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Self-Organization of Fullerene Derivatives in Solutions and Biological Cells Studied by Pulsed Field Gradient NMR. | LitMetric

AI Article Synopsis

  • Fullerene derivatives have significant potential in science and technology due to their strong anticancer, antiviral, and antibacterial properties, which are influenced by how these molecules group together.
  • This research investigates the size and stability of fullerene derivative associates in various solvents, using NMR techniques to understand their movement and interactions better.
  • Key findings include the calculation of molecule sizes, lifetimes of associates, and how these derivatives interact with erythrocytes, indicating that they attach to cell surfaces and move through lateral diffusion.

Article Abstract

Fullerene derivatives are of great interest in various fields of science and technology. Fullerene derivatives are known to have pronounced anticancer and antiviral activity. They have antibacterial properties. Their properties are largely determined by association processes. Understanding the nature and properties of associates in solvents of various types will make it possible to make significant progress in understanding the mechanisms of aggregation of molecules of fullerene derivatives in solutions. Thus, this work, aimed at studying the size and stability of associates, is relevant and promising for further research. The NMR method in a pulsed field gradient was used, which makes it possible to directly study the translational mobility of molecules. The sizes of individual molecules and associates were calculated based on the Stokes-Einstein model. The lifetime of associates was also estimated. The interaction of water-soluble C fullerene derivatives with erythrocytes was also evaluated. The values of self-diffusion coefficients and the lifetime of molecules of their compounds in cell membranes are obtained. It is concluded that the molecules of fullerene derivatives are fixed on the cell surface, and their forward movement is controlled by lateral diffusion.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9658325PMC
http://dx.doi.org/10.3390/ijms232113344DOI Listing

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