Tolerance to the Intestinal Microbiota Mediated by ROR(gamma t)(+) Cells
TRENDS IN IMMUNOLOGY
Authors: Ohnmacht, Caspar
Abstract
Harmless microbes colonizing the gut require the establishment of a well equilibrated symbiosis between this microbiota and its host. However, the immune system is primed to recognize both conserved microbial patterns and foreign antigens, and therefore developed strong tolerance mechanisms to prevent potential fatal immune reactivity to symbiotic microbes. The transcription factor RAR-related orphan-like gamma t [ROR(gamma t); encoded by Rorc] plays a key role in the gut for lymphoid tissue organogenesis, development of innate lymphoid cells type 3 (ILC3s) and proinflammatory type 17 T helper (Th17) cells. Surprisingly, recent research has revealed a contribution of ROR (gamma t)-expressing cells in a variety of tolerance mechanisms in both the innate and adaptive immune system.
Experimental ischemic stroke induces long-term T cell activation in the brain
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM
Authors: Xie, Luokun; Li, Wenjun; Hersh, Jessica; Liu, Ran; Yang, Shao-Hua
Abstract
Mounting evidence has demonstrated that both innate and adaptive immune cells infiltrate into the brain after ischemic stroke. T cell invasion has been found in the ischemic region up to one month post experimental ischemic stroke and has been shown to persist for years in stroke patients. However, the function and phenotypic characteristics of the brain invading T cells after ischemic stroke have not been investigated. In the current study, we determined the function of brain invading T cells in the acute and chronic phase following experimental ischemic stroke induced by transient middle cerebral artery occlusion. We observed a significant increase of CD4(+) and CD8(+) T cells presented in the peri-infarct area at up to one month after experimental ischemic stroke. The brain invading T cells after ischemic stroke demonstrated close interaction with active astrocytes and a progressive proinflammatory phenotype as evidenced by the increased expression of T cell activation markers CD44 and CD25, proinflammatory cytokines INF-gamma, IL-17, IL-10, TNF-alpha, and perforin, with corresponding transcriptional factors T-bet and RORc. Our results indicated a prolonged activation of brain invading CD4(+) and CD8(+) T cells after ischemic stroke which may play a role in the neural repair process after stroke.