[1]
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NUCLEOTIDE SEQUENCE [MRNA].
TISSUE=Liver, and Lung;
PubMed=3299377 [NCBI, ExPASy, EBI, Israel, Japan]
Hammond G.L.,
Smith C.L.,
Goping I.S.,
Underhill D.A.,
Harley M.J.,
Reventos J.,
Musto N.A.,
Gunsalus G.L.,
Bardin C.W.;
"Primary structure of human corticosteroid binding globulin, deduced from hepatic and pulmonary cDNAs, exhibits homology with serine protease inhibitors.";
Proc. Natl. Acad. Sci. U.S.A. 84:5153-5157(1987).
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[2]
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NUCLEOTIDE SEQUENCE [MRNA].
DOI=10.1016/0022-4731(88)90085-4; PubMed=3386241 [NCBI, ExPASy, EBI, Israel, Japan]
Bardin C.W.,
Gunsalus G.L.,
Musto N.A.,
Cheng C.Y.,
Reventos J.,
Smith C.,
Underhill D.A.,
Hammond G.;
"Corticosteroid binding globulin, testosterone-estradiol binding globulin, and androgen binding protein belong to protein families distinct from steroid receptors.";
J. Steroid Biochem. 30:131-139(1988).
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[3]
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NUCLEOTIDE SEQUENCE [LARGE SCALE MRNA], AND VARIANT ALA-246.
DOI=10.1101/gr.2596504; PubMed=15489334 [NCBI, ExPASy, EBI, Israel, Japan] The MGC Project Team;
"The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC).";
Genome Res. 14:2121-2127(2004).
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[4]
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PROTEIN SEQUENCE OF 23-30.
DOI=10.1016/0022-4731(88)90268-3; PubMed=3347061 [NCBI, ExPASy, EBI, Israel, Japan]
Kato E.A.,
Hsu B.R.-S.,
Kuhn R.W.;
"Comparative structural analyses of corticosteroid binding globulin.";
J. Steroid Biochem. 29:213-220(1988).
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[5]
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GLYCOSYLATION [LARGE SCALE ANALYSIS] AT ASN-96, AND MASS SPECTROMETRY.
TISSUE=Plasma;
DOI=10.1002/pmic.200300556; PubMed=14760718 [NCBI, ExPASy, EBI, Israel, Japan]
Bunkenborg J.,
Pilch B.J.,
Podtelejnikov A.V.,
Wisniewski J.R.;
"Screening for N-glycosylated proteins by liquid chromatography mass spectrometry.";
Proteomics 4:454-465(2004).
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[6]
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GLYCOSYLATION [LARGE SCALE ANALYSIS] AT ASN-31; ASN-96; ASN-330 AND ASN-369, AND MASS SPECTROMETRY.
TISSUE=Plasma;
DOI=10.1021/pr0502065; PubMed=16335952 [NCBI, ExPASy, EBI, Israel, Japan]
Liu T.,
Qian W.-J.,
Gritsenko M.A.,
Camp D.G. II,
Monroe M.E.,
Moore R.J.,
Smith R.D.;
"Human plasma N-glycoproteome analysis by immunoaffinity subtraction, hydrazide chemistry, and mass spectrometry.";
J. Proteome Res. 4:2070-2080(2005).
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[7]
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VARIANT CBG DEFICIENCY HIS-115.
DOI=10.1016/0960-0760(92)90107-T; PubMed=1504007 [NCBI, ExPASy, EBI, Israel, Japan]
Smith C.L.,
Power S.G.A.,
Hammond G.L.;
"A Leu-->His substitution at residue 93 in human corticosteroid binding globulin results in reduced affinity for cortisol.";
J. Steroid Biochem. Mol. Biol. 42:671-676(1992).
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[8]
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VARIANT CBG DEFICIENCY HIS-115.
DOI=10.1016/0039-128X(93)90072-U; PubMed=8212073 [NCBI, ExPASy, EBI, Israel, Japan]
van Baelen H.,
Power S.G.A.,
Hammond G.L.;
"Decreased cortisol-binding affinity of transcortin Leuven is associated with an amino acid substitution at residue-93.";
Steroids 58:275-277(1993).
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[9]
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VARIANT CBG DEFICIENCY ASN-389.
DOI=10.1210/jc.85.1.361; PubMed=10634411 [NCBI, ExPASy, EBI, Israel, Japan]
Emptoz-Bonneton A.,
Cousin P.,
Seguchi K.,
Avvakumov G.V.,
Bully C.,
Hammond G.L.,
Pugeat M.;
"Novel human corticosteroid-binding globulin variant with low cortisol-binding affinity.";
J. Clin. Endocrinol. Metab. 85:361-367(2000).
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[10]
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VARIANT CBG DEFICIENCY ASN-389.
DOI=10.1007/s00702-006-0620-5; PubMed=17245537 [NCBI, ExPASy, EBI, Israel, Japan]
Buss C.,
Schuelter U.,
Hesse J.,
Moser D.,
Phillips D.I.,
Hellhammer D.,
Meyer J.;
"Haploinsufficiency of the SERPINA6 gene is associated with severe muscle fatigue: A de novo mutation in corticosteroid-binding globulin deficiency.";
J. Neural Transm. 114:563-569(2007).
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