Pelliccioli, A. P., & Wirz, J. (2002). Photoremovable protecting groups: reaction mechanisms and applications. Photochemical & Photobiological Sciences, 1(7), 441-458. doi:10.1039/b200777k
McCray, J. A., & Trentham, D. R. (1989). Properties and Uses of Photoreactive Caged Compounds. Annual Review of Biophysics and Biophysical Chemistry, 18(1), 239-270. doi:10.1146/annurev.bb.18.060189.001323
Majjigapu, J. R. R., Kurchan, A. N., Kottani, R., Gustafson, T. P., & Kutateladze, A. G. (2005). Release and Report: A New Photolabile Caging System with a Two-Photon Fluorescence Reporting Function. Journal of the American Chemical Society, 127(36), 12458-12459. doi:10.1021/ja053654m
[+]
Pelliccioli, A. P., & Wirz, J. (2002). Photoremovable protecting groups: reaction mechanisms and applications. Photochemical & Photobiological Sciences, 1(7), 441-458. doi:10.1039/b200777k
McCray, J. A., & Trentham, D. R. (1989). Properties and Uses of Photoreactive Caged Compounds. Annual Review of Biophysics and Biophysical Chemistry, 18(1), 239-270. doi:10.1146/annurev.bb.18.060189.001323
Majjigapu, J. R. R., Kurchan, A. N., Kottani, R., Gustafson, T. P., & Kutateladze, A. G. (2005). Release and Report: A New Photolabile Caging System with a Two-Photon Fluorescence Reporting Function. Journal of the American Chemical Society, 127(36), 12458-12459. doi:10.1021/ja053654m
Pellois, J.-P., Hahn, M. E., & Muir, T. W. (2004). Simultaneous Triggering of Protein Activity and Fluorescence. Journal of the American Chemical Society, 126(23), 7170-7171. doi:10.1021/ja0499142
Veldhuyzen, W. F., Nguyen, Q., McMaster, G., & Lawrence, D. S. (2003). A Light-Activated Probe of Intracellular Protein Kinase Activity. Journal of the American Chemical Society, 125(44), 13358-13359. doi:10.1021/ja037801x
Zhao, Y., Zheng, Q., Dakin, K., Xu, K., Martinez, M. L., & Li, W.-H. (2004). New Caged Coumarin Fluorophores with Extraordinary Uncaging Cross Sections Suitable for Biological Imaging Applications. Journal of the American Chemical Society, 126(14), 4653-4663. doi:10.1021/ja036958m
Cosa, G., Lukeman, M., & Scaiano, J. C. (2009). How Drug Photodegradation Studies Led to the Promise of New Therapies and Some Fundamental Carbanion Reaction Dynamics along the Way. Accounts of Chemical Research, 42(5), 599-607. doi:10.1021/ar8001969
Lukeman, M., & Scaiano, J. C. (2005). Carbanion-Mediated Photocages: Rapid and Efficient Photorelease with Aqueous Compatibility. Journal of the American Chemical Society, 127(21), 7698-7699. doi:10.1021/ja0517062
Soldevilla, A., & Griesbeck, A. G. (2006). Chiral Photocages Based on Phthalimide Photochemistry. Journal of the American Chemical Society, 128(51), 16472-16473. doi:10.1021/ja066582n
Warzecha, K.-D., Görner, H., & Griesbeck, A. G. (2006). Photoinduced Decarboxylative Benzylation of Phthalimide Triplets with Phenyl Acetates: a Mechanistic Study. The Journal of Physical Chemistry A, 110(10), 3356-3363. doi:10.1021/jp055878x
Griesbeck, A. G., & Schieffer, S. (2003). Intra- and intermolecular fluorescence quenching of N-activated 4,5-dimethoxyphthalimides by sulfides, amines, and alkyl carboxylates. Photochemical & Photobiological Sciences, 2(2), 113. doi:10.1039/b211008c
Kim, T. G., Wolford, M. F., & Topp, M. R. (2003). Ultrashort-lived excited states of aminophthalimides in fluid solutionDedicated to the memory of Nobel Laureate, Lord George Porter FRSC FRS OM. Photochemical & Photobiological Sciences, 2(5), 576. doi:10.1039/b300493g
Saroja, G., Ramachandram, B., Saha, S., & Samanta, A. (1999). The Fluorescence Response of a Structurally Modified 4-Aminophthalimide Derivative Covalently Attached to a Fatty Acid in Homogeneous and Micellar Environments. The Journal of Physical Chemistry B, 103(15), 2906-2911. doi:10.1021/jp983676d
Gawroński, J., Gawrońska, K., & Brzostowska, M. (1999). 4,5-Dimethoxyphthalimide and 6,7-dimethoxy-2,3-naphthalimide — Two new chromophoric derivatives for the amino group. Tetrahedron Letters, 40(6), 1191-1194. doi:10.1016/s0040-4039(98)02562-3
Ulrich, H., & Richter, R. (1973). 4-Isocyanatophthalic anhydride. Novel difunctional monomer. The Journal of Organic Chemistry, 38(14), 2557-2558. doi:10.1021/jo00954a034
Casimir, J. R., Guichard, G., & Briand, J.-P. (2002). Methyl 2-((Succinimidooxy)carbonyl)benzoate (MSB): A New, Efficient Reagent forN-Phthaloylation of Amino Acid and Peptide Derivatives†. The Journal of Organic Chemistry, 67(11), 3764-3768. doi:10.1021/jo016347h
Blake, J. A., Gagnon, E., Lukeman, M., & Scaiano, J. C. (2006). Photodecarboxylation of Xanthone Acetic Acids: C−C Bond Heterolysis from the Singlet Excited State. Organic Letters, 8(6), 1057-1060. doi:10.1021/ol052953d
Görner, H., Griesbeck, A. G., Heinrich, T., Kramer, W., & Oelgemöller, M. (2001). Time-Resolved Spectroscopy of Sulfur- and Carboxy-SubstitutedN-Alkylphthalimides. Chemistry, 7(7), 1530-1538. doi:10.1002/1521-3765(20010401)7:7<1530::aid-chem1530>3.0.co;2-l
Pérez-Ruiz, R., Díaz, Y., Goldfuss, B., Hertel, D., Meerholz, K., & Griesbeck, A. G. (2009). Fluoride recognition by a chiral urea receptor linked to a phthalimide chromophore. Organic & Biomolecular Chemistry, 7(17), 3499. doi:10.1039/b908433a
[-]