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Lutzky, V. P.

Publications and source records attributed to Lutzky, V. P..

2 recordsLinked to original sources

Targeting the Oxysterol Receptor GPR183 to Mitigate Fibrogenesis in Idiopathic Pulmonary Fibrosis

Idiopathic pulmonary fibrosis (IPF) is a progressive and ultimately fatal lung disease with a median survival of 3-5 years after diagnosis. Current antifibrotic therapies slow disease progression, but do not halt or reverse fibrosis, underscoring the need for new therapies. We identified a dysregulated oxysterol-GPR183 axis as a driver of IPF. Oxidized cholesterols were elevated in lungs from IPF patients, with myofibroblasts representing the dominant source of 7,25-hydroxycholesterol (7,25-OHC), the endogenous high affinity ligand for the oxysterol-sensing receptor GPR183. IPF patients had increased GPR183 expression in interstitial and monocyte-like macrophages compared to controls. In a bleomycin-induced model of pulmonary fibrosis genetic deletion of GPR183 reduced disease severity characterized by reduced fibrosis, inflammation, and accumulation of macrophages and myofibroblasts. Pharmacological inhibition of GPR183 with the antagonist NIBR189 attenuated fibrosis when administered preventatively from day 1-7 after bleomycin exposure. Notably, therapeutic treatment with the GPR183 antagonist after commencement of fibrosis development at day 10 post-bleomycin also significantly reduced fibrotic pathology, achieving efficacy comparable to the approved antifibrotic nintedanib. However, the GPR183 antagonist was more potent in reducing inflammation and myofibroblast activation compared to nintedanib. Together, these findings identify an oxysterol-GPR183 signaling axis that contributes to pulmonary fibrogenesis and provide a strong preclinical rationale for targeting GPR183 as a novel therapeutic strategy for IPF. One Sentence SummaryTargeting GPR183 reduced lung fibrosis and inflammation in a preclinical model, supporting GPR183 as a promising new therapy.

immunology↗

Passage of Zika virus in Rag1-deficient mice selects for unique envelope glycosylation motif mutants that show enhanced replication

N-linked glycosylation of flavivirus envelope proteins is widely viewed as a requirement for optimal folding, processing and/or transit of envelope proteins, and the assembling virons, through the endoplasmic reticulum (ER) and Golgi. Herein we show that serial passage of ZIKVNatal in Rag1-/- mice generated two unique envelope glycan-deficient mutants, ZIKV-V153D and ZIKV-N154D, that, surprisingly, produced titers [~]1 to 2.6 logs higher than the glycosylated parental ZIKVNatal in Vero E6 cells and human brain organoids. RNA-Seq of infected organoids suggested that this increased replication fitness was associated with upregulation of the unfolded protein response (UPR). Cell death, cellular viral RNA and viral protein levels were not significantly affected, arguing that these glycan mutants enjoyed faster ER/Golgi folding, processing, assembly, transit, and virion egress, assisted by an upregulated UPR. Thus, ZIKV envelope N-linked glycosylation is not essential for promoting envelope folding, assembly and transit through the ER/Golgi, as aspartic acid (D) substitutions in the glycosylation motif achieve this with significantly greater efficiency. V153D and N154D mutants have not been employed in flavivirus envelope glycosylation studies. Instead, mutants such as N154A have been used, which may impart unfavorable properties that have a greater impact than the loss of the glycan. ZIKV-V153D and -N154D may avoid this by preserving the surface negative charge provided by the glycan moiety in the parental ZIKVNatal. In Ifnar-/- mice ZIKV-V153D and -N154D showed faster viremia onsets, but reduced viremic periods, than the parental ZIKVNatal, consistent with the contention that these glycans have evolved to delay neutralizing antibody activity. IMPORTANCEStudies seeking to understand the role(s) of N-linked glycosylation of flavivirus envelope proteins often introduce amino acid substitutions that disrupt the glycosylation motif, which in ZIKV has the sequence 153VNDT156. Unfortunately, such substitutions, for instance N154A, may themselves impart unfavorable properties on envelope that have a greater impact than the loss of the glycan moiety. Herein we describe two unique glycosylation motif mutants, ZIKV-V153D and -N154D that were positively selected during passage of ZIKVNatal in Rag1-/- mice. These N154 glycan-deficient viruses produced viral titers up to [~]400 fold higher than the parental ZIKVNatal in Vero cells and in human brain organoids. Such glycans are thus clearly not a requirement for optimal folding and trafficking of ZIKV envelope through the endoplasmic reticulum/Golgi. These results provide new insights into the molecular mechanisms underpinning viral fitness in vitro and in vivo, and also have implications for virus-like-particle vaccine design and production.

microbiology↗