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Tam, D.

Publications and source records attributed to Tam, D..

3 recordsLinked to original sources

The SARS-CoV-2 nonstructural protein 15 collapses the host cytoskeleton by interacting with the host keratin type II cytoskeletal 1

COVID-19, the deadliest recorded pandemic of the 21st century, was caused by a novel coronavirus, SARS-CoV-2. To explore why this coronavirus was significantly more pathogenic than its predecessors, more information is needed about the functions of the viral proteins that contributed to this uptick in virulence. This study explored how one of these viral proteins, the nonstructural protein 15 (NSP15), interacts with the host. Our findings revealed a novel protein-protein interaction between NSP15 and the host keratin type II cytoskeletal 1 in Vero E6 cells, as determined by mass spectrometry, and subsequently validated by immunoprecipitation. We observed that when NSP15 was delivered into Vero E6 cells, the fibrous network of keratin intermediate filaments was disrupted, and the nuclear structure was lost. This disruption of the keratin cytoskeleton was then shown to cause a statistically significant reduction in cell viability of Vero E6 cells. These results indicate that the presence of NSP15 in host cells leads to a collapse of the keratin cytoskeleton. This cytoskeletal collapse could be a mechanism the virus employs to escape the infected host cell via cell lysis, once significant amounts of viral protein and progeny have accumulated.

microbiology↗

Uncovering the hidden mechanisms of giant unilamellar vesicle formation in cDICE

Giant unilamellar vesicles (GUVs) are widely used as in vitro model membranes in biophysics and as cell-sized containers in synthetic biology. Despite their ubiquitous use, there is no one-size-fits-all method for their production. Numerous methods have been developed to meet the demanding requirements of reproducibility, reliability, and high yield, while simultaneously achieving robust encapsulation. Emulsion-based methods are often praised for their apparent simplicity and good yields; hence, methods like continuous droplet interface crossing encapsulation (cDICE) that make use of this principle, have gained popularity. However, the underlying physical principles governing the formation of GUVs in cDICE and related methods remain poorly understood. To this end, we have developed a high-speed microscopy setup that allows us to visualize GUV formation in real-time. Our experiments reveal a complex droplet formation process occurring at the capillary orifice, generating both larger droplets and, likely, GUV-sized satellite droplets. According to existing theoretical models, the oil-water interface should allow for crossing of all droplets, but based on our observations and theoretical modelling of the fluid dynamics within the system, we find a size-selective crossing of GUV-sized droplets only. Finally, we demonstrate that proteins in the inner solution affect GUV formation by increasing the viscosity and altering lipid adsorption kinetics. These results will not only contribute to a better understanding of GUV formation processes in cDICE, but ultimately also aid the development of more reliable and efficient methods for GUV production. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=98 SRC="FIGDIR/small/562183v2_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@9764cforg.highwire.dtl.DTLVardef@15b63c7org.highwire.dtl.DTLVardef@f39e83org.highwire.dtl.DTLVardef@2bb63a_HPS_FORMAT_FIGEXP M_FIG C_FIG We developed a high-speed microscopy setup to study giant unilamellar vesicle formation in cDICE, revealing a complex droplet formation process occurring at the capillary orifice and size-selectivity at the oil-water interface.

synthetic biology↗

Characterization of a KDM5 Small Molecule Inhibitor with Antiviral Activity against Hepatitis B Virus

Chronic hepatitis B (CHB) is a global health care challenge and a major cause of liver disease. To find new therapeutic avenues with a potential to functionally cure chronic Hepatitis B virus (HBV) infection, we performed a focused screen of epigenetic modifiers to identify replication inhibitors. From this work we identified isonicotinic acid inhibitors of the histone lysine demethylase 5 (KDM5) with potent anti-HBV activity. To enhance the cellular permeability and liver accumulation of the most potent KDM5 inhibitor identified (GS-080) an ester prodrug was developed (GS-5801) that resulted in improved bioavailability and liver exposure as well as an increased H3K4me3:H3 ratio on chromatin. GS-5801 treatment of HBV-infected primary human hepatocytes inhibited HBV replication and antigen levels. Evaluation of GS-5801 antiviral activity in a humanized mouse model of HBV infection, however, did not result in antiviral efficacy, despite achieving pharmacodynamic levels of H3K4me3:H3 predicted to be efficacious from the in vitro model. Here we discuss potential reasons for the disconnect between in vitro and in vivo efficacy, which highlight the translational difficulties of epigenetic targets for viral diseases.

pharmacology and toxicology↗