evolution of structure
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2022 ◽  
Vol 13 (1) ◽  
Author(s):  
Stephanie Spittle ◽  
Derrick Poe ◽  
Brian Doherty ◽  
Charles Kolodziej ◽  
Luke Heroux ◽  
...  

AbstractDeep eutectic solvents (DESs) are an emerging class of non-aqueous solvents that are potentially scalable, easy to prepare and functionalize for many applications ranging from biomass processing to energy storage technologies. Predictive understanding of the fundamental correlations between local structure and macroscopic properties is needed to exploit the large design space and tunability of DESs for specific applications. Here, we employ a range of computational and experimental techniques that span length-scales from molecular to macroscopic and timescales from picoseconds to seconds to study the evolution of structure and dynamics in model DESs, namely Glyceline and Ethaline, starting from the parent compounds. We show that systematic addition of choline chloride leads to microscopic heterogeneities that alter the primary structural relaxation in glycerol and ethylene glycol and result in new dynamic modes that are strongly correlated to the macroscopic properties of the DES formed.


Author(s):  
Manman Wang ◽  
Haiyang Dai ◽  
Tao Li ◽  
Jing Chen ◽  
Fufeng Yan ◽  
...  

2021 ◽  
pp. 130476
Author(s):  
I.P. Mishin ◽  
E.V. Naydenkin ◽  
O.V. Zabudchenko ◽  
A.I. Manisheva ◽  
D.I. Bobrov ◽  
...  

2021 ◽  
Author(s):  
Aimee A. Sanford ◽  
Alexandra E. Rangel ◽  
Trevor A. Feagin ◽  
Robert G. Lowery ◽  
Hector Argueta-Gonzalez ◽  
...  

<p><b>ABSTRACT </b></p> <p>Aptamers are widely employed as recognition elements in small molecule biosensors due to their ability to recognize small molecule targets with high affinity and selectivity. Structure-switching aptamers are particularly promising for biosensing applications because target-induced conformational change can be directly linked to an output. However, traditional evolution methods do not select for the significant conformational change needed to create structure-switching biosensors. Modified selection methods have been described to select for structure-switching architectures, but these remain limited by the need for immobilization. Herein we describe the first homogenous, structure-switching aptamer selection that directly reports on biosensor capacity for the target. We exploit the activity of restriction enzymes to isolate aptamer candidates that undergo target-induced displacement of a short complementary strand. As an initial demonstration of the utility of this approach, we performed selection against kanamycin A. Four enriched candidate sequences were successfully characterized as structure-switching biosensors for detection of kanamycin A. Optimization of biosensor conditions afforded facile detection of kanamycin A (90 µM – 10 mM) with high selectivity over three other aminoglycosides. This research demonstrates a general method to directly select for structure-switching biosensors and can be applied to a broad range of small molecule targets.</p>


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