Structural organization of erythrocyte membrane microdomains and their relation with malaria susceptibility.


Journal

Communications biology
ISSN: 2399-3642
Titre abrégé: Commun Biol
Pays: England
ID NLM: 101719179

Informations de publication

Date de publication:
08 12 2021
Historique:
received: 19 01 2021
accepted: 18 11 2021
entrez: 9 12 2021
pubmed: 10 12 2021
medline: 25 12 2021
Statut: epublish

Résumé

Cholesterol-rich microdomains are membrane compartments characterized by specific lipid and protein composition. These dynamic assemblies are involved in several biological processes, including infection by intracellular pathogens. This work provides a comprehensive analysis of the composition of human erythrocyte membrane microdomains. Based on their floating properties, we also categorized the microdomain-associated proteins into clusters. Interestingly, erythrocyte microdomains include the vast majority of the proteins known to be involved in invasion by the malaria parasite Plasmodium falciparum. We show here that the Ecto-ADP-ribosyltransferase 4 (ART4) and Aquaporin 1 (AQP1), found within one specific cluster, containing the essential host determinant CD55, are recruited to the site of parasite entry and then internalized to the newly formed parasitophorous vacuole membrane. By generating null erythroid cell lines, we showed that one of these proteins, ART4, plays a role in P. falciparum invasion. We also found that genetic variants in both ART4 and AQP1 are associated with susceptibility to the disease in a malaria-endemic population.

Identifiants

pubmed: 34880413
doi: 10.1038/s42003-021-02900-w
pii: 10.1038/s42003-021-02900-w
pmc: PMC8655059
doi:

Types de publication

Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1375

Subventions

Organisme : Wellcome Trust
Pays : United Kingdom
Organisme : NIAID NIH HHS
ID : R01 AI140751
Pays : United States
Organisme : NHLBI NIH HHS
ID : R01 HL139337
Pays : United States

Informations de copyright

© 2021. The Author(s).

