Inhibition of nitric oxide production of activated mice peritoneal macrophages is independent of the Toxoplasma gondii strain

被引:5
作者
Damasceno-Sa, Joao Claudio [1 ]
de Souza, Fernanda Silva [1 ]
Teixeira dos Santos, Thiago Alves [1 ,2 ]
de Oliveira, Fabio Conceicao [1 ]
Sarro da Silva, Maria de Fatima [1 ]
Furtado Dias, Raul Ramos [1 ]
de Souza, Wanderley [3 ]
Veto Arnholdt, Andrea Cristina [4 ]
Seabra, Sergio Henrique [1 ,2 ]
DaMatta, Renato Augusto [1 ]
机构
[1] Univ Estadual Norte Fluminense, Ctr Biociencias & Biotecnol, Lab Biol Celular & Tecidual, Campos Dos Goytacazes, RJ, Brazil
[2] Colegiado Ciencias Biol & Saude, Lab Tecnol Bioquim & Microscopia, Ctr Univ Estadual Zona Oeste, Rio De Janeiro, RJ, Brazil
[3] Univ Fed Rio de Janeiro, Inst Biofis Carlos Chagas Filho, Lab Ultraestrutura Celular Hertha Meyer, Rio De Janeiro, RJ, Brazil
[4] Univ Estadual Norte Fluminense, Ctr Biociencias & Biotecnol, Lab Biol Reconhecer, Campos Dos Goytacazes, RJ, Brazil
来源
MEMORIAS DO INSTITUTO OSWALDO CRUZ | 2021年 / 116卷
关键词
activated macrophages; nitric oxide; inducible nitric oxide synthase; TGF-beta signaling; LC3; virulence; PARASITOPHOROUS VACUOLE MEMBRANE; PARASITE; INFECTION; AUTOPHAGY; IMMUNITY; VIRULENCE; DISRUPTION; SYNTHASE; GTPASES; SYSTEM;
D O I
10.1590/0074-02760200417
中图分类号
R38 [医学寄生虫学]; Q [生物科学];
学科分类号
07 ; 0710 ; 09 ; 100103 ;
摘要
BACKGROUND Toxoplasma gondii causes toxoplasmosis and is controlled by activated macrophages. However, infection of macrophages by tachyzoites induces TGF-beta signaling (TGF-s) inhibiting nitric oxide (NO) production. NO inhibition may be a general escape mechanism of distinct T. gondii strains. OBJECTIVES To evaluate in activated macrophages the capacity of T. gondii strains of different virulence and genetics (RH, type I; ME-49, type II; VEG, type III; P-Br, recombinant) to evade the NO microbicidal defense system and determine LC3 loading to the parasitophorous vacuole. METHODS Activated peritoneal macrophages were infected with the different T. gondii strains, NO-production was evaluated by the Griess reagent, and inducible nitric oxide synthase expression, TGF-s, and LC3 localisation assayed by immunofluorescence. FINDINGS Only RH persisted in macrophages, while VEG was more resistant than P-Br and ME-49. All strains induced TGF-s, degradation of inducible nitric oxide synthase, and NO-production inhibition from 2 to 24 h of infection, but only RH sustained these alterations for 48 h. By 24 h of infection, TGF-s lowered in macrophages infected by ME-49, and P-Br, and NO-production recovered, while VEG sustained TGF-s and NO-production inhibition longer. LC3 loading to parasitophorous vacuole was strain-dependent: higher for ME-49, P-Br and VEG, lower for RH. All strains inhibited NO-production, but only RH sustained this effect probably because it persisted in macrophages due to additional evasive mechanisms as lower LC3 loading to parasitophorous vacuole. MAIN CONCLUSIONS These results support that T. gondii can escape the NO microbicidal defense system at the initial phase of the infection, but only the virulent strain sustain this evasion mechanism.
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