Publications by authors named "Moscona A"

Nipah virus (NiV) is a lethal zoonotic paramyxovirus that can be transmitted from person to person through the respiratory route. There are currently no licensed vaccines or therapeutics. A lipopeptide-based fusion inhibitor was developed and previously evaluated for efficacy against the NiV-Malaysia strain.

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We have assessed antiviral activity and induction of protective immunity of fusion-inhibitory lipopeptides derived from the C-terminal heptad-repeat domain of SARS-CoV-2 spike glycoprotein in transgenic mice expressing human ACE2 (K18-hACE2). The lipopeptides block SARS-CoV-2 infection in cell lines and lung-derived organotypic cultures. Intranasal administration in mice allows the maintenance of homeostatic transcriptomic immune profile in lungs, prevents body-weight loss, decreases viral load and shedding, and protects mice from death caused by SARS-CoV-2 variants.

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  • Scientists established a direct-contact transmission model for the SARS-CoV-2 Omicron BA.5 variant using Syrian hamsters, which are highly susceptible to the virus.
  • The research involved testing different inoculation doses and co-housing durations to ensure reliable transmission and comparing viral loads and tissue damage between infected donor and naïve recipient hamsters.
  • Results indicated that while both male and female hamsters could be infected similarly, males shed significantly more infectious virus; overall, the Omicron BA.5 variant resulted in lower viral loads and less severe symptoms compared to prior strains, highlighting the model's potential for studying new treatment strategies.
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  • Paramyxoviruses, such as measles and Nipah, pose significant public health risks and have pandemic potential, with HPIV3 being a major cause of illness among vulnerable populations.
  • * There are currently no approved vaccines or treatments for HPIV3, but neutralizing monoclonal antibodies (mAbs) could be a promising strategy despite challenges from viral resistance due to mutations.
  • * The study presents cryo-electron tomography structures showing how mutated HPIV3 can evade neutralization by mAbs by altering the interaction between viral proteins, providing insights that could inform future mAb design.
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  • Human parainfluenza virus 3 (HPIV3) infection relies on the combined actions of the hemagglutinin-neuraminidase (HN) and fusion protein (F) to facilitate virus-cell membrane fusion for infection.
  • Unlike laboratory-adapted strains, field strains of HPIV3 have different cleavage motifs for the F protein, which are cleaved by specific, unidentified proteases found in limited cell types.
  • The study highlights that extracellular serine proteases, like TMPRSS2 and TMPRSS13, can activate the F protein for infectious virus release, suggesting that the activation process depends on the availability of these proteases in host cells.
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Science is humanity's best insurance against threats from nature, but it is a fragile enterprise that must be nourished and protected. The preponderance of scientific evidence indicates a natural origin for SARS-CoV-2. Yet, the theory that SARS-CoV-2 was engineered in and escaped from a lab dominates media attention, even in the absence of strong evidence.

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Measles virus (MeV) presents a public health threat that is escalating as vaccine coverage in the general population declines and as populations of immunocompromised individuals, who cannot be vaccinated, increase. There are no approved therapeutics for MeV. Neutralizing antibodies targeting viral fusion are one potential therapeutic approach but have not yet been structurally characterized or advanced to clinical use.

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Human parainfluenza virus type 3 (hPIV3) is a respiratory pathogen that can cause severe disease in older people and infants. Currently, vaccines against hPIV3 are in clinical trials but none have been approved yet. The haemagglutinin-neuraminidase (HN) and fusion (F) surface glycoproteins of hPIV3 are major antigenic determinants.

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In the United States (US), biosafety and biosecurity oversight of research on viruses is being reappraised. Safety in virology research is paramount and oversight frameworks should be reviewed periodically. Changes should be made with care, however, to avoid impeding science that is essential for rapidly reducing and responding to pandemic threats as well as addressing more common challenges caused by infectious diseases.

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Purpose: Evidence suggests that MAPK pathway activation, as measured by ERK1/2 phosphorylation (p-ERK), predicts overall survival (OS) in patients with recurrent glioblastoma receiving anti-PD-1 therapy. We aimed to validate these findings in independent cohorts.

Experimental Design: In a 24-patient clinical trial on recurrent glioblastoma and high-grade gliomas, we examined the link between p-ERK levels and OS.

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Cell entry by SARS-CoV-2 is accomplished by the S2 subunit of the spike S protein on the virion surface by capture of the host cell membrane and fusion with the viral envelope. Capture and fusion require the prefusion S2 to transit to its potent fusogenic form, the fusion intermediate (FI). However, the FI structure is unknown, detailed computational models of the FI are unavailable, and the mechanisms and timing of membrane capture and fusion are not established.

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SARS-CoV-2 infection for most children results in mild or minimal symptoms, though in rare cases severe disease can develop, including a multisystem inflammatory syndrome (MIS-C) with myocarditis. Here, we present longitudinal profiling of immune responses during acute disease and following recovery in children who developed MIS-C, relative to children who experienced more typical symptoms of COVID-19. T cells in acute MIS-C exhibited transient signatures of activation, inflammation, and tissue residency which correlated with cardiac disease severity, while T cells in acute COVID-19 upregulated markers of follicular helper T cells for promoting antibody production.

