TY - JOUR
T1 - Liquid–liquid phase separation and a phage-encoded inhibitor cooperatively drive transcriptional transition during phage SPO1 infection
AU - Yu, Zonglan
AU - Hu, Zhenyue
AU - Jin, Qianqian
AU - Zhang, Haoran
AU - Chen, Menglan
AU - Chen, Huan
AU - Chen, Wei
AU - Gao, Juanjuan
AU - Wang, Yawen
AU - Wu, Yue
AU - He, Yingli
AU - Li, Mengzhe
AU - Xu, Yingqi
AU - Garnett, James
AU - Li, Yan
AU - Yuan, Shuai
AU - Liu, Bing
N1 - Publisher Copyright:
© The Author(s) 2026. Published by Oxford University Press. This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact reprints@oup.com for reprints and translation rights for reprints. All other permissions can be obtained through our RightsLink service via the Permissions link on the article page on our site—for further information please contact journals.permissions@oup.com.
PY - 2026/8/12
Y1 - 2026/8/12
N2 - Liquid–liquid phase separation (LLPS) organizes biochemical reactions in cells, yet whether this principle contributes to bacteriophage development has remained unclear. During infection, Bacillus phage SPO1 initially relies on host σA-dependent transcription to drive early gene expression before switching to phage-encoded σ factors for middle and late transcription. However, the mechanisms underlying these transitions, particularly how the middle σ factor Gp28 displaces σA, have remained elusive. Here, we show that SPO1 exploits LLPS to orchestrate its transcriptional program. We identify the phage-encoded transcription factor Gp27 as the principal driver of phase separation, forming biomolecular condensates both in vitro and in vivo. Structural and biochemical analyses reveal that Gp27 possesses a modular architecture that promotes condensate formation and concentrates the transcriptional machinery, thereby compensating for the intrinsically weak promoter-binding activity of phage-encoded σ factors. In parallel, we identify SPO1 Gp33 as an inhibitor of σA-dependent transcription whose expression itself depends on LLPS. Gp33 selectively suppresses σA-driven transcription by trapping the RNA polymerase holoenzyme in an inactive state and preventing σA-mediated promoter recognition. Together, these findings uncover LLPS as a previously unrecognized regulatory strategy exploited by bacteriophages, which acting in concert with a phage-encoded transcription inhibitor, as a mechanism governing phage transcriptional progression.
AB - Liquid–liquid phase separation (LLPS) organizes biochemical reactions in cells, yet whether this principle contributes to bacteriophage development has remained unclear. During infection, Bacillus phage SPO1 initially relies on host σA-dependent transcription to drive early gene expression before switching to phage-encoded σ factors for middle and late transcription. However, the mechanisms underlying these transitions, particularly how the middle σ factor Gp28 displaces σA, have remained elusive. Here, we show that SPO1 exploits LLPS to orchestrate its transcriptional program. We identify the phage-encoded transcription factor Gp27 as the principal driver of phase separation, forming biomolecular condensates both in vitro and in vivo. Structural and biochemical analyses reveal that Gp27 possesses a modular architecture that promotes condensate formation and concentrates the transcriptional machinery, thereby compensating for the intrinsically weak promoter-binding activity of phage-encoded σ factors. In parallel, we identify SPO1 Gp33 as an inhibitor of σA-dependent transcription whose expression itself depends on LLPS. Gp33 selectively suppresses σA-driven transcription by trapping the RNA polymerase holoenzyme in an inactive state and preventing σA-mediated promoter recognition. Together, these findings uncover LLPS as a previously unrecognized regulatory strategy exploited by bacteriophages, which acting in concert with a phage-encoded transcription inhibitor, as a mechanism governing phage transcriptional progression.
UR - https://www.scopus.com/pages/publications/105045424367
U2 - 10.1093/nar/gkag742
DO - 10.1093/nar/gkag742
M3 - 文章
C2 - 42500824
AN - SCOPUS:105045424367
SN - 0305-1048
VL - 54
JO - Nucleic Acids Research
JF - Nucleic Acids Research
IS - 14
M1 - gkag742
ER -