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Updated: Aug 15, 2026

Monitoring the Assembly of a Secreted Bacterial Virulence Factor Using Site-specific Crosslinking
Published on: December 17, 2013
Translocation of an 89-kDa periplasmic protein is associated with Holospora infection
Koichi Iwatani1, Hideo Dohra, B Franz Lang
1Biological Institute, Faculty of Science, Yamaguchi University, Yoshida 1677-1, Yamaguchi 753-8512, Japan.
Abstract:
The symbiotic bacterium Holospora obtusa infects the macronucleus of the ciliate Paramecium caudatum. After ingestion by its host, an infectious form of Holospora with an electron-translucent tip passes through the host digestive vacuole and penetrates the macronuclear envelope with this tip. To investigate the underlying molecular mechanism of this process, we raised a monoclonal antibody against the tip-specific 89-kDa protein, sequenced this partially, and identified the corresponding complete gene. The deduced protein sequence carries two actin-binding motifs. Indirect immunofluorescence microscopy shows that during escape from the host digestive vacuole, the 89-kDa proteins translocates from the inside to the outside of the tip. When the bacterium invades the macronucleus, the 89-kDa protein is left behind at the entry point of the nuclear envelope. Transmission electron microscopy shows the formation of fine fibrous structures that co-localize with the antibody-labeled regions of the bacterium. Our findings suggest that the 89-kDa protein plays a role in Holospora's escape from the host digestive vacuole, the migration through the host cytoplasm, and the invasion into the macronucleus.
Insights
The Holospora obtusa bacterium uses a specific 89-kDa protein to invade its host, Paramecium caudatum. This protein aids in escaping the digestive vacuole and entering the macronucleus.
Area of Science:
- Microbiology
- Cell Biology
- Symbiotic Interactions
Background:
- Holospora obtusa is a symbiotic bacterium infecting the macronucleus of the ciliate Paramecium caudatum.
- Bacterial invasion involves passage through host digestive vacuoles and penetration of the nuclear envelope.
Purpose of the Study:
- To investigate the molecular mechanisms of Holospora obtusa invasion into Paramecium caudatum.
- To identify the role of a tip-specific protein in the invasion process.
Main Methods:
- Monoclonal antibody production against a tip-specific 89-kDa protein.
- Partial sequencing and gene identification of the 89-kDa protein.
- Indirect immunofluorescence microscopy and transmission electron microscopy.
Main Results:
- The 89-kDa protein contains two actin-binding motifs.
- The protein translocates to the outside of the bacterial tip during vacuole escape.
- The 89-kDa protein is deposited at the nuclear envelope entry point during macronuclear invasion.
- Fibrous structures co-localize with antibody-labeled regions.
Conclusions:
- The 89-kDa protein is crucial for Holospora obtusa's host cell invasion.
- This protein facilitates bacterial escape from the digestive vacuole, cytoplasmic migration, and nuclear entry.
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