New insights into Microsporidia polar tube function and invasion mechanism

Author:

Fayet Maurine1,Long Mengxian23,Han Bing34ORCID,Belkorchia Abdel1,Delbac Frédéric1ORCID,Polonais Valerie1ORCID

Affiliation:

1. Laboratoire “Microorganismes: Génome et Environnement”, CNRS Université Clermont Auvergne Clermont‐Ferrand France

2. State Key Laboratory of Resource Insects Southwest University Chongqing China

3. Chongqing Key Laboratory of Microsporidia Infection and Control Southwest University Chongqing China

4. Department of Pathogenic Biology, School of Basic Medical Sciences, Cheeloo College of Medicine Shandong University Jinan Shandong China

Abstract

AbstractMicrosporidia comprise a large phylum of single‐cell and obligate intracellular parasites that can infect a wide range of invertebrate and vertebrate hosts including humans. These fungal‐related parasites are characterized by a highly reduced genome, a strong energy dependence on their host, but also by their unique invasion organelle known as the polar tube which is coiled within the resistant spore. Upon appropriate environmental stimulation, the long hollow polar tube (ranging from 50 to 500 μm in length) is extruded at ultra‐fast speeds (300 μm/s) from the spore acting as a harpoon‐like organelle to transport and deliver the infectious material or sporoplasm into the host cell. To date, seven polar tube proteins (PTPs) with distinct localizations along the extruded polar tube have been described. For example, the specific location of PTP4 and PTP7 at the tip of the polar tube supports their role in interacting with cellular receptor(s). This chapter provides a brief overview on the current understanding of polar tube structure and dynamics of extrusion, primarily through recent advancements in cryo‐tomography and 3D reconstruction. It also explores the various mechanisms used for host cell invasion. Finally, recent studies on the structure and maturation of sporoplasm and its moving through the tube are discussed.

Publisher

Wiley

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