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Bezzerides, V. J.

Publications and source records attributed to Bezzerides, V. J..

6 recordsLinked to original sources

Dosage-sensitive RBFOX2 autoregulation promotes cardiomyocyte differentiation through transcriptome maturation

Haploinsufficiency of the RNA splicing regulator, RBFOX2, is linked to congenital heart disease (CHD), yet its pathogenic mechanisms remain unclear. Here, we demonstrate that RBFOX2 is essential for progressing cardiomyocyte (CM) differentiation by shifting exon usage profiles to more mature patterns in sarcomere, cytoskeletal, and focal adhesion genes, including alpha-actinin-2 (ACTN2). This maturation program is initiated by critical levels of RBFOX2 that facilitate autoregulatory splicing at mutually exclusive exons encoding early and late isoforms with distinct functional roles. In heterozygous CMs, autoregulation is disrupted, which skews isoform ratios and generates a dominant-negative product caused by exon co-inclusion. Finally, we demonstrate that overexpression of ACTN2 rescues heterozygous, but not null, phenotypes by restoring contractility, which triggers a mechanosensing feedback loop involving upregulation of RBFOX2 from the wildtype allele and transcriptome maturation. Our data suggest that decreased RBFOX2 dosage and autoregulation impair CM differentiation, contributing to CHD pathogenesis and heart failure susceptibility.

developmental biology↗

CaMKII Phosphorylation of RyR2 is Essential for Arrhythmia in CPVT

BackgroundGain of function variants (GOF) in the intracellular calcium (Ca2+) release channel RYR2 predominately underlie the inherited arrhythmogenic syndrome catecholaminergic polymorphic ventricular tachycardia (CPVT). Patients with CPVT are susceptible to life-threatening ventricular arrhythmias triggered by emotional or physical stress. Adrenergic stimulation activates calcium/calmodulin-dependent protein kinase II (CaMKII), which phosphorylates RYR2 on serine 2814 to enhance Ca2+ release. Here we assessed the in vivo requirement of this phosphorylation event to unmask the latent arrhythmic potential of CPVT-causing variants. MethodsUsing multiplex murine genomic engineering, we mutated the CaMKII phosphorylation site RYR2-S2814 site to alanine (S2814A) in conjunction with a novel CPVT GOF variant (RYR2-R4650I). We systematically interrogated the consequences of CaMKII phosphorylation site ablation on the same (cis) or opposite (trans) allele with the CPVT variant at multiple phenotypic levels. ResultsThe novel GOF variant Ryr2-R4650I conferred a risk of adrenergically inducible ventricular arrhythmia, including bi-directional ventricular tachycardia (BiVT). Ablation of the CaMKII RYR2-S2814 phosphorylation site on the same allele as the GOF variant completely abrogated inducible arrhythmia. In contrast, ablation of this site on the opposite allele did not significantly alter in frequency, type, or length of inducible ventricular tachycardia compared to animals heterozygous for the Ryr2-R4650I variant alone. Furthermore, allelic concordance of Ryr2-R4650I and Ryr2-S2814A did not inhibit adrenergically-induced enhancement of RYR2-dependent functions, including heart rate response, augmentation of cellular Ca2+ flux, or intracellular Ca2+ release. ConclusionsOur data strongly support the hypothesis that CaMKII phosphorylation of RYR2 at S2814 is necessary and sufficient to unmask the arrhythmogenic phenotype in CPVT. Furthermore, pro-arrhythmia caused by CaMKII-S2814 phosphorylation in CPVT is an intra-molecular event, with implications for therapeutic interventions.

physiology↗

CHD4 Interacts With TBX5 to Maintain the Gene Regulatory Network of Postnatal Atrial Cardiomyocytes

Atrial fibrillation (AF) is the most common sustained arrhythmia, affecting 59 million individuals worldwide. Impairment of atrial cardiomyocyte (aCM) gene regulatory mechanisms predisposes to atrial fibrillation. The transcription factor TBX5 is essential for normal atrial rhythm, and its inactivation causes loss of aCM enhancer accessibility, looping, and transcriptional identity. Here we investigated the mechanisms by which TBX5 regulates chromatin organization. We found that TBX5 recruits CHD4, a chromatin remodeling ATPase, to 33,170 genomic regions (TBX5-enhanced CHD4 sites). As a component of the NuRD complex, CHD4 functions to repress gene transcription. However, combined snRNA-seq and snATAC-seq of CHD4 knockout (KO) and control aCMs revealed that CHD4 has both gene activator and repressor functions. Genes repressed by CHD4 in aCMs included sarcomeric proteins from non-CM cell lineages. Genes activated by CHD4 in aCMs were characterized by TBX5-enhanced CHD4 recruitment, which enhanced chromatin accessibility and promoted the expression of aCM identity genes. This mechanism of TBX5 recruitment of CHD4 was critical for sinus rhythm because Chd4AKO mice had increased vulnerability to AF from electrical pacing and a fraction had spontaneous AF. Our findings reveal that CHD4 is essential for maintaining aCM gene expression, aCM identity, and atrial rhythm homeostasis.

