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She, L.

Publications and source records attributed to She, L..

2 recordsLinked to original sources

The geometry of face memory

The ability to recognize familiar visual objects is critical to survival. A central assumption of neuroscience is that long-term memories are represented by the same brain areas that encode sensory stimuli (1). Neurons in inferotemporal (IT) cortex represent the sensory percept of visual objects using a distributed axis code (2-4). Whether and how the same IT neural population represents the long-term memory of visual objects remains unclear. Here, we examined how familiar faces are encoded in face patch AM and perirhinal cortex. We found that familiar faces were represented in a distinct subspace from unfamiliar faces. The familiar face subspace was shifted relative to the unfamiliar face subspace at short latency and then distorted to increase neural distances between familiar faces at long latency. This distortion enabled markedly improved discrimination of familiar faces in both AM and PR. Inactivation of PR did not affect these memory traces in AM, suggesting that the memory traces arise from intrinsic recurrent processes within IT cortex or interactions with downstream regions outside the medial temporal lobe (5, 6). Overall, our results reveal that memories of familiar faces are represented in IT and perirhinal cortex by a distinct long-latency code that is optimized to distinguish familiar identities.

neuroscience

Non-canonical Activation of Human Group 2 Innate Lymphoid Cells by TLR4 Signaling

Group 2 innate lymphoid cells (ILC2) are emerging as a critical player in type 2 immunity at barrier sites in response to microbial infections and allergen exposures. Although their classical activators are known to be host epithelial-derived alarmin cytokines IL-33, IL-25 or TSLP, it remains elusive whether ILC2 cells can be activated by directly sensing microbial ligands via pattern-recognition receptors such as toll-like receptors (TLRs). Here we report that toll-like receptor 4 (TLR4) is a potent activating receptor of human ILC2. We found that among many microbial ligands examined, lipopolysaccharides (LPS) from multiple species of Gram-negative bacteria, was found to potently stimulate human, but not murine ILC2, to proliferate and produce massive amounts of type 2 effector cytokines IL-4, IL-5, and IL-13. LPS-activated ILC2 also had greatly enhanced the CD40 ligand (CD154) expression and were able to promote the proliferation and antibody production of human B cells in culture. In a humanized mouse model, LPS activated the adoptively transferred human ILC2 in mouse lungs. Both NF-kB and JAK pathways, but not the IL-33-ST2 pathway, were required for LPS to activate human ILC2. RNA-seq data further revealed that LPS induced a large set of genes overlapped significantly with those induced by IL-33. Collectively, these findings support a non-classical mode of activating human ILC2 cells via the LPS-TLR4 signaling axis. Thus, targeting TLR4 signaling pathway might be developed as a new approach by modulating ILC2 activation in treating various type 2 immunity-associated diseases.

immunology