An internal regulatory element controls troponin I gene expression.
Open Access
- 1 April 1989
- journal article
- research article
- Published by Taylor & Francis in Molecular and Cellular Biology
- Vol. 9 (4) , 1397-1405
- https://doi.org/10.1128/mcb.9.4.1397
Abstract
During skeletal myogenesis, approximately 20 contractile proteins and related gene products temporally accumulate as the cells fuse to form multinucleated muscle fibers. In most instances, the contractile protein genes are regulated transcriptionally, which suggests that a common molecular mechanism may coordinate the expression of this diverse and evolutionarily unrelated gene set. Recent studies have examined the muscle-specific cis-acting elements associated with numerous contractile protein genes. All of the identified regulatory elements are positioned in the 5'-flanking regions, usually within 1,500 base pairs of the transcription start site. Surprisingly, a DNA consensus sequence that is common to each contractile protein gene has not been identified. In contrast to the results of these earlier studies, we have found that the 5'-flanking region of the quail troponin I (TnI) gene is not sufficient to permit the normal myofiber transcriptional activation of the gene. Instead, the TnI gene utilizes a unique internal regulatory element that is responsible for the correct myofiber-specific expression pattern associated with the TnI gene. This is the first example in which a contractile protein gene has been shown to rely primarily on an internal regulatory element to elicit transcriptional activation during myogenesis. The diversity of regulatory elements associated with the contractile protein genes suggests that the temporal expression of the genes may involve individual cis-trans regulatory components specific for each gene.This publication has 43 references indexed in Scilit:
- The ‘CC.Ar.GG’ boxEuropean Journal of Biochemistry, 1988
- Inhibition of myogenic differentiation by fibroblast growth factor or type β transforming growth factor does not require persistent c-myc expressionDevelopmental Biology, 1987
- Growth factor control of skeletal muscle differentiation: commitment to terminal differentiation occurs in G1 phase and is repressed by fibroblast growth factor.The Journal of cell biology, 1987
- Regulation of Inducible and Tissue-Specific Gene ExpressionScience, 1987
- Gene regulation by proteins acting nearby and at a distanceNature, 1986
- A rapid decrease in epidermal growth factor-binding capacity accompanies the terminal differentiation of mouse myoblasts in vitro.The Journal of cell biology, 1984
- Cytoplasmic activation of human nuclear genes in stable heterocaryonsCell, 1983
- Immunochemical analysis of myosin heavy chain during avian myogenesis in vivo and in vitro.The Journal of cell biology, 1982
- Transcriptional Control Signals of a Eukaryotic Protein-Coding GeneScience, 1982
- A Rapid and Sensitive Method for the Quantitation of Microgram Quantities of Protein Utilizing the Principle of Protein-Dye BindingAnalytical Biochemistry, 1976