Cytoadherence phenotype of Plasmodium falciparum-infected erythrocytes is associated with specific pfemp-1 expression in parasites from children with cerebral malaria
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  • 作者:Talleh Almelli (19) (20)
    Nicaise T Ndam (19) (20)
    Sem Ezimegnon (21)
    Maroufou J Alao (22)
    Charles Ahouansou (21)
    Gratien Sagbo (23)
    Annick Amoussou (24)
    Philippe Deloron (19) (20)
    Rachida Tahar (19) (20)

    19. Institut de Recherche pour le D茅veloppement (IRD)
    ; UMR 216 M猫re et Enfant Face aux Infections Tropicales ; 4 ; avenue de l鈥橭bservatoire ; Paris ; 75270 ; France
    20. PRES Sorbonne Paris Cit茅
    ; Facult茅 de Pharmacie ; Universit茅 Paris Descartes ; Paris ; France
    21. Centre d鈥橢tude et de recherche sur le Paludisme Associ茅 脿 la Grossesse et l鈥橢nfance (CERPAGE)
    ; Cotonou ; B茅nin
    22. D茅partement de p茅diatrie
    ; H么pital M猫re-enfant de la lagune (HOMEL) ; Cotonou ; B茅nin
    23. Service de p茅diatrie
    ; Centre National Hospitalo-Universitaire (CNHU) ; Cotonou ; B茅nin
    24. Service de p茅diatrie
    ; H么pital de zone de Suru-L茅r茅 ; Cotonou ; B茅nin
  • 关键词:Plasmodium falciparum ; Cerebral malaria ; Uncomplicated malaria ; Var genes ; Domain cassette ; Transcript abundance ; Cytoadherence ; CD36 ; ICAM ; 1 ; CSPG ; CSA
  • 刊名:Malaria Journal
  • 出版年:2014
  • 出版时间:December 2014
  • 年:2014
  • 卷:13
  • 期:1
  • 全文大小:619 KB
  • 参考文献:1. Idro, R, Marsh, K, John, CC, Newton, CR (2010) Cerebral malaria: mechanisms of brain injury and strategies for improved neurocognitive outcome. Pediatr Res 68: pp. 267-274 CrossRef
    2. MacPherson, GG, Warrell, MJ, White, NJ, Looareesuwan, S, Warrell, DA (1985) Human cerebral malaria. A quantitative ultrastructural analysis of parasitized erythrocyte sequestration. Am J Pathol 119: pp. 385-401
    3. Pongponratn, E, Riganti, M, Punpoowong, B, Aikawa, M (1991) Microvascular sequestration of parasitized erythrocytes in human falciparum malaria: a pathological study. Am J Trop Med Hyg 44: pp. 168-175
    4. van der Heyde, HC, Nolan, J, Combes, V, Gramaglia, I, Grau, GE (2006) A unified hypothesis for the genesis of cerebral malaria: sequestration, inflammation and hemostasis leading to microcirculatory dysfunction. Trends Parasitol 22: pp. 503-508 CrossRef
    5. Su, XZ, Heatwole, VM, Wertheimer, SP, Guinet, F, Herrfeldt, JA, Peterson, DS, Ravetch, JA, Wellems, TE (1995) The large diverse gene family var encodes proteins involved in cytoadherence and antigenic variation of Plasmodium falciparum-infected erythrocytes. Cell 82: pp. 89-100 5)90055-1" target="_blank" title="It opens in new window">CrossRef
    6. Baruch, DI, Pasloske, BL, Singh, HB, Bi, X, Ma, XC, Feldman, M, Taraschi, TF, Howard, RJ (1995) Cloning the P Falciparum gene encoding PfEMP1, a malarial variant antigen and adherence receptor on the surface of parasitized human erythrocytes. Cell 82: pp. 77-87 5)90054-3" target="_blank" title="It opens in new window">CrossRef
    7. Jensen, AT, Magistrado, P, Sharp, S, Joergensen, L, Lavstsen, T, Chiucchiuini, A, Salanti, A, Vestergaard, LS, Lusingu, JP, Hermsen, R, Sauerwein, R, Christensen, J, Nielsen, MA, Hviid, L, Sutherland, C, Staalsoe, T, Theander, TG (2004) Plasmodium falciparum associated with severe childhood malaria preferentially expresses PfEMP1 encoded by group A var genes. J Exp Med 199: pp. 1179-1190 CrossRef
    8. Rottmann, M, Lavstsen, T, Mugasa, JP, Kaestli, M, Jensen, AT, Muller, D, Theander, T, Beck, HP (2006) Differential expression of var gene groups is associated with morbidity caused by Plasmodium falciparum infection in Tanzanian children. Infect Immun 74: pp. 3904-3911 5" target="_blank" title="It opens in new window">CrossRef
