Microtubule inner proteins of <i>Plasmodium</i> are essential for transmission of malaria parasites

F Franziska Hentzschel (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) A Annika M. Binder (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) L Lilian P. Dorner (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) L Lea Herzel (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) F Fenja Nuglisch (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) M Meslo Sema (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) K Katharina Röver (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) B Buyuan He (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) M Manuela C. Aguirre-Botero (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) M Marek Cyrklaff (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology) C Charlotta Funaya (Electron Microscopy Core Facility, Heidelberg University) F Friedrich Frischknecht (Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology)

Abstract

Microtubule inner proteins (MIPs) are microtubule-associated proteins that bind to tubulin from the luminal side. MIPs can be found in axonemes to stabilize flagellar beat or within cytoplasmic microtubules. Plasmodium spp. are the causative agents of malaria that feature different parasite forms across a complex life cycle with both unique and divergent microtubule-based arrays. Here, we investigate four MIPs in a rodent malaria parasite for their role in transmission to and from the mosquito. We show by single and double gene deletions that SPM1 and TrxL1, MIPs associated with subpellicular microtubules, are dispensable for transmission from the vertebrate host to the mosquito and back. In contrast, FAP20 and FAP52, MIPs associated with the axonemes of gametes, are essential for transmission to mosquitoes but only if both genes are deleted. In the absence of both FAP20 and FAP52, the B-tubule of the axoneme partly detaches from the A-tubule, resulting in the deficiency of axonemal beating and hence gamete formation and egress. Our data suggest that a high level of redundancy ensures microtubule stability in the transmissive stages of Plasmodium , which is important for parasite transmission.

Article Details

Volume / Issue Vol. 122, Issue 6
Published February 11, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

F

Franziska Hentzschel

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

A

Annika M. Binder

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

L

Lilian P. Dorner

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

L

Lea Herzel

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

F

Fenja Nuglisch

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

M

Meslo Sema

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

K

Katharina Röver

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

B

Buyuan He

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

M

Manuela C. Aguirre-Botero

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

M

Marek Cyrklaff

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology

C

Charlotta Funaya

Electron Microscopy Core Facility, Heidelberg University

F

Friedrich Frischknecht

Heidelberg University Medical Faculty, Center for Infectious Diseases, Parasitology