Proteomic characterization of human proinflammatory M1 and anti-inflammatory M2 macrophages and their response to Candida albicans

被引:80
作者
Antonio Reales-Calderon, Jose [1 ,2 ]
Aguilera-Montilla, Noemi
Luis Corbi, Angel [3 ]
Molero, Gloria [1 ,2 ]
Gil, Concha [1 ,2 ]
机构
[1] Univ Complutense Madrid, Fac Farm, Dept Microbiol 2, E-28040 Madrid, Spain
[2] IRYCIS, Madrid, Spain
[3] CSIC, Ctr Invest Biol, Madrid, Spain
关键词
Candida albicans; Fructose-1,6-bisphosphatase; Macrophage polarization; Metabolism; Microbiology; Two-dimensional difference in-gel electrophoresis; GENE-EXPRESSION; ALTERNATIVE ACTIVATION; POLARIZATION; IMMUNITY; INFLAMMATION; METABOLISM; VIRULENCE; SERPINB2; MONOCYTE; KINASE;
D O I
10.1002/pmic.201300508
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
In response to different stimuli, macrophages can differentiate into either a pro-inflammatory subtype (M1, classically activated macrophages) or acquire an anti-inflammatory phenotype (M2, alternatively activated macrophages). Candida albicans is the most important opportunistic fungus in nosocomial infections, and it is contended by neutrophils and macrophages during the first steps of the invasive infection. Murine macrophages responses to C. albicans have been widely studied, whereas the responses of human-polarized macrophages remain less characterized. In this study, we have characterized the proteomic differences between human M1- and M2-polarized macrophages, both in basal conditions and in response to C. albicans, by quantitative proteomics (2DE). This proteomic approach allowed us to identify metabolic routes and cytoskeletal rearrangement components that are the most relevant differences between M1 and M2 macrophages. The analysis has revealed fructose-1,6-bisphosphatase 1, a critical enzyme in gluconeogenesis, up-regulated in M1, as a novel protein marker for macrophage polarization. Regarding the response to C. albicans, an M1-to-M2 switch in polarization was observed. This M1-to-M2 switch might contribute to Candida pathogenicity by decreasing the generation of specific immune responses, thus enhancing fungal survival and colonization, or instead, may be part of the host attempt to reduce the inflammation and limit the damage of the infection.
引用
收藏
页码:1503 / 1518
页数:16
相关论文
共 40 条
[1]   The Yin-Yang of tumor-associated macrophages in neoplastic progression and immune surveillance [J].
Allavena, Paola ;
Sica, Antonio ;
Garlanda, Cecilia ;
Mantovani, Alberto .
IMMUNOLOGICAL REVIEWS, 2008, 222 :155-161
[2]   Candida albicans induces pro-inflammatory and anti-apoptotic signals in macrophages as revealed by quantitative proteomics and phosphoproteomics [J].
Antonio Reales-Calderon, Jose ;
Sylvester, Marc ;
Strijbis, Karin ;
Jensen, Ole N. ;
Nombela, Cesar ;
Molero, Gloria ;
Gil, Concha .
JOURNAL OF PROTEOMICS, 2013, 91 :106-135
[3]   Sub-proteomic study on macrophage response to Candida albicans unravels new proteins involved in the host defense against the fungus [J].
Antonio Reales-Calderon, Jose ;
Martinez-Solano, Laura ;
Martinez-Gomariz, Montserrat ;
Nombela, Cesar ;
Molero, Gloria ;
Gil, Concha .
JOURNAL OF PROTEOMICS, 2012, 75 (15) :4734-4746
[4]   Macrophage polarization in bacterial infections [J].
Benoit, Marie ;
Desnues, Benoit ;
Mege, Jean-Louis .
JOURNAL OF IMMUNOLOGY, 2008, 181 (06) :3733-3739
[5]   Understanding the role of monocytic cells in liver inflammation using parasite infection as a model [J].
Bosschaerts, Tom ;
Guilliams, Martin ;
Stijlemans, Benoit ;
De Baetselier, Patrick ;
Beschin, Alain .
IMMUNOBIOLOGY, 2009, 214 (9-10) :737-747
[6]   The dectin-1/inflammasome pathway is responsible for the induction of protective T-helper 17 responses that discriminate between yeasts and hyphae of Candida albicans [J].
Cheng, Shih-Chin ;
van de Veerdonk, Frank L. ;
Lenardon, Megan ;
Stoffels, Monique ;
Plantinga, Theo ;
Smeekens, Sanne ;
Rizzetto, Lisa ;
Mukaremera, Liliane ;
Preechasuth, Kanya ;
Cavalieri, Duccio ;
Kanneganti, Thirumala Devi ;
van der Meer, Jos W. M. ;
Kullberg, Bart Jan ;
Joosten, Leo A. B. ;
Gow, Neil A. R. ;
Netea, Mihai G. .
JOURNAL OF LEUKOCYTE BIOLOGY, 2011, 90 (02) :357-366
[7]   Two different NO-dependent mechanisms account for the low virulence of a non-mycelial morphological mutant of Candida albicans [J].
Diez-Orejas, R ;
Molero, G ;
Moro, MA ;
Gil, C ;
Nombela, C ;
Sánchez-Pérez, M .
MEDICAL MICROBIOLOGY AND IMMUNOLOGY, 2001, 189 (03) :153-160
[8]   Reduced virulence of Candida albicans MKC1 mutants: A role for mitogen-activated protein kinase in pathogenesis [J].
DiezOrejas, R ;
Molero, G ;
NavarroGarcia, F ;
Pla, J ;
Nombela, C ;
SanchezPerez, M .
INFECTION AND IMMUNITY, 1997, 65 (02) :833-837
[9]   Integrated proteomics and genomics strategies bring new insight into Candida albicans response upon macrophage interaction [J].
Fernandez-Arenas, Elena ;
Cabezon, Virginia ;
Bermejo, Clara ;
Arroyo, Javier ;
Nombela, Cesar ;
Diez-Orejas, Rosalia ;
Gil, Concha .
MOLECULAR & CELLULAR PROTEOMICS, 2007, 6 (03) :460-478
[10]   ISOLATION OF THE CANDIDA-ALBICANS GENE FOR OROTIDINE-5'-PHOSPHATE DECARBOXYLASE BY COMPLEMENTATION OF S-CEREVISIAE URA3 AND ESCHERICHIA-COLI PYRF MUTATIONS [J].
GILLUM, AM ;
TSAY, EYH ;
KIRSCH, DR .
MOLECULAR & GENERAL GENETICS, 1984, 198 (01) :179-182