    9. Kyriacou, HM, Stone, GN, Challis, RJ, Raza, A, Lyke, KE, Thera, MA, Kone, AK, Doumbo, OK, Plowe, CV, Rowe, JA (2006) Differential var gene transcription in Plasmodium falciparum isolates from patients with cerebral malaria compared to hyperparasitaemia. Mol Biochem Parasitol 150: pp. 211-218 5" target="_blank" title="It opens in new window">CrossRef
    10. Lavstsen, T, Turner, L, Saguti, F, Magistrado, P, Rask, TS, Jespersen, JS, Wang, CW, Berger, SS, Baraka, V, Marquard, AM, Seguin-Orlando, A, Willerslev, E, Gilbert, MT, Lusingu, J, Theander, TG (2012) Plasmodium falciparum erythrocyte membrane protein 1 domain cassettes 8 and 13 are associated with severe malaria in children. Proc Natl Acad Sci U S A 109: pp. E1791-E1800 55109" target="_blank" title="It opens in new window">CrossRef
    11. Bertin, GI, Lavstsen, T, Guillonneau, F, Doritchamou, J, Wang, CW, Jespersen, JS, Ezimegnon, S, Fievet, N, Alao, MJ, Lalya, F, Massougbodji, A, Ndam, NT, Theander, TG, Deloron, P (2013) Expression of the domain cassette 8 Plasmodium falciparum erythrocyte membrane protein 1 is associated with cerebral malaria in Benin. PLoS One 8: pp. e68368 CrossRef
    12. Claessens, A, Adams, Y, Ghumra, A, Lindergard, G, Buchan, CC, Andisi, C, Bull, PC, Mok, S, Gupta, AP, Wang, CW, Turner, L, Arman, M, Raza, A, Bozdech, Z, Rowe, JA (2012) A subset of group A-like var genes encodes the malaria parasite ligands for binding to human brain endothelial cells. Proc Natl Acad Sci U S A 109: pp. E1772-E1781 CrossRef
    13. Avril, M, Tripathi, AK, Brazier, AJ, Andisi, C, Janes, JH, Soma, VL, Sullivan, DJ, Bull, PC, Stins, MF, Smith, JD (2012) A restricted subset of var genes mediates adherence of Plasmodium falciparum-infected erythrocytes to brain endothelial cells. Proc Natl Acad Sci U S A 109: pp. E1782-E1790 534109" target="_blank" title="It opens in new window">CrossRef
    14. Chaiyaroj, SC, Angkasekwinai, P, Buranakiti, A, Looareesuwan, S, Rogerson, SJ, Brown, GV (1996) Cytoadherence characteristics of Plasmodium falciparum isolates from Thailand: evidence for chondroitin sulfate a as a cytoadherence receptor. Am J Trop Med Hyg 55: pp. 76-80
    15. Salanti, A, Dahlback, M, Turner, L, Nielsen, MA, Barfod, L, Magistrado, P, Jensen, AT, Lavstsen, T, Ofori, MF, Marsh, K, Hviid, L, Theander, TG (2004) Evidence for the involvement of VAR2CSA in pregnancy-associated malaria. J Exp Med 200: pp. 1197-1203 579" target="_blank" title="It opens in new window">CrossRef
    16. Fried, M, Duffy, PE (1996) Adherence of Plasmodium falciparum to chondroitin sulfate A in the human placenta. Science 272: pp. 1502-1504 5267.1502" target="_blank" title="It opens in new window">CrossRef
    17. Beeson, JG, Brown, GV, Molyneux, ME, Mhango, C, Dzinjalamala, F, Rogerson, SJ (1999) Plasmodium falciparum isolates from infected pregnant women and children are associated with distinct adhesive and antigenic properties. J Infect Dis 180: pp. 464-472 CrossRef
    18. Ho, M, Davis, TM, Silamut, K, Bunnag, D, White, NJ (1991) Rosette formation of Plasmodium falciparum-infected erythrocytes from patients with acute malaria. Infect Immun 59: pp. 2135-2139
    19. Newbold, C, Warn, P, Black, G, Berendt, A, Craig, A, Snow, B, Msobo, M, Peshu, N, Marsh, K (1997) Receptor-specific adhesion and clinical disease in Plasmodium falciparum. Am J Trop Med Hyg 57: pp. 389-398
    20. Rogerson, SJ, Tembenu, R, Dobano, C, Plitt, S, Taylor, TE, Molyneux, ME (1999) Cytoadherence characteristics of Plasmodium falciparum-infected erythrocytes from Malawian children with severe and uncomplicated malaria. Am J Trop Med Hyg 61: pp. 467-472