Références

Lingwood, D. & Simons, K. Lipid rafts as a membrane-organizing principle. Science 327, 46–50 (2010).
pubmed: 20044567 doi: 10.1126/science.1174621
Bagam, P., Singh, D. P., Inda, M. E. & Batra, S. Unraveling the role of membrane microdomains during microbial infections. Cell Biol. Toxicol. 33, 429–455 (2017).
pubmed: 28275881 pmcid: 7088210 doi: 10.1007/s10565-017-9386-9
Samuel, B. U. et al. The role of cholesterol and glycosylphosphatidylinositol-anchored proteins of erythrocyte rafts in regulating raft protein content and malarial infection. J. Biol. Chem. 276, 29319–29329 (2001).
pubmed: 11352913 doi: 10.1074/jbc.M101268200
World Health Organization. World Malaria Report 2019. (2019).
Koshino, I. & Takakuwa, Y. Disruption of lipid rafts by lidocaine inhibits erythrocyte invasion by Plasmodium falciparum. Exp. Parasitol. 123, 381–383 (2009).
pubmed: 19733566 doi: 10.1016/j.exppara.2009.08.019
Murphy, S. C. et al. Erythrocyte detergent-resistant membrane proteins: their characterization and selective uptake during malarial infection. Blood 103, 1920–1928 (2004).
pubmed: 14592818 doi: 10.1182/blood-2003-09-3165
Fratini, F. et al. An integrated approach to explore composition and dynamics of cholesterol-rich membrane microdomains in sexual stages of malaria parasite. Mol. Cell Proteomics 16, 1801–1814 (2017).
pubmed: 28798222 pmcid: 5629265 doi: 10.1074/mcp.M117.067041
Egan, E. S. et al. Malaria. A forward genetic screen identifies erythrocyte CD55 as essential for Plasmodium falciparum invasion. Science 348, 711–714 (2015).
pubmed: 25954012 pmcid: 4465434 doi: 10.1126/science.aaa3526
Bryk, A. H. & Wiśniewski, J. R. Quantitative analysis of human red blood cell proteome. J Proteome Res. 16, 2752–2761 (2017).
pubmed: 28689405 doi: 10.1021/acs.jproteome.7b00025
Ravenhill, B. J. et al. Quantitative comparative analysis of human erythrocyte surface proteins between individuals from two genetically distinct populations. Commun. Biol. 2, 350 (2019).
pubmed: 31552303 pmcid: 6754445 doi: 10.1038/s42003-019-0596-y
Bharadwaj, A., Bydoun, M., Holloway, R. & Waisman, D. Annexin A2 heterotetramer: structure and function. Int. J. Mol. Sci. 14, 6259–6305 (2013).
pubmed: 23519104 pmcid: 3634455 doi: 10.3390/ijms14036259
Aranda, J. F. et al. MYADM regulates Rac1 targeting to ordered membranes required for cell spreading and migration. Mol. Biol. Cell 22, 1252–1262 (2011).
pubmed: 21325632 pmcid: 3078064 doi: 10.1091/mbc.e10-11-0910
Föller, M., Huber, S. M. & Lang, F. Erythrocyte programmed cell death. IUBMB Life 60, 661–668 (2008).
pubmed: 18720418 doi: 10.1002/iub.106
Ciana, A., Achilli, C., Balduini, C. & Minetti, G. On the association of lipid rafts to the spectrin skeleton in human erythrocytes. Biochim. Biophys. Acta 1808, 183–190 (2011).
pubmed: 20807499 doi: 10.1016/j.bbamem.2010.08.019
Trybus, M., Niemiec, L., Biernatowska, A., Hryniewicz-Jankowska, A. & Sikorski, A. F. MPP1-based mechanism of resting state raft organization in the plasma membrane. Is it a general or specialized mechanism in erythroid cells? Folia Histochem. Cytobiol. 57, 43–55 (2019).
pubmed: 31099889 doi: 10.5603/FHC.a2019.0007
Salzer, U. & Prohaska, R. Stomatin, flotillin-1, and flotillin-2 are major integral proteins of erythrocyte lipid rafts. Blood 97, 1141–1143 (2001).
pubmed: 11159550 doi: 10.1182/blood.V97.4.1141
Rungaldier, S., Oberwagner, W., Salzer, U., Csaszar, E. & Prohaska, R. Stomatin interacts with GLUT1/SLC2A1, band 3/SLC4A1, and aquaporin-1 in human erythrocyte membrane domains. Biochim Biophys. Acta 1828, 956–966 (2013).
pubmed: 23219802 pmcid: 3790964 doi: 10.1016/j.bbamem.2012.11.030
Salzer, U., Hinterdorfer, P., Hunger, U., Borken, C. & Prohaska, R. Ca(++)-dependent vesicle release from erythrocytes involves stomatin-specific lipid rafts, synexin (annexin VII), and sorcin. Blood 99, 2569–2577 (2002).
