Abstract
Most small nuclear RNA (snRNA) genes are transcribed by RNA polymerase II, but some (e.g., U6) are transcribed by RNA polymerase III. In vertebrates a TATA box at a fixed distance downstream of the proximal sequence element (PSE) acts as a dominant determinant for recruiting RNA polymerase III to U6 gene promoters. In contrast, vertebrate snRNA genes that contain a PSE but lack a TATA box are transcribed by RNA polymerase II. In plants, transcription of both classes of snRNA genes requires a TATA box in addition to an upstream sequence element (USE), and polymerase specificity is determined by the spacing between these two core promoter elements. In these examples, the PSE (or USE) is interchangeable between the two classes of snRNA genes. Here we report the surprising finding that the Drosophila U1 and U6 PSEs cannot functionally substitute for each other; rather, determination of RNA polymerase specificity is an intrinsic property of the PSE sequence itself. The alteration of two or three base pairs near the 3'-end of the U1 and U6 PSEs was sufficient to switch the RNA polymerase specificity of Drosophila snRNA promoters in vitro. These findings reveal a novel mechanism for achieving RNA polymerase specificity at insect snRNA promoters.
MeSH Terms
Animals
Base Sequence
Drosophila/genetics
Plasmids
Point Mutation
Promoter Regions, Genetic
RNA Polymerase II/metabolism
RNA Polymerase III/metabolism
RNA, Small Nuclear/genetics
Structure-Activity Relationship
Substrate Specificity
TATA Box
Templates, Genetic
Transcription, Genetic
Chemicals
RNA, Small Nuclear
RNA Polymerase II
RNA Polymerase III
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Jensen R C
Department of Chemistry and Molecular Biology Institute, San Diego State University, San Diego, CA 92182-1030, USA.
Wang Y
Hardin S B
Stumph W E
References (21)
21 references, click to expand
-
Changing the RNA polymerase specificity of U snRNA gene promoters.
Cell. 1988 Nov 4;55(3):435-42
PMID: 3180217
-
Structure, organization, and transcription of Drosophila U6 small nuclear RNA genes.
J Biol Chem. 1987 Jan 25;262(3):1187-93
PMID: 3027083
-
A 7 bp mutation converts a human RNA polymerase II snRNA promoter into an RNA polymerase III promoter.
Cell. 1989 Jul 14;58(1):55-67
PMID: 2752422
-
A U-snRNA gene-specific upstream element and a -30 'TATA box' are required for transcription of the U2 snRNA gene of Arabidopsis thaliana.
EMBO J. 1989 Dec 1;8(12):3875-82
PMID: 2583119
-
Tagetitoxin: a new inhibitor of eukaryotic transcription by RNA polymerase III.
J Biol Chem. 1990 Jan 5;265(1):499-505
PMID: 2403565
-
U6 snRNA genes of Arabidopsis are transcribed by RNA polymerase III but contain the same two upstream promoter elements as RNA polymerase II-transcribed U-snRNA genes.
Nucleic Acids Res. 1990 Jun 25;18(12):3451-8
PMID: 2362802
-
RNA-polymerase specificity of transcription of Arabidopsis U snRNA genes determined by promoter element spacing.
Nature. 1990 Jul 12;346(6280):199-202
PMID: 2366873
-
Alteration of the RNA polymerase specificity of U3 snRNA genes during evolution and in vitro.
Cell. 1991 May 3;65(3):517-26
PMID: 1826860
-
The different positioning of the proximal sequence element in the Xenopus RNA polymerase II and III snRNA promoters is a key determinant which confers RNA polymerase III specificity.
Nucleic Acids Res. 1991 Feb 11;19(3):435-41
PMID: 2011518
-
Drosophila melanogaster genes for U1 snRNA variants and their expression during development.
Nucleic Acids Res. 1990 Dec 11;18(23):6971-9
PMID: 2124674
-
The cloned RNA polymerase II transcription factor IID selects RNA polymerase III to transcribe the human U6 gene in vitro.
Genes Dev. 1991 Aug;5(8):1477-89
PMID: 1869050
-
How does III x II make U6?
Science. 1991 Dec 6;254(5037):1462-3
PMID: 1962205
-
Characterization of two developmentally regulated sea urchin U2 small nuclear RNA promoters: a common required TATA sequence and independent proximal and distal elements.
Mol Cell Biol. 1992 Feb;12(2):650-60
PMID: 1732737
-
Two promoter elements are necessary and sufficient for expression of the sea urchin U1 snRNA gene.
Nucleic Acids Res. 1992 Jul 25;20(14):3743-51
PMID: 1641340
-
The transcriptional start site for a human U6 small nuclear RNA gene is dictated by a compound promoter element consisting of the PSE and the TATA box.
Nucleic Acids Res. 1992 Sep 25;20(18):4903-12
PMID: 1408805
-
In vitro transcription of a Drosophila U1 small nuclear RNA gene requires TATA box-binding protein and two proximal cis-acting elements with stringent spacing requirements.
Mol Cell Biol. 1993 Sep;13(9):5918-27
PMID: 8355718
-
Transcription of the sea urchin U6 gene in vitro requires a TATA-like box, a proximal sequence element, and sea urchin USF, which binds an essential E box.
Mol Cell Biol. 1994 Mar;14(3):2191-200
PMID: 8114749
-
RNA polymerase II/III transcription specificity determined by TATA box orientation.
Proc Natl Acad Sci U S A. 1995 Sep 12;92(19):8606-10
PMID: 7567983
-
Common factors direct transcription through the proximal sequence elements (PSEs) of the embryonic sea urchin U1, U2, and U6 genes despite minimal similarity among the PSEs.
Mol Cell Biol. 1996 Mar;16(3):1275-81
PMID: 8622672
-
Role of TATA box sequence and orientation in determining RNA polymerase II/III transcription specificity.
Nucleic Acids Res. 1996 Aug 1;24(15):3100-6
PMID: 8760900
-
The Xenopus U2 gene PSE is a single, compact, element required for transcription initiation and 3' end formation.
Nucleic Acids Res. 1989 May 25;17(10):3633-44
PMID: 2734097