4xbi Citations

Structural mapping of the ClpB ATPases of Plasmodium falciparum: Targeting protein folding and secretion for antimalarial drug design.

Protein Sci 24 1508-20 (2015)
Related entries: 4iod, 4irf

Cited: 17 times
EuropePMC logo PMID: 26130467

Abstract

Caseinolytic chaperones and proteases (Clp) belong to the AAA+ protein superfamily and are part of the protein quality control machinery in cells. The eukaryotic parasite Plasmodium falciparum, the causative agent of malaria, has evolved an elaborate network of Clp proteins including two distinct ClpB ATPases. ClpB1 and ClpB2 are involved in different aspects of parasitic proteostasis. ClpB1 is present in the apicoplast, a parasite-specific and plastid-like organelle hosting various metabolic pathways necessary for parasite growth. ClpB2 localizes to the parasitophorous vacuole membrane where it drives protein export as core subunit of a parasite-derived protein secretion complex, the Plasmodium Translocon of Exported proteins (PTEX); this process is central to parasite virulence and survival in the human host. The functional associations of these two chaperones with parasite-specific metabolism and protein secretion make them prime drug targets. ClpB proteins function as unfoldases and disaggregases and share a common architecture consisting of four domains-a variable N-terminal domain that binds different protein substrates, followed by two highly conserved catalytic ATPase domains, and a C-terminal domain. Here, we report and compare the first crystal structures of the N terminal domains of ClpB1 and ClpB2 from Plasmodium and analyze their molecular surfaces. Solution scattering analysis of the N domain of ClpB2 shows that the average solution conformation is similar to the crystalline structure. These structures represent the first step towards the characterization of these two malarial chaperones and the reconstitution of the entire PTEX to aid structure-based design of novel anti-malarial drugs.

Articles - 4xbi mentioned but not cited (2)



Reviews citing this publication (8)

  1. Transport mechanisms at the malaria parasite-host cell interface. Beck JR, Ho CM. PLoS Pathog 17 e1009394 (2021)
  2. Host cell remodelling in malaria parasites: a new pool of potential drug targets. Gilson PR, Chisholm SA, Crabb BS, de Koning-Ward TF. Int J Parasitol 47 119-127 (2017)
  3. Illuminating how malaria parasites export proteins into host erythrocytes. Matthews KM, Pitman EL, de Koning-Ward TF. Cell Microbiol 21 e13009 (2019)
  4. Highlighting membrane protein structure and function: A celebration of the Protein Data Bank. Li F, Egea PF, Vecchio AJ, Asial I, Gupta M, Paulino J, Bajaj R, Dickinson MS, Ferguson-Miller S, Monk BC, Stroud RM. J Biol Chem 296 100557 (2021)
  5. Small Molecule Inhibitors Targeting the Heat Shock Protein System of Human Obligate Protozoan Parasites. Zininga T, Shonhai A. Int J Mol Sci 20 E5930 (2019)
  6. Crossing the Vacuolar Rubicon: Structural Insights into Effector Protein Trafficking in Apicomplexan Parasites. Egea PF. Microorganisms 8 E865 (2020)
  7. The Role of Malaria Parasite Heat Shock Proteins in Protein Trafficking and Remodelling of Red Blood Cells. Jonsdottir TK, Gabriela M, Gilson PR. Adv Exp Med Biol 1340 141-167 (2021)
  8. ESKAPE Pathogens: Looking at Clp ATPases as Potential Drug Targets. Motiwala T, Mthethwa Q, Achilonu I, Khoza T. Antibiotics (Basel) 11 1218 (2022)

Articles citing this publication (7)

  1. Malaria parasite translocon structure and mechanism of effector export. Ho CM, Beck JR, Lai M, Cui Y, Goldberg DE, Egea PF, Zhou ZH. Nature 561 70-75 (2018)
  2. Uncoupling the Threading and Unfoldase Actions of Plasmodium HSP101 Reveals Differences in Export between Soluble and Insoluble Proteins. Matthews KM, Kalanon M, de Koning-Ward TF. mBio 10 e01106-19 (2019)
  3. Crystal structure of Mdm12 and combinatorial reconstitution of Mdm12/Mmm1 ERMES complexes for structural studies. AhYoung AP, Lu B, Cascio D, Egea PF. Biochem Biophys Res Commun 488 129-135 (2017)
  4. Structure of a putative ClpS N-end rule adaptor protein from the malaria pathogen Plasmodium falciparum. AhYoung AP, Koehl A, Vizcarra CL, Cascio D, Egea PF. Protein Sci 25 689-701 (2016)
  5. Toxoplasma gondii Clp family protein: TgClpB1 plays a crucial role in thermotolerance. Cao S, Du N, Chen H, Pang Y, Zhang Z, Zheng J, Jia H. Oncotarget 8 86117-86129 (2017)
  6. Caseinolytic Proteins (Clp) in the Genus Klebsiella: Special Focus on ClpK. Motiwala T, Akumadu BO, Zuma S, Mfeka MS, Chen W, Achilonu I, Syed K, Khoza T. Molecules 27 200 (2021)
  7. Deciphering the mechanism and function of Hsp100 unfoldases from protein structure. Lee G, Kim RS, Lee SB, Lee S, Tsai FTF. Biochem Soc Trans 50 1725-1736 (2022)