In situ structures of the <i>Legionella</i> Dot/Icm T4SS identify the DotA–IcmX complex as the gatekeeper for effector translocation

J Jian Yue (Department of Microbial Pathogenesis, Yale School of Medicine) S Samira Heydari (Department of Microbial Pathogenesis, Yale School of Medicine) D Donghyun Park (Department of Microbial Pathogenesis, Yale School of Medicine) D David Chetrit (Department of Microbial Pathogenesis, Yale School of Medicine) S Shoichi Tachiyama (Microbial Sciences Institute) W Wangbiao Guo (Microbial Sciences Institute) J Jack M. Botting (Department of Microbial Pathogenesis, Yale School of Medicine) S Shenping Wu (Department of Pharmacology, Yale School of Medicine) C Craig R. Roy (Department of Microbial Pathogenesis, Yale University School of Medicine) J Jun Liu

Abstract

The Dot/Icm machine of Legionella pneumophila is among the most versatile type IV secretion systems (T4SSs), capable of translocating more than 330 distinct effector proteins across the bacterial envelope into host cells. Assembly and function of the system require at least 27 Dot and Icm proteins, yet its architecture and activation mechanism remain poorly understood at the molecular level. Here, we deploy in situ single-particle cryoelectron microscopy to determine near-atomic structures of the Dot/Icm machine and its intimate association with three distinct outer membrane porins in intact bacteria. Notably, two essential yet enigmatic components, DotA and IcmX, form a pentameric protochannel in an inactive state at the central axis of the Dot/Icm machine. Upon Dot/Icm activation with host lysate, this protochannel undergoes extensive rearrangements to generate an extended transenvelope conduit, as visualized by cryoelectron tomography (cryo-ET) and subtomogram averaging. Furthermore, a combination of cryo-ET and cryo-FIB milling of macrophages infected with L. pneumophila reveals tethering of the Dot/Icm machine to the host membrane, suggesting direct translocation of effector proteins from the bacterial cytoplasm into the host. Together, our studies identify the DotA–IcmX complex as a gatekeeper for effector translocation and provide a molecular framework for understanding the assembly and activation of the elaborate Dot/Icm T4SS.

Article Details

Volume / Issue Vol. 122, Issue 39
Published September 30, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

J

Jian Yue

Department of Microbial Pathogenesis, Yale School of Medicine

S

Samira Heydari

Department of Microbial Pathogenesis, Yale School of Medicine

D

Donghyun Park

Department of Microbial Pathogenesis, Yale School of Medicine

D

David Chetrit

Department of Microbial Pathogenesis, Yale School of Medicine

S

Shoichi Tachiyama

Microbial Sciences Institute

W

Wangbiao Guo

Microbial Sciences Institute

J

Jack M. Botting

Department of Microbial Pathogenesis, Yale School of Medicine

S

Shenping Wu

Department of Pharmacology, Yale School of Medicine

C

Craig R. Roy

Department of Microbial Pathogenesis, Yale University School of Medicine

J

Jun Liu