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Biology subjects

Stephenson, K.

Publications and source records attributed to Stephenson, K..

2 recordsLinked to original sources

Early innate immune signatures correlate with Ad26.COV2.S vaccine durability and protective efficacy

The innate immune system is rapidly activated following antigen exposure and plays a critical role in shaping the ensuing adaptive immune responses. In this study, we performed bulk RNA sequencing and proteomic profiling in a cohort of 25 rhesus macaques following Ad26.COV2.S immunization to characterize early innate correlates of vaccine immunogenicity and protection. Our results show that innate immune activation occurred as early as day 1 post-vaccination and demonstrated an systemic enrichment of antiviral interferon pathways, interleukin signaling, and innate immune cell signatures. These early transcriptomic signatures correlated positively with humoral and cellular immune responses at 6 weeks following vaccination and correlated inversely with viral loads following SARS-CoV-2 challenge. Similar correlates of immunogenicity were observed in a cohort of 25 adult healthy participants vaccinated with Ad26.COV2.S. Taken together, these findings highlight the importance of early activation of the innate immune system for Ad26.COV2.S vaccine immunogenicity and protective efficacy. Graphical SummaryGraphical summary of the model proposed by our findings. Day 1 innate immune signatures are protective of long-term protection. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=106 SRC="FIGDIR/small/731069v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@308acaorg.highwire.dtl.DTLVardef@e7e969org.highwire.dtl.DTLVardef@18d1a18org.highwire.dtl.DTLVardef@ac4fb0_HPS_FORMAT_FIGEXP M_FIG C_FIG IMPORTANCEEarly vaccine induction of innate immunity may be critical for vaccine immunogenicity and protective efficacy. In this study, we evaluated innate immune responses following Ad26.COV2.S vaccination in both rhesus macaques and humans. Early induction of innate immune signatures on day 1 following vaccination correlated with subsequent development of adaptive immune responses. These data suggest that the immune programming that occurs immediately after vaccination dictates immunogenicity weeks or months later.

microbiology↗

RPGR regulates motile cilia by interfering with actin dynamics

Cilia are highly conserved cellular organelles extruding from the surface of cell types carrying either sensory (signaling) or motile functions. These include photoreceptor cells and airway epithelia, where they function in light sensation and mucociliary clearance respectively. Retinitis pigmentosa GTPase regulator (RPGR) variants affect both photoreceptor sensory cilia and airway motile cilia, leading to retinitis pigmentosa (RP) and in some cases, primary ciliary dyskinesia (PCD), both debilitating conditions. Not all patients develop PCD and it is unclear which RPGR variants predispose patients to PCD and why this happens. In this study, using nasal biopsy samples of patients with RPGR-related RP, we leverage 2D organoid cell culturing, super-resolution microscopy, and live cell imaging to characterize the multiciliated cells from patients with different RPGR variants, healthy human nasal and bronchial multiciliated cells with CRISPR-modified RPGR function. We demonstrate for the first time that multiciliated cells with RPGR variants may have reduced ciliation, shorter cilia, significantly impaired cilia beat, or cilia beat incoordination, which could lead to defective mucociliary clearance and lung disease. In addition, we show the regulation of motile cilia by RPGR involves F-actin, as evidenced by temporarily reduced Gelsolin and undissolved condensed actin meshwork at the apical surface of RPGR-deficient multiciliated cells. In support, we show that the motile cilia defect can be ameliorated by treating with the actin polymerization inhibitor Latrunculin A. Though PCD was observed only in patients with variants that affect both main isoforms (RPGR1-19 and RPGRORF15), patients with variants affecting only RPGRORF15 also showed cilia and airway anomalies. Though all RPGR variants affected motile cilia in one way or another, RPGR loss of function variants affecting both isoforms are associated with more severe cilia and systemic phenotypes, the mechanisms of which involve the accumulation of apical F-actin. One Sentence Summary: Loss of RPGR, through the mechanism of apical F-actin accumulation in airway multiciliated cells, leads to reduced ciliation with short cilia that have an impaired beat, leading to defective mucociliary clearance.

cell biology↗