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Biology subjects

Harly, C.

Publications and source records attributed to Harly, C..

3 recordsLinked to original sources

Intrathymic progenitor cell transplantation restores T cell development through ILC3-TEC crosstalk

T cell deficiencies are commonly treated by intravenous hematopoietic stem/progenitor cell (HSPC) transplantation. However, this approach often leads to delayed and incomplete T cell reconstitution, partly due to impaired thymic function. In contrast, intrathymic delivery of HSPCs enables rapid, thymus-autonomous T cell development. Using a ZAP-70-deficient mouse model of severe immunodeficiency, we show that intrathymic transplantation of wild-type HSPCs results in robust thymic engraftment, with mature T cells and FOXP3+ regulatory T cells (Treg) detectable within four weeks. This reconstitution parallels the regeneration of a functional thymic medulla and the emergence of mature medullary thymic epithelial cells (mTECs). Importantly, we identify an early wave of donor-derived ROR{gamma}T+ ILC3s that correlates with medullary regeneration. While dispensable for steady-state thymopoiesis, ILC3s accelerate medulla formation and support optimal T cell differentiation in this immunodeficient setting. These findings uncover a critical role for ILC3-TEC crosstalk in thymic repair and highlight intrathymic HSPC transplantation as a strategy to enhance immune reconstitution in immunodeficient hosts.

immunology↗

A Mouse Model of SARS-CoV-2-Driven Acute Maladaptive Responses and Chronic Systemic Diseases

Our understanding of SARS-CoV-2 acute and post-acute pathogenesis is hindered by the lack of adequate small animal models. We present RAB/6N, a mouse model prone to severe disease after exposure to SARS-CoV-2 clinical isolates, with lethal cases showing no widespread brain infection typical of the widely used K18-hACE2 mouse model. Lung viral replication in RAB/6N mice remains steady for several days before a decline in viral titers. Delayed initiation of infection clearance is marked by increased lung T-cell extravasation and type-2 immune responses, leading to maladaptive lung consolidation. While systemic antiviral cytokine responses only correlate with SARS-CoV-2 brain infection in K18-hACE2 mice, they are concomitant with pulmonary immune dynamics in infected RAB/6N mice. Convalescent RAB/6N mice display systemic inflammation and decreased antibody titers against SARS-CoV-2 spike RBD, persistent viral RNA and prolonged lymphoid infiltration in the lungs. These animals also exhibit signatures of multi-organ dysfunction, cognitive impairment, cardiac inflammation, hyper- immunoglobulin production, and various autoimmune disorders, illuminating the molecular correlates of various pathologies associated with post-acute sequelae of COVID-19 (PASC). RAB/6N mice pave the way for dissecting the molecular drivers underlying SARS-CoV-2-induced acute maladaptive responses and subsequent post-acute systemic diseases. This preclinical platform also opens opportunities for the exploration of therapeutic interventions against systemic PASC and for anticipating the emergence of PASC-associated comorbidities. One-sentence summaryWe generated a hACE2-transgenic mouse model that develops maladaptive lung immune responses upon acute SARS-CoV-2 infection, leading to fatal outcomes or post-acute systemic disease syndromes in convalescent animals.

microbiology↗

Resolution of SARS-CoV-2 infection in human lung tissues is driven by extravascular CD163+ monocytes

While human autopsy samples have provided insights into pulmonary immune mechanisms associated with severe viral respiratory diseases, the mechanisms that contribute to a clinically favorable resolution of viral respiratory infections remain unclear due to the lack of proper experimental systems. Using mice co-engrafted with a genetically matched human immune system and fetal lung xenograft (fLX), we mapped the immunological events defining successful resolution of SARS-CoV-2 infection in human lung tissues. Viral infection is rapidly cleared from fLX following a peak of viral replication, histopathological manifestations of lung disease and loss of AT2 program, as reported in human COVID-19 patients. Infection resolution is associated with the activation of a limited number of hematopoietic subsets, including inflammatory monocytes and non-canonical double-negative T-cells with cytotoxic functions, which are highly enriched in viral RNA and dissipate upon infection resolution. Activation of specific human fibroblast and endothelial subsets also elicit robust antiviral and monocyte chemotaxis signatures, respectively. Notably, systemic depletion of human CD4+ cells, but not CD3+ cells, abrogates infection resolution in fLX and induces persistent infection, supporting evidence that peripheral CD4+ monocytes are important contributors to SARS-CoV-2 infection resolution in lung tissues. Collectively, our findings unravel a comprehensive picture of the immunological events defining effective resolution of SARS-CoV-2 infection in human lung tissues, revealing markedly divergent immunological trajectories between resolving and fatal COVID-19 cases.

immunology↗