4.7 Article

The malaria secretome: From algorithms to essential function in blood stage infection

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PLOS PATHOGENS
卷 4, 期 6, 页码 -

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PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.ppat.1000084

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资金

  1. NIH [R01AI39071, R01HL69630, P01 HL 078826, RO1 AI033656,, R21 AI AI070888]
  2. Burroughs Wellcome Fund [1006227]
  3. Institutional National Research Service Award
  4. American Heart Association [0425607Z]
  5. NATIONAL HEART, LUNG, AND BLOOD INSTITUTE [R01HL069630, P01HL078826] Funding Source: NIH RePORTER
  6. NATIONAL INSTITUTE OF ALLERGY AND INFECTIOUS DISEASES [R21AI070888, R01AI033656, T32AI007476, R01AI039071] Funding Source: NIH RePORTER

向作者/读者索取更多资源

The malaria agent Plasmodium falciparum is predicted to export a secretome'' of several hundred proteins to remodel the host erythrocyte. Prediction of protein export is based on the presence of an ER-type signal sequence and a downstream Host-Targeting (HT) motif (which is similar to, but distinct from, the closely related Plasmodium Export Element [PEXEL]). Previous attempts to determine the entire secretome, using either the HT-motif or the PEXEL, have yielded large sets of proteins, which have not been comprehensively tested. We present here an expanded secretome that is optimized for both P. falciparum signal sequences and the HT-motif. From the most conservative of these three secretome predictions, we identify 11 proteins that are preserved across human-and rodent-infecting Plasmodium species. The conservation of these proteins likely indicates that they perform important functions in the interaction with and remodeling of the host erythrocyte important for all Plasmodium parasites. Using the piggyBac transposition system, we validate their export and find a positive prediction rate of similar to 70%. Even for proteins identified by all secretomes, the positive prediction rate is not likely to exceed similar to 75%. Attempted deletions of the genes encoding the conserved exported proteins were not successful, but additional functional analyses revealed the first conserved secretome function. This gave new insight into mechanisms for the assembly of the parasite-induced tubovesicular network needed for import of nutrients into the infected erythrocyte. Thus, genomic screens combined with functional assays provide unexpected and fundamental insights into host remodeling by this major human pathogen.

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