
Abstract Background Dysmorphogenesis and multiple organ defects are well known in zebrafish (Danio rerio) embryos with T-box transcription factor 5 (tbx5) deficiencies, mimicking human Holt-Oram syndrome. Methods Using an oligonucleotide-based microarray analysis to study the expression of special genes in tbx5 morphants, we demonstrated that GH and some GH-related genes were markedly downregulated. Zebrafish embryos microinjected with tbx5-morpholino (MO) antisense RNA and mismatched antisense RNA in the 1-cell stage served as controls, while zebrafish embryos co-injected with exogenous growth hormone (GH) concomitant with tbx5-MO comprised the treatment group. Results The attenuating effects of GH in tbx5-MO knockdown embryos were quantified and observed at 24, 30, 48, 72, and 96 h post-fertilization. Though the understanding of mechanisms involving GH in the tbx5 functioning complex is limited, exogenous GH supplied to tbx5 knockdown zebrafish embryos is able to enhance the expression of downstream mediators in the GH and insulin-like growth factor (IGF)-1 pathway, including igf1, ghra, and ghrb, and signal transductors (erk1, akt2), and eventually to correct dysmorphogenesis in various organs including the heart and pectoral fins. Supplementary GH also reduced apoptosis as determined by a TUNEL assay and decreased the expression of apoptosis-related genes and proteins (bcl2 and bad) according to semiquantitative reverse-transcription polymerase chain reaction and immunohistochemical analysis, respectively, as well as improving cell cycle-related genes (p27 and cdk2) and cardiomyogenetic genes (amhc, vmhc, and cmlc2). Conclusions Based on our results, tbx5 knockdown causes a pseudo GH deficiency in zebrafish during early embryonic stages, and supplementation of exogenous GH can partially restore dysmorphogenesis, apoptosis, cell growth inhibition, and abnormal cardiomyogenesis in tbx5 knockdown zebrafish in a paracrine manner.
Heart Defects, Congenital, Endocrinology, Diabetes and Metabolism, Clinical Biochemistry, Embryonic Development, Apoptosis, Heart Septal Defects, Atrial, Morpholinos, Somatomedins, Paracrine Communication, Morphogenesis, Animals, Humans, Pharmacology (medical), Abnormalities, Multiple, RNA, Antisense, Upper Extremity Deformities, Congenital, Growth hormone, Molecular Biology, Zebrafish, Biochemistry, medical, Research, R, Gene Expression Regulation, Developmental, Heart, Cell Biology, Zebrafish Proteins, Growth Hormone, Embryogenesis, Medicine, tbx5, T-Box Domain Proteins, Lower Extremity Deformities, Congenital
Heart Defects, Congenital, Endocrinology, Diabetes and Metabolism, Clinical Biochemistry, Embryonic Development, Apoptosis, Heart Septal Defects, Atrial, Morpholinos, Somatomedins, Paracrine Communication, Morphogenesis, Animals, Humans, Pharmacology (medical), Abnormalities, Multiple, RNA, Antisense, Upper Extremity Deformities, Congenital, Growth hormone, Molecular Biology, Zebrafish, Biochemistry, medical, Research, R, Gene Expression Regulation, Developmental, Heart, Cell Biology, Zebrafish Proteins, Growth Hormone, Embryogenesis, Medicine, tbx5, T-Box Domain Proteins, Lower Extremity Deformities, Congenital
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