Publications by authors named "Melissa E Lokensgard"

The rational design of fluorescent nucleoside analogues is greatly hampered by the lack of a general method to predict their photophysics, a problem that is especially acute when base pairing and stacking change fluorescence. To better understand these effects, a series of tricyclic cytidine (tC and tC ) analogues ranging from electron-rich to electron-deficient was designed and synthesized. They were then incorporated into oligonucleotides, and photophysical responses to base pairing and stacking were studied.

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Most fluorescent nucleoside analogues are quenched when base stacked and some maintain their brightness, but there has been little progress toward developing nucleoside analogues that markedly increase their fluorescence upon duplex formation. Here, we report on the design and synthesis of a new tricyclic cytidine analogue, 8-diethylamino-tC (8-DEA-tC), that responds to DNA duplex formation with up to a 20-fold increase in fluorescent quantum yield as compared with the free nucleoside, depending on neighboring bases. This turn-on response to duplex formation is the greatest of any reported nucleoside analogue that can participate in Watson-Crick base pairing.

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Many biologically active molecules exist as rapidly interconverting atropisomeric mixtures. Whereas one atropisomer inhibits the desired target, the other can lead to off-target effects. Herein, we study atropisomerism as a possibility to improve the selectivities of kinase inhibitors through the synthesis of conformationally stable pyrrolopyrimidines.

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Article Synopsis
  • The ubiquitin-proteasome system (UPS) is a complex network of enzymes responsible for tagging and degrading proteins, with UCH-L3 acting as a deubiquitinase that might play a role in processing ubiquitin remnants.
  • UCH-L3 is also utilized in biotechnology to produce difficult-to-create peptides/proteins, highlighting its significance beyond just biological functions.
  • Research indicates that the thermal stability of substrates notably impacts UCH-L3 hydrolysis, offering insights into how ubiquitin influences the structure and stability of proteins in biological systems.
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