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Biology subjects

Rosenfeld, M. A.

Publications and source records attributed to Rosenfeld, M. A..

4 recordsLinked to original sources

Allosteric modulation by the fatty acid site in the glycosylated SARS-CoV-2 spike

The trimeric spike protein plays an essential role in the SARS-CoV-2 virus lifecycle, facilitating virus entry through binding to the cellular receptor angiotensin-converting enzyme 2 (ACE2) and mediating viral-host membrane fusion. The SARS-CoV-2 spike contains a fatty acid (FA) binding site at the interface between two neighbouring receptor-binding domains. This site, also found in some other coronaviruses, binds free fatty acids such as linoleic acid. Binding at this site locks the spike in a non-infectious, closed conformation. This site is coupled to functionally important regions, but the effects of glycans on these allosteric effects have not been investigated. Understanding allostery and how this site modulates the behaviour of the spike protein could potentiate the development of promising alternative strategies for new coronavirus therapies. Here, we apply dynamical nonequilibrium molecular dynamics (D-NEMD) simulations to investigate allosteric effects of the FA site in the fully glycosylated spike of the original SARS-CoV-2 ancestral variant. The results show allosteric networks that connect the FA site to important functional regions of the protein, including some more than 40 [A] away, including the receptor binding motif, an antigenic supersite in the N-terminal domain, the furin cleavage site, regions surrounding the fusion peptide, and another allosteric site known to bind heme and biliverdin. The networks identified here highlight the complexity of the allosteric modulation in this protein and reveal a striking and unexpected connection between different allosteric sites. Notably, 65% of amino acid substitutions, deletions and insertions in the Alpha, Beta, Delta, Gamma and Omicron variants map onto or close to the identified allosteric pathways. Comparison of the FA site connections from D-NEMD in the glycosylated and non-glycosylated spikes revealed that the presence of glycans does not qualitatively change the internal allosteric pathways within the protein, with some glycans facilitating the transmission of the structural changes within and between subunits. Significance statementThe spike protein is crucial for the SARS-CoV-2 virus, enabling the fusion of the viral and host cell membranes. This protein contains several allosteric sites, including a fatty acid binding site at the interface between every two neighbouring receptor-binding domains. This site modulates the behaviour of the protein, with the binding of various free fatty acids and other small molecules influencing the spikes structure. In particular, the binding of linoleic acid, an essential fatty acid molecule, stabilizes the protein in a non-infectious locked conformation, thus making it inaccessible for binding to human receptors. Here, we investigate how the fatty acid site modulates the structural and dynamical behaviour of the fully glycosylated protein. Our work reveals complex patterns of communication between the fatty acid site and functionally important regions of the spike (including the receptor binding motif, the antigenic supersite in the N-terminal domain, the heme/biliverdin site, furin cleavage site and the fusion-peptide surrounding regions) and shed new light on the roles of glycans in this protein.

biochemistry↗

Simulation-Driven Design of Stabilized SARS-CoV-2 Spike S2 Immunogens

The full-length prefusion-stabilized SARS-CoV-2 spike (S) is the principal antigen of COVID-19 vaccines. Vaccine efficacy has been impacted by emerging variants of concern that accumulate most of the sequence modifications in the immunodominant S1 subunit. S2, in contrast, is the most evolutionarily conserved region of the spike and can elicit broadly neutralizing and protective antibodies. Yet, S2s usage as an alternative vaccine strategy is hampered by its general instability. Here, we use a simulation-driven approach to design S2-only immunogens stabilized in a closed prefusion conformation. Molecular simulations provide a mechanistic characterization of the S2 trimers opening, informing the design of tryptophan substitutions that impart kinetic and thermodynamic stabilization. Structural characterization via cryo-EM shows the molecular basis of S2 stabilization in the closed prefusion conformation. Informed by molecular simulations and corroborated by experiments, we report an engineered S2 immunogen that exhibits increased protein expression, superior thermostability, and preserved immunogenicity against sarbecoviruses.

biophysics↗

Glycoproteomic landscape and structural dynamics of TIM family immune checkpoints enabled by mucinase SmE

Mucin-domain glycoproteins are densely O-glycosylated and play critical roles in a host of biological functions. In particular, the T cell immunoglobulin and mucin-domain containing family of proteins (TIM-1, -3, -4) decorate immune cells and act as key checkpoint inhibitors in cancer. However, their dense O-glycosylation remains enigmatic both in terms of glycoproteomic landscape and structural dynamics, primarily due to the challenges associated with studying mucin domains. Here, we present a mucinase (SmE) and demonstrate its ability to selectively cleave along the mucin glycoprotein backbone, similar to others of its kind. Unlike other mucinases, though, SmE harbors the unique ability to cleave at residues bearing extremely complex glycans which enabled improved mass spectrometric analysis of several mucins, including the entire TIM family. With this information in-hand, we performed molecular dynamics (MD) simulations of TIM-3 and -4 to demonstrate how glycosylation affects structural features of these proteins. Overall, we present a powerful workflow to better understand the detailed molecular structures of the mucinome.

cancer biology↗

Targeted protein S-nitrosylation of ACE2 as potential treatment to prevent spread of SARS-CoV-2 infection

Prevention of infection and propagation of SARS-CoV-2 is of high priority in the COVID-19 pandemic. Here, we describe S-nitrosylation of multiple proteins involved in SARS-CoV-2 infection, including angiotensin converting enzyme 2 (ACE2), the receptor for viral entry. This reaction prevents binding of ACE2 to the SARS-CoV-2 Spike protein, thereby inhibiting viral entry, infectivity, and cytotoxicity. Aminoadamantane compounds also inhibit coronavirus ion channels formed by envelope (E) protein. Accordingly, we developed dual-mechanism aminoadamantane nitrate compounds that inhibit viral entry and thus spread of infection by S-nitrosylating ACE2 via targeted delivery of the drug after E-protein channel blockade. These non-toxic compounds are active in vitro and in vivo in the Syrian hamster COVID-19 model, and thus provide a novel avenue for therapy.

microbiology↗