bioRxiv Science⌕ Search

Biology subjects

Pahnke, A.

Publications and source records attributed to Pahnke, A..

2 recordsLinked to original sources

Trsp is required by regulatory T cells to prevent lethal autoimmunity in mice

Selenoproteins are involved in immune cell metabolism, yet the roles of these proteins in T cell development and function remain largely unknown. The Trsp gene encodes the selenocysteine tRNA (tRNASec) required for translation of all selenoproteins. In this study, we found that Trsp was required for thymopoiesis, with the majority of tRNASec-deficient T cells not progressing beyond double negative 3 stage, with egressed thymocytes undergoing peripheral homeostatic expansion. Trsp-deficient CD4+ T cells exhibited impairments in TCR and IL-2 signaling and did not cause inflammation in experimental models. On the other hand, Trsp-deficient regulatory T (Treg) cells exhibited defects in suppressive function ex vivo and Treg-specific Trsp deletion using Trspfl/flFoxp3YFP-Cre (Trsp!{iota}Treg) mice caused fatal autoimmunity similar to FOXP3-deficient mice. Reducing oxidative stress via 2-HOBA administration prolonged survival in these Trsp!{iota}Treg mice. These findings indicate that tRNASec is required for T cell homeostasis and may be therapeutic targets in inflammation. One sentence summaryTrsp, a gene required for translation of all selenoproteins, is essential for all T cell development and function, especially regulatory T cells.

immunology↗

Translocation of gut commensal bacteria to the brain

The gut-brain axis, a bidirectional signaling network between the intestine and the central nervous system, is crucial to the regulation of host physiology and inflammation. Recent advances suggest a strong correlation between gut dysbiosis and neurological diseases, however, relatively little is known about how gut bacteria impact the brain. Here, we reveal that gut commensal bacteria can translocate directly to the brain when mice are fed an altered diet that causes dysbiosis and intestinal permeability, and that this also occurs without diet alteration in distinct murine models of neurological disease. The bacteria were not found in other systemic sites or the blood, but were detected in the vagus nerve. Unilateral cervical vagotomy significantly reduced the number of bacteria in the brain, implicating the vagus nerve as a conduit for translocation. The presence of bacteria in the brain correlated with microglial activation, a marker of neuroinflammation, and with neural protein aggregation, a hallmark of several neurodegenerative diseases. In at least one model, the presence of bacteria in the brain was reversible as a switch from high-fat to standard diet resulted in amelioration of intestinal permeability, led to a gradual loss of detectable bacteria in the brain, and reduced the number of neural protein aggregates. Further, in murine models of Alzheimers disease, Parkinsons disease, and autism spectrum disorder, we observed gut dysbiosis, gut leakiness, bacterial translocation to the brain, and microglial activation. These data reveal a commensal bacterial translocation axis to the brain in models of diverse neurological diseases.

neuroscience↗