254
M. J. Toda et al.
References
1. Andruniów T, Kozlowski PM (2001) Theoretical analysis of electronic absorption spectra of
vitamin B 12 models. J Chem Phys 115:7522–7533
2. Andruniów T, Jaworska M, Lodowski P, Zgierski MZ, Dreos R, Randaccio L, Kozlowski PM
(2008) Time-dependent density functional theory study of cobalt corrinoids: electronically
excited states of methylcobalamin. J Chem Phys 115(085):101
3. Andruniów T, Jaworska M, Lodowski P, Zgierski MZ, Dreos R, Randaccio L, Kozlowski PM
(2009) Time-dependent density functional theory study of cobalt corrinoids: electronically
excited states of coenzyme B 12 . J Chem Phys 115(105):105
4. Banerjee R (1997) The yin-yang of cobalamin biochemistry. Chem Biol 4:175–186
5. Banerjee R, Gherasim C, Padovani D (2009) The tinker, tailor, soldier in intracellular B 12
trafficking. Curr Opin Chem Biol 13:484–491
6. Bonnett R (1963) The chemistry of the vitamin B 12 group. Chem Rev 63:573–605
7. Brearley AE, Gott H, Hill HAO, O’Riordan M, Pratt JM, Williams RJP (1971) The chemistry of
vitamin B 12 . Part XIV. Reaction of vitamin B 12s with nitrobenzene and its reduction products.
J Chem Soc A 12:612–614
8. Bridwell-Rabb J, Drennan CL (2017) Vitamin B 12 in the spotlight again. Curr Opin Chem Biol
37:63–70
9. Brown KL (2005) Chemistry and enzymology of vitamin B 12 . Chem Rev 105:2075–2150
10. Burke K, Werschnik J, Gross EKU (2005) Time-dependent density functional theory: past,
present, and future. J Chem Phys 123(062):206
11. Casida ME (1996) Recent developments and application of modern density functional theory.
Elsevier, Amsterdam
12. Cole AG, Yoder LM, Shiang JJ, Anderson NA, Walker LA, Holl B, M M, Sension RJ, (2002)
Time-resolved spectroscopic studies of B 12 coenzymes: a comparison of the primary photolysis
mechanism in methyl-, ethyl-, n-propyl-, and 5‘-deoxyadenosylcobalamin. J Am Chem Soc
124:434–441
13. Conrad KS, Brunold TC (2011) Spectroscopic and computational studies of glutathionylcobalamin: nature of Co-S bonding and comparison to Co-C bonding in coenzyme B 12 . Inorg Chem
54:8755–8766
14. Day P (1967a) The electronic structure and spectrum of vitamin B 12 . Coord Chem Rev 2:99–
108
15. Day P (1967b) A theory of the optical properties of vitamin B 12 and its derivatives. Theor Chim
Acta 7:328–341
16. Dolphin D (1982) B 12 Volume 1: chemistry. Wiley, New York
17. Eckert R, Kuhn H (1960) Richtunger der übersgangmomente der absorptionsbanden von polyenen, cyaninen und vitamin b 12 aus dichroismus und fluoreszenzpolarisation. Z Electrochem
64:356–364
18. Eisenberg AS, Likhtina IVZ, S V, Birke RL, (2012) Electronic spectroscopy and computational
studies of glutathionylcob(III)alamin. J Phys Chem A 116:6851–6869
19. Finke RG (1998) Coenzyme B 12 -based chemical precedent for Co-C bond homolysis and other
key elementary step. In: Kräutler B, Arigoni D, Golding BT (eds) Vitamin B 12 and B 12 -proteins.
Wiley-VCH, Weinheim, pp 383–402
20. Firth RA, Hill HAO, Pratt JM, Williams RJP, Jackson WR (1967) The circular dichroism and
absorption spectra of some vitamin B 12 derivatives. Biochemistry 6:2178–2189
21. Garabato BD, Kumar N, Lodowski P, Jaworska M, Kozlowski PM (2016) Electronically excited
states of cob(II)alamin: Insights from CASSCF/XMCQDPT2 and TD-DFT calculations. Phys
Chem Chem Phys 18:4513–4526
22. Garabato BD, Lodowski P, Jaworska M, Kozlowski PM (2016) Mechanism of Co-C photodissociation in adenosylcobalamin. Phys Chem Chem Phys 18:19,070–19,082
23. Ghosh AP, Mamun AA, Lodowski P, Jaworska M, Kozlowski PM (2018) Mechanism of the
photo-induced activation of Co-C bond in methylcobalamin dependent methionine synthase. J
