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Membrane-wrapping contributions to malaria parasite invasion of the human erythrocyte

Dasgupta, Sabyasachi; Auth, Thorsten; Gov, Nir S.; Satchwell, Timothy J.; Hanssen, Eric; Zuccala, Elizabeth S.; Riglar, David T.; Toye, Ashley M.; Betz, Timo; Baum, Jake; Gompper, Gerhard

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Authors

Sabyasachi Dasgupta

Thorsten Auth

Nir S. Gov

Timothy J. Satchwell

Eric Hanssen

Elizabeth S. Zuccala

David T. Riglar

Ashley M. Toye

Timo Betz

Jake Baum

Gerhard Gompper



Abstract

The blood stage malaria parasite, the merozoite, has a small window of opportunity during which it must successfully target and invade a human erythrocyte. The process of invasion is nonetheless remarkably rapid. To date, mechanistic models of invasion have focused predominantly on the parasite actomyosin motor contribution to the energetics of entry. Here, we have conducted a numerical analysis using dimensions for an archetypal merozoite to predict the respective contributions of the host-parasite interactions to invasion, in particular the role of membrane wrapping. Our theoretical modeling demonstrates that erythrocyte membrane wrapping alone, as a function of merozoite adhesive and shape properties, is sufficient to entirely account for the first key step of the invasion process, that of merozoite reorientation to its apex and tight adhesive linkage between the two cells. Next, parasite-induced reorganization of the erythrocyte cytoskeleton and release of parasite-derived membrane can also account for a considerable energetic portion of actual invasion itself, through membrane wrapping. Thus, contrary to the prevailing dogma, wrapping by the erythrocyte combined with parasite-derived membrane release can markedly reduce the expected contributions of the merozoite actomyosin motor to invasion. We therefore propose that invasion is a balance between parasite and host cell contributions, evolved toward maximal efficient use of biophysical forces between the two cells. © 2014 The Authors.

Journal Article Type Article
Acceptance Date May 19, 2014
Online Publication Date Jul 1, 2014
Publication Date Jul 1, 2014
Deposit Date Jul 11, 2024
Publicly Available Date Jul 12, 2024
Journal Biophysical Journal
Print ISSN 0006-3495
Electronic ISSN 1542-0086
Publisher Biophysical Society
Peer Reviewed Peer Reviewed
Volume 107
Issue 1
Pages 43-54
DOI https://doi.org/10.1016/j.bpj.2014.05.024
Public URL https://uwe-repository.worktribe.com/output/12121547

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