Completed Infection & Immunity Genetics & Molecular Biology

Systematic analysis of essential parasite genes linked to invasion of the host cell in Toxoplasma gondii.

In plain English

AI plain-English summary

Toxoplasma parasites punch into human cells using specialised secretory organelles, and this project will systematically disable the genes that control that process. These single-celled parasites cause toxoplasmosis, a lifelong infection that can be dangerous for pregnant women and people with weakened immune systems. The parasite belongs to a group called apicomplexans, which also includes the malaria parasite. All of them rely on the same invasion machinery—tiny sacs called micronemes and rhoptries that release proteins at the moment of attack. How the parasite builds, maintains, and fires these organelles is poorly understood. This project will fill that gap by testing every gene suspected of playing a role in that cellular traffic. This is fundamental science. The immediate goal is to understand a basic biological process—how a parasite organises its internal transport system to invade a host. If successful, the work will produce an open-access database of mutant parasites, each with a known defect in invasion. That resource could eventually help researchers screen for chemical inhibitors that block invasion, potentially leading to new drugs against toxoplasmosis and malaria. But the primary payoff is a mechanistic map of a process that has remained largely opaque.

View original technical description
Apicomplexan parasites evolved unique organelles (micronemes, rhoptries and IMC) that enable invasion of the host cell. Interestingly, these organelles are linked to the secretory system. Therefore, systematic functional characterisation of factors believed to play a role in vesicular traffic, like Rab-GTPases, motor proteins, dynamins or SNAREs, will lead to novel insights as to how apicomplexans regulate biogenesis, maintenance and regulated secretion of these organelles. We previously demo nstrated that parasites deficient in these processes are unable to invade and we established image based approaches to automatically identify and characterise these mutants. We now want to expand our systematic, functional characterisation of genes of interest (GOIs) linked to these processes, using two complementary approaches: targeted mutagenesis and a random mutagenesis screen to identify novel factors that cannot be identified bioinformatically. The key goals are: I) Functional characte risation of GOIs 1) Determination of mechanisms of vesicular traffic and regulated secretion involving known GOIs 2) By screening of a new library of random parasite mutants, identification of novel mutants affected in host cell invasion 3) Functional, mechanistic characterisation of confirmed novel GOIs II) Long term goals 1) Establishment of an open access database for characterised mutants 2) Screening for chemical inhibitors for validated GOIs

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Researchers

Markus Meissner (EPMC Awardee)

Related Research

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Identification and functional characterization of proteins of the mitochondrial tRNA import pathway of Toxoplasma gondii
Deciphering the role of secreted proteins at the host-parasite interface during chronic Toxoplasma gondii infection
Characterisation of a new family of zinc finger proteins and their role in apicomplexan parasites' development and transmission.
Investigation of conserved proteins that regulate transmission of the malaria parasite and Toxoplasma gondii.

Original classification

Senior Research Fellowship Basic

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