Chemistry Reference
In-Depth Information
sequence information. Chem. Eur. J. , 12 (34), 8708-8718; (c) Tanaka, K., Clever, G.H., Take-
zawa, Y. et al. (2006) Programmable self-assembly of metal ions inside artificial DNA
duplexes. Nat. Nanotechnol. , 1 (3), 190-194; (d) Clever, G.H. and Carell, T. (2007) Controlled
stacking of 10 transition-metal ions inside a DNA duplex. Angew.Chem.Int.Ed. , 46 (1/2),
250-253; (e) Clever, G.H., Kaul, C., and Carell, T. (2007) DNA-metal base pairs. Angew.
Chem. Int. Ed. , 46 (33), 6226-6236; (f) Tanaka, K., Clever, G.H., Takezawa, Y. et al. (2007)
Programmable self-assembly of metal ions inside artificial DNA duplexes. [Erratum to docu-
ment cited in CA147:380005]. Nat. Nanotechnol. , 2 (1), 63; (g) Gaub, B.M., Kaul, C., Zimmer-
mann, J.L. et al. (2009) Switching the mechanics of dsDNA by Cu salicylic aldehyde
complexation. Nanotechnology , 20 (43), 434002/1-434002/8; (h) Clever, G.H., Reitmeier, S.J.,
Carell, T., and Schiemann, O. (2010) Antiferromagnetic coupling of stacked CuII-salen com-
plexes in DNA. Angew. Chem. Int. Ed. , 49 (29), 4927-4929; (i) Kaul, C., Mueller, M., Wagner,
M. et al. (2011) Reversible bond formation enables the replication and amplification of a cross-
linking salen complex as an orthogonal base pair. Nat. Chem. , 3 (10), 794-800.
16. (a) Popescu, D.-L., Parolin, T.J., and Achim, C. (2003) Metal incorporation in modified PNA
duplexes. J. Am. Chem. Soc. , 125 (21), 6354-6355; (b) Watson, R.M., Skorik, Y., Patra, G.K.,
and Achim, C. (2005) Influence of metal coordination on the mismatch tolerance of ligand-
modified PNA duplexes. J. Am. Chem. Soc. , 127 , 14628-14639; (c) Franzini, R., Watson,
R.M., Patra, G.K., and Achim, C. (2006) Metal binding to bipyridine-modified peptide nucleic
acids. Inorg. Chem. , 45 (24), 9798-9811; (d) Bezer, S., Rapireddy, S., Skorik, Y.A., Ly, D.H.,
and Achim, C. (2011) Coordination-driven inversion of handedness in ligand-modified PNA.
Inorg. Chem. , 50 (23), 11929-11937; (e) Ma, Z., Olechnowicz, F., Skorik, Y.A., and Achim, C.
(2011) Metal binding to ligand-containing peptide nucleic acids. Inorg. Chem. , 50 (13), 6083-
6092.
17. (a) Seubert, K., Guerra, C.F., Bickelhaupt, F.M., and Mueller, J. (2011) Chimeric GNA/
DNA metal-mediated base pairs. Chem. Commun. , 47 (39), 11041-11043; (b) Zhang, L.,
Peritz, A., and Meggers, E. (2005) A simple glycol nucleic acid. J. Am. Chem. Soc. , 127
(12), 4174-4175.
18. (a) Babu, B.R., Hrdlicka, P.J., McKenzie, C.J., and Wengel, J. (2005) Optimized DNA targeting
using N,N-bis(2-pyridylmethyl)-b-alanyl 2 0 -amino-LNA. Chem. Commun. , 2005 (13), 1705-
1707; (b) Kalek, M., Madsen, A.S., and Wengel, J. (2007) Effective modulation of DNA duplex
stability by reversible transition metal complex formation in the minor groove. J. Am. Chem.
Soc. , 129 (30), 9392-9400.
19. Kuklenyik, Z. and Marzilli, L.G. (1996) Mercury(II) site-selective binding to a DNA hairpin.
relationship of sequence-dependent intra- and interstrand crosslinking to the hairpin-duplex
conformational transition. Inorg. Chem. , 35 (19), 5654-5662.
20. Nielsen, P.E., Egholm, M., Berg, R.H., and Buchardt, O. (1991) Sequence-selective recognition
of DNA by strand displacement with a thymine-substituted polyamide. Science , 254 , 1497-
1500.
21. Beck, F. (2002) Solid phase synthesis of PNA oligomers. Methods Mol. Biol. , 208 , 29-41.
22. (a) Bahal, R., Sahu, B., Rapireddy, S. et al. (2012) Sequence-unrestricted, Watson-crick
recognition of double helical B-DNA by (R)-MiniPEG-gPNAs. ChemBioChem , 13 ,56-60;
(b) Corradini, R., Sforza, S., Tedeschi, T. et al. (2007) Peptide nucleic acids with a structurally
biased backbone: effects of conformational constraints and stereochemistry. Curr. Top. Med.
Chem. , 7 , 681-775; (c) D'Costa, M., Kumar, V., and Ganesh, K. (1999) Aminoethylprolyl pep-
tide nucleic acids (aepPNA): chiral PNA analogues that form highly stable DNA:aepPNA2 tri-
plexes. Org. Lett. , 1 (10), 1513-1516; (d)Dragulescu-Andrasi, A., Rapireddy, S., Frezza, B.
et al. (2006) A simple gamma-backbone modification preorganizes peptide nucleic acid into a
helical structure. J. Am. Chem. Soc. , 128 (31), 10258-10267; (e) Ganesh, K.N. and Nielsen,
P.E. (2000) Peptide nucleic acids analogs and derivatives. Curr. Org. Chem. , 4 (9), 931-943;
Search WWH ::




Custom Search