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Worcester, M.

Publications and source records attributed to Worcester, M..

2 recordsLinked to original sources

Synthesis, Insertion and Characterization of SARS-CoV-2 Membrane Protein Within Lipid Bilayers

SUMMARY/ABSTRACTThe membrane protein (M) is the most abundant structural protein in the SARS-CoV-2 virus and functions exclusively as a membrane-embedded homodimer. M protein is required for the formation of the SARS-CoV-2 virus particle and has been shown to interact with the Spike and Envelope proteins, as well as the RNA-packaging Nucleocapsid protein. Our knowledge of M protein is very limited due to its small size and challenges in expressing enough protein for use in structural and biophysical experiments. We report the successful development of a SUMO tag-based expression system to produce and purify significant quantities of M protein, and a method to insert the synthesized dimers into a suspended lipid membrane in a homogeneous orientation. We used AFM and Cryo-EM to image individual membrane-bound M protein dimers and characterize the configurations that they can assume. Our experimental results are in agreement with our molecular dynamics simulations which predict thinning of the membrane around the M protein and a propensity to induce local membrane curvature. Taken together, our results shed new light on M protein properties within the lipid bilayer and suggest mechanisms that could contribute to viral assembly and budding.

biophysics↗

A Low-Cost Stage-Top Incubation Device For Human Cell Imaging Using Rapid Prototyping Methods

Live imaging of human or other mammalian cells at multi-hour time scales with minimal perturbation to their growth state requires that the specimens optimal growth conditions are met while fixed to a microscope stage. In general, ideal conditions include culturing in complete growth media, an ambient temperature of 36-37 C, and a humidity-controlled atmosphere comprising typically 5-7% CO2. Commercially available devices that achieve these conditions are not a financially viable option for many labs, with the price ranging anywhere from $12000 to $40000. The advent of 3D printing technology has allowed for low-cost rapid prototyping with precision comparable to traditional fabrication methods, opening the possibility for in-lab design and production of otherwise prohibitively expensive equipment such as stage-top incubation devices. The continued usefulness and widespread availability of single-board computers (SBC) such as Arduino and Raspberry Pi also simplify the process by which these devices can be controlled. Here we report the production of a do-it-yourself (DIY) device for stage-top incubation with temperature and atmospheric control with a cost reduction of approximately 100x.

cell biology↗