Characterization of electronic structure and physicochemical properties of antiparasitic nifurtimox analogues: A theoretical study

2008 ◽  
Vol 108 (8) ◽  
pp. 1369-1379 ◽  
Author(s):  
Catalina Soriano-Correa ◽  
A. Raya ◽  
Rodolfo O. Esquivel
2007 ◽  
Vol 111 (20) ◽  
pp. 4362-4369 ◽  
Author(s):  
Carolina Barrientos-Salcedo ◽  
Diego Arenas-Aranda ◽  
Fabio Salamanca-Gómez ◽  
Rocío Ortiz-Muñiz ◽  
Catalina Soriano-Correa

2006 ◽  
Vol 769 (1-3) ◽  
pp. 91-95 ◽  
Author(s):  
Catalina Soriano-Correa ◽  
Juan F. Sánchez-Ruiz ◽  
Guadalupe Rico-Rosillo ◽  
Juan Antonio Giménez-Scherer ◽  
Juan R. Velázquez ◽  
...  

IUCrJ ◽  
2021 ◽  
Vol 8 (2) ◽  
pp. 295-304
Author(s):  
Júlia Adamko Kožíšková ◽  
Martin Breza ◽  
Marián Valko ◽  
Peter Herich ◽  
Lukáš Bučinský ◽  
...  

An extensive characterization of [Ti(C22H18N2O6)]·H2O was performed by topological analysis according to Bader's quantum theory of atoms in molecules (QTAIM) from the experimentally (multipole model) and theoretically (DFT) determined electron density. To the best of our knowledge, this study is the first example of an experimental electronic structure of a coordination compound in which a peroxo anion is bonded to a 3d central atom. The titanium coordination polyhedron could be described as a deformed tetrahedral pyramid if the midpoint of the peroxide O—O bond (side-on mode) is considered to be in the quasi-apical position. According to the multipole model (MM) results, the titanium atom has a positive QTAIM charge of 2.05 e− which does not correspond to the formal Ti (IV) oxidation state. On the other hand, the peroxo oxygen atoms O(1) and O(2) have MM QTAIM charges of −0.27 and −0.12, respectively. This asymmetric charge density distribution on the peroxo oxygens is in agreement with the distorted orientation of the O2 moiety with respect to the titanium atom. Despite the fact that the overall MM charge of the O2 moiety is more remote from the formal −2 charge than from neutral O2, the O—O distance remains close to that in the peroxo O2 2− anion. In the case of DFT results, the titanium atom charge is also found to be close to +2, the O2 x− moiety charge is around −1, the optimized O—O distance is shorter by only ca 0.04 Å than the experimental value of 1.5005 (16) Å, and the DFT d-populations on titanium are found to be lower than the experimental MM value. This study is the first experimental electronic structure of a transition metal peroxo complex.


2020 ◽  
Vol 17 (2) ◽  
pp. 85-89
Author(s):  
Francisco J. Hidalgo ◽  
Nathan A.P. Lorentz ◽  
TinTin B. Luu ◽  
Jonathan D. Tran ◽  
Praveen D. Wickremasinghe ◽  
...  

: Maltodextrins have an increasing number of biomedical and industrial applications due to their attractive physicochemical properties such as biodegradability and biocompatibility. Herein, we describe the development of a synthetic pathway and characterization of thiol-responsive maltodextrin conjugates with dithiomaleimide linkages. 19F NMR studies were also conducted to demonstrate the exchange dynamics of the dithiomaleimide-functionalized sugar end groups.


2021 ◽  
Vol 98 ◽  
pp. 103804
Author(s):  
Walter M. Warren-Vega ◽  
Rocío Fonseca-Aguiñaga ◽  
Linda V. González-Gutiérrez ◽  
Francisco Carrasco-Marín ◽  
Ana I. Zárate-Guzmán ◽  
...  

Vaccines ◽  
2021 ◽  
Vol 9 (6) ◽  
pp. 544
Author(s):  
Giuditta Guerrini ◽  
Antonio Vivi ◽  
Sabrina Gioria ◽  
Jessica Ponti ◽  
Davide Magrì ◽  
...  

Adjuvants have been used for decades to enhance the immune response to vaccines, in particular for the subunit-based adjuvants. Physicochemical properties of the adjuvant-protein antigen complexes, such as size, morphology, protein structure and binding, influence the overall efficacy and safety of the vaccine. Here we show how to perform an accurate physicochemical characterization of the nanoaluminum–ovalbumin complex. Using a combination of existing techniques, we developed a multi-staged characterization strategy based on measurements of increased complexity. This characterization cascade has the advantage of being very flexible and easily adaptable to any adjuvant-protein antigen combinations. It will contribute to control the quality of antigen–adjuvant complexes and immunological outcomes, ultimately leading to improved vaccines.


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