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PMID: 10334333 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Two distinct SECIS structures capable of directing selenocysteine incorporation in eukaryotes.

RNA (New York, N.Y.) ·Vol. 5 ·No. 5 ·1999-05-00 ·Pages 625-35

Grundner-Culemann E, Martin GW, Harney JW, Berry MJ

Abstract

Translation of UGA as selenocysteine requires specific RNA secondary structures in the mRNAs of selenoproteins. These elements differ in sequence, structure, and location in the mRNA, that is, coding versus 3' untranslated region, in prokaryotes, eukaryotes, and archaea. Analyses of eukaryotic selenocysteine insertion sequence (SECIS) elements via computer folding programs, mutagenesis studies, and chemical and enzymatic probing has led to the derivation of a predicted consensus structural model for these elements. This model consists of a stem-loop or hairpin, with conserved nucleotides in the loop and in a non-Watson-Crick motif at the base of the stem. However, the sequences of a number of SECIS elements predict that they would diverge from the consensus structure in the loop region. Using site-directed mutagenesis to introduce mutations predicted to either disrupt or restore structure, or to manipulate loop size or stem length, we show that eukaryotic SECIS elements fall into two distinct classes, termed forms 1 and 2. Form 2 elements have additional secondary structures not present in form 1 elements. By either insertion or deletion of the sequences and structures distinguishing the two classes of elements while maintaining appropriate loop size, conversion of a form 1 element to a functional form 2-like element and of a form 2 to a functional form 1-like element was achieved. These results suggest commonality of function of the two classes. The information obtained regarding the existence of two classes of SECIS elements and the tolerances for manipulations of stem length and loop size should facilitate designing RNA molecules for obtaining high-resolution structural information about these elements.

MeSH Terms
Animals Archaea/genetics Base Sequence Cattle Cell Line Codon/genetics Consensus Sequence DNA/genetics Dogs Eukaryotic Cells/metabolism Gene Expression Regulation Humans Kidney Mice Models, Molecular Molecular Sequence Data Mutagenesis, Site-Directed Nucleic Acid Conformation Oligonucleotides/metabolism Prokaryotic Cells/metabolism Protein Biosynthesis Proteins/genetics RNA, Messenger/chemistry,genetics RNA-Binding Proteins/metabolism Rabbits Rats Regulatory Sequences, Nucleic Acid Selenocysteine/metabolism Selenoproteins Transfection
Chemicals
Codon Oligonucleotides Proteins RNA, Messenger RNA-Binding Proteins Selenoproteins Selenocysteine DNA
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Grundner-Culemann E
Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts 02115, USA.
Martin G W
Harney J W
Berry M J
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Article Info
Journal
RNA (New York, N.Y.)
Abbr.
RNA
ISSN
1355-8382
Published
1999-05-00
Pages
625-35
Language
English
Region
United States
NLM ID
9509184
PMCID
PMC1369790
Subset
IM
Grants
NIDDK NIH HHS · DK47320 · United States
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