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Santiago, C. F.

Publications and source records attributed to Santiago, C. F..

2 recordsLinked to original sources

Proteo-transcriptomics and morphometrics of teleost cardiac cells define regulatory networks and exercise-induced cardiomyocyte hypertrophy and hyperplasia

Zebrafish and medaka are powerful cardiovascular models, yet cellular and molecular investigations of adult heart cells have been constrained by suboptimal dissociation and characterization methods. To overcome these barriers, we developed a physiological-temperature workflow that generates high-yield, viable single-cell suspensions for FACS, imaging, and low-input molecular profiling. Using transgenic fluorescent reporters, we consistently isolate [~]6,000 cardiomyocytes per adult zebrafish ventricle and [~]12,000 from medaka, preserving cellular, structural, and molecular integrity. Single-cell morphometrics revealed cardiomyocyte heterogeneity and demonstrated that swimming exercise induces both hypertrophy and hyperplasia, while ventricular injury triggers expansion of regenerative gata4 cardiomyocytes. We integrated proteomics and RNA-seq from FACS-purified cells to construct cell-type-specific proteo-transcriptomic atlases. Functional enrichment, transcription factor, and network analyses identified protein hubs and regulatory circuits defining cardiomyocyte and endothelial cell identity. Our platform delivers cell-type-resolved molecular datasets of adult teleost cardiac cells, establishing a systems-level resource for heart regeneration research, cardiovascular disease modeling, and drug discovery. TeaserA robust workflow for isolation, FACS, imaging, and multi-omics profiling of cardiomyocytes and cardiac endothelial cells in fish. HIGHLIGHTSO_LITemperature-optimized dissociation and standardized FACS enable high-yield isolation of viable cardiac cells. C_LIO_LISingle-cell imaging uncovers morphological heterogeneity in adult ventricular cardiomyocytes. C_LIO_LISustained exercise induces both hypertrophy and hyperplasia of zebrafish cardiomyocytes. C_LIO_LIProteo-transcriptomics defines core molecular programs and interaction networks in cardiomyocytes and endothelial cells. C_LI

systems biology↗

Location-Dependent Differences in Cardiac and Skeletal Muscle Dysfunction Associated With Truncating Titin (ttn.2) Variants

BackgroundTruncating variants (TTNtv) in the TTN gene, encoding the giant sarcomeric protein titin, cause a range of human cardiac and skeletal muscle disorders of varying penetrance and severity. The effects of variant location on clinical manifestations are incompletely understood. MethodsWe generated six zebrafish lines carrying tv in the ttn.2 gene at the Z-disk, I-band, A-band, and M-band titin regions. Expression of titin transcripts was evaluated using qPCR. Phenotype analysis was performed during embryonic development and in adult hearts. ResultsUsing location-specific primers, we found a significant reduction of Z-disk and I-band ttn.2 transcripts in all homozygous embryos but levels of A-band and M-band transcripts were reduced only in lines with truncations distal to the cronos promoter. Homozygous embryos uniformly died by 7-10 days post fertilization with marked impairment of cardiac morphology and function. Skeletal muscle motility and sarcomere organization were more disrupted in mutants with truncations distal to the cronos promoter compared to those proximal. The most C-terminal line (e232), which lacked only the titin kinase and M-band regions, differed from other lines, with homozygous embryos showing incorporation of truncated Ttn.2/Cronos protein and normal sarcomere assembly, but selective degradation of fast skeletal muscle sarcomeres. Heterozygous embryos were phenotypically indistinguishable from wild-type. High-frequency echocardiography in adult heterozygous fish showed reduced ventricular contraction under resting conditions in A-band mutants. Heterozygous Z-disk and I-band mutants had no significant baseline impairment but were unable to augment ventricular contraction in response to acute adrenaline exposure, indicating a lack of cardiac reserve. ConclusionsOur data suggest that cardiac and skeletal muscle dysfunction associated with truncating ttn.2 variants is influenced by age, variant location, and the amount of functional titin protein. The distinctive phenotype associated with distal C-terminal truncations may reflect different requirement for C-terminal titin for maintenance of fast, slow and cardiac muscle sarcomeres.

cell biology↗