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Lee, D. I.

Publications and source records attributed to Lee, D. I..

3 recordsLinked to original sources

Splicing Factor SF3B2 Regulates Cardiomyocyte Calcium Handling Through Alternative Splicing of Cardiac Ion Channel Genes

BackgroundAlternative splicing is a critical determinant of protein diversity in the heart, where it drives the postnatal functional maturation of cardiomyocytes and specifies the ion-channel and calcium-handling isoforms required for mature contractile function; dysregulated splicing programs have in turn been implicated in cardiomyopathies and arrhythmias. However, the splicing regulators that control cardiomyocyte calcium handling remain largely unknown. ObjectiveWe systematically screened 276 splicing factor genes in human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) to identify regulators of calcium handling, and we selected SF3B2, a core U2 snRNP spliceosome component, for detailed follow-up based on complex-level enrichment and prior identification by Murphy et al. 2021 [1]. MethodsA high-throughput siRNA screen targeting 276 splicing factor genes was performed in hiPSC-CMs using 384-well calcium transient imaging. SF3B2 knockdown was followed by deep bulk RNA-seq analysis (n = 3 per group) for differential gene expression with DESeq2 and alternative splicing quantification with rMATS. RNA immunoprecipitation sequencing (RIP-seq) using an epitope-tagged SF3B2 construct was performed to identify direct mRNA binding targets of SF3B2. ResultsThe screen identified multiple U2 snRNP components, including SF3A2, SF3B1, and SF3B4--as regulators of calcium transient duration. SF3B2 was previously identified as a regulator of contractility in this screen [1], and the enrichment of its complex partners above the significance threshold in the current CTD75 analysis supported its selection for follow-up characterization. SF3B2 knockdown resulted in 2,683 differentially expressed genes (adjusted p < 0.05), with downregulated genes enriched in cell cycle and DNA replication pathways. Alternative splicing analysis revealed significant changes across all five rMATS event types in 36 genes within the cardiac muscle cell action potential involved in contraction gene ontology term (GO:0086002), including calcium channel (CACNA1C, CACNA1D, CACNA2D1), potassium channel (KCNH2, KCNQ1), and sodium channel (SCN5A) genes, although the large number of affected genes is consistent with broad spliceosomal perturbation and a formal enrichment test would be needed to determine whether cardiac action potential genes are preferentially affected. Integration of RIP-seq data (597 SF3B2-enriched transcripts, FDR < 0.05) with splicing analysis identified CACNA2D1, which encodes an auxiliary subunit of L-type calcium channels, as both directly bound by SF3B2 and alternatively spliced upon knockdown. ConclusionThese findings identify SF3B2 as a regulator of cardiomyocyte calcium handling and suggest that SF3B2-dependent missplicing of CACNA2D1 may link core spliceosome function to the splicing programs underlying cardiomyocyte functional maturation. Significance StatementThis study provides the first systematic functional screen of splicing factors in cardiomyocyte calcium handling and identifies SF3B2, a U2 snRNP subunit, as a regulator of cardiac ion channel splicing. Transcriptomic, splicing, and RNA binding data converge on CACNA2D1, identifying a route by which a core splicing factor shapes cardiac contractility, extending cardiac splicing regulation beyond the accessory RBPs studied to date.

developmental biology↗

In Vivo Bioincubation Promotes Maturation of Human iPSC-Derived Cardiomyocytes in Neonatal Rat and Pig Hearts

Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) hold great promise for cardiac regenerative medicine and disease modeling. However, hiPSC-CMs generated through conventional in vitro differentiation exhibit immature, fetal-like phenotypes. While in vivo bioincubation in neonatal rodent hearts promotes hiPSC-CM maturation toward adult-like phenotypes, studies in large animal models remain limited, particularly with detailed morphological characterization. In this study, we investigated bioincubation of fluorescently labeled hiPSC-CMs in both neonatal rat and pig hearts. Human iPSCs were differentiated into cardiomyocytes expressing GFP or RFP reporters and subsequently injected intramyocardially into neonatal rats (GFP-labeled) and pigs (RFP-labeled). After 4-8 weeks of bioincubation, fluorescent hiPSC-CMs were isolated using large-particle fluorescence-activated cell sorting (COPAS), which preserves cellular morphology of adult-like cardiomyocytes. Immunostaining for cardiac troponin T revealed well-organized sarcomeric structures in multinucleated hiPSC-CMs. Bioincubated hiPSC-CMs displayed rod-shaped morphology with binucleation, characteristic features of mature adult cardiomyocytes. Quantitative analysis demonstrated that bioincubated hiPSC-CMs from rat hearts exhibited sarcomere length and cell circularity comparable to native rat adult cardiomyocytes, though with higher intra-cellular variability in sarcomere organization. Histological examination confirmed successful engraftment of RFP-positive hiPSC-CMs within pig myocardium, with engrafted cells also displaying mature adult-like features. These findings provide critical proof-of-concept data for bioincubation in large animal models and support further investigation for disease modeling, drug screening, and regenerative cell therapies. SIGNIFICANCE STATEMENTHuman induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) offer tremendous potential for cardiac disease modeling and regenerative therapies, but their clinical application is limited by their immature characteristics. Here we show that in vivo bioincubation in neonatal rat hearts enables hiPSC-CMs to achieve structural maturity, exhibiting features of adult cardiomyocytes, including organized sarcomeres, rod-shaped morphology, and multinucleation. We further provided proof-of-concept evidence for engraftment in neonatal pig hearts for maturation, supporting feasibility in large animal models. The use of large-particle cell sorting enables recovery of intact, adult-sized cardiomyocytes for subsequent analysis. These findings establish a practical and scalable platform for generating structurally mature human cardiomyocytes through in vivo bioincubation.

developmental biology↗

Cell type-specific associations with Alzheimer's Disease conserved across racial and ethnic groups

Genomic studies at single-cell resolution have implicated multiple cell types associated with clinical and pathological traits in Alzheimers Disease (AD), but have not examined common features across broad, multi-ethnic populations, and across multiple regions. To bridge this gap, we performed single-nucleus RNA-seq and ATAC-seq profiling of cortical and subcortical brain regions from post-mortem samples across Non-Latin White, African American, and Latin donors (the latter of any race). Using discrete and continuous dissection of molecular programs, we elucidate cell-type-specific glial and neuronal signatures associated with AD across multiple population groups. Notably, we found that multiple microglial (GPNMB+, CD74+, and CR1+ subgroups) and astrocyte (SERPINH1+ and WIF1+ subgroups) signatures are associated with worse clinical and pathological phenotypes across all three population groups. We also report continuous gene expression factors in oligodendrocytes that are not captured by discrete clusters, yet still show strong associations with disease phenotypes. Finally, we observe these discrete cellular identities and continuous gene programs separate cognitively impaired donors into 6 molecularly distinct subgroups that span racial and ethnic population groups. Overall, our study identifies key cell types and gene programs implicated in AD that are shared across population groups, and provides an initial data set that underscores how representative sampling can capture conserved signatures as well as disease heterogeneity, leading to better prioritization of key cell types for further investigation.

neuroscience↗