genomics↗

Cardiac Applications of CRISPR/AAV-Mediated Precise Genome Editing

The ability to efficiently make precise genome edits in somatic tissues will have profound implications for gene therapy and basic science. CRISPR/Cas9 mediated homology-directed repair (HDR) is one approach that is commonly used to achieve precise and efficient editing in cultured cells. Previously, we developed a platform capable of delivering CRISPR/Cas9 gRNAs and donor templates via adeno-associated virus to induce HDR (CASAAV-HDR). We demonstrated that CASAAV-HDR is capable of creating precise genome edits in vivo within mouse cardiomyocytes at the neonatal and adult stages. Here, we report several applications of CASAAV-HDR in cardiomyocytes. First, we show the utility of CASAAV-HDR for disease modeling applications by using CASAAV-HDR to create and precisely tag two pathological variants of the titin gene observed in cardiomyopathy patients. We used this approach to monitor the cellular localization of the variants, resulting in mechanistic insights into their pathological functions. Next, we utilized CASAAV-HDR to create another mutation associated with human cardiomyopathy, arginine 14 deletion (R14Del) within the N-terminus of Phospholamban (PLN). We assessed the localization of PLN-R14Del and quantified cardiomyocyte phenotypes associated with cardiomyopathy, including cell morphology, activation of PLN via phosphorylation, and calcium handling. After demonstrating CASAAV-HDR utility for disease modeling we next tested its utility for functional genomics, by targeted genomic insertion of a library of enhancers for a massively parallel reporter assay (MPRA). We show that MPRAs with genomically integrated enhancers are feasible, and can yield superior assay sensitivity compared to tests of the same enhancers in an AAV/episomal context. Collectively, our study showcases multiple applications for in vivo precise editing of cardiomyocyte genomes via CASAAV-HDR.

genetics↗

Efficient and reproducible generation of human iPSC-derived cardiomyocytes using a stirred bioreactor

In the last decade human iPSC-derived cardiomyocytes (hiPSC-CMs) proved to be valuable for cardiac disease modeling and cardiac regeneration, yet challenges with scale, quality, inter-batch consistency, and cryopreservation remain, reducing experimental reproducibility and limiting clinical translation. Here, we report a robust cardiac differentiation protocol that uses Wnt modulation and a stirred suspension bioreactor to produce on average 124 million hiPSC-CMs with >90% purity using a variety of hiPSC lines (19 differentiations; 10 iPSC lines). After controlled freeze and thaw, bioreactor-derived CMs (bCMs) showed high viability (>90%), interbatch reproducibility in cellular morphology, function, drug response and ventricular identity, which was further supported by single cell transcriptomes. bCMs on microcontact printed substrates revealed a higher degree of sarcomere maturation and viability during long-term culture compared to monolayer-derived CMs (mCMs). Moreover, functional investigation of bCMs in 3D engineered heart tissues showed earlier and stronger force production during long-term culture, and robust pacing capture up to 4 Hz when compared to mCMs. bCMs derived from this differentiation protocol will expand the applications of hiPSC-CMs by providing a reproducible, scalable, and resource efficient method to generate cardiac cells with well-characterized structural and functional properties superior to standard mCMs.

cell biology↗

Dysregulation of N-terminal acetylation causes cardiac arrhythmia and cardiomyopathy

BACKGROUNDN-terminal-acetyltransferases catalyze N-terminal acetylation (Nt-acetylation), an evolutionarily conserved co-translational modification. Nt-acetylation regulates diverse signaling pathways, yet little is known about its effects in the heart. To gain insights, we studied NAA10-related syndrome, in which mutations in NAA10, which catalyzes Nt-acetylation, causes severe QT prolongation, hypotonia, and neurodevelopmental delay. METHODSWe identified a missense variant in NAA10 (c.10C>A; p.R4S) that segregated with severe QT prolongation, arrhythmia, cardiomyopathy, and sudden death in a large kindred. We developed patient-derived and genome-edited human induced pluripotent stem cell (iPSC) models and deeply phenotyped iPSC-derived cardiomyocytes (iPSC-CMs) to dissect the mechanisms underlying NAA10-mediated cardiomyocyte dysfunction. RESULTSThe NAA10-R4S mutation reduced enzymatic activity, decreased expression levels of NAA10/NAA15 proteins, and destabilized the NatA complex. In iPSC-CM models of NAA10 dysfunction, dysregulation of the late sodium and slow rectifying potassium currents caused severe repolarization abnormalities, consistent with clinical QT prolongation and increased risk for arrhythmogenesis. Engineered heart tissues generated from mutant NAA10 cell lines had significantly decreased contractile force and sarcomeric disorganization, consistent with the cardiomyopathic phenotype in the identified family members. Diastolic calcium levels were increased with corresponding alterations in calcium handling pathways. We identified small molecule and genetic therapies that reversed the effects of NAA10 dysregulation of iPSC-CMs. CONCLUSIONSOur study defines novel roles of Nt-acetylation in cardiac ion channel regulation and delineates mechanisms underlying QT prolongation, arrhythmia, and cardiomyopathy caused by NAA10 dysfunction.

cell biology↗