Microsporidian Nosema bombycis hijacks host vitellogenin and restructures ovariole cells for transovarial transmission

Author:

Wang Chunxia,Yu Bin,Meng Xianzhi,Xia Dan,Pei Boyan,Tang Xiangyou,Zhang Guizheng,Wei Junhong,Long Mengxian,Chen Jie,Bao Jialing,Li Chunfeng,Pan Guoqing,Zhou Zeyang,Li TianORCID

Abstract

Microsporidia are a group of obligate intracellular parasites that infect almost all animals, causing serious human diseases and major economic losses to the farming industry. Nosema bombycis is a typical microsporidium that infects multiple lepidopteran insects via fecal-oral and transovarial transmission (TOT); however, the underlying TOT processes and mechanisms remain unknown. Here, we characterized the TOT process and identified key factors enabling N. bombycis to invade the ovariole and oocyte of silkworm Bombyx mori. We found that the parasites commenced with TOT at the early pupal stage when ovarioles penetrated the ovary wall and were exposed to the hemolymph. Subsequently, the parasites in hemolymph and hemolymph cells firstly infiltrated the ovariole sheath, from where they invaded the oocyte via two routes: (I) infecting follicular cells, thereby penetrating oocytes after proliferation, and (II) infecting nurse cells, thus entering oocytes following replication. In follicle and nurse cells, the parasites restructured and built large vacuoles to deliver themselves into the oocyte. In the whole process, the parasites were coated with B. mori vitellogenin (BmVg) on their surfaces. To investigate the BmVg effects on TOT, we suppressed its expression and found a dramatic decrease of pathogen load in both ovarioles and eggs, suggesting that BmVg plays a crucial role in the TOT. Thereby, we identified the BmVg domains and parasite spore wall proteins (SWPs) mediating the interaction, and demonstrated that the von Willebrand domain (VWD) interacted with SWP12, SWP26 and SWP30, and the unknown function domain (DUF1943) bound with the SWP30. When disrupting these interactions, we found significant reductions of the pathogen load in both ovarioles and eggs, suggesting that the interplays between BmVg and SWPs were vital for the TOT. In conclusion, our study has elucidated key aspects about the microsporidian TOT and revealed the key factors for understanding the molecular mechanisms underlying this transmission.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Natural Science Foundation Project of Chongqing, Chongqing Science and Technology Commission

Publisher

Public Library of Science (PLoS)

Subject

Virology,Genetics,Molecular Biology,Immunology,Microbiology,Parasitology

Reference75 articles.

1. Transovarial transmission and sex ratio distortion by a microsporidian parasite in a shrimp;AM Dunn;J Invertebr Pathol,1993

2. Five questions about microsporidia;P. Keeling;PLoS Pathog,2009

3. Microsporidia: Pathogens of Opportunity.:;LM Weiss;Wiley Blackwell;,2014

4. Microsporidia: obligate intracellular pathogens within the fungal kingdom.;B Han;Microbiol Spectr.,2017

5. Parasitic diseases of equids in Iran (1931–2020): a literature review.;A Sazmand;Parasit Vectors,2020

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