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Biology subjects

Sidhu, I.

Publications and source records attributed to Sidhu, I..

2 recordsLinked to original sources

Th1 cells are critical tissue organizers of myeloid-rich perivascular activation niches.

Aggregating immune cells within perivascular niches (PVN) can regulate tissue immunity in infection, autoimmunity and cancer. How cells are assembled at PVNs and the activation signals imparted within remain unclear. Here, we integrate dynamic time-resolved in vivo imaging with a novel spatially-resolved platform for microanatomical interrogation of transcriptome, immune phenotype and inflammatory mediators in skin PVNs. We uncover a complex positive-feedback loop within CXCL10+ PVNs that regulates myeloid and Th1 cell positioning for exchange of critical signals for Th1 activation. Th1 cells spend [~]24h in the PVN, receiving initial peripheral activation signals, before redeploying to the inflamed dermal parenchyma. Niche-enriched, CCR2-dependent myeloid cells were critical for Th1 IFN{gamma}-production. In turn, PVN instructional signals enabled Th1s to orchestrate PVN assembly by CXCR2-dependent intra-tissue myeloid cell aggregation. The results reveal a critical tissue organizing role for Th1s, gained rapidly on tissue entry, that could be exploited to boost regional immunity. HIGHLIGHTSO_LIPerivascular niche (PVN): myeloid hubs in inflamed mouse and healthy human skin C_LIO_LITh1 cells enter, get activated, and leave the PVN within first 24h of tissue entry C_LIO_LIAntigen-specific signals in the PVN promote the tissue organizing functions of Th1s C_LIO_LITh1 cells assemble the PVN via CXCR2-dependent myeloid cell aggregation C_LI

immunology↗

Interferon-sensitized hematopoietic progenitors dynamically alter organismal immunity

Inflammation has enduring impacts on organismal immunity. However, the precise mechanisms by which tissue-restricted inflammation conditions systemic responses are poorly understood. Here, we leveraged a highly compartmentalized model of skin inflammation and identified a surprising type I interferon (IFN)- mediated activation of hematopoietic stem/progenitor cells (HSPCs) that results in profound changes to systemic host responses. Post-inflamed mice were protected from atherosclerosis and had worse outcomes following influenza virus infection. This IFN-mediated HSPC modulation was dependent on IFNAR signaling and could be recapitulated with the administration of recombinant IFN. Importantly, the transfer of post-inflamed HSPCs was sufficient to transmit the immune suppression phenotype. IFN modulation of HSPCs was rooted both in long-term changes in chromatin accessibility and the emergence of an IFN- responsive functional state from multiple progenitor populations. Collectively, our data reveal the profound and enduring effect of transient inflammation and more specifically type I IFN signaling and set the stage for a more nuanced understanding of HSPC functional modulation by peripheral immune signals.

immunology↗