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Biology subjects

Lou, Y.-C.

Publications and source records attributed to Lou, Y.-C..

2 recordsLinked to original sources

Cryo-EM inspired NMR analysis reveals a pH-induced conformational switching mechanism for imparting dynamics to Betanodavirus protrusions

Nervous necrosis virus (NNV), a non-enveloped betanodavirus, causes neuropathies and retinopathies in farmed fish, damaging aquaculture worldwide. NNV has 60 conspicuous surface protrusions comprising the protrusion domain (P-domain) of its capsid protein. Although NNV protrusions play critical roles in infectivity, the underlying dynamics remain unclear. Our cryogenic electron microscopy (cryo-EM)-derived structures of Dragon grouper (Epinephelus lanceolatus) NNV reveal that the protrusions undergo low-pH-induced compaction and movement. We show that the P-domain is monomeric in solution at a pH germane to infection (7.0). Moreover, nuclear magnetic resonance (NMR) structures reveal a peptide (amino acids 311-330) that adopts a flexible loop to form an open pocket. NMR spectral analysis at pH 5.0 aided by molecular dynamics (MD) simulations show that this loop switches to a {beta}-strand under acidic conditions, eliciting pocket closure and P-domain trimerization, highlighting a unique pH-sensing feature. Our docking analysis revealed the N-terminal moiety of sialic acid inserted into and interacting with conserved residues in the pocket. Additionally, a low-pH-induced conformational change in the linker region via peptide bond isomerization conferred malleability on the protrusions. Our work uncovers the protrusion dynamics of a betanodavirus governing its infectivity through a pH-dependent conformational switching mechanism, providing insights into complex virus-host interactions.

biochemistry↗

Structural basis of transcriptional activation by the OmpR/PhoB-family response regulator PmrA

PmrA, an OmpR/PhoB-family response regulator, activates gene transcription responsible for polymyxin resistance in bacteria by recognizing promoters in which the canonical -35 element is replaced by the pmra-box, representing the PmrA recognition sequence. Here, we report a cryo-electron microscopy-derived structure of a bacterial PmrA-dependent transcription activation complex (TAC) containing a PmrA dimer, an RNA polymerase {sigma}70-holoenzyme (RNAPH), and the pbgP promoter DNA. Our structure reveals that the RNAPH mainly contacts the PmrA C-terminal DNA binding domain (DBD) via electrostatic interactions and reorients the DBD three base pairs upstream of the pmra-box, resulting in a dynamic TAC conformation. In vivo assays show that substitution of PmrA DNA-recognition residues eliminated its transcriptional activity, but variants with altered RNAPH-interacting residues exhibited elevated transcriptional activity. Our study indicates that both PmrA recognition-induced DNA distortion and PmrA promoter escape play important roles in its transcriptional activation.

biophysics↗