Supramolecular metallic complexes exhibiting both DNA binding and photocleavage
View Patent ↗Supramolecular complexes that target and cleave DNA are provided. The supramolecular complexes include at least one metal-to-ligand charge transfer (MLCT) light absorbing unit, at least one Pt based DNA binding unit, and at least one bridging unit that serves to connect the components. The Pt-based DNA binding unit binds the complex to DNA, and the MLCT unit absorbs light, thereby sensitizing molecular oxygen to produce reactive oxygen species in close proximity to the complex and the bound DNA. The reactive oxygen species cleave the bound DNA.
1. A supramolecular complex comprising
at least one metal to ligand charge transfer (MLCT) light absorbing metal,
at least one bridging ligand selected from the group consisting of 2,3-bis(2-pyridyl) pyrazine,2,2′-bipyridimidine, 2,3,-bis(2-pyridyl)quinoxaline, and 2,3,5,6-tetrakis(2-pyridyl)pyrazine, and
at least one Pt based DNA binding unit which is cis PtCl 2 .
2. The supramolecular complex of claim 1 wherein said at least one metal to ligand charge transfer (MLCT) light absorbing metal is selected from the group consisting of ruthenium(II), osmium(III), rhenium(I), iron(II) and platinum(II).
3. The supramolecular complex of claim 1 , wherein said supramolecular complex further comprises at least one terminal ligand.
4. The supramolecular complex of claim 3 , wherein said at least one terminal ligand is a π-acceptor ligand.
5. The supramolecular complex of claim 3 , wherein said at least one terminal ligand is selected from the group consisting of 2,2′-bipyridine; 2,2′:6′,2″-terpyridine; triphenylphosphine; and 2,2′-phenylpyridine and diethylphenylphosphine.
6. The supramolecular complex of claim 1 , further comprising a counterion.
7. The supramolecular complex of claim 6 , wherein said counterion is selected from the group consisting of PF 6 − , Cl − , Br − ,I − , CF 3 SO 3 − , BF 4 − , NO 3 − , CLO 4 − , CO 3 −2 , SO 4 2− .
8. The supramolecular complex of claim 1 wherein said supramolecular complex is selected from the group consisting of
[{(bpy) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpb)PtCl 2 ](PF 6 ) 6 , [{(phen) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 and [{(bpy) 2 Os(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 .
9. A method for cleaving DNA comprising the steps of
combining said DNA with a supramolecular complex comprising
at least one metal to ligand charge transfer (MLCT) light absorbing metal,
at least one bridging ligand selected from the group consisting of 2,3-bis(2-pyridyl)pyrazine, 2,2′-bipyridimidine, 2,3,-bis(2-pyridyl) quinoxaline, and 2,3,5,6-tetrakis(2-pyridyl)pyrazine, and
at least one Pt based DNA binding unit which is cis PtCl 2 ,
said combining being carried out in the presence of molecular oxygen and under conditions that allow said at least one Pt based DNA binding unit to bind to said DNA; and
exposing said DNA to light or radiant energy in a quantity sufficient to cause sensitization of said molecular oxygen by said MLCT light absorbing metal, thereby forming a reactive oxygen species that cleaves said DNA.
10. The method of claim 9 wherein said at least one metal to ligand charge transfer (MLCT) light absorbing metal is selected from the group consisting of ruthenium(II), osmium(III), rhenium(I), iron(II) and platinum(II).
11. The method of claim 9 , wherein said supramolecular complex further comprises at least one terminal ligand.
12. The supramolecular complex of claim 11 , wherein said at least one terminal ligand is a π-acceptor ligand.
13. The method of claim 11 , wherein said at least one terminal ligand is selected from the group consisting of 2,2′-bipyridine; 2,2′:6′,2″-terpyridine; triphenylphosphine; and 2,2′-phenylpyridine and diethylphenylphosphine.
14. The method of claim 9 wherein said light is visible light.
15. The method of claim 9 , wherein said supramolecular complex further comprises a counterion.
16. The supramolecular complex of claim 15 , wherein said counterion is selected from the group consisting of PF 6 − , Cl − , Br − , I − , CF 3 SO 3 − , BF 4 − , NO 3 − , CLO 4 − , CO 3 −2 , SO 4 2− .
17. The method of claim 9 wherein said supramolecular complex is selected from the group consisting of [{(bpy) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpb)PtCl 2 ](PF 6 ) 6 , [{(phen) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 and [{(bpy) 2 Os(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 .
