IP Library Granted Patent US 8,383,919
Granted Patent B2
US 8,383,919 · App. 13/011,881 · Granted Feb 26, 2013

Highly fluorescent peptide-metallic nanoclusters as bio-probes and methods of synthesis thereof

Inventor: Xueyun Gao (Beijing, CN)
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Quick Facts
Patent No.
US 8,383,919
App. No.
13/011,881
Granted
Feb 26, 2013
Kind
B2
Abstract

A method of one reaction step for synthesis of peptide template fluorescent metal nanoclusters as bioprobes. Specific targeting peptide containing a metal reactive group is synthesized and used to react with a metal salt solution under a sufficient pH condition at room temperature in forming peptide template fluorescent metal nanoclusters. The dialyzed metal nanoclusters is used directly as bio-probes.

Claims (25)

1. A fluorescent metal nanocluster bioprobe, comprising:

a peptide templated fluorescent metal nanocluster, wherein said peptide molecule has a structure of X-Z chemical formula wherein X and Z are covalently bonded, X being a chemical side group selected from a chemical functional groups consisting of hydroxybenzene, carboxylic, guanidino, amide, sulfhydryl, amidocyanogen, indole and imidazole, Z being a specific peptide sequence for targeting a specific biological target, X being either at the N-terminal or the C-terminal of Z; said metal being either gold or silver and said metal atom and said peptide molecule form a nanocluster complex structure that emits fluorescent light under sufficient exciting condition, and

wherein said peptide templated fluorescent metal nanocluster is produced by an one-step reaction of mixing a solution of said peptide molecule with a solution of either chloroauric acid or silver nitrate at a sufficient molar ratio under ambient temperature at sufficient pH for a sufficient period of time.

2. The fluorescent metal nanocluster bioprobe of claim 1 , wherein X is a side group of an amino acid selected from a group consisting of amino acids of Arg, Asn, Asp, Cys, Gln, Glu, H is, