent NaV1.5 phosphorylation in HFpEF compared to NF, whereas NaV1.5 protein and mRNA abundance remained unchanged. Consistently, increased Na influx was significantly reduced by treatment not only with the CaMKII inhibitor autocamtide-2-related inhibitory peptide (AIP), late INa inhibitor tetrodotoxin (TTX) but also with sodium/hydrogen exchanger 1 (NHE1) inhibitor cariporide. Importantly, empagliflozin abolished both increased Na influx and late INa in HFpEF. Multivariate linear regression analysis, adjusting for important clinical confounders, revealed HFpEF to be an independent predictor for changes in Na handling in atrial cardiomyocytes. CONCLUSION:We show for the first time increased Na influx in human atrial cardiomyocytes from HFpEF patients, partly due to increased late INa and enhanced NHE1-mediated Na influx. Empagliflozin inhibits Na influx and late INa, which could contribute to anti-arrhythmic effects in patients with HFpEF.
Abstract Background Emerging evidence is linking sleep-disordered breathing (SDB) to diastolic dysfunction. SDB-induced hypoxia may stimulate the development of cardiac fibrosis which then causes diastolic dysfunction. We investigated the association between SDB and myocardial collagen and PDGF mRNA levels and how collagen mRNA levels are linked to parameters of diastolic dysfunction. Methods RA biopsies were collected from 31 patients undergoing elective coronary artery bypass grafting in the prospective observational study CONSIDER-AF. Tissue mRNA levels of collagen type I (Col1A), PDGFα, and PDGFβ were quantified using real-time qPCR on ViiA 7 real-time PCR system. NT-pro-BNP levels were measured in the serum via ELISA blots. The apnea-hypopnea-index (AHI) was registered in portable SDB-monitoring. Echocardiography was performed to assess diastolic function. Results First, we investigated an association of SDB and cardiac fibrosis. AHI was correlated with tissue mRNA levels of Col3a (p = 0.0239, Fig A), PDGFα (p = 0.0414, Fig B), and PDGFβ (p = 0.0024, Fig C). Then, we investigated an association between cardiac fibrosis and diastolic dysfunction. Tissue mRNA levels of Col3A were inversely correlated with lateral (p = 0.0196, Fig D) and septal E’ (p = 0.0006, Fig E) as a marker for diastolic relaxation. Higher ratios of E/E’mean were correlated with increased tissue mRNA levels of Col3A (p = 0.0368, Fig F). NT-pro-BNP which is a diagnostic criterion for heart failure with preserved ejection fraction was correlated with Col3 levels (p = 0.0247, Fig G). Discussion: Our findings indicate that SDB is linked to fibrosis which is associated with diastolic dysfunction.
Abstract Background Ethanol consumption is the most important self-triggered cause of atrial fibrillation (AF). As abstinence often fails, alternative therapies are needed. CaMKII-activation upon ethanol with consecutive Ca2+-leak from the sarcoplasmic reticulum (SR) appears to be an important pathomechanism for ethanol-induced AF, but is not a druggable target. CaMKII has previously been shown to induce late sodium current (late INa) which could be proarrhythmogenic. Purpose We hypothesized that late INa might be involved in the development of AF upon acute ethanol exposition and that thus, the antianginal drug ranolazine (an inhibitor of late INa) could be repurposed to prevent ethanol-induced AF. Methods Acute effects of ethanol were investigated in vivo and in vitro as compared to vehicle. The occurrence of AF in vivo was assessed by programmed electrical stimulation in mice. To test the role of late INa, we used ranolazine in vivo and in vitro, as well as tetrodotoxin in vitro. We measured late INa and cytosolic sodium concentration, recorded stimulated action potentials and spontaneous delayed afterdepolarizations (DAD), and assessed SR Ca2+-leak by recording Ca2+-sparks. Mechanistically, we inhibited CaMKII using AIP and used NaV1.5 S571A mice to specifically investigate the role of CaMKII-mediated late INa. Human biopsies were acquired during surgery and were used for cell isolation or chunk incubation. Results Ethanol acutely induced late INa, sodium overload, SR Ca2+-leak and delayed afterdepolarizations in isolated atrial cardiomyocytes, as well as atrial fibrillation in vivo (10 of 10 mice). All of these cellular ethanol effects were prevented by pharmacologic inhibition of late INa. Importantly, ranolazine prevented the development of AF upon ethanol exposure in vivo. Mechanistically, CaMKII-activation and, accordingly, CaMKII-dependent NaV1.5 phosphorylation (S571) were increased by ethanol exposure. Indeed, the phosphoresistant NaV1.5 S571A mutation prevented late INa, SR Ca2+-leak and in vivo AF upon ethanol, demonstrating a critical role of CaMKII-mediated NaV1.5 phosphorylation for acute ethanol effects. Conclusion We show that ethanol acutely induces late INa upstream of arrhythmogenic SR Ca2+-leak and delayed afterdepolarizations, dependent on NaV1.5 S571 phosphorylation, leading to atrial fibrillation in vivo. Importantly, these effects as well as AF in vivo can be prevented using the late INa inhibitor ranolazine. We suggest that this antianginal drug could be repurposed to prevent ethanol-induced AF.Late INa (Patch-Clamp)In vivo AF (programmed stimulation)
Background Obesity represents a major risk factor for the development of insulin resistance and T2D but the polygenic risk factors promoting obesity still remain to be identified. We conducted linkage analyses in a backcross population generated with T2D- prone New Zealand Obese (NZO) and lean C3HeB/FeJ mice and detected a quantitative trait locus on chromosome 4 (Nbw4) that conferred protection from high-fat diet (HFD)-induced obesity. The aim of the study is to identify the underlying genetic variants and to assess their molecular functions in energy metabolism.
