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Titlebook: Mechanisms of Transcription; Fritz Eckstein,David M. J. Lilley Book 1997 Springer-Verlag Berlin Heidelberg 1997 DNA.Escherichia coli.Promo

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書目名稱Mechanisms of Transcription
編輯Fritz Eckstein,David M. J. Lilley
視頻videohttp://file.papertrans.cn/629/628772/628772.mp4
叢書名稱Nucleic Acids and Molecular Biology
圖書封面Titlebook: Mechanisms of Transcription;  Fritz Eckstein,David M. J. Lilley Book 1997 Springer-Verlag Berlin Heidelberg 1997 DNA.Escherichia coli.Promo
描述Mechanisms of Transcription presents a unique perspective on the fundamental processes of transcription. A collection of distinguished authors draws together the underlying mechanisms involved in the process of transcription. This includes RNA polymerase function and its interaction with promoter sequences, and the structures of the various components on the transcriptional machinery. Both prokaryotic and eukaryotic systems, NMR and crystallographic structures of a number of important eukaryotic transcription factors are discussed, as well as the role of chromatin structure.
出版日期Book 1997
關(guān)鍵詞DNA; Escherichia coli; Promoter; RNA; biochemistry; biology; chemistry; developmental biology; gene; gene exp
版次1
doihttps://doi.org/10.1007/978-3-642-60691-5
isbn_softcover978-3-642-64509-9
isbn_ebook978-3-642-60691-5Series ISSN 0933-1891 Series E-ISSN 1869-2486
issn_series 0933-1891
copyrightSpringer-Verlag Berlin Heidelberg 1997
The information of publication is updating

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Pribnow Box Recognition and Melting by , RNA Polymerase,Ahearn et al. 1987; Sweetser et al. 1987; Darst et al. 1989, 1991; Schultz et al. 1993; Polyakov et al. 1995), are catalytically active in RNA chain elongation but are incapable of promoter recognition and specific initiation. Promoter-specific transcription initiation requires additional protein fa
地板
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,Extended —10 Promoters,me (subunit composition ββ′α.) in complex with the σ70 factor. σ70 is 613 amino acids in length: sequence comparisons show that it shares four regions of amino acid sequence similarity with other σ factors (regions 1, 2, 3 and 4: Fig. 1; Gross et al. 1992). It has long been known that RNAP containin
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Ribosomal RNA Promoter-RNA Polymerase Interactions and rRNA Transcription in ,,ins) and three ribosomal RNAs (rRNAs) (reviewed by Condon et al. 1995; Gourse et al. 1996; Keener and Nomura 1996). Under these growth conditions, the largest single expenditure of the cell’s biosynthetic energy is the synthesis of ribosomes. The ribosomal protein synthesis rate is ultimately contro
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Synergistic Activation of Transcription in ,,ing synergistically. In this chapter we will review some recent examples of transcriptional activator synergy and discuss the underlying mechanisms. For the purposes of this discussion, we will follow the convention generally observed in the field and define transcriptional activator synergy as foll
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Indirect Effects of DNA Sequence on Transcriptional Activation by Prokaryotic DNA Binding Proteins, the rate of transcription initiation by RNA polymerase. In these organisms, the activator protein binds to a specific DNA sequence at or near the promoter, influencing RNA polymerase by making direct contacts with the promoter-bound polymerase. Several studies have shown that changing the juxtaposi
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Transcriptional Activation by a Topologically Linkable Protein: Forging a Connection Between Replicare touched upon: (1) the biological context of bacteriophage T4 multiplication in which this mechanism operates is briefly reviewed; (2) the activation mechanism is described; (3) a mechanism for coupling selective gene expression to concurrent replication is proposed; (4) information on protein-pr
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