    21. Heddini, A, Chen, Q, Obiero, J, Kai, O, Fernandez, V, Marsh, K, Muller, WA, Wahlgren, M (2001) Binding of Plasmodium falciparum-infected erythrocytes to soluble platelet endothelial cell adhesion molecule-1 (PECAM-1/CD31): frequent recognition by clinical isolates. Am J Trop Med Hyg 65: pp. 47-51
    22. Mayor, A, Hafiz, A, Bassat, Q, Rovira-Vallbona, E, Sanz, S, Machevo, S, Aguilar, R, Cistero, P, Sigauque, B, Menendez, C, Alonso, PL, Chitnis, CE (2011) Association of severe malaria outcomes with platelet-mediated clumping and adhesion to a novel host receptor. PLoS One 6: pp. e19422 CrossRef
    23. Ochola, LB, Siddondo, BR, Ocholla, H, Nkya, S, Kimani, EN, Williams, TN, Makale, JO, Liljander, A, Urban, BC, Bull, PC, Szestak, T, Marsh, K, Craig, AG (2011) Specific receptor usage in Plasmodium falciparum cytoadherence is associated with disease outcome. PLoS One 6: pp. e14741 CrossRef
    24. Turner, GD, Ly, VC, Nguyen, TH, Tran, TH, Nguyen, HP, Bethell, D, Wyllie, S, Louwrier, K, Fox, SB, Gatter, KC, Day, NP, White, NJ, Berendt, AR (1998) Systemic endothelial activation occurs in both mild and severe malaria. Correlating dermal microvascular endothelial cell phenotype and soluble cell adhesion molecules with disease severity. Am J Pathol 152: pp. 1477-1487
    25. Heddini, A, Pettersson, F, Kai, O, Shafi, J, Obiero, J, Chen, Q, Barragan, A, Wahlgren, M, Marsh, K (2001) Fresh isolates from children with severe Plasmodium falciparum malaria bind to multiple receptors. Infect Immun 69: pp. 5849-5856 5849-5856.2001" target="_blank" title="It opens in new window">CrossRef
    26. Akogbeto, M (1995) [Entomological study on the malaria transmission in coastal and lagoon areas: the case of a village built on a brackish lake] (in French). Ann Soc Belg Med Trop 75: pp. 219-227
    Severe falciparum malaria. Trans R Soc Trop Med Hyg 94: pp. 1-90 5-9203(00)90300-6" target="_blank" title="It opens in new window">CrossRef
    27. Bigey, P, Gnidehou, S, Doritchamou, J, Quiviger, M, Viwami, F, Couturier, A, Salanti, A, Nielsen, MA, Scherman, D, Deloron, P, Tuikue Ndam, N (2011) The NTS-DBL2X region ofVAR2CSA induces cross-reactive antibodies that inhibit adhesion of several Plasmodium falciparum isolates to chondroitin sulfate A. J Infect Dis 204: pp. 1125-1133 CrossRef
    28. Salanti, A, Staalsoe, T, Lavstsen, T, Jensen, AT, Sowa, MP, Arnot, DE, Hviid, L, Theander, TG (2003) Selective upregulation of a single distinctly structured var gene in chondroitin sulphate A-adhering Plasmodium falciparum involved in pregnancy-associated malaria. Mol Microbiol 49: pp. 179-191 5-2958.2003.03570.x" target="_blank" title="It opens in new window">CrossRef
    29. Tuikue Ndam, NG, Salanti, A, Bertin, G, Dahlback, M, Fievet, N, Turner, L, Gaye, A, Theander, T, Deloron, P (2005) High level of var2csa transcription by Plasmodium falciparum isolated from the placenta. J Infect Dis 192: pp. 331-335 CrossRef
    30. Francis, SE, Malkov, VA, Oleinikov, AV, Rossnagle, E, Wendler, JP, Mutabingwa, TK, Fried, M, Duffy, PE (2007) Six genes are preferentially transcribed by the circulating and sequestered forms of Plasmodium falciparum parasites that infect pregnant women. Infect Immun 75: pp. 4838-4850 5-07" target="_blank" title="It opens in new window">CrossRef
    31. Plowe, CV, Djimde, A, Bouare, M, Doumbo, O, Wellems, TE (1995) Pyrimethamine and proguanil resistance-conferring mutations in Plasmodium falciparum dihydrofolate reductase: polymerase chain reaction methods for surveillance in Africa. Am J Trop Med Hyg 52: pp. 565-568
