| Literature DB >> 33184321 |
Anna M Abramova1, Alina A Kokorina1, Olga A Sindeeva1, Franck Jolibois2, Pascal Puech3, Gleb B Sukhorukov1,4, Irina Y Goryacheva1, Andrei V Sapelkin5,6.
Abstract
Using a combination of experimental Raman, FTIR, UV-VIS absorption and emission data, together with the corresponding DFT calculations we propose the mechanism of modification of the folic acid specifically under the hydrothermal treatment at 200 °C. We established that folic acid breaks down into fragments while the pteridine moiety remains intact likely evolving into 6-formylpterin with the latter responsible for the increase in fluorescence emission at 450 nm. The results suggest that hydrothermal approach can be used for production of other purpose-engineered fluorophores.Entities:
Year: 2020 PMID: 33184321 PMCID: PMC7661697 DOI: 10.1038/s41598-020-76311-y
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1TEM image of HT FA (a); gel-electrophoresis photo of FA and HT-treated FA (b). Red dotted line indicates location of the loading wells. Main structural units of the FA (c).
Figure 2Effects of the hydrothermal treatment time on the absorption and emission spectra of hydrothermally treated folic acid solution (C = 10–3 M) (a). Emission spectra have been normalised for clarity. DFT calculations of absorption of FA: FA, FA fragment without the Glu (FA-no Glu), pterine-6-carboxilic acid (Pterine) and 6-formyl pterin (6-FP) (b).
Figure 3IR spectra of the FA before and after HT treatment (120 min at 200 °C).
Figure 4Experimental Raman data for crystalline FA, FA diluted in aqueous solution and HT-treated FA (a). Simulated Raman data for of FA, FA fragment without the Glu (FA no Glu), pterine-6-carboxilic acid (pterine) and 6-formyl pterin (6-FP) (b).