Summary information and primary citation
- PDB-id
-
11go;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- viral protein
- Method
- cryo-EM (2.82 Å)
- Summary
- cryo-EM structure of the bacteriophage n4 virion RNA
polymerase (transcription initiation complex)
- Reference
-
Narwal M, Shin Y, Murakami KS (2026): "Cryo-EM
study of bacteriophage N4 virion RNA polymerase."
J.Bacteriol., e0020826. doi: 10.1128/jb.00208-26.
- Abstract
- Coliphage N4 employs a unique infection and
transcription strategy in which early gene expression is
driven by a virion-encapsidated RNA polymerase (vRNAP) that
is injected into the host cytoplasm upon infection. Despite
extensive biochemical and crystallographic studies of the
polymerase domain of vRNAP, the structural organization and
regulatory roles of the N-terminal domain (NTD) and
C-terminal domain (CTD) regions of the 3,500-residue-long
whole enzyme have remained unresolved. Here, we report the
cryo-electron microscopy (cryo-EM) structures of
full-length N4 vRNAP in its apo state and in a
transcription initiation complex (TIC) with promoter DNA
and initiating nucleotides. The apo structure reveals a
modular architecture in which an α-helical CTD packs
against the Pol domain to stabilize an autoinhibited
conformation characterized by occlusion of the
nucleotide-binding site through tight contact between the
plug module and motif B loop. In contrast, promoter binding
induces conformational rearrangements that displace the
motif B loop from the active site and separate the CTD from
the Pol domain. The NTD is unresolved in both states,
consistent with substantial intrinsic flexibility, and
supporting its proposed role in membrane association and
genome injection. Structural modeling suggests that domain
segmentation and conformational plasticity may enable
translocation of vRNAP through the ~30 Å wide phage tail
channel during infection. Together, these results define
the molecular architecture of full-length vRNAP and
establish a structural framework for understanding how the
conformational transition of vRNAP is coupled to its
ejection, DNA injection, and early gene
expression.IMPORTANCEThis study investigates the structure
of full-length bacteriophage N4 virion RNA polymerase
(vRNAP), one of the largest known single-subunit RNA
polymerases. The functions of its extensive N- and
C-terminal regions remained unknown. Our work uncovers how
the C-terminal domain regulates polymerase activity through
a structural "switch" that locks the enzyme in an inactive
state until it recognizes its promoter DNA. These findings
explain how the phage prevents premature transcription and
ensures precise control of early gene expression during
infection. By integrating structures with the architecture
of the N4 phage particle, we propose a mechanism by which
this vRNAP is transported through the narrow phage tail
into the host cell. Together, this work provides
fundamental insight into phage transcription and viral gene
regulation.