    32. Snounou, G, Zhu, X, Siripoon, N, Jarra, W, Thaithong, S, Brown, KN, Viriyakosol, S (1999) Biased distribution of msp1 and msp2 allelic variants in Plasmodium falciparum populations in Thailand. Trans R Soc Trop Med Hyg 93: pp. 369-374 5-9203(99)90120-7" target="_blank" title="It opens in new window">CrossRef
    33. Raventos-Suarez, C, Kaul, DK, Macaluso, F, Nagel, RL (1985) Membrane knobs are required for the microcirculatory obstruction induced by Plasmodium falciparum-infected erythrocytes. Proc Natl Acad Sci U S A 82: pp. 3829-3833 CrossRef
    34. Baruch, DI, Gormely, JA, Ma, C, Howard, RJ, Pasloske, BL (1996) Plasmodium falciparum erythrocyte membrane protein 1 is a parasitized erythrocyte receptor for adherence to CD36, thrombospondin, and intercellular adhesion molecule 1. Proc Natl Acad Sci U S A 93: pp. 3497-3502 CrossRef
    35. Udomsangpetch, R, Taylor, BJ, Looareesuwan, S, White, NJ, Elliott, JF, Ho, M (1996) Receptor specificity of clinical Plasmodium falciparum isolates: nonadherence to cell-bound E-selectin and vascular cell adhesion molecule-1. Blood 88: pp. 2754-2760
    36. Cooke, BM, Berendt, AR, Craig, AG, MacGregor, J, Newbold, CI, Nash, GB (1994) Rolling and stationary cytoadhesion of red blood cells parasitized by Plasmodium falciparum: separate roles for ICAM-1, CD36 and thrombospondin. Br J Haematol 87: pp. 162-170 5-2141.1994.tb04887.x" target="_blank" title="It opens in new window">CrossRef
    37. Turner, GD, Morrison, H, Jones, M, Davis, TM, Looareesuwan, S, Buley, ID, Gatter, KC, Newbold, CI, Pukritayakamee, S, Nagachinta, B, White, NJ, Berendt, AR (1994) An immunohistochemical study of the pathology of fatal malaria. Evidence for widespread endothelial activation and a potential role for intercellular adhesion molecule-1 in cerebral sequestration. Am J Pathol 145: pp. 1057-1069
    38. Wassmer, SC, Coltel, N, Combes, V, Grau, GE (2003) Pathogenesis of cerebral malaria: facts and hypotheses. Med Trop (Mars) 63: pp. 254-257
    39. Wassmer, SC, Lepolard, C, Traore, B, Pouvelle, B, Gysin, J, Grau, GE (2004) Platelets reorient Plasmodium falciparum-infected erythrocyte cytoadhesion to activated endothelial cells. J Infect Dis 189: pp. 180-189 CrossRef
    40. Chen, Q, Heddini, A, Barragan, A, Fernandez, V, Pearce, SF, Wahlgren, M (2000) The semiconserved head structure of Plasmodium falciparum erythrocyte membrane protein 1 mediates binding to multiple independent host receptors. J Exp Med 192: pp. 1-10 CrossRef
    41. Oleinikov, AV, Amos, E, Frye, IT, Rossnagle, E, Mutabingwa, TK, Fried, M, Duffy, PE (2009) High throughput functional assays of the variant antigen PfEMP1 reveal a single domain in the 3D7 Plasmodium falciparum genome that binds ICAM1 with high affinity and is targeted by naturally acquired neutralizing antibodies. PLoS Pathog 5: pp. e1000386 CrossRef
    42. Bengtsson, A, Joergensen, L, Barbati, ZR, Craig, A, Hviid, L, Jensen, AT (2013) Transfected HEK293 cells expressing functional recombinant intercellular adhesion molecule 1 (ICAM-1)鈥揳 receptor associated with severe Plasmodium falciparum malaria. PLoS One 8: pp. e69999 CrossRef
    43. Bengtsson, A, Joergensen, L, Rask, TS, Olsen, RW, Andersen, MA, Turner, L, Theander, TG, Hviid, L, Higgins, MK, Craig, A, Brown, A, Jensen, AT (2013) A novel domain cassette identifies Plasmodium falciparum PfEMP1 proteins binding ICAM-1 and is a target of cross-reactive, adhesion-inhibitory antibodies. J Immunol 190: pp. 240-249 578" target="_blank" title="It opens in new window">CrossRef
    44. Vigan-Womas, I, Guillotte, M, Juillerat, A, Hessel, A, Raynal, B, England, P, Cohen, JH, Bertrand, O, Peyrard, T, Bentley, GA, Lewit-Bentley, A, Mercereau-Puijalon, O (2012) Structural basis for the ABO blood-group dependence of Plasmodium falciparum rosetting. PLoS Pathog 8: pp. e1002781 CrossRef