18. The method of claim 9 wherein said combining step occurs within a hyperproliferating cell.
19. A composition for effecting the cleavage of DNA in hyperproliferating cells, comprising,
a supramolecular complex comprising
at least one metal to ligand charge transfer (MLCT) light absorbing metal;
at least one bridging ligand selected from the group consisting of 2,3-bis(2-pyridyl)pyrazine, 2,2′-biyridimidne, 2,3,-bis(2-pyridyl) quinoxaline, and 2,3,5,6-tetrakis(2-pyridyl)pyarzine;
at least one Pt based DNA binding unit which is cis PtCl 2 ; and a carrier.
20. The composition of claim 19 wherein said at least one metal to ligand charge transfer (MLCT) light absorbing metal is selected from the group consisting of ruthenium(II), osmium(III), rhenium(I), iron(II) and platinum(II).
21. The composition of claim 19 , wherein said supramolecular complex further comprises at least one terminal ligand.
22. The composition of claim 21 , wherein said at least one terminal ligand is a π-acceptor ligand.
23. The composition of claim 21 , wherein said at least one terminal ligand is selected from the group consisting of 2,2′-bipyridine; 2,2′:6′,2″-terpyridine; triphenylphosphine; and 2,2′-phenylpyridine and diethylphenylphosphine.
24. The composition of claim 19 further comprising a carrier, said supramolecular complex being dissolved or dispersed in said carrier.
25. The composition of claim 19 , wherein said supramolecular complex further comprises a counterion.
26. The supramolecular complex of claim 25 , wherein said counterion is selected from the group consisting of PF 6 − , Cl − , Br − , I − , CF 3 SO 3 − , BF 4 − , NO 3 − , CLO 4 − , CO 3 −2 , SO 4 2− .
27. The composition of claim 19 wherein said supramolecular complex is selected from the group consisting of [{(bpy) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpb)PtCl 2 ](PF 6 ) 6 , [{(phen) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 and [{(bpy) 2 Os(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 .
28. A method for decreasing the replication of hyperproliferating cells, comprising the steps of
delivering to said cells a supramolecular complex comprising
at least one metal to ligand charge transfer (MLCT) light absorbing metal;
at least one bridging ligand selected from the group consisting of 2,3-bis(2-pyridyl)pyrazine, 2,2′-bipyridimidine, 2,3,-bis(2-pyridyl) quinoxaline, and 2,3,5,6-tetrakis(2-pyridyl)pyrazine; and
at least one Pt based DNA binding unit which is cis PtCl 2 ; and
applying light or radiant energy to said hyperproliferating cells, wherein said step of applying light to said hyperproliferating cells induces sensitization of said molecular oxygen by said MLCT light absorbing metal, thereby forming a reactive oxygen species that cleaves said DNA of said hyperproliferating cells, thereby causing a decrease in the replication of said hyperproliferating cells.
29. The method of claim 28 , wherein said at least one metal to ligand charge transfer (MLCT) light absorbing metal is selected from the group consisting of ruthenium(II), osmium(III), rhenium(I), iron(II) and platinum(II).
30. The method of claim 28 , wherein said supramolecular complex further comprises at least one terminal ligand.
31. The method of claim 30 , wherein said at least one terminal ligand is a π-acceptor ligand.
32. The method of claim 30 , wherein said at least one terminal ligand is selected from the group consisting of 2,2′-bipyridine; 2,2′:6′,2″-terpyridine; triphenylphosphine; and 2,2′-phenylpyridine and diethylphenylphosphine.
33. The method of claim 28 wherein said light is visible light.
34. The method of claim 28 , wherein said supramolecular complex further comprises a counterion.
35. The supramolecular complex of claim 34 , wherein said counterion is selected from the group consisting of PF 6 − , Cl − , Br − , I − , CF 3 SO 3 − , BF 4 − , NO 3 − , CLO 4 − , CO 3 −2 , SO 4 2− .
36. The method of claim 28 wherein said supramolecular complex is selected from the group consisting of [{(bpy) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 , [{(bpy) 2 Ru(dpp)} 2 Ru(dpb)PtCl 2 ](PF 6 ) 6 , [{(phen) 2 Ru(dpp)} 2 Ru(dpp)PtCl 2 ](PF 6 ) 6 and [{(bpy) 2 Os(dpp)} 2 Ru(dpq)PtCl 2 ](PF 6 ) 6 .
37. The method of claim 28 wherein said hyperproliferating cells are cancer cells.