CRISPR-Cas9 gene editing is emerging as a prospective therapy for genomic mutations. However, current editing approaches are directed primarily toward relatively small cohorts of patients with specific mutations. Here, we describe a cardioprotective strategy potentially applicable to a broad range of patients with heart disease. We used base editing to ablate the oxidative activation sites of CaMKIIδ, a primary driver of cardiac disease. We show in cardiomyocytes derived from human induced pluripotent stem cells that editing the CaMKIIδ gene to eliminate oxidation-sensitive methionine residues confers protection from ischemia/reperfusion (IR) injury. Moreover, CaMKIIδ editing in mice at the time of IR enables the heart to recover function from otherwise severe damage. CaMKIIδ gene editing may thus represent a permanent and advanced strategy for heart disease therapy.
Background and aims Individual susceptibility for type 2 diabetes is strongly determined by genetic variants, many of them still unknown. Crossbreeding of the diabetes-susceptible NZO strain with mice from the lean, diabetes-resistant 129/P2 strain revealed a novel diabetes risk locus (QTL) on chromosome 4 (Nbg4) linked to elevated blood glucose, plasma insulin and liver weight. Our aim is to identify the causal genes for Nbg4 and their molecular function.
Left ventricular contractile dysfunction and arrhythmias frequently occur in patients with sleep-disordered breathing (SDB). The CaMKII-dependent dysregulation of cellular Ca homeostasis has recently been described in SDB patients, but these studies only partly explain the mechanism and are limited by the patients' heterogeneity. Here, we analyzed contractile function and Ca homeostasis in a mouse model of obstructive sleep apnea (OSA) that is not limited by confounding comorbidities. OSA was induced by artificial tongue enlargement with polytetrafluorethylene (PTFE) injection into the tongue of wildtype mice and mice with a genetic ablation of the oxidative activation sites of CaMKII (MMVV knock-in). After eight weeks, cardiac function was assessed with echocardiography. Reactive oxygen species (ROS) and Ca transients were measured using confocal and epifluorescence microscopy, respectively. Wildtype PTFE mice exhibited an impaired ejection fraction, while MMVV PTFE mice were fully protected. As expected, isolated cardiomyocytes from PTFE mice showed increased ROS production. We further observed decreased levels of steady-state Ca transients, decreased levels of caffeine-induced Ca transients, and increased pro-arrhythmic activity (defined as deviations from the diastolic Ca baseline) only in wildtype but not in MMVV PTFE mice. In summary, in the absence of any comorbidities, OSA was associated with contractile dysfunction and pro-arrhythmic activity and the inhibition of the oxidative activation of CaMKII conveyed cardioprotection, which may have therapeutic implications.