    45. Avril, M, Brazier, AJ, Melcher, M, Sampath, S, Smith, JD (2013) DC8 and DC13 var genes associated with severe malaria bind avidly to diverse endothelial cells. PLoS Pathog 9: pp. e1003430 CrossRef
    46. Doritchamou, J, Bertin, G, Moussiliou, A, Bigey, P, Viwami, F, Ezinmegnon, S, Fievet, N, Massougbodji, A, Deloron, P, Tuikue Ndam, N (2012) First-trimester Plasmodium falciparum infections display a typical "placental" phenotype. J Infect Dis 206: pp. 1911-1919 CrossRef
    47. Smith, JD, Kyes, S, Craig, AG, Fagan, T, Hudson-Taylor, D, Miller, LH, Baruch, DI, Newbold, CI (1998) Analysis of adhesive domains from the A4VAR Plasmodium falciparum erythrocyte membrane protein-1 identifies a CD36 binding domain. Mol Biochem Parasitol 97: pp. 133-148 51(98)00145-5" target="_blank" title="It opens in new window">CrossRef
    48. Robinson, BA, Welch, TL, Smith, JD (2003) Widespread functional specialization of Plasmodium falciparum erythrocyte membrane protein 1 family members to bind CD36 analysed across a parasite genome. Mol Microbiol 47: pp. 1265-1278 5-2958.2003.03378.x" target="_blank" title="It opens in new window">CrossRef
    49. Gamain, B, Smith, JD, Miller, LH, Baruch, DI (2001) Modifications in the CD36 binding domain of the Plasmodium falciparum variant antigen are responsible for the inability of chondroitin sulfate A adherent parasites to bind CD36. Blood 97: pp. 3268-3274 CrossRef
    50. Turner, L, Lavstsen, T, Berger, SS, Wang, CW, Petersen, JE, Avril, M, Brazier, AJ, Freeth, J, Jespersen, JS, Nielsen, MA, Magistrado, P, Lusingu, J, Smith, JD, Higgins, MK, Theander, TG (2013) Severe malaria is associated with parasite binding to endothelial protein C receptor. Nature 498: pp. 502-505 CrossRef
    51. Rask, TS, Hansen, DA, Theander, TG, Gorm Pedersen, A, Lavstsen, T (2010) Plasmodium falciparum erythrocyte membrane protein 1 diversity in seven genomes--divide and conquer. PLoS Comput Biol 6: pp. e1000933 CrossRef
  • 刊物主题:Parasitology; Infectious Diseases; Tropical Medicine;
  • 出版者:BioMed Central
  • ISSN:1475-2875
文摘
Background Cytoadherence of Plasmodium falciparum-infected erythrocytes (IEs) in deep microvasculature endothelia plays a major role in the pathogenesis of cerebral malaria (CM). This biological process is thought to be mediated by P. falciparum erythrocyte membrane protein-1 (PfEMP-1) and human receptors such as CD36 and ICAM-1. The relationship between the expression of PfEMP-1 variants and cytoadherence phenotype in the pathology of malaria is not well established. Methods Cytoadherence phenotypes of IEs to CD36, ICAM-1, CSPG and the transcription patterns of A, B, var2csa, var3, var gene groups and domain cassettes DC8 and DC13 were assessed in parasites from children with CM and uncomplicated malaria (UM) to determine if cytoadherence is related to a specific transcription profile of pfemp-1 variants. Results Parasites from CM patients bind significantly more to CD36 than those from UM patients, but no difference was observed in their binding ability to ICAM-1 and CSPG. CM isolates highly transcribed groups A, B, var2csa, var3, DC8 and DC13 compared to UM parasites. The high transcription levels of var genes belonging to group B positively correlated with increased binding level to CD36. Conclusion CM isolates bind significantly more to CD36 than to ICAM-1, which was correlated with high transcription level of group B var genes, supporting their implication in malaria pathogenesis.

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