Characterization of a transitionally occupied state and thermal unfolding of domain 1.1 of σA factor of RNA polymerase from Bacillus subtilis

Author:

Tužinčin Dávid12,Padrta Petr2,Šanderová Hana3,Rabatinová Alžběta3,Bendová Kateřina12,Krásný Libor3,Žídek Lukáš12,Kadeřávek Pavel2ORCID

Affiliation:

1. National Centre for Biomolecular Research (NCBR), Faculty of Science Masaryk University Brno Czech Republic

2. Central European Institute of Technology (CEITEC), Masaryk University Brno Czech Republic

3. Laboratory of Microbial Genetics and Gene Expression Institute of Microbiology, Czech Academy of Sciences Prague Czech Republic

Abstract

Abstract factors are essential parts of bacterial RNA polymerase (RNAP) as they allow to recognize promotor sequences and initiate transcription. Domain 1.1 of vegetative factors occupies the primary channel of RNAP and also prevents binding of the factor to promoter DNA alone. Here, we show that domain 1.1 of Bacillus subtilis exists in more structurally distinct variants in dynamic equilibrium. The major conformation at room temperature is represented by a previously reported well‐folded structure solved by nuclear magnetic resonance (NMR), but 4% of the protein molecules are present in a less thermodynamically favorable state. We show that this population increases with temperature and we predict its significant elevation at higher but still biologically relevant temperatures. We characterized the minor state of the domain 1.1 using specialized methods of NMR. We found that, in contrast to the major state, the detected minor state is partially unfolded. Its propensity to form secondary structure elements is especially decreased for the first and third helices, while the second helix and strand close to the C‐terminus are more stable. We also analyzed thermal unfolding of the domain 1.1 and performed functional experiments with full length and its shortened version lacking domain 1.1 (). The results revealed that while full length increases transcription activity of RNAP with increasing temperature, transcription with remains constant. In summary, this study reveals conformational dynamics of domain 1.1 and provides a basis for studies of its interaction with RNAP and effects on transcription regulation.

Funder

Grantová Agentura České Republiky

European Commission

Publisher

Wiley

Subject

Molecular Biology,Biochemistry,Structural Biology

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