Structural insights into the transcription activation mechanism of the global regulator GlnR from actinobacteria

Author:

Shi Jing123,Feng Zhenzhen1,Xu Juncao4,Li Fangfang1,Zhang Yuqiong567,Wen Aijia23,Wang Fulin1,Song Qian1,Wang Lu1,Cui Hong8,Tong Shujuan1,Chen Peiying1,Zhu Yejin1ORCID,Zhao Guoping4,Wang Shuang79ORCID,Feng Yu23ORCID,Lin Wei11011ORCID

Affiliation:

1. Department of Pathogen Biology, School of Medicine and Holistic Integrative Medicine, Nanjing University of Chinese Medicine, 210023 Nanjing, China

2. Department of Biophysics, Zhejiang University School of Medicine, 310058 Hangzhou, China

3. Department of Infectious Disease of Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, 310058 Hangzhou, China

4. Key Laboratory of Synthetic Biology, Chinese Academy of Sciences (CAS) Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, 200032 Shanghai, China

5. MOE Key Laboratory of Laser Life Science and Institute of Laser Life Science, College of Biophotonics, South China Normal University, 510631 Guangzhou, Guangdong, China

6. Guangdong Key Laboratory of Laser Life Science, College of Biophotonics, South China Normal University, 510631 Guangzhou, Guangdong, China

7. Songshan Lake Materials Laboratory, 523808 Dongguan, Guangdong, China

8. Pasteurien College, Suzhou Medical College of Soochow University, Soochow University, 251000 Soochow, China

9. Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, 100190 Beijing, China

10. State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, Shanghai 200237, China

11. Nanjing Drum Tower Hospital Clinical College, Nanjing University of Chinese Medicine, 210023 Nanjing, China

Abstract

In actinobacteria, an OmpR/PhoB subfamily protein called GlnR acts as an orphan response regulator and globally coordinates the expression of genes responsible for nitrogen, carbon, and phosphate metabolism in actinobacteria. Although many researchers have attempted to elucidate the mechanisms of GlnR-dependent transcription activation, progress is impeded by lacking of an overall structure of GlnR-dependent transcription activation complex (GlnR-TAC). Here, we report a co-crystal structure of the C-terminal DNA-binding domain of GlnR (GlnR_DBD) in complex with its regulatory cis -element DNA and a cryo-EM structure of GlnR-TAC which comprises Mycobacterium tuberculosis RNA polymerase, GlnR, and a promoter containing four well-characterized conserved GlnR binding sites. These structures illustrate how four GlnR protomers coordinate to engage promoter DNA in a head-to-tail manner, with four N-terminal receiver domains of GlnR (GlnR-RECs) bridging GlnR_DBDs and the RNAP core enzyme. Structural analysis also unravels that GlnR-TAC is stabilized by complex protein–protein interactions between GlnR and the conserved β flap, σ A R4, αCTD, and αNTD domains of RNAP, which are further confirmed by our biochemical assays. Taken together, these results reveal a global transcription activation mechanism for the master regulator GlnR and other OmpR/PhoB subfamily proteins and present a unique mode of bacterial transcription regulation.

Funder

MOST | National Natural Science Foundation of China

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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