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Results: 1 to 20 of 165

PubMed Links for Books (Select 1421140)

1.

STRUCTURE OF A RIBONUCLEIC ACID.

HOLLEY RW, APGAR J, EVERETT GA, MADISON JT, MARQUISEE M, MERRILL SH, PENSWICK JR, ZAMIR A.

Science. 1965 Mar 19;147(3664):1462-5.

PMID:
14263761
2.

On the role of soluble ribonucleic acid in coding for amino acids.

CHAPEVILLE F, LIPMANN F, VON EHRENSTEIN G, WEISBLUM B, RAY WJ Jr, BENZER S.

Proc Natl Acad Sci U S A. 1962 Jun 15;48:1086-92. No abstract available.

3.

On protein synthesis.

CRICK FH.

Symp Soc Exp Biol. 1958;12:138-63. No abstract available.

PMID:
13580867
4.

A soluble ribonucleic acid intermediate in protein synthesis.

HOAGLAND MB, STEPHENSON ML, SCOTT JF, HECHT LI, ZAMECNIK PC.

J Biol Chem. 1958 Mar;231(1):241-57. No abstract available.

5.

Novel features in the tRNA-like world of plant viral RNAs.

Fechter P, Rudinger-Thirion J, Florentz C, Giegé R.

Cell Mol Life Sci. 2001 Oct;58(11):1547-61. Review.

PMID:
11706983
6.

FUNCTIONS OF THE 3'-UNTRANSLATED REGIONS OF POSITIVE STRAND RNA VIRAL GENOMES.

Dreher TW.

Annu Rev Phytopathol. 1999;37:151-174.

PMID:
11701820
7.

Manipulation of tRNA properties by structure-based and combinatorial in vitro approaches.

Vortler S, Pütz J, Giegé R.

Prog Nucleic Acid Res Mol Biol. 2001;70:291-334. Review.

PMID:
11642365
8.

Aminoacyl-tRNA synthetases: potential markers of genetic code development.

Ribas de Pouplana L, Schimmel P.

Trends Biochem Sci. 2001 Oct;26(10):591-6. Review.

PMID:
11590011
9.

Uniform binding of aminoacyl-tRNAs to elongation factor Tu by thermodynamic compensation.

LaRiviere FJ, Wolfson AD, Uhlenbeck OC.

Science. 2001 Oct 5;294(5540):165-8.

10.

Three-dimensional folding of the tRNA-like domain of Escherichia coli tmRNA.

Zwieb C, Guven SA, Wower IK, Wower J.

Biochemistry. 2001 Aug 14;40(32):9587-95.

PMID:
11583158
11.

Dual mode recognition of two isoacceptor tRNAs by mammalian mitochondrial seryl-tRNA synthetase.

Shimada N, Suzuki T, Watanabe K.

J Biol Chem. 2001 Dec 14;276(50):46770-8. Epub 2001 Sep 27.

12.

Translocation within the acceptor helix of a major tRNA identity determinant.

Lovato MA, Chihade JW, Schimmel P.

EMBO J. 2001 Sep 3;20(17):4846-53.

13.

Aminoglycoside binding displaces a divalent metal ion in a tRNA-neomycin B complex.

Mikkelsen NE, Johansson K, Virtanen A, Kirsebom LA.

Nat Struct Biol. 2001 Jun;8(6):510-4.

PMID:
11373618
15.

An extended structural signature for the tRNA anticodon loop.

Auffinger P, Westhof E.

RNA. 2001 Mar;7(3):334-41.

16.

Crystal structure of the ribosome at 5.5 A resolution.

Yusupov MM, Yusupova GZ, Baucom A, Lieberman K, Earnest TN, Cate JH, Noller HF.

Science. 2001 May 4;292(5518):883-96. Epub 2001 Mar 29.

17.

Simultaneous binding of two proteins to opposite sides of a single transfer RNA.

Nomanbhoy T, Morales AJ, Abraham AT, Vörtler CS, Giegé R, Schimmel P.

Nat Struct Biol. 2001 Apr;8(4):344-8.

PMID:
11276256
19.

Structural basis for anticodon recognition by discriminating glutamyl-tRNA synthetase.

Sekine S, Nureki O, Shimada A, Vassylyev DG, Yokoyama S.

Nat Struct Biol. 2001 Mar;8(3):203-6.

PMID:
11224561
20.

Structural basis for double-sieve discrimination of L-valine from L-isoleucine and L-threonine by the complex of tRNA(Val) and valyl-tRNA synthetase.

Fukai S, Nureki O, Sekine S, Shimada A, Tao J, Vassylyev DG, Yokoyama S.

Cell. 2000 Nov 22;103(5):793-803.

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