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Analogs of the Golgi complex in microsporidia: structure and avesicular mechanisms of function
Galina V Beznoussenko1, Viacheslav V Dolgikh, Elena V Seliverstova
1Department of Cell Biology and Oncology, Consorzio Mario Negri Sud, Via Nazionale, 66030 Santa Maria Imbaro (Chieti), Italy.
Abstract:
Microsporidia are obligatory intracellular parasites, most species of which live in the host cell cytosol. They synthesize and then transport secretory proteins from the endoplasmic reticulum to the plasma membrane for formation of the spore wall and the polar tube for cell invasion. However, microsporidia do not have a typical Golgi complex. Here, using quick-freezing cryosubstitution and chemical fixation, we demonstrate that the Golgi analogs of the microsporidia Paranosema (Antonospora) grylli and Paranosema locustae appear as 300-nm networks of thin (25- to 40-nm diameter), branching or varicose tubules that display histochemical features of a Golgi, but that do not have vesicles. Vesicles are not formed even if membrane fusion is inhibited. These tubular networks are connected to the endoplasmic reticulum, the plasma membrane and the forming polar tube, and are positive for Sec13, gammaCOP and analogs of giantin and GM130. The spore-wall and polar-tube proteins are transported from the endoplasmic reticulum to the target membranes through these tubular networks, within which they undergo concentration and glycosylation. We suggest that the intracellular transport of secreted proteins in microsporidia occurs by a progression mechanism that does not involve the participation of vesicles generated by coat proteins I and II.
Insights
Microsporidia lack a traditional Golgi complex but utilize tubular networks for protein transport. These networks, crucial for spore wall and invasion tube formation, facilitate protein movement without vesicle involvement.
Area of Science:
- Cell Biology
- Parasitology
- Microbiology
Background:
- Microsporidia are obligate intracellular parasites.
- They lack a conventional Golgi complex, posing questions about protein transport.
- Secretory proteins are essential for microsporidian spore wall and polar tube formation.
Purpose of the Study:
- To investigate the structure and function of Golgi analogs in microsporidia.
- To elucidate the mechanism of secretory protein transport in the absence of a typical Golgi complex.
- To identify the components and pathways involved in protein trafficking.
Main Methods:
- Quick-freezing cryosubstitution and chemical fixation techniques.
- Histochemical analysis to identify Golgi-associated features.
- Immunofluorescence labeling for specific proteins (Sec13, gammaCOP, giantin, GM130).
Main Results:
- Microsporidia possess Golgi analogs as tubular networks (25-40 nm diameter).
- These networks lack vesicles and are connected to the endoplasmic reticulum and plasma membrane.
- Proteins for spore wall and polar tube are transported and modified within these tubular networks.
Conclusions:
- Microsporidian protein transport occurs via a novel progression mechanism through tubular networks.
- This mechanism bypasses the need for vesicle formation mediated by coat proteins.
- The findings reveal unique adaptations in intracellular transport pathways in microsporidia.
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