Photochem Photobiol B: Biol 18:306–317
M. J. Toda et al.
References
1. Andruniów T, Kozlowski PM (2001) Theoretical analysis of electronic absorption spectra of
vitamin B 12 models. J Chem Phys 115:7522–7533
2. Andruniów T, Jaworska M, Lodowski P, Zgierski MZ, Dreos R, Randaccio L, Kozlowski PM
(2008) Time-dependent density functional theory study of cobalt corrinoids: electronically
excited states of methylcobalamin. J Chem Phys 115(085):101
3. Andruniów T, Jaworska M, Lodowski P, Zgierski MZ, Dreos R, Randaccio L, Kozlowski PM
(2009) Time-dependent density functional theory study of cobalt corrinoids: electronically
excited states of coenzyme B 12 . J Chem Phys 115(105):105
4. Banerjee R (1997) The yin-yang of cobalamin biochemistry. Chem Biol 4:175–186
5. Banerjee R, Gherasim C, Padovani D (2009) The tinker, tailor, soldier in intracellular B 12
trafficking. Curr Opin Chem Biol 13:484–491
6. Bonnett R (1963) The chemistry of the vitamin B 12 group. Chem Rev 63:573–605
7. Brearley AE, Gott H, Hill HAO, O’Riordan M, Pratt JM, Williams RJP (1971) The chemistry of
vitamin B 12 . Part XIV. Reaction of vitamin B 12s with nitrobenzene and its reduction products.
J Chem Soc A 12:612–614
8. Bridwell-Rabb J, Drennan CL (2017) Vitamin B 12 in the spotlight again. Curr Opin Chem Biol
37:63–70
9. Brown KL (2005) Chemistry and enzymology of vitamin B 12 . Chem Rev 105:2075–2150
10. Burke K, Werschnik J, Gross EKU (2005) Time-dependent density functional theory: past,
present, and future. J Chem Phys 123(062):206
11. Casida ME (1996) Recent developments and application of modern density functional theory.
Elsevier, Amsterdam
12. Cole AG, Yoder LM, Shiang JJ, Anderson NA, Walker LA, Holl B, M M, Sension RJ, (2002)
Time-resolved spectroscopic studies of B 12 coenzymes: a comparison of the primary photolysis
mechanism in methyl-, ethyl-, n-propyl-, and 5‘-deoxyadenosylcobalamin. J Am Chem Soc
124:434–441
13. Conrad KS, Brunold TC (2011) Spectroscopic and computational studies of glutathionylcobalamin: nature of Co-S bonding and comparison to Co-C bonding in coenzyme B 12 . Inorg Chem
54:8755–8766
14. Day P (1967a) The electronic structure and spectrum of vitamin B 12 . Coord Chem Rev 2:99–
108
15. Day P (1967b) A theory of the optical properties of vitamin B 12 and its derivatives. Theor Chim
Acta 7:328–341
16. Dolphin D (1982) B 12 Volume 1: chemistry. Wiley, New York
17. Eckert R, Kuhn H (1960) Richtunger der übersgangmomente der absorptionsbanden von polyenen, cyaninen und vitamin b 12 aus dichroismus und fluoreszenzpolarisation. Z Electrochem
64:356–364
18. Eisenberg AS, Likhtina IVZ, S V, Birke RL, (2012) Electronic spectroscopy and computational
studies of glutathionylcob(III)alamin. J Phys Chem A 116:6851–6869
19. Finke RG (1998) Coenzyme B 12 -based chemical precedent for Co-C bond homolysis and other
key elementary step. In: Kräutler B, Arigoni D, Golding BT (eds) Vitamin B 12 and B 12 -proteins.
Wiley-VCH, Weinheim, pp 383–402
20. Firth RA, Hill HAO, Pratt JM, Williams RJP, Jackson WR (1967) The circular dichroism and
absorption spectra of some vitamin B 12 derivatives. Biochemistry 6:2178–2189
21. Garabato BD, Kumar N, Lodowski P, Jaworska M, Kozlowski PM (2016) Electronically excited
states of cob(II)alamin: Insights from CASSCF/XMCQDPT2 and TD-DFT calculations. Phys
Chem Chem Phys 18:4513–4526
22. Garabato BD, Lodowski P, Jaworska M, Kozlowski PM (2016) Mechanism of Co-C photodissociation in adenosylcobalamin. Phys Chem Chem Phys 18:19,070–19,082
23. Ghosh AP, Mamun AA, Lodowski P, Jaworska M, Kozlowski PM (2018) Mechanism of the
photo-induced activation of Co-C bond in methylcobalamin dependent methionine synthase. J
Photochem Photobiol B: Biol 18:306–317
