Brain regulatory T cells suppress astrogliosis and potentiate neurological recovery.

Ito, Minako; Komai, Kyoko; Mise-Omata, Setsuko; Iizuka-Koga, Mana; Noguchi, Yoshiko; Kondo, Taisuke; Sakai, Ryota; Matsuo, Kazuhiko et al. · Nature · 2019

basic_science · Level V

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Abstract

In addition to maintaining immune tolerance, FOXP3<sup>+</sup> regulatory T (T<sub>reg</sub>) cells perform specialized functions in tissue homeostasis and remodelling<sup>1,2</sup>. However, the characteristics and functions of brain T<sub>reg</sub> cells are not well understood because there is a low number of T<sub>reg</sub> cells in the brain under normal conditions. Here we show that there is massive accumulation of T<sub>reg</sub> cells in the mouse brain after ischaemic stroke, and this potentiates neurological recovery during the chronic phase of ischaemic brain injury. Although brain T<sub>reg</sub> cells are similar to T<sub>reg</sub> cells in other tissues such as visceral adipose tissue and muscle<sup>3-5</sup>, they are apparently distinct and express unique genes related to the nervous system including Htr7, which encodes the serotonin receptor 5-HT<sub>7</sub>. The amplification of brain T<sub>reg</sub> cells is dependent on interleukin (IL)-2, IL-33, serotonin and T cell receptor recognition, and infiltration into the brain is driven by the chemokines CCL1 and CCL20. Brain T<sub>reg</sub> cells suppress neurotoxic astrogliosis by producing amphiregulin, a low-affinity epidermal growth factor receptor (EGFR) ligand. Stroke is a leading cause of neurological disability, and there are currently few effective recovery methods other than rehabilitation during the chronic phase. Our findings suggest that T<sub>reg</sub> cells and their products may provide therapeutic opportunities for neuronal protection against stroke and neuroinflammatory diseases.

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