IFN-γ MAY PLAY A "PROTECTIVE" ROLE IN A RAT-TO-MOUSE HEART TRANSPLANT MODEL

1999 ◽  
Vol 67 (7) ◽  
pp. S119
Author(s):  
H. Wang ◽  
M. E. DeVries ◽  
B. Garcia ◽  
D. Kelvin ◽  
R. Zhong
2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Jian Lu ◽  
Weiwei Wang ◽  
Peiyuan Li ◽  
Xiaodong Wang ◽  
Chao Gao ◽  
...  

AbstractRegulatory T cells (Tregs), which characteristically express forkhead box protein 3 (Foxp3), are essential for the induction of immune tolerance. Here, we investigated microRNA-146a (miR-146a), a miRNA that is widely expressed in Tregs and closely related to their homeostasis and function, with the aim of enhancing the function of Tregs by regulating miR-146a and then suppressing transplant rejection. The effect of the absence of miR-146a on Treg function in the presence or absence of rapamycin was detected in both a mouse heart transplantation model and cell co-cultures in vitro. The absence of miR-146a exerted a mild tissue-protective effect by transiently prolonging allograft survival and reducing the infiltration of CD4+ and CD8+ T cells into the allografts. Meanwhile, the absence of miR-146a increased Treg expansion but impaired the ability of Tregs to restrict T helper cell type 1 (Th1) responses. A miR-146a deficiency combined with interferon (IFN)-γ blockade repaired the impaired Treg function, further prolonged allograft survival, and alleviated rejection. Importantly, miR-146a regulated Tregs mainly through the IFN-γ/signal transducer and activator of transcription (STAT) 1 pathway, which is implicated in Treg function to inhibit Th1 responses. Our data suggest miR-146a controls a specific aspect of Treg function, and modulation of miR-146a may enhance Treg efficacy in alleviating heart transplant rejection in mice.


2011 ◽  
Vol 34 (2) ◽  
pp. 86-91 ◽  
Author(s):  
Song Su ◽  
Tobias R. Türk ◽  
Shengli Wu ◽  
Hua Fan ◽  
Jian Fu ◽  
...  

2000 ◽  
Vol 69 (Supplement) ◽  
pp. S382
Author(s):  
Hao Wang ◽  
Mark E. DeVries ◽  
Masud H. Khandaker ◽  
Shaoping Deng ◽  
Bertha Garcia ◽  
...  

2021 ◽  
Vol 40 (4) ◽  
pp. S228
Author(s):  
L.R. Gokanapudy Hahn ◽  
S. Yang ◽  
A. Bredemeyer ◽  
H. Dun ◽  
I. Lokshina ◽  
...  

2021 ◽  
Author(s):  
Carolyn A. Lacey ◽  
Bárbara Ponzilacqua-Silva ◽  
Catherine A. Chambers ◽  
Alexis S. Dadelahi ◽  
Jerod A. Skyberg

Brucellosis is one of the most common global zoonoses and is caused by facultative intracellular bacteria of the genus Brucella . Numerous studies have found that MyD88 signaling contributes to protection against Brucella , however the underlying mechanism has not been entirely defined. Here we show that MyD88 signaling in hematopoietic cells contributes both to inflammation and to control of Brucella melitensis infection in vivo . While the protective role of MyD88 in Brucella infection has often been attributed to promotion of IFN-γ production, we found that MyD88 signaling restricts host colonization by B. melitensis even in the absence of IFN-γ. In vitro , we show that MyD88 promotes macrophage glycolysis in response to B. melitensis . Interestingly, a B. melitensis mutant lacking the glucose transporter, GluP, was more highly attenuated in MyD88 -/- than in WT mice, suggesting MyD88 deficiency results in an increased availability of glucose in vivo which Brucella can exploit via GluP. Metabolite profiling of macrophages identified several metabolites regulated by MyD88 in response to B. melitensis , including itaconate. Subsequently, we found that itaconate has antibacterial effects against Brucella and also regulates the production of pro-inflammatory cytokines in B. melitensis -infected macrophages. Mice lacking the ability to produce itaconate were also more susceptible to B. melitensis in vivo . Collectively, our findings indicate that MyD88-dependent changes in host metabolism contribute to control of Brucella infection.


2001 ◽  
Vol 33 (3) ◽  
pp. 2170-2171 ◽  
Author(s):  
J Klupp ◽  
T van Gelder ◽  
C Dambrin ◽  
J Regieli ◽  
K Boeke ◽  
...  

Author(s):  
Jerome H. Klotz ◽  
Linda D. Sharpless

2019 ◽  
Vol 51 (12) ◽  
pp. 1-10 ◽  
Author(s):  
Miwa Sasai ◽  
Masahiro Yamamoto

AbstractHosts have been fighting pathogens throughout the evolution of all infectious diseases. Toxoplasma gondii is one of the most common infectious agents in humans but causes only opportunistic infection in healthy individuals. Similar to antimicrobial immunity against other organisms, the immune response against T. gondii activates innate immunity and in turn induces acquired immune responses. After activation of acquired immunity, host immune cells robustly produce the proinflammatory cytokine interferon-γ (IFN-γ), which activates a set of IFN-γ-inducible proteins, including GTPases. IFN-inducible GTPases are essential for cell-autonomous immunity and are specialized for effective clearance and growth inhibition of T. gondii by accumulating in parasitophorous vacuole membranes. Recent studies suggest that the cell-autonomous immune response plays a protective role in host defense against not only T. gondii but also various intracellular bacteria. Moreover, the negative regulatory mechanisms of such strong immune responses are also important for host survival after infection. In this review, we will discuss in detail recent advances in the understanding of host defenses against T. gondii and the roles played by cell-autonomous immune responses.


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