Therefore, this conceptually novel strategy might open impressive avenues to establish green and sustainable chemistry platforms. 112275-50-0, you can contact me at any time and look forward to more communication. SDS of cas: 112275-50-0.
New discoveries in chemical research and development in 2021.In classical electrochemical theory, both the electron transfer rate and the adsorption of reactants at the electrode control the electrochemical reaction. In an article, author is Xie, Lei, once mentioned the application of 112275-50-0, Name is tert-Butyl 1,4-diazepane-1-carboxylate, molecular formula is C10H20N2O2, molecular weight is 200.28, MDL number is MFCD00276987, category is pyrrolines. Now introduce a scientific discovery about this category, SDS of cas: 112275-50-0.
A Nanomechanical Study on Deciphering the Stickiness of SARS-CoV-2 on Inanimate Surfaces
The SARS-CoV-2 virus that causes the COVID-19 epidemic can be transmitted via respiratory droplet-contaminated surfaces or fomites, which urgently requires a fundamental understanding of intermolecular interactions of the coronavirus with various surfaces. The corona-like component of the outer surface of the SARS-CoV-2 virion, named spike protein, is a key target for the adsorption and persistence of SARS-CoV-2 on various surfaces. However, a lack of knowledge in intermolecular interactions between spike protein and different substrate surfaces has resulted in ineffective preventive measures and inaccurate information. Herein, we quantified the surface interaction and adhesion energy of SARS-CoV-2 spike protein with a series of inanimate surfaces via atomic force microscopy under a simulated respiratory droplet environment. Among four target surfaces, polystyrene was found to exhibit the strongest adhesion, followed by stainless steel (SS), gold, and glass. The environmental factors (e.g., pH and temperature) played a role in mediating the spike protein binding. According to systematic quantification on a series of inanimate surfaces, the adhesion energy of spike protein was found to be (i) 0-1 mJ/m(2) for hydrophilic inorganics (e.g., silica and glass) due to the lack of hydrogen bonding, (ii) 2-9 mJ/m(2) for metals (e.g., alumina, SS, and copper) due to the variation of their binding capacity, and (iii) 6-11 mJ/m(2) for hydrophobic polymers (e.g., medical masks, safety glass, and nitrile gloves) due to stronger hydrophobic interactions. The quantitative analysis of the nanomechanics of spike proteins will enable a protein-surface model database for SARS-CoV-2 to help generate effective preventive strategies to tackle the epidemic.
Therefore, this conceptually novel strategy might open impressive avenues to establish green and sustainable chemistry platforms. 112275-50-0, you can contact me at any time and look forward to more communication. SDS of cas: 112275-50-0.
Reference:
Pyrroline – Wikipedia,
,1-Pyrroline | C4H7N – PubChem