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Mestdagh, C.

Publications and source records attributed to Mestdagh, C..

6 recordsLinked to original sources

Oscillatory Hedgehog signaling and temporal coordination of atonal dynamics at the eye differentiation front in Drosophila

Pattern formation in the Drosophila eye involves the pulsatile expression of the proneural gene atonal (ato) and the periodic activation of Notch. Oscillatory expression of the ato gene results from the synchronous activation of two distinct ato enhancers that are active in two adjacent rows of cell clusters along the front of differentiation. How synchronous enhancer activation is achieved along the front is not known. Hedgehog (Hh) is a diffusive signal produced just posterior to the front which contributes to regulate ato gene expression. Here, we find that both ato enhancers are regulated by Hh and that two Hh target genes, patched (ptc) and decapentaplegic (dpp), are expressed at the front of differentiation in an oscillatory manner downstream of a constant Hh signal. Consistent with a role of Hh in the temporal coordination of ato gene expression along the front, lowering Hh activity was associated with pattern irregularities along the front. We propose a model whereby the periodic expression of the Hh receptor Ptc under the control of pulsatile Ato and/or Notch dynamics produces rhythmic changes in extracellular Hh which would in turn coordinate ato dynamics locally. In this model, oscillatory Hh would provide a temporal cue to coordinate patterning dynamics along the front of differentiation in the developing eye.

developmental biology↗

Cellular NAD+ availability and redox state constrain developmental speed in the Drosophila eye

The cellular and biochemical processes that limit the speed at which embryos develop, tissues form, and cells differentiate remain largely unknown. Using the speed of progression of a differentiation front in the developing eye of Drosophila as a proxy for developmental speed, we identified genetic perturbations that slowed down the progression of this front. Inhibiting the Electron Transport Chain (ETC), and more generally energy production in mitochondria, resulted in reduced developmental speed. Defective ETC activity led to increased NADH/NAD+ ratio whereas ATP levels remained constant due to a compensatory increase in glycolysis. Using targeted perturbations, we found that the metabolic state of the cells ahead of and/or at the moving front of differentiation determined its speed. Genetic and diet-based perturbations of the NAD+ metabolism pathway indicated that developmental speed was limited by NAD+ availability in these cells. Thus, developmental speed appeared to be constrained by the cellular redox and the demand for NAD+ in Drosophila.

developmental biology↗

N-benzamides as Influenza Virus Fusion Inhibitors Acting on H1 and H5 Hemagglutinins

Novel antiviral drugs are needed to prepare against infections from influenza A virus (IAV). Here a series of N-[(thiophen-3-yl)methylbenzamides which target the hemagglutinin (HA)-mediated fusion process is reported. The most active compound, VF-57a, displays a 50% effective concentration (EC50) of [~]0.8 M and antiviral selectivity index >130, in Madin-Darby canine kidney (MDCK) cells infected with A/H1N1 virus. VF-57a proved to be a strong inhibitor of A/H1N1- and A/H5N1-pseudovirus entry (EC50 values of 0.3 and 0.8 {micro}M, respectively). Cell-cell fusion assays in HA-expressing cells, surface plasmon resonance-based assessment of HA protein refolding, and resistance studies suggested that VF-57a prevents the conformational change of HA at acidic pH. Molecular modelling highlighted the role of the dimethylthiophene moiety and the amide-based tether in the anchoring to the binding cavity of HA. Our findings support further development of this class of IAV fusion inhibitors against A/H1N1 and A/H5N1 viruses.

microbiology↗

Random mutagenesis of influenza hemagglutinin identifies new sites which modulate its acid-stability and cleavability

The structural instability of influenza hemagglutinin (HA) is related to its function in low pH-mediated membrane fusion, which requires prior cleavage of the premature HA0 by a host protease. The precise determinants underlying the stability and cleavability of HA remain to be fully understood and have implications for risk assessment of zoonotic influenza A viruses (IAV), viral transmissibility and vaccine production. To address this, we conducted random mutagenesis on early 2009 pandemic H1 HA, followed by selection of acid-stable viruses and detailed profiling of the mutant HAs. This resulted in identification of four mutations, which increase the acid-stability and decrease the fusion-promoting activity of H1 HA, without compromising viral entry and replication in cells. The newly recognized mutations are situated in the globular head, vestigial esterase and membrane-proximal part of H1 HA, in regions involved in the refolding of HA at low pH. A fifth mutation, D346N, is located in the cleavage loop and renders H1 HA0 12-fold resistant to trypsin activation, whereas its cleavage by transmembrane serine protease 2 (TMPRSS2) is not affected. Along this line, we found that the poor cleavage of H16 HA0, which is unusual in carrying an N346 residue, only applies when it is performed by extracellular proteases. Since H16 HA also exhibits a very low fusion pH, we propose that gull H16N3 virus may carry a much more stable HA than other avian IAVs. Collectively, our mutagenesis approach revealed new determinants of HA stability and cleavability, with relevance for viral surveillance and vaccine production. IMPORTANCEThe presence of influenza A viruses (IAV) throughout the animal world, particularly avian species, represents a constant threat for zoonotic infections or a new influenza pandemic. To be transmissible among humans, a zoonotic IAV requires mutations in the viral hemagglutinin (HA) that increase the acid-stability of this mediator of viral entry. Understanding the determinants of HA stability is also important to produce vaccines with high shelf-stability. By combining random mutagenesis with selection of acid-stable viruses, we identified new stabilizing mutations located in different parts of HA. Besides, we discovered a mutation that renders HA resistant to cleavage by extracellular proteases. Since this residue is naturally occurring in H16 HA, we propose that the gull H16N3 virus may differ from other avian IAVs in carrying an environmentally stable HA. Hence, our study delivers new insight in factors that modulate HA acid-stability and cleavability, with relevance for viral surveillance and vaccine production.

microbiology↗

Antiviral Mechanisms and Preclinical Evaluation of Amantadine Analogs that Continue to Inhibit Influenza A Viruses with M2 S31N-Based Drug Resistance

To better manage seasonal and pandemic influenza infections, new drugs are needed with enhanced activity against contemporary amantadine- and rimantadine-resistant influenza A virus (IAV) strains containing the S31N variant of the viral M2 ion channel (M2S31N). Here we tested 36 amantadine analogs against a panel of viruses containing either M2S31N or the parental, M2 S31 wild-type variant (M2WT). We found that several analogs, primarily those with sizeable lipophilic adducts, inhibited up to three M2S31N-containing viruses with activities at least 5-fold lower than rimantadine, without inhibiting M2S31N proton currents or modulating endosomal pH. While M2WT viruses in passaging studies rapidly gained resistance to these analogs through the established M2 mutations V27A and/or A30T, resistance development was markedly slower for M2S31N viruses and did not associate with additional M2 mutations. Instead, a subset of analogs, exemplified by 2-propyl-2-adamantanamine (38), but not 2-(1-adamantyl)piperidine (26), spiro[adamantane-2,2-pyrrolidine] (49), or spiro[adamantane-2,2-piperidine] (60), inhibited cellular entry of infectious IAV following pre-treatment and/or H1N1 pseudovirus entry. Conversely, an overlapping subset of the most lipophilic analogs including compounds 26, 49, 60, and others, disrupted viral M2-M1 protein colocalization required for intracellular viral assembly and budding. Finally, a pilot toxicity study in mice demonstrated that 38 and 49 were tolerated at doses approaching those of amantadine. Together, these results indicate that amantadine analogs act on multiple, complementary mechanisms to inhibit replication of M2S31N viruses. Highlights- Current IAVs have M2 mutations that confer resistance to amantadine and rimantadine - Several amantadine analogs inhibit these viruses without acting on M2 proton currents - Alternative antiviral targets include IAV entry and M2-M1 protein colocalization - Amantadine analogs are also tolerated in mice - Future amantadine antivirals could simultaneously act on multiple IAV mechanisms

microbiology↗

Pulsatile dynamics propagate crystalline order in the developing Drosophila eye

Pattern formation in developing tissues often involves self-organization guided by positional information. In most tissues, however, its dynamics, and therefore the underlying logic, remain unknown. Examining self-organized patterning of the fly eye, we combine experiments and modeling to elucidate how rows of light-receiving units emerge in the wake of a traveling differentiation front to form a crystal-like array. Live imaging of the proneural factor Atonal reveals unanticipated oscillations at the front, which are produced by the successive activation of two distinct enhancers and associated with pulsatile Notch signaling. Our observations are inconsistent with current models of eye patterning, whereby each row of differentiating cells provides a negative template for the next. Instead, they inform a new relay model in which transient Notch signaling from differentiating cells provides a positive template for the onset of differentiation two rows ahead, conveying both temporal and spatial information to propagate oscillations and crystal-like order.

developmental biology↗