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Biology subjects

Gallois-Montbrun, S.

Publications and source records attributed to Gallois-Montbrun, S..

6 recordsLinked to original sources

Human MX1 induces the cytoplasmic sequestration of neo-synthesized influenza A virus vRNPs

Interferon-inducible Myxovirus resistance 1 (MX1) proteins are well-known to restrict influenza A virus (IAV) at early stages during viral replication, impairing the viral transcription/replication process. Herein, we show that this early restriction was only partial against human IAVs, whereas a strong inhibition of viral production was observed. Indeed, relatively high levels of IAV mRNAs and proteins were observed in the presence of human (Hs) and mouse (Mm) MX1 proteins but additional inhibition processes occurred at later stages of IAV life cycle. Hence, MmMx1 induced an abnormal nuclear accumulation of the viral nucleoprotein (NP) at late time points post-infection. This block was also observed, albeit to a much lower extent, with HsMX1. In most HsMX1-expressing cells, vRNPs could be exported from the nucleus to the cytoplasm however a potent defect in subsequent vRNP cytoplasmic trafficking was observed. Indeed, vRNPs were found sequestrated together with cellular co-factors YBX1 and Rab11a in large clusters in the vicinity of the microtubule organization center (MTOC). Live imaging experiments revealed that the transient association of HsMX1 with Rab11a-associated vRNPs favoured their dynein-dependant retrograde transport along microtubules towards the MTOC. Importantly, dynein inhibition prevented the vRNP sequestration and significantly rescued infectious viral production in the presence of HsMX1, showing a significant contribution of these abnormal vRNP clusters in HsMX1 antiviral activity. In conclusion, this study provides the first evidence of IAV vRNPs being re-routed and accumulated away from the plasma membrane, through the coordinated action of HsMX1 restriction factor, dynein and the microtubule network.

microbiology↗

CGRP inhibits SARS-CoV-2 infection of bronchial epithelial cells and its pulmonary levels correlate with viral clearance in critical COVID-19 patients

Upon infection with severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), patients with critical coronavirus disease 2019 (COVID-19) present with life-threatening respiratory distress, pulmonary damage and cytokine storm. One unexplored hub in COVID-19 is the neuropeptide calcitonin gene-related peptide (CGRP), which is highly abundant in the airways and could converge in multiple aspects of COVID-19-related pulmonary pathophysiology. Whether CGRP affects SARS-CoV-2 infection directly remains elusive. We show that in critical COVID-19 patients, CGRP is increased in both plasma and lungs. Importantly, CGRP pulmonary levels are elevated in early SARS-CoV-2-positive patients, and restore to baseline upon subsequent viral clearance in SARS-CoV-2-negative patients. We further show that CGRP and its stable analogue SAX directly inhibit infection of bronchial Calu-3 epithelial cells with SARS-CoV-2 Omicron and Alpha variants in a dose-dependent manner. Both pre- and post-infection treatment with GRRP and/or SAX is enough to block SARS-CoV-2 productive infection of Calu3 cells. CGRP-mediated inhibition occurs via activation of the CGRP receptor and involves down-regulation of SARS-CoV-2 entry receptors at the surface of Calu-3 cells. Together, we propose that increased pulmonary CGRP mediates beneficial viral clearance in critical COVID-19 patients, by directly inhibiting SARS-CoV-2 infection. Hence, CGRP-based interventions could be harnessed for management of COVID-19. Brief summaryPulmonary levels of the neuropeptide CGRP are increased in critical COVID-19 patients, and could clear virus by directly inhibiting SRAS-CoV-2 infection of bronchial epithelia cells.

microbiology↗

ATG5 selectively engages virus-tethered BST2/Tetherin in an LC3C-associated pathway

BST2/Tetherin is a restriction factor that reduces HIV-1 dissemination by tethering virus at the cell surface. BST2 also acts as a sensor of HIV-1 budding, establishing a cellular anti-viral state. The HIV-1 Vpu protein antagonizes BST2 antiviral functions, notably by subverting an LC3C-associated pathway, a key cell intrinsic anti-microbial mechanism. Here, we show that ATG5 associates with BST2 and acts as a signaling scaffold to trigger an LC3C-associated pathway induced by HIV-1 infection. This process is initiated at the plasma membrane through the recognition of virus-tethered BST2 by ATG5. ATG5 and BST2 assemble as a complex, independently of the viral protein Vpu and ahead of the recruitment of the ATG protein LC3C. The conjugation of ATG5 with ATG12 is dispensable for this interaction. ATG5 recognizes cysteine-linked homodimerized BST2 and specifically engages phosphorylated BST2 tethering viruses at the plasma membrane, in an LC3C-associated pathway. We also found that this LC3C-associated pathway is used by Vpu to attenuate the inflammatory responses mediated by virion retention. Overall, we highlight that by targeting BST2 tethering viruses, ATG5 acts as a transducer of the LC3C-associated pathway induced by HIV-1 infection. Significance statementThe outcome of viral infection in cells is dependent on the balance between host restriction factors and viral countermeasures. BST2/Tetherin is a restriction factor that reduces HIV-1 dissemination by tethering virions at the cell surface. Its action is counteracted by the viral protein Vpu through multiple mechanisms. Here, we describe the initial step of a non-canonical autophagic pathway, called LC3C-associated pathway, subverted by Vpu to counteract BST2 antiviral activities. We found that the autophagic protein ATG5 acts as a transducer by targeting phosphorylated and dimerized virus-tethered BST2 from cell surface to the degradation. Our discovery opens new avenue in the discovery of unconventional functions of ATG5, as an adaptor for receptor at the plasma membrane initiating an unconventional autophagy process.

microbiology↗

A Legionella pneumophila effector impedes host gene silencing to promote virulence

RNA silencing is a gene silencing mechanism directed by small RNAs. Human miRNAs act as central regulators of host-bacteria interactions. However, it is unknown whether human pathogenic bacteria could impede RNA silencing to promote virulence. Here, we show that the Legionella pneumophila type IV-secreted effector LegK1 efficiently suppresses siRNA and miRNA activities in human cells. This effect depends on its known kinase activity, but also on its novel capacity, found here, to bind Argonaute (Ago) proteins. We further demonstrate that the ability of LegK1 to activate NF-{kappa}B signaling is required for RNA silencing suppression, establishing a link between effector-mediated NF-{kappa}B signaling and RNA silencing suppression. LegK1 also promotes L. pneumophila growth in both amoeba and human macrophages, supporting a role for this effector in virulence. Finally, we show that, in infected-macrophages, the latter activity relies, in part, on the genetic targeting of human Ago4. These findings indicate that a L. pneumophila effector has evolved to suppress RNA silencing to promote virulence. Significance StatementIt is now well established that mammalian viruses suppress RNAi to promote their replication in host cells. However, whether mammalian pathogenic bacteria use a similar virulence strategy remains unknown. Here, we show that the LegK1 effector from Legionella pneumophia, the causal agent of Legionnaires disease, efficiently suppresses RNAi in human cells. This effect depends on its ability to interact with Argonaute (Ago) proteins and to activate NF-{kappa}B signaling. In addition, LegK1 promotes virulence in infected-macrophages through the genetic targeting of human Ago4. Based on the lack of NF-{kappa}B-related factors in amoebae, and on the presence of canonical Ago proteins in these natural L. pneumophila hosts, we propose that the RNAi suppression activity of LegK1 represents its primary virulence function.

molecular biology↗

RACK1 associates with RNA-binding proteins Vigilin and SERBP1 to control dengue virus replication

Dengue virus (DENV), a re-emerging virus transmitted by Aedes mosquitoes, causes severe pathogenesis in humans. No effective treatment is available against this virus. We recently identified the scaffold protein RACK1 as a component of the DENV replication complex, a macromolecular complex essential for viral genome amplification. Here, we show that RACK1 is important for DENV infection. RACK1 mediates DENV replication through binding to the 40S ribosomal subunit. Mass spectrometry analysis of RACK1 partners coupled to a loss-of-function screen identified the RNA binding proteins Vigilin and SERBP1 as DENV host dependency factors. Vigilin and SERBP1 interact with DENV viral RNA (vRNA), forming a ternary complex with RACK1 to mediate viral replication. Overall, our results indicate that RACK1 recruits Vigilin and SERBP1, linking the DENV vRNA to the translation machinery for optimal translation and replication.

microbiology↗

TASOR epigenetic repressor cooperates with a CNOT1 RNA degradation pathway to repress HIV

The Human Silencing Hub (HUSH) complex constituted of TASOR, MPP8 and Periphilin is involved in the spreading of H3K9me3 repressive marks across genes and transgenes such as ZNF encoding genes, ribosomal DNAs, LINE-1, Retrotransposons and Retroelements or the integrated HIV provirus1-5. The deposit of these repressive marks leads to heterochromatin formation and inhibits gene expression. The precise mechanisms of silencing mediated by HUSH is still poorly understood. Here, we show that TASOR depletion increases the accumulation of transcripts derived from the HIV-1 LTR promoter at a post-transcriptional level. By counteracting HUSH, Vpx from HIV-2 mimics TASOR depletion. With the use of a Yeast-Two-Hybrid screen, we identified new TASOR partners involved in RNA metabolism including the RNA deadenylase CCR4-NOT complex scaffold CNOT1. TASOR and CNOT1 interact in vivo and synergistically repress HIV expression from its LTR. In fission yeast, the RNA-induced transcriptional silencing (RITS) complex presents structural homology with HUSH. During transcription elongation by RNA polymerase II, RITS recruits a TRAMP-like RNA degradation complex composed of CNOT1 partners, MTR4 and the exosome, to ultimately repress gene expression via H3K9me3 deposit. Similarly, we show that TASOR interacts and cooperates with MTR4 and the exosome, in addition to CNOT1. We also highlight an interaction between TASOR and RNA Polymerase II, predominantly under its elongating state, and between TASOR and some HUSH-targeted nascent transcripts. Furthermore, we show that TASOR overexpression facilitates the association of the aforementioned RNA degradation proteins with RNA polymerase II. Altogether, we propose that HUSH operates at the transcriptional and post-transcriptional levels to repress HIV proviral gene expression.

molecular biology↗