- ENO3
Enolase 3 (beta, muscle), also known as ENO3, is a human
gene .cite web | title = Entrez Gene: ENO3 enolase 3 (beta, muscle)| url = http://www.ncbi.nlm.nih.gov/sites/entrez?Db=gene&Cmd=ShowDetailView&TermToSearch=2027| accessdate = ]PBB_Summary
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summary_text = This gene encodes one of the three enolase isoenzymes found in mammals. This isoenzyme, a homodimer, is found in skeletal muscle cells in the adult. A switch from alpha enolase to beta enolase occurs in muscle tissue during development in rodents. Mutations in this gene can be associated with metabolic myopathies that may result from decreased stability of the enzyme. Two transcripts have been identified for this gene that differ only in their 5' UTR.cite web | title = Entrez Gene: ENO3 enolase 3 (beta, muscle)| url = http://www.ncbi.nlm.nih.gov/sites/entrez?Db=gene&Cmd=ShowDetailView&TermToSearch=2027| accessdate = ]References
Further reading
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citations =
*cite journal | author=Peshavaria M, Day IN |title=Molecular structure of the human muscle-specific enolase gene (ENO3). |journal=Biochem. J. |volume=275 ( Pt 2) |issue= |pages= 427–33 |year= 1991 |pmid= 1840492 |doi=
*cite journal | author=Calì L, Feo S, Oliva D, Giallongo A |title=Nucleotide sequence of a cDNA encoding the human muscle-specific enolase (MSE). |journal=Nucleic Acids Res. |volume=18 |issue= 7 |pages= 1893 |year= 1990 |pmid= 2336366 |doi=
*cite journal | author=Peshavaria M, Hinks LJ, Day IN |title=Structure of human muscle (beta) enolase mRNA and protein deduced from a genomic clone. |journal=Nucleic Acids Res. |volume=17 |issue= 21 |pages= 8862 |year= 1989 |pmid= 2587223 |doi=
*cite journal | author=Giallongo A, Venturella S, Oliva D, "et al." |title=Structural features of the human gene for muscle-specific enolase. Differential splicing in the 5'-untranslated sequence generates two forms of mRNA. |journal=Eur. J. Biochem. |volume=214 |issue= 2 |pages= 367–74 |year= 1993 |pmid= 8513787 |doi=
*cite journal | author=Comi GP, Fortunato F, Lucchiari S, "et al." |title=Beta-enolase deficiency, a new metabolic myopathy of distal glycolysis. |journal=Ann. Neurol. |volume=50 |issue= 2 |pages= 202–7 |year= 2001 |pmid= 11506403 |doi=
*cite journal | author=Strausberg RL, Feingold EA, Grouse LH, "et al." |title=Generation and initial analysis of more than 15,000 full-length human and mouse cDNA sequences. |journal=Proc. Natl. Acad. Sci. U.S.A. |volume=99 |issue= 26 |pages= 16899–903 |year= 2003 |pmid= 12477932 |doi= 10.1073/pnas.242603899
*cite journal | author=Li TB, Liu XH, Feng S, "et al." |title=Characterization of MR-1, a novel myofibrillogenesis regulator in human muscle. |journal=Acta Biochim. Biophys. Sin. (Shanghai) |volume=36 |issue= 6 |pages= 412–8 |year= 2005 |pmid= 15188056 |doi=
*cite journal | author=Gerhard DS, Wagner L, Feingold EA, "et al." |title=The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC). |journal=Genome Res. |volume=14 |issue= 10B |pages= 2121–7 |year= 2004 |pmid= 15489334 |doi= 10.1101/gr.2596504
*cite journal | author=Kimura K, Wakamatsu A, Suzuki Y, "et al." |title=Diversification of transcriptional modulation: large-scale identification and characterization of putative alternative promoters of human genes. |journal=Genome Res. |volume=16 |issue= 1 |pages= 55–65 |year= 2006 |pmid= 16344560 |doi= 10.1101/gr.4039406PBB_Controls
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