THE PHYLOGENETICALLY CONSERVED DOUBLET TERTIARY INTERACTION IN DOMAIN-III OF THE LARGE SUBUNIT RIBOSOMAL-RNA IS CRUCIAL FOR RIBOSOMAL-PROTEIN BINDING

被引:22
作者
KOOI, EA [1 ]
RUTGERS, CA [1 ]
MULDER, A [1 ]
VANTRIET, J [1 ]
VENEMA, J [1 ]
RAUE, HA [1 ]
机构
[1] FREE UNIV AMSTERDAM,FAC MED,DEPT BIOCHEM & MOLEC BIOL,DE BOELELAAN 1083,1081 HV AMSTERDAM,NETHERLANDS
关键词
PROTEIN-RNA INTERACTION; YEAST; SACCHAROMYCES-CEREVISIAE; EVOLUTION;
D O I
10.1073/pnas.90.1.213
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Previous phylogenetic analysis of rRNA sequences for covariant base changes has identified almost-equal-to 20 potential tertiary interactions. One of these is present in domain III of the large subunit rRNA and consists of two adjacent Watson-Crick base pairs that, in Saccharomyces cerevisiae 26S rRNA, connect positions 1523 and 1524 to positions 1611 and 1612. This interaction would strongly affect the structure of an evolutionarily highly conserved region that acts as the binding site for the early-assembling ribosomal proteins L25 and EL23 of S. cerevisiae and Escherichia coli, respectively. To assess the functional importance of this tertiary interaction, we determined the ability of synthetically prepared S. cerevisiae ribosomal protein L25 to associate in vitro with synthetic 26S rRNA fragments containing sequence variations at positions 1523 and 1524 and/or positions 1611 and 1612. Mutations that prevent the formation of both base pairs abolished L25 binding completely, whereas the introduction of compensatory mutations fully restored protein binding. Disruption of only the U1524.A1611 pair reduced L25 binding to almost-equal-to 30% of the value shown by the wild-type 26S rRNA fragment, whereas disruption of the G1523.C1612 base pair resulted in almost complete loss of protein binding. These results strongly support the existence and functional importance of the proposed doublet tertiary interaction in domain III of the large subunit rRNA.
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页码:213 / 216
页数:4
相关论文
共 27 条
[1]  
BRIMACOMBE R, 1990, RIBOSOME, P93
[2]  
Chambliss G., 1980, RIBOSOMES STRUCTURE, P357
[3]  
CUNDLIFFE E, 1985, STRUCTURE FUNCTION G, P586
[4]   ATTACHMENT SITES OF PRIMARY BINDING PROTEIN-L1, PROTEIN-L2 AND PROTEIN-L23 ON 23-S RIBOSOMAL-RNA OF ESCHERICHIA-COLI [J].
EGEBJERG, J ;
CHRISTIANSEN, J ;
GARRETT, RA .
JOURNAL OF MOLECULAR BIOLOGY, 1991, 222 (02) :251-264
[5]   INTERACTION OF RIBOSOMAL-PROTEINS L25 FROM YEAST AND EL23 FROM ESCHERICHIA-COLI WITH YEAST 26S AND MOUSE 28S RIBOSOMAL-RNA [J].
ELBARADI, TTAL ;
DEREGT, VCHF ;
PLANTA, RJ ;
NIERHAUS, KH ;
RAUE, HA .
BIOCHIMIE, 1987, 69 (09) :939-948
[6]   YEAST RIBOSOMAL-PROTEIN L25 BINDS TO AN EVOLUTIONARY CONSERVED SITE ON YEAST 26S AND ESCHERICHIA-COLI 23S RIBOSOMAL-RNA [J].
ELBARADI, TTAL ;
RAUE, HA ;
DEREGT, VCHF ;
VERBREE, EC ;
PLANTA, RJ .
EMBO JOURNAL, 1985, 4 (08) :2101-2107
[7]   HIGHER-ORDER STRUCTURAL ELEMENTS IN RIBOSOMAL-RNAS - PSEUDO-KNOTS AND THE USE OF NONCANONICAL PAIRS [J].
GUTELL, RR ;
WOESE, CR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1990, 87 (02) :663-667
[8]   A COMPILATION OF LARGE SUBUNIT RNA SEQUENCES PRESENTED IN A STRUCTURAL FORMAT [J].
GUTELL, RR ;
FOX, GE .
NUCLEIC ACIDS RESEARCH, 1988, 16 :R175-R269
[9]   DIDEOXY SEQUENCING METHOD USING DENATURED PLASMID TEMPLATES [J].
HATTORI, M ;
SAKAKI, Y .
ANALYTICAL BIOCHEMISTRY, 1986, 152 (02) :232-238
[10]   ANALYSIS OF PROTEIN COMPOSITION OF YEAST RIBOSOMAL-SUBUNITS BY 2-DIMENSIONAL POLYACRYLAMIDE-GEL ELECTROPHORESIS [J].
KRUISWIJK, T ;
PLANTA, RJ .
MOLECULAR BIOLOGY REPORTS, 1974, 1 (07) :409-415