BACKGROUND: Cardiovascular diseases are the main cause of worldwide morbidity and mortality, highlighting the need for new therapeutic strategies. Autophosphorylation and subsequent overactivation of the cardiac stress-responsive enzyme CaMKIIδ (Ca 2+ /calmodulin-dependent protein kinase IIδ) serves as a central driver of multiple cardiac disorders. METHODS: To develop a comprehensive therapy for heart failure, we used CRISPR-Cas9 adenine base editing to ablate the autophosphorylation site of CaMKIIδ. We generated mice harboring a phospho-resistant CaMKIIδ mutation in the germline and subjected these mice to severe transverse aortic constriction, a model for heart failure. Cardiac function, transcriptional changes, apoptosis, and fibrosis were assessed by echocardiography, RNA sequencing, terminal deoxynucleotidyl transferase dUTP nick end labeling staining, and standard histology, respectively. Specificity toward CaMKIIδ gene editing was assessed using deep amplicon sequencing. Cellular Ca 2+ homeostasis was analyzed using epifluorescence microscopy in Fura-2–loaded cardiomyocytes. RESULTS: Within 2 weeks after severe transverse aortic constriction surgery, 65% of all wild-type mice died, and the surviving mice showed dramatically impaired cardiac function. In contrast to wild-type mice, CaMKIIδ phospho-resistant gene-edited mice showed a mortality rate of only 11% and exhibited substantially improved cardiac function after severe transverse aortic constriction. Moreover, CaMKIIδ phospho-resistant mice were protected from heart failure–related aberrant changes in cardiac gene expression, myocardial apoptosis, and subsequent fibrosis, which were observed in wild-type mice after severe transverse aortic constriction. On the basis of identical mouse and human genome sequences encoding the autophosphorylation site of CaMKIIδ , we deployed the same editing strategy to modify this pathogenic site in human induced pluripotent stem cells. It is notable that we detected a >2000-fold increased specificity for editing of CaMKIIδ compared with other CaMKII isoforms, which is an important safety feature. While wild-type cardiomyocytes showed impaired Ca 2+ transients and an increased frequency of arrhythmias after chronic β-adrenergic stress, CaMKIIδ -edited cardiomyocytes were protected from these adverse responses. CONCLUSIONS: Ablation of CaMKIIδ autophosphorylation by adenine base editing may offer a potential broad-based therapeutic concept for human cardiac disease.
Heart failure with preserved ejection fraction (HFpEF) is emerging as a widespread disease with global socioeconomic impact. Patients with HFpEF show a dramatically increased morbidity and mortality, and, unfortunately, specific treatment options are limited. This is due to the various etiologies that promote HFpEF development. Indeed, cluster analyses with common HFpEF comorbidities revealed the existence of several HFpEF phenotypes. One especially frequent, yet underappreciated, comorbidity is sleep-disordered breathing (SDB), which is closely intertwined with the development and progression of the “obese HFpEF phenotype”. The following review article aims to provide an overview of the common HFpEF etiologies and phenotypes, especially in the context of SDB. As general HFpEF therapies are often not successful, patient- and phenotype-individualized therapeutic strategies are warranted. Therefore, for the “obese HFpEF phenotype”, a better understanding of the mechanistic parallels between both HFpEF and SDB is required, which may help to identify potential phenotype-individualized therapeutic strategies. Novel technologies like single-cell transcriptomics or CRISPR-Cas9 gene editing further broaden the groundwork for deeper insights into pathomechanisms and precision medicine.
Abstract Background Structural remodelling, which includes increased fibrosis and collagen production, is a hallmark of atrial cardiomyopathy. Echocardiographic strain measurements allow detailed assessment of atrial function. We investigated the association between right atrial (RA) strain and collagen mRNA levels in human RA. Methods RA biopsies were collected from 21 patients undergoing elective coronary artery bypass grafting in the prospective observational study CONSIDER-AF. Tissue mRNA levels of collagen type I (Col1A) and of collagen type III (Col3A) were quantified using real-time qPCR on ViiA 7 real-time PCR system. Echocardiographic RA strain (reservoir, conduit, and booster function) was measured in the four-chamber view using the designated software Philips QLAB. We performed uni- and multivariable linear regression analysis to elucidate the relationship between RA strain and collagen mRNA levels. Results There was a strong correlation between RA reservoir strain and Col1A mRNA levels (p=0.0152, r²=0.2608, Fig A) and Col3A mRNA levels (p=0.0058, r²=0.3374, Fig B) as well as between RA conduit strain and Col1A mRNA levels (p=0.0301, r²=0.2141, Fig C) and Col3A mRNA levels (p=0.0232, r²=0.2430, Fig D). However, there was no correlation between RA booster function and Col1A levels (p=0.5572, Fig E) or Col3A levels (p=0.3426, Fig F). Multivariate regression analysis revealed that RA conduit and RA reservoir function are predictors for Col1A and Col3A mRNA levels independent from clinical covariates (age, sex, body-mass index, systolic blood pressure). Discussion Our findings show that RA strain measurements are associated with RA collagen mRNA levels in humans and therefore highlight the potential of strain analysis to identify structural remodelling in atrial cardiomyopathy.FigureTable