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Efficient Purification and LC-MS/MS-based Assay Development for Ten-Eleven Translocation-2 5-Methylcytosine Dioxygenase
Published on: October 15, 2018
Quantum Mechanics/Molecular Mechanics Study on the Excited-State Relaxation Pathways of 2'-Deoxy-5-Fluorocytidine in
Xue-Ping Chang1, Feng-Ran Fan1, Ke Liu1
1College of Chemistry and Chemical Engineering, Green Catalysis & Synthesis Key Laboratory of Xinyang City, Xinyang Normal University, Xinyang 464000, P. R. China.
Abstract:
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 S1(ππ*) and S2(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 S1(ππ*) state. The photoexcited 1ππ* state undergoes a bifurcation event that leads to fast diabatically evolution along the 1ππ* state into its minimum 1ππ*-MIN and transformation to the 1nπ* state at the nearby 1ππ*/1nπ* conical intersection, which are followed by further deactivation to the S0 state through the 1ππ*/S0 and 1nπ*/S0 conical intersections, respectively. The corresponding energy barriers for the 1ππ* and 1nπ* states' internal conversions (ICs) to the S0 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 1ππ* → 1nπ* → 3ππ2* → 3ππ1* and 1ππ* → 3ππ2* → 3ππ1*, could transfer the system to the triplet states. Once populated to the 3ππ1* state, it will first evolve into its minimum 3ππ1*-MIN, from which ISC to the S0 state occurs via the 3ππ1*/S0 crossing point, with the calculated spin-orbit coupling (SOC) of 4.9 cm-1 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.
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