pubmed: 11895795 doi: 10.1182/blood.V99.7.2569
Bartholdson, S. J. et al. Semaphorin-7A is an erythrocyte receptor for P. falciparum merozoite-specific TRAP homolog, MTRAP. PLoS Pathog. 8, e1003031 (2012).
pubmed: 23166499 pmcid: 3499583 doi: 10.1371/journal.ppat.1003031
Harrison, T. et al. Erythrocyte G protein-coupled receptor signaling in malarial infection. Science 301, 1734–1736 (2003).
pubmed: 14500986 doi: 10.1126/science.1089324
Jaskiewicz, E., Jodłowska, M., Kaczmarek, R. & Zerka, A. Erythrocyte glycophorins as receptors for Plasmodium merozoites. Parasit. Vectors 12, 317 (2019).
pubmed: 31234897 pmcid: 6591965 doi: 10.1186/s13071-019-3575-8
Crosnier, C. et al. Basigin is a receptor essential for erythrocyte invasion by Plasmodium falciparum. Nature 480, 534–537 (2011).
Egan, E. S. et al. Erythrocytes lacking the Langereis blood group protein ABCB6 are resistant to the malaria parasite Plasmodium falciparum. Commun. Biol. 1, 45 (2018).
pubmed: 30271928 pmcid: 6123700 doi: 10.1038/s42003-018-0046-2
Paone, S. et al. Characterization of the erythrocyte GTPase Rac1 in relation to Plasmodium falciparum invasion. Sci. Rep. 10, 22054 (2020).
pubmed: 33328606 pmcid: 7744522 doi: 10.1038/s41598-020-79052-0
de Souza Santos, M. & Orth, K. Subversion of the cytoskeleton by intracellular bacteria: lessons from Listeria, Salmonella and Vibrio. Cell Microbiol. 17, 164–173 (2015).
pubmed: 25440316 pmcid: 5806695 doi: 10.1111/cmi.12399
Yam, X. Y. et al. Proteomic analysis of detergent-resistant membrane microdomains in trophozoite blood stage of the human malaria parasite Plasmodium falciparum. Mol Cell Proteomics 12, 3948–3961 (2013).
pubmed: 24045696 pmcid: 3861736 doi: 10.1074/mcp.M113.029272
Sanders, P. R. et al. Distinct protein classes including novel merozoite surface antigens in Raft-like membranes of Plasmodium falciparum. J. Biol. Chem. 280, 40169–40176 (2005).
pubmed: 16203726 doi: 10.1074/jbc.M509631200
Alexander, D. L., Arastu-Kapur, S., Dubremetz, J. F. & Boothroyd, J. C. Plasmodium falciparum AMA1 binds a rhoptry neck protein homologous to TgRON4, a component of the moving junction in Toxoplasma gondii. Eukaryot. Cell 5, 1169–1173 (2006).
pubmed: 16835460 pmcid: 1489286 doi: 10.1128/EC.00040-06
Scully, E. J. et al. Generation of an immortalized erythroid progenitor cell line from peripheral blood: a model system for the functional analysis of Plasmodium spp. invasion. Am. J. Hematol. 94, 963–974 (2019).
pubmed: 31148215 pmcid: 6984401 doi: 10.1002/ajh.25543
Modiano, D. et al. Severe malaria in Burkina Faso: influence of age and transmission level on clinical presentation. Am. J. Trop. Med. Hyg. 59, 539–542 (1998).
pubmed: 9790426 doi: 10.4269/ajtmh.1998.59.539
Modiano, D. et al. Haemoglobin C protects against clinical Plasmodium falciparum malaria. Nature 414, 305–308 (2001).
pubmed: 11713529 doi: 10.1038/35104556
Urabe, Y. et al. A genome-wide association study of nephrolithiasis in the Japanese population identifies novel susceptible Loci at 5q35.3, 7p14.3, and 13q14.1. PLoS Genet. 8, e1002541 (2012).
pubmed: 22396660 pmcid: 3291538 doi: 10.1371/journal.pgen.1002541
Wang, L. et al. Association study of reported significant loci at 5q35.3, 7p14.3, 13q14.1 and 16p12.3 with urolithiasis in Chinese Han ethnicity. Sci. Rep. 7, 45766 (2017).
pubmed: 28361944 pmcid: 5374640 doi: 10.1038/srep45766
Leonard, C. et al. Contribution of plasma membrane lipid domains to red blood cell (re)shaping. Sci. Rep. 7, 4264 (2017).
pubmed: 28655935 pmcid: 5487352 doi: 10.1038/s41598-017-04388-z
Gajate, C. & Mollinedo, F. Lipid rafts and raft-mediated supramolecular entities in the regulation of CD95 death receptor apoptotic signaling. Apoptosis 20, 584–606 (2015).
pubmed: 25702154 doi: 10.1007/s10495-015-1104-6
