The bacterial enhancer-dependent RNA polymerase

Author:

Zhang Nan12,Darbari Vidya C.34,Glyde Robert3,Zhang Xiaodong3,Buck Martin1

Affiliation:

1. Division of Cell and Molecular Biology, Imperial College London, Sir Alexander Fleming Building, Exhibition Road, London SW7 2AZ, U.K.

2. Neuroscience Research Program, Houston Methodist Research Institute, 6670 Bertner Avenue, Houston, TX 77030, U.S.A.

3. Division of Macromolecular Structure and Function, Imperial College London, Sir Alexander Fleming Building, Exhibition Road, London SW7 2AZ, U.K.

4. School of Biological and Chemical Sciences, Department of Chemistry and Biochemistry, Queen Mary University of London, Mile End Road, London E1 4NS, U.K.

Abstract

Transcription initiation is highly regulated in bacterial cells, allowing adaptive gene regulation in response to environment cues. One class of promoter specificity factor called sigma54 enables such adaptive gene expression through its ability to lock the RNA polymerase down into a state unable to melt out promoter DNA for transcription initiation. Promoter DNA opening then occurs through the action of specialized transcription control proteins called bacterial enhancer-binding proteins (bEBPs) that remodel the sigma54 factor within the closed promoter complexes. The remodelling of sigma54 occurs through an ATP-binding and hydrolysis reaction carried out by the bEBPs. The regulation of bEBP self-assembly into typically homomeric hexamers allows regulated gene expression since the self-assembly is required for bEBP ATPase activity and its direct engagement with the sigma54 factor during the remodelling reaction. Crystallographic studies have now established that in the closed promoter complex, the sigma54 factor occupies the bacterial RNA polymerase in ways that will physically impede promoter DNA opening and the loading of melted out promoter DNA into the DNA-binding clefts of the RNA polymerase. Large-scale structural re-organizations of sigma54 require contact of the bEBP with an amino-terminal glutamine and leucine-rich sequence of sigma54, and lead to domain movements within the core RNA polymerase necessary for making open promoter complexes and synthesizing the nascent RNA transcript.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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