Cryo-ET reveals the in situ architecture of the polar tube invasion apparatus from microsporidian parasites

M Mahrukh Usmani (Department of Biology, Johns Hopkins University) N Nicolas Coudray M Margot Riggi (Research Department Cell and Virus Structure, Max Planck Institute for Biochemistry) R Rishwanth Raghu (Department of Computer Science, Princeton University) H Harshita Ramchandani (Department of Biology, Johns Hopkins University) D Daija Bobe (Simons Electron Microscopy Center, New York Structural Biology Center) M Mykhailo Kopylov (Simons Electron Microscopy Center, New York Structural Biology Center) E Ellen D. Zhong (Department of Computer Science, Princeton University) J Janet H. Iwasa (Department of Biochemistry, University of Utah) D Damian C. Ekiert G Gira Bhabha

Abstract

Microsporidia are divergent fungal pathogens that employ a unique harpoon-like apparatus called the polar tube (PT) to invade host cells. The long PT is fired out of the microsporidian spore over the course of just a few hundred milliseconds. Once fired, the PT is thought to pierce the plasma membrane of a target cell and act as a conduit for the transfer of the parasite into the host cell, which initiates infection. The PT architecture and its association with neighboring organelles within the parasite cell remain poorly understood. Here, we use cryoelectron tomography to investigate the structural cell biology of the PT in dormant spores from the human-infecting microsporidian species, Encephalitozoon intestinalis . Segmentation and subtomogram averaging of the PT reveal at least four layers: two protein-based layers surrounded by a membrane layer and filled with a dense core. Regularly spaced protein filaments form the structural skeleton of the PT. Combining cryoelectron tomography with cellular modeling, we propose a model for the three-dimensional organization of the polaroplast, an organelle that surrounds the PT and is continuous with the outermost, membranous layer of the PT. Our results reveal the ultrastructure of the microsporidian invasion apparatus in situ, laying the foundation for understanding infection mechanisms.

Article Details

Volume / Issue Vol. 122, Issue 11
Published March 18, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

M

Mahrukh Usmani

Department of Biology, Johns Hopkins University

N

Nicolas Coudray

M

Margot Riggi

Research Department Cell and Virus Structure, Max Planck Institute for Biochemistry

R

Rishwanth Raghu

Department of Computer Science, Princeton University

H

Harshita Ramchandani

Department of Biology, Johns Hopkins University

D

Daija Bobe

Simons Electron Microscopy Center, New York Structural Biology Center

M

Mykhailo Kopylov

Simons Electron Microscopy Center, New York Structural Biology Center

E

Ellen D. Zhong

Department of Computer Science, Princeton University

J

Janet H. Iwasa

Department of Biochemistry, University of Utah

D

Damian C. Ekiert

G

Gira Bhabha