American Chemical Society
Browse

Quantum Mechanics/Molecular Mechanics Study on the Excited-State Relaxation Pathways of 2′-Deoxy-5-Fluorocytidine in Aqueous Solution

Posted on 2025-11-05 - 05:03
We have employed a high-level QM(CASPT2//CASSCF)/MM approach to investigate the excited-state properties and decay mechanism of 2′-deoxy-5-fluorocytidine (5FdCyd) in aqueous solution. The S<sub>1</sub>(ππ*) and S<sub>2</sub>(nπ*) states are the lowest spectroscopically bright and dark states in the Franck–Condon region with the predicted vertical excitation energies of 99.0 [4.29] and 117.3 kcal/mol [5.09 eV], respectively, at the QM(CASPT2)/MM level. Four feasible excited-state nonradiative relaxation pathways are also suggested for the initially populated S<sub>1</sub>(ππ*) state. The photoexcited <sup>1</sup>ππ* state undergoes a bifurcation event that leads to fast diabatically evolution along the <sup>1</sup>ππ* state into its minimum <sup>1</sup>ππ*-MIN and transformation to the <sup>1</sup>nπ* state at the nearby <sup>1</sup>ππ*/<sup>1</sup>nπ* conical intersection, which are followed by further deactivation to the S<sub>0</sub> state through the <sup>1</sup>ππ*/S<sub>0</sub> and <sup>1</sup>nπ*/S<sub>0</sub> conical intersections, respectively. The corresponding energy barriers for the <sup>1</sup>ππ* and <sup>1</sup>nπ* states' internal conversions (ICs) to the S<sub>0</sub> state are predicted to be 5.9 and 1.5 kcal/mol, respectively, at the QM(CASPT2)/MM level. In addition, the existence of minor intersystem crossing (ISC) routes of <sup>1</sup>ππ* → <sup>1</sup>nπ* → <sup>3</sup>ππ<sub>2</sub>* → <sup>3</sup>ππ<sub>1</sub>* and <sup>1</sup>ππ* → <sup>3</sup>ππ<sub>2</sub>* → <sup>3</sup>ππ<sub>1</sub>*, could transfer the system to the triplet states. Once populated to the <sup>3</sup>ππ<sub>1</sub>* state, it will first evolve into its minimum <sup>3</sup>ππ<sub>1</sub>*-MIN, from which ISC to the S<sub>0</sub> state occurs via the <sup>3</sup>ππ<sub>1</sub>*/S<sub>0</sub> crossing point, with the calculated spin–orbit coupling (SOC) of 4.9 cm<sup>–1</sup> at the QM(CASPT2)/MM level. In comparison, the involved slowly occurring ISCs can be significantly prohibited by the ultrafast and effective ICs. The present work rationalizes the ultrafast excited-state relaxation dynamics of 5FdCyd and its low quantum yields of triplet formation and fluorescence. It contributes important mechanistic insights into the in-depth understanding of the photophysics of 5FdCyd’s derivatives and analogues.

CITE THIS COLLECTION

DataCite
No result found
or
Select your citation style and then place your mouse over the citation text to select it.

SHARE

email
need help?