Structure of the Lysinibacillus sphaericus Tpp49Aa1 pesticidal protein elucidated from natural crystals using MHz-SFX

Author:

Williamson Lainey J.1ORCID,Galchenkova Marina2ORCID,Best Hannah L.1ORCID,Bean Richard J.3ORCID,Munke Anna2ORCID,Awel Salah2,Pena Gisel2ORCID,Knoska Juraj2,Schubert Robin3,Dörner Katerina3ORCID,Park Hyun-Woo4ORCID,Bideshi Dennis K.4ORCID,Henkel Alessandra2ORCID,Kremling Viviane2ORCID,Klopprogge Bjarne2ORCID,Lloyd-Evans Emyr1ORCID,Young Mark T.1ORCID,Valerio Joana3ORCID,Kloos Marco3ORCID,Sikorski Marcin3,Mills Grant3,Bielecki Johan3ORCID,Kirkwood Henry3,Kim Chan3ORCID,de Wijn Raphael3ORCID,Lorenzen Kristina3ORCID,Xavier Paul Lourdu25ORCID,Rahmani Mashhour Aida2ORCID,Gelisio Luca2ORCID,Yefanov Oleksandr2,Mancuso Adrian P.36ORCID,Federici Brian A.7ORCID,Chapman Henry N.289ORCID,Crickmore Neil10ORCID,Rizkallah Pierre J.11ORCID,Berry Colin1ORCID,Oberthür Dominik2

Affiliation:

1. School of Biosciences, Cardiff University, Cardiff CF10 3AX, United Kingdom

2. Center for Free Electron Laser Science CFEL, Deutsches Elektronen-Synchrotron DESY, Notkestr. 85, 22607 Hamburg, Germany

3. European XFEL GmbH, 22869 Schenefeld, Germany

4. Department of Biological Sciences, California Baptist University, Riverside, CA 92504

5. Max-Planck Institute for the Structure and Dynamics of Matter, 22761 Hamburg, Germany

6. Department of Chemistry and Physics, La Trobe Institute for Molecular Science, La Trobe University, Melbourne, VIC 3086, Australia

7. Department of Entomology and Institute for Integrative Genome Biology, University of California, Riverside, CA 92521

8. Centre for Ultrafast Imaging, Universität Hamburg, 22761 Hamburg, Germany

9. Department of Physics, Universität Hamburg, 22761 Hamburg, Germany

10. School of Life Sciences, University of Sussex, Falmer, Brighton BN1 9QG, United Kingdom

11. School of Medicine, Cardiff University, Cardiff CF14 4XN, United Kingdom

Abstract

The Lysinibacillus sphaericus proteins Tpp49Aa1 and Cry48Aa1 can together act as a toxin toward the mosquito Culex quinquefasciatus and have potential use in biocontrol. Given that proteins with sequence homology to the individual proteins can have activity alone against other insect species, the structure of Tpp49Aa1 was solved in order to understand this protein more fully and inform the design of improved biopesticides. Tpp49Aa1 is naturally expressed as a crystalline inclusion within the host bacterium, and MHz serial femtosecond crystallography using the novel nanofocus option at an X-ray free electron laser allowed rapid and high-quality data collection to determine the structure of Tpp49Aa1 at 1.62 Å resolution. This revealed the packing of Tpp49Aa1 within these natural nanocrystals as a homodimer with a large intermolecular interface. Complementary experiments conducted at varied pH also enabled investigation of the early structural events leading up to the dissolution of natural Tpp49Aa1 crystals—a crucial step in its mechanism of action. To better understand the cooperation between the two proteins, assays were performed on a range of different mosquito cell lines using both individual proteins and mixtures of the two. Finally, bioassays demonstrated Tpp49Aa1/Cry48Aa1 susceptibility of Anopheles stephensi , Aedes albopictus, and Culex tarsalis larvae—substantially increasing the potential use of this binary toxin in mosquito control.

Funder

UKRI | Biotechnology and Biological Sciences Research Council

U.S. Centers for Disease Control and Prevention

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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