The human integrin beta3 participates in a wide range of adhesive biologic functions and is expressed in a selected subset of tissues, but little is known about the cis-acting DNA elements or trans-acting factors responsible for this regulation. Using cell lines characterized for beta3 expression, a number of upstream regulatory regions in the beta3 gene were identified. (1) The three regions from -1159 to -584, -290 to -146, and -126 to -115 demonstrated positive, negative, and negative activity, respectively. (2) The region from -115 to +29 of the beta3 gene was sufficient for cell-specific activity. Deletion of the sequence from -115 to -89 produced a 6- to 40-fold reduction in reporter gene activity in beta3-expressing megakaryocytic cell lines (K562, Dami, and HEL), but only a 1.7- and 2.7-fold reduction, respectively, in beta3-expressing endothelial and melanoma cell lines, and 1.3- and 2. 8-fold reduction, respectively, in non-beta3-expressing Chinese hamster ovary and 293 cell lines. This sequence also bound nuclear proteins in a cell-specific manner in electrophoretic mobility shift assays. Mutational analysis indicated that the sequence GAGGGG (positions -113 to -108) is a megakaryocytic cell line-specific cis-acting element. (3) The region from -89 to +29 promoted lower activity in all cell lines. We also provide evidence that a CCCACCC sequence at position -70 has transcriptional activity, most likely through the Sp1 transcription factor. These data supply the first detailed map of the transcriptional regulatory elements of the 5' region of the beta3 gene, define positive regulatory sequences with potent megakaryocyte preferential activity, and indicate that the ubiquitous transcription factor, Sp1, may augment beta3 gene expression.
http://bloodjournal.hematologylibrary.org/content/92/8/2777.full.html Updated information and services can be found at: (2497 articles) Hemostasis, Thrombosis, and Vascular Biology Articles on similar topics can be found in the following Blood collections http://bloodjournal.hematologylibrary.org/site/misc/rights.xhtml#repub_requests Information about reproducing this article in parts or in its entirety may be found online at: http://bloodjournal.hematologylibrary.org/site/misc/rights.xhtml#reprints Information about ordering reprints may be found online at: http://bloodjournal.hematologylibrary.org/site/subscriptions/index.xhtml Information about subscriptions and ASH membership may be found online at:
The human blood platelet fibrinogen receptor, integrin alphaIIbbeta3 (glycoprotein IIb-IIIa) is an archetypal member of the integrin family of adhesive molecules and is the only integrin encoded by genes physically linked in the genome. Because studies on the normal and abnormal expression of any gene require a thorough understanding of its organization, the initial goals of the current study were to determine the size and complete the genomic organization for the beta3 gene. We now report the isolation of the entire beta3 gene in a single P1 plasmid and for the first time have linked the first and second exons on a contiguous fragment of DNA. Using pulsed-field gel analysis, we determined the full size of the beta3 gene to be 63 kb and show a large (16.7 kb) first intron; based on this information, we propose a uniform numbering system for the beta3 exons. We have completed the 5' genomic structure and generated a long-range restriction map. The promoter and the 5' end of the first intron were found to have approximately 50% sequence identity with a region of the avian beta3 gene known to possess functional transcriptional activity. Analysis of three different homologous regions led to the identification of a sequence in the 5'-UTR of the human gene, CCGCGGGAGG, which shares 90% identity with the avian gene and which bound nuclear proteins in DNaseI and electrophoretic mobility shift assay studies. Mutating this sequence caused a 2.6-fold reduction in reporter gene activity. In these studies we have (1) determined the full length and 5' organization of the beta3 gene, (2) identified a large region of homology between the 5' regions of the avian and human genes, and (3) identified a sequence in the 5'-UTR that augments gene expression. Knowing the genomic structure of beta3 has permitted the uncovering of new mechanisms of mutagenesis causing Glanzmann thrombasthenia (Jin et al, J Clin Invest 98:1745, 1996), and our findings will be valuable for such genetic analyses as well as for studies on the transcriptional regulation of beta3 and other integrin genes.