Grass, G. D., Bratoeva, M. & Toole, B. P. Regulation of invadopodia formation and activity by CD147. J. Cell Sci. 125, 777–788 (2012).
pubmed: 22389410 pmcid: 3367836 doi: 10.1242/jcs.097956
Miranda, P. V., Allaire, A., Sosnik, J. & Visconti, P. E. Localization of low-density detergent-resistant membrane proteins in intact and acrosome-reacted mouse sperm. Biol. Reprod. 80, 897–904 (2009).
pubmed: 19144954 doi: 10.1095/biolreprod.108.075242
Boulet, C., Doerig, C. D. & Carvalho, T. G. Manipulating eryptosis of human red blood cells: a novel antimalarial strategy? Front. Cell Infect. Microbiol. 8, 419 (2018).
pubmed: 30560094 pmcid: 6284368 doi: 10.3389/fcimb.2018.00419
Jablonski, E. M. et al. Decreased aquaporin expression leads to increased resistance to apoptosis in hepatocellular carcinoma. Cancer Lett. 250, 36–46 (2007).
pubmed: 17084522 doi: 10.1016/j.canlet.2006.09.013
Timmann, C. et al. Genome-wide association study indicates two novel resistance loci for severe malaria. Nature 489, 443–446 (2012).
pubmed: 22895189 doi: 10.1038/nature11334
Chiang, C. Y. et al. Mitigating the impact of antibacterial drug resistance through host-directed therapies: current progress, outlook, and challenges. mBio 9, https://doi.org/10.1128/mBio.01932-17 (2018).
Stanley, S. A. et al. Identification of host-targeted small molecules that restrict intracellular Mycobacterium tuberculosis growth. PLoS Pathog. 10, e1003946 (2014).
pubmed: 24586159 pmcid: 3930586 doi: 10.1371/journal.ppat.1003946
de Wispelaere, M., LaCroix, A. J. & Yang, P. L. The small molecules AZD0530 and dasatinib inhibit dengue virus RNA replication via Fyn kinase. J. Virol. 87, 7367–7381 (2013).
pubmed: 23616652 pmcid: 3700292 doi: 10.1128/JVI.00632-13
Brizuela, M. et al. Treatment of erythrocytes with the 2-cys peroxiredoxin inhibitor, Conoidin A, prevents the growth of Plasmodium falciparum and enhances parasite sensitivity to chloroquine. PLoS ONE 9, e92411 (2014).
pubmed: 24699133 pmcid: 3974718 doi: 10.1371/journal.pone.0092411
Latinovic, O., Kuruppu, J., Davis, C., Le, N. & Heredia, A. Pharmacotherapy of HIV-1 Infection: focus on CCR5 antagonist maraviroc. Clin. Med. Ther. 1, 1497–1510 (2009).
pubmed: 19920876 pmcid: 2777720
Crouchet, E., Wrensch, F., Schuster, C., Zeisel, M. B. & Baumert, T. F. Host-targeting therapies for hepatitis C virus infection: current developments and future applications. Therap. Adv. Gastroenterol. 11, 1756284818759483 (2018).
pubmed: 29619090 pmcid: 5871046 doi: 10.1177/1756284818759483
Wessel, D. & Flügge, U. I. A method for the quantitative recovery of protein in dilute solution in the presence of detergents and lipids. Anal. Biochem. 138, 141–143 (1984).
pubmed: 6731838 doi: 10.1016/0003-2697(84)90782-6
Silva, J. C., Gorenstein, M. V., Li, G. Z., Vissers, J. P. & Geromanos, S. J. Absolute quantification of proteins by LCMSE: a virtue of parallel MS acquisition. Mol. Cell Proteomics 5, 144–156 (2006).
pubmed: 16219938 doi: 10.1074/mcp.M500230-MCP200
de Hoon, M. J., Imoto, S., Nolan, J. & Miyano, S. Open source clustering software. Bioinformatics 20, 1453–1454 (2004).
pubmed: 14871861 doi: 10.1093/bioinformatics/bth078
Trager, W. & Jensen, J. B. Human malaria parasites in continuous culture. Science 193, 673–675 (1976).
pubmed: 781840 doi: 10.1126/science.781840
Salmon, B. L., Oksman, A. & Goldberg, D. E. Malaria parasite exit from the host erythrocyte: a two-step process requiring extraerythrocytic proteolysis. Proc. Natl Acad. Sci. USA 98, 271–276 (2001).
pubmed: 11114161 doi: 10.1073/pnas.98.1.271
Sanjana, N. E., Shalem, O. & Zhang, F. Improved vectors and genome-wide libraries for CRISPR screening. Nat. Methods 11, 783–784 (2014).
pubmed: 25075903 pmcid: 4486245 doi: 10.1038/nmeth.3047
Shalem, O. et al. Genome-scale CRISPR-Cas9 knockout screening in human cells. Science 343, 84–87 (2014).
pubmed: 24336571 doi: 10.1126/science.1247005

Auteurs

Anna Olivieri (A)

Dipartimento di Malattie Infettive, Istituto Superiore di Sanità, Rome, Italy. anna.olivieri@iss.it.

Rebecca S Lee (RS)

Department of Immunology and Infectious Diseases, Harvard T. H. Chan School of Public Health, Boston, MA, USA.

Federica Fratini (F)

Servizio Grandi Strumentazioni e Core Facilities, Istituto Superiore di Sanità, Rome, Italy.

Cyrianne Keutcha (C)

Department of Immunology and Infectious Diseases, Harvard T. H. Chan School of Public Health, Boston, MA, USA.

Mudit Chaand (M)

Department of Immunology and Infectious Diseases, Harvard T. H. Chan School of Public Health, Boston, MA, USA.

Valentina Mangano (V)

Dipartimento di Sanità Pubblica e Malattie Infettive, Sapienza Università di Roma, Rome, Italy.
Dept. of Traslational Research, University of Pisa, Pisa, Italy.

Francesco Celani (F)

Dipartimento di Malattie Infettive, Istituto Superiore di Sanità, Rome, Italy.

Stefania Mochi (S)

Dipartimento di Malattie Infettive, Istituto Superiore di Sanità, Rome, Italy.

Cecilia Birago (C)

Dipartimento di Malattie Infettive, Istituto Superiore di Sanità, Rome, Italy.

Silvio Paone (S)

Dipartimento di Malattie Infettive, Istituto Superiore di Sanità, Rome, Italy.
Dipartimento di Sanità Pubblica e Malattie Infettive, Sapienza Università di Roma, Rome, Italy.

Felicia Grasso (F)

Dipartimento di Malattie Infettive, Istituto Superiore di Sanità, Rome, Italy.

Valentina Tirelli (V)

Servizio Grandi Strumentazioni e Core Facilities, Istituto Superiore di Sanità, Rome, Italy.

Mario Falchi (M)

National HIV/AIDS Research Center (CNAIDS), Istituto Superiore di Sanità, Rome, Italy.

Estela Shabani (E)

Department of Immunology and Infectious Diseases, Harvard T. H. Chan School of Public Health, Boston, MA, USA.

Stefania Bertoncini (S)

Dept. of Traslational Research, University of Pisa, Pisa, Italy.
Department of Biology, University of Pisa, Pisa, Italy.

Bienvenu Sodiomon Sirima (BS)

Centre National de Recherche et de Formation sur le Paludisme (CNRFP), Ouagadougou, Burkina Faso.

Elisabetta Pizzi (E)

Servizio Grandi Strumentazioni e Core Facilities, Istituto Superiore di Sanità, Rome, Italy.

David Modiano (D)

Dipartimento di Sanità Pubblica e Malattie Infettive, Sapienza Università di Roma, Rome, Italy.

Manoj T Duraisingh (MT)

Department of Immunology and Infectious Diseases, Harvard T. H. Chan School of Public Health, Boston, MA, USA.

Marta Ponzi (M)

Dipartimento di Malattie Infettive, Istituto Superiore di Sanità, Rome, Italy.

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