Rye nuclease I as a tool for structural studies of tRNAs with large variable arms
Adlouni CE, Keith G, Dirheimer G, Szarkowski JW, Przykorska A. 1993. Rye nuclease I as a tool for structural studies of tRNAs with large variable arms. Nucleic Acids Res 21:941-947.
Two helices plus a linker: A small model substrate for eukaryotic RNase P
Carrara G, Calandra P, Fruscolino P, Tocchini-Valentini GP. 1995. Two helices plus a linker: A small model substrate for eukaryotic RNase P. Proc Natl Acad Sci USA 92:2627-2631.
Enzymatic synthesis of 2′-modified nucleic acids: Identification of important phosphate and ribose moieties in RNase P substrates
Conrad F, Hanne A, Gaur RK, Krupp G. 1995. Enzymatic synthesis of 2′-modified nucleic acids: Identification of important phosphate and ribose moieties in RNase P substrates. Nucleic Acids Res 23:1845-1853.
Modification interference approach to detect ribose moieties important for the optimal activity of a ribozyme
Gaur RK, Krupp G. 1993. Modification interference approach to detect ribose moieties important for the optimal activity of a ribozyme. Nucleic Acids Res 21:21-26.
A physical assay for and kinetic analysis of the interactions between Ml RNA and tRNA precursor substrates
Guerrier-Takada C, Altman S. 1993. A physical assay for and kinetic analysis of the interactions between Ml RNA and tRNA precursor substrates. Biochemistry 32:7152-7161.
Role of the D arm and the anticodon arm in tRNA recognition by eubacterial and eukaryotic RNase P enzymes
Hardt WD, Schlegl J, Erdmann VA, Hartmann RK. 1993b. Role of the D arm and the anticodon arm in tRNA recognition by eubacterial and eukaryotic RNase P enzymes. Biochemistry 32:13046-13053.
Kinetics and thermodynamics of the RNase P RNA cleavage reaction: Analysis of tRNA 3′-end variants
Hardt WD, Schlegl J, Erdmann VA, Hartmann RK. 1995. Kinetics and thermodynamics of the RNase P RNA cleavage reaction: Analysis of tRNA 3′-end variants. J Mol Biol 247:161-172.
Use of photoaffinity crosslinking and molecular modeling to analyze the global architecture of ribonuclease P RNA
Harris ME, Nolan JM, Malhotra A, Brown JW, Harvey SC, Pace NR. 1994. Use of photoaffinity crosslinking and molecular modeling to analyze the global architecture of ribonuclease P RNA. EMBO J 13:3953-3963.
Substrate recognition by RNase P and by the catalytic M1 RNA: Identification of possible contact points in pre-tRNAs
Kahle D, Wehmeyer U, Krupp G. 1990. Substrate recognition by RNase P and by the catalytic M1 RNA: Identification of possible contact points in pre-tRNAs. EMBO J 9:1929-1937.
Efficient cleavage of pre-tRNAs by E. coli RNase P RNA requires the 2′-hydroxyl of the ribose at the cleavage site
Kleineidam RG, Pitulle C, Sproat B, Krupp G. 1993. Efficient cleavage of pre-tRNAs by E. coli RNase P RNA requires the 2′-hydroxyl of the ribose at the cleavage site. Nucleic Acids Res 21:1097-1101.
Protection from chemical modification of nucleotides in complexes of M1 RNA, the catalytic subunit of RNase P from E. coli, and tRNA precursors
Knap AK, Wesolowski D, Altman S. 1990. Protection from chemical modification of nucleotides in complexes of M1 RNA, the catalytic subunit of RNase P from E. coli, and tRNA precursors. Biochimie 72:779-790.