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Assessing the Cellular Immune Response of the Fruit Fly, Drosophila melanogaster, Using an In Vivo Phagocytosis Assay
Published on: April 10, 2019
Subversion of Atypical Mucin Traps by a Spore-Coat Effector Blocks Cellular Immunity in Drosophila
Shiqin Li1,2, Haimin Chen1,2, Gangqi Fang1
1Key Laboratory of Insect Developmental and Evolutionary Biology, State Key Laboratory of Plant Trait Design, CAS Center for Excellence in Molecular Plant Sciences, Shanghai Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, China.
Abstract:
While a few effectors of entomopathogenic fungi such as Metarhizium robertsii have been shown to evade insect humoral immunity, the strategies employed by fungi to subvert host cellular defenses remain elusive. Here, we report the identification of a spore-coat protein Eac1 in M. robertsii that is essentially required for fungal infection of drosophilids but not caterpillars. Eac1 targets Sgf1 (spore gluing factor), which interacts with its clustered homolog Sgf2 in Drosophila melanogaster. Both Sgf1 and Sgf2 are drosophilid-specific secreted proteins of previously unknown function. Unlike Sgf2, Sgf1 is patchily distributed among drosophilids and appears to be a duplicate of Sgf2. Both genes are induced via the Toll pathway following fungal infection. We demonstrate that Sgf1 and Sgf2 are small atypical mucins that bind fungal cell wall components and entrap spores by forming a colloidal-like gel matrix; however, this entrapment can be disrupted by Eac1. Null mutants of Sgf1, Sgf2, and especially the double mutants of Drosophila, were significantly impaired in their ability to combat fungal colonization. Our findings reveal that spore entrapment by atypical mucins is a prerequisite for effective hemocyte encapsulation and demonstrate how fungal parasites deploy a specialized coat protein to evade host cellular immunity.
Insights
Entomopathogenic fungi use the Eac1 protein to evade insect cellular immunity. Eac1 disrupts host spore entrapment, enabling fungal infection by disabling atypical mucins like Sgf1 and Sgf2.
Area of Science:
- Mycology
- Insect Pathology
- Immunology
Background:
- Fungal pathogens employ various strategies to overcome insect immune responses.
- While humoral immunity evasion is understood, fungal subversion of cellular defenses remains unclear.
Purpose of the Study:
- Identify fungal factors involved in evading insect cellular immunity.
- Investigate the role of Metarhizium robertsii spore-coat protein Eac1 in host defense evasion.
Main Methods:
- Genetic analysis of M. robertsii and Drosophila melanogaster.
- Protein interaction studies.
- Analysis of host immune response pathways (Toll pathway).
Main Results:
- Identified Eac1 as crucial for M. robertsii infection in drosophilids.
- Discovered drosophilid-specific proteins Sgf1 and Sgf2 form a gel matrix that entraps fungal spores.
- Eac1 disrupts this spore entrapment mechanism.
- Drosophila mutants lacking Sgf1/Sgf2 showed impaired fungal colonization resistance.
Conclusions:
- Atypical mucins (Sgf1, Sgf2) mediate spore entrapment, a key step for hemocyte encapsulation.
- Fungal Eac1 protein is a specialized effector that disarms this host cellular defense.
- This study reveals a novel mechanism of fungal immune evasion targeting host cellular immunity.

