Structure of 4.5S RNA in the signal recognition particle of Escherichia coli as studied by enzymatic and chemical probing.
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[1] H. Lütcke,et al. A complex of the signal sequence binding protein and the SRP RNA promotes translocation of nascent proteins. , 1995, The EMBO journal.
[2] H. Lütcke. Signal recognition particle (SRP), a ubiquitous initiator of protein translocation. , 1995, European journal of biochemistry.
[3] H. Noller,et al. Footprinting mRNA‐ribosome complexes with chemical probes. , 1994, The EMBO journal.
[4] W. Wintermeyer,et al. Formation of SRP‐like particle induces a conformational change in E. coli 4.5S RNA , 1994, FEBS letters.
[5] J. Wise,et al. Molecular evolution of SRP cycle components: functional implications. , 1994, Nucleic acids research.
[6] S. High,et al. An alternative protein targeting pathway in Escherichia coli: studies on the role of FtsY. , 1994, The EMBO journal.
[7] P. Walter,et al. Interaction of E. coli Ffh/4.5S ribonucleoprotein and FtsY mimics that of mammalian signal recognition particle and its receptor , 1994, Nature.
[8] T. Cech,et al. GAAA tetraloop and conserved bulge stabilize tertiary structure of a group I intron domain. , 1994, Journal of molecular biology.
[9] P. Walter,et al. Functional substitution of the signal recognition particle 54-kDa subunit by its Escherichia coli homolog. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[10] D. Tollervey,et al. Evolutionary conserved nucleotides within the E.coli 4.5S RNA are required for association with P48 in vitro and for optimal function in vivo. , 1992, Nucleic acids research.
[11] T. Samuelsson. A Mycoplasma protein homologous to mammalian SRP54 recognizes a highly conserved domain of SRP RNA. , 1992, Nucleic acids research.
[12] T. Silhavy,et al. The E. coli ffh gene is necessary for viability and efficient protein export , 1992, Nature.
[13] D. Tollervey,et al. Signal-sequence recognition by an Escherichia coli ribonucleoprotein complex , 1992, Nature.
[14] R. Gutell,et al. Folding of circularly permuted transfer RNAs. , 1991, Science.
[15] E. Westhof,et al. Three-dimensional model of Escherichia coli ribosomal 5 S RNA as deduced from structure probing in solution and computer modeling. , 1991, Journal of molecular biology.
[16] N. Larsen,et al. SRP-RNA sequence alignment and secondary structure. , 1991, Nucleic acids research.
[17] P. Walter,et al. An E. coli ribonucleoprotein containing 4.5S RNA resembles mammalian signal recognition particle. , 1990, Science.
[18] D. Tollervey,et al. E. coli 4.5S RNA is part of a ribonucleoprotein particle that has properties related to signal recognition particle , 1990, Cell.
[19] Martin Vingron,et al. Homology of 54K protein of signal-recognition particle, docking protein and two E. coli proteins with putative GTPbinding domains , 1989, Nature.
[20] Peter Walter,et al. Model for signal sequence recognition from amino-acid sequence of 54K subunit of signal recognition particle , 1989, Nature.
[21] T. Cech,et al. Defining the inside and outside of a catalytic RNA molecule. , 1989, Science.
[22] T. Connolly,et al. The signal recognition particle receptor mediates the GTP-dependent displacement of SRP from the signal sequence of the nascent polypeptide , 1989, Cell.
[23] J. Ebel,et al. Use of lead(II) to probe the structure of large RNA's. Conformation of the 3' terminal domain of E. coli 16S rRNA and its involvement in building the tRNA binding sites. , 1989, Journal of biomolecular structure & dynamics.
[24] P. Walter,et al. Human SRP RNA and E. coli 4.5S RNA contain a highly homologous structural domain , 1988, Cell.
[25] J. Ebel,et al. Characterization of the lead(II)-induced cleavages in tRNAs in solution and effect of the Y-base removal in yeast tRNAPhe. , 1988, Biochemistry.
[26] P. Walter,et al. The affinity of signal recognition particle for presecretory proteins is dependent on nascent chain length. , 1988, The EMBO journal.
[27] J. Ebel,et al. Probing the structure of RNAs in solution. , 1987, Nucleic acids research.
[28] D. Riesner,et al. Temperature-gradient gel electrophoresis. Thermodynamic analysis of nucleic acids and proteins in purified form and in cellular extracts. , 1987, Biophysical chemistry.
[29] Peter Walter,et al. Protein translocation across the endoplasmic reticulum , 1984, Cell.
[30] M. Fournier,et al. Physical properties of the E. coli 4.5S RNA: first results suggest a hairpin helix of unusual thermal stability. , 1984, Nucleic acids research.
[31] J. Stubbe,et al. The mechanism of free base formation from DNA by bleomycin. A proposal based on site specific tritium release from Poly(dA.dU). , 1983, The Journal of biological chemistry.
[32] G. Blobel,et al. Social function of adult men with attention-deficit/hyperactivity disorder in the context of military service , 2018, Neuropsychiatric disease and treatment.
[33] Peter Walter,et al. Signal recognition particle contains a 7S RNA essential for protein translocation across the endoplasmic reticulum , 1982, Nature.
[34] B. Dobberstein,et al. Secretory protein translocation across membranes—the role of the ‘docking protein’ , 1982, Nature.
[35] G. Blobel,et al. Translocation of proteins across the endoplasmic reticulum. I. Signal recognition protein (SRP) binds to in-vitro-assembled polysomes synthesizing secretory protein , 1981, The Journal of cell biology.
[36] Michael Zuker,et al. Optimal computer folding of large RNA sequences using thermodynamics and auxiliary information , 1981, Nucleic Acids Res..
[37] O. Uhlenbeck,et al. 3′-Terminal labelling of RNA with T4 RNA ligase , 1978, Nature.
[38] G. Philipps,et al. Primary Structure of Transfer RNA , 1969, Nature.
[39] Christian Zwieb,et al. The Signal Recognition Particle Database (SRPDB) , 1998, Nucleic Acids Res..
[40] P. Walter,et al. Signal sequence recognition and protein targeting to the endoplasmic reticulum membrane. , 1994, Annual review of cell biology.
[41] T. Tullius. Chemical ‘snapshots’ of DNA: using the hydroxyl radical to study the structure of DNA and DNA-protein complexes , 1987 .