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Updated: Apr 23, 2026

CD Spectroscopy to Study DNA-Protein Interactions
Published on: February 10, 2022
Structural insights into RNA polymerase recognition and essential function of Myxococcus xanthus CdnL
Aránzazu Gallego-García1, Yasmina Mirassou2, Diana García-Moreno1
1Departamento de Genética y Microbiología, Área de Genética (Unidad Asociada al IQFR-CSIC), Facultad de Biología, Universidad de Murcia, Murcia, Spain.
Insights
CdnL, an essential bacterial protein, stabilizes RNA polymerase activity at rRNA promoters. This study reveals CdnL
Area of Science:
- Bacterial transcription regulation
- Protein structure and function
- Molecular biology
Background:
- CdnL and CarD are distinct bacterial RNA polymerase (RNAP)-interacting proteins.
- CarD is linked to extracytoplasmic function (ECF) σ-factors, but CdnL's role is unclear.
- CdnL homologs are widespread, suggesting broad importance.
Purpose of the Study:
- Elucidate the function and mechanism of CdnL in Myxococcus xanthus.
- Determine the structure of CdnL and its interaction with RNAP.
- Investigate CdnL's role in transcription initiation.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy for CdnL structure determination.
- Structure-based site-directed mutagenesis to analyze CdnL function.
- In vitro transcription assays using RNAP-σA holoenzyme.
- In vivo analysis of CdnL localization at promoters.
Main Results:
- The NMR structure reveals CdnL has a two-domain architecture with a Tudor-like N-terminal module and a helical C-terminal domain.
- The N-terminal domain binds to RNAP-β, and mutations disrupting this impair growth.
- Specific basic residues in the C-terminal domain are crucial for CdnL function.
- CdnL stabilizes transcriptionally open complexes at rRNA promoters in vitro.
- CdnL is found at rRNA promoters in vivo.
Conclusions:
- CdnL is essential for RNAP-σA activity at rRNA promoters.
- CdnL interacts with RNAP-β via its N-terminal domain and requires specific C-terminal residues for function.
- Distinct roles of CdnL (RNAP-σA) and CarD (ECF-σ) highlight functional divergence within the CarD_CdnL_TRCF family.
Abstract:
CdnL and CarD are two functionally distinct members of the CarD_CdnL_TRCF family of bacterial RNA polymerase (RNAP)-interacting proteins, which co-exist in Myxococcus xanthus. While CarD, found exclusively in myxobacteria, has been implicated in the activity of various extracytoplasmic function (ECF) σ-factors, the function and mode of action of the essential CdnL, whose homologs are widespread among bacteria, remain to be elucidated in M. xanthus. Here, we report the NMR solution structure of CdnL and present a structure-based mutational analysis of its function. An N-terminal five-stranded β-sheet Tudor-like module in the two-domain CdnL mediates binding to RNAP-β, and mutations that disrupt this interaction impair cell growth. The compact CdnL C-terminal domain consists of five α-helices folded as in some tetratricopeptide repeat-like protein-protein interaction domains, and contains a patch of solvent-exposed nonpolar and basic residues, among which a set of basic residues is shown to be crucial for CdnL function. We show that CdnL, but not its loss-of-function mutants, stabilizes formation of transcriptionally competent, open complexes by the primary σA-RNAP holoenzyme at an rRNA promoter in vitro. Consistent with this, CdnL is present at rRNA promoters in vivo. Implication of CdnL in RNAP-σA activity and of CarD in ECF-σ function in M. xanthus exemplifies how two related members within a widespread bacterial protein family have evolved to enable distinct σ-dependent promoter activity.
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