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Paramyxoviruses-including important pathogens like parainfluenza, measles, and Nipah viruses-use a receptor binding protein [hemagglutinin-neuraminidase (HN) for parainfluenza] and a fusion protein (F), acting in a complex, to enter cells. We use cryo-electron tomography to visualize the fusion complex of human parainfluenza virus 3 (HN/F) on the surface of authentic clinical viruses at a subnanometer resolution sufficient to answer mechanistic questions. An HN loop inserts in a pocket on F, showing how the fusion complex remains in a ready but quiescent state until activation.

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Article Synopsis
  • Viruses pose significant health challenges, leading to issues like respiratory infections, cancer, and neurological impairments, but virology research has developed vaccines and antivirals to mitigate these problems.
  • The COVID-19 pandemic has heightened public scrutiny of virology, especially regarding the safe conduct of research with human pathogens, leading to confusion and misinterpretation about the origins of SARS-CoV-2.
  • This article aims to clarify misconceptions by explaining gain-of-function research, the origins of SARS-CoV-2, and the regulatory frameworks in place, fostering informed discussions and emphasizing the need for balanced, evidence-based dialogue in virology.
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  • Viruses have historically caused serious health issues, including respiratory infections and cancer, leading to significant virology research that resulted in vaccines and antiviral treatments.
  • The COVID-19 pandemic highlighted the necessity for careful research on human pathogens, creating both concerns and confusion about the safety of virology work and the origins of SARS-CoV-2.
  • The article aims to clarify misunderstandings by explaining gain-of-function research, exploring the origins of SARS-CoV-2, and discussing regulatory oversight, while advocating for rational and evidence-based discussions to guide policy decisions in virology.
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  • Viruses pose significant health challenges, leading to various issues such as respiratory infections and cancer, prompting virology research to develop vaccines and antiviral treatments over the past 60+ years.
  • The COVID-19 pandemic has intensified focus on virology, bringing up safety concerns about research involving human pathogens and creating public confusion between safe research practices and the origins of SARS-CoV-2.
  • The article aims to clarify these issues by discussing gain-of-function research, the origins of SARS-CoV-2, and current regulatory frameworks, advocating for informed, balanced conversations to support necessary virology research.
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Measles is the most contagious airborne viral infection and the leading cause of child death among vaccine-preventable diseases. We show here that aerosolized lipopeptide fusion inhibitor, derived from heptad-repeat regions of the measles virus (MeV) fusion protein, blocks respiratory MeV infection in a non-human primate model, the cynomolgus macaque. We use a custom-designed mesh nebulizer to ensure efficient aerosol delivery of peptide to the respiratory tract and demonstrate the absence of adverse effects and lung pathology in macaques.

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SARS-CoV-2 cell entry is completed after viral spike (S) protein-mediated membrane fusion between viral and host cell membranes. Stable prefusion and postfusion S structures have been resolved by cryo-electron microscopy and cryo-electron tomography, but the refolding intermediates on the fusion pathway are transient and have not been examined. We used an antiviral lipopeptide entry inhibitor to arrest S protein refolding and thereby capture intermediates as S proteins interact with hACE2 and fusion-activating proteases on cell-derived target membranes.

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Measles virus (MV) is a highly contagious respiratory virus responsible for outbreaks associated with significant morbidity and mortality among children and young adults. Although safe and effective measles vaccines are available, the COVID-19 pandemic has resulted in vaccination coverage gaps that may lead to the resurgence of measles when restrictions are lifted. This puts individuals who cannot be vaccinated, such as young infants and immunocompromised individuals, at risk.

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The ability of SARS-CoV-2 to evolve in response to selective pressures poses a challenge to vaccine and antiviral efficacy. The S1 subunit of the spike (S) protein contains the receptor-binding domain and is therefore under selective pressure to evade neutralizing antibodies elicited by vaccination or infection. In contrast, the S2 subunit of S is only transiently exposed after receptor binding, which makes it a less efficient target for antibodies.

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Measles is the most contagious airborne viral infection and the leading cause of child death among vaccine-preventable diseases. We show here that aerosolized lipopeptide fusion inhibitors, derived from heptad-repeat regions of the measles virus (MeV) fusion protein, block respiratory MeV infection in a non-human primate model, the cynomolgus macaque. We used a custom-designed mesh nebulizer to ensure efficient aerosol delivery of peptides to the respiratory tract and demonstrated the absence of adverse effects and lung pathology in macaques.

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Human parainfluenza virus type 3 (HPIV-3) is a significant cause of lower respiratory tract infections, with the most severe disease in young infants, immunocompromised individuals, and the elderly. HPIV-3 infections are currently untreatable with licensed therapeutics, and prophylactic and therapeutic options are needed for patients at risk. To complement existing human airway models of HPIV-3 infection and develop an animal model to assess novel intervention strategies, we evaluated infection and transmission of HPIV-3 in ferrets.

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Background: Many patients who are diagnosed with coronavirus disease 2019 (COVID-19) suffer from venous thromboembolic complications despite the use of stringent anticoagulant prophylaxis. Studies on the exact mechanism(s) underlying thrombosis in COVID-19 are limited as animal models commonly used to study venous thrombosis pathophysiology (i.e.

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Parainfluenza viruses, members of the enveloped, negative-sense, single stranded RNA Paramyxoviridae family, impact global child health as the cause of significant lower respiratory tract infections. Parainfluenza viruses enter cells by fusing directly at the cell surface membrane. How this fusion occurs via the coordinated efforts of the two molecules that comprise the viral surface fusion complex, and how these efforts may be blocked, are the subjects of this chapter.

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