4.8 Article

Malaria parasite translocon structure and mechanism of effector export

Journal

NATURE
Volume 561, Issue 7721, Pages 70-+

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41586-018-0469-4

Keywords

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Funding

  1. National Institutes of Health [R21AI125983, R01GM071940/AI094386/DE025567, K99/R00 HL133453]
  2. Ruth L. Kirschstein National Research Service Award [AI007323]
  3. UCLA
  4. NIH [S10RR23057, S10OD018111, U24GM116792]
  5. NSF [DBI-1338135, DMR-1548924]
  6. NATIONAL CENTER FOR RESEARCH RESOURCES [S10RR023057] Funding Source: NIH RePORTER
  7. NATIONAL HEART, LUNG, AND BLOOD INSTITUTE [R00HL133453, K99HL133453] Funding Source: NIH RePORTER
  8. NATIONAL INSTITUTE OF ALLERGY AND INFECTIOUS DISEASES [T32AI007323, R21AI125983, R01AI094386] Funding Source: NIH RePORTER
  9. NATIONAL INSTITUTE OF DENTAL & CRANIOFACIAL RESEARCH [R01DE025567] Funding Source: NIH RePORTER
  10. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [U24GM116792, R01GM071940] Funding Source: NIH RePORTER
  11. OFFICE OF THE DIRECTOR, NATIONAL INSTITUTES OF HEALTH [S10OD018111] Funding Source: NIH RePORTER

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The putative Plasmodium translocon of exported proteins (PTEX) is essential for transport of malarial effector proteins across a parasite-encasing vacuolar membrane into host erythrocytes, but the mechanism of this process remains unknown. Here we show that PTEX is a bona fide translocon by determining structures of the PTEX core complex at near-atomic resolution using cryo-electron microscopy. We isolated the endogenous PTEX core complex containing EXP2, PTEX150 and HSP101 from Plasmodium falciparum in the 'engaged' and 'resetting' states of endogenous cargo translocation using epitope tags inserted using the CRISPR-Cas9 system. In the structures, EXP2 and PTEX150 interdigitate to form a static, funnel-shaped pseudo-seven-fold-symmetric protein-conducting channel spanning the vacuolar membrane. The spiral-shaped AAA+ HSP101 hexamer is tethered above this funnel, and undergoes pronounced compaction that allows three of six tyrosine-bearing pore loops lining the HSP101 channel to dissociate from the cargo, resetting the translocon for the next threading cycle. Our work reveals the mechanism of P. falciparum effector export, and will inform structure-based design of drugs targeting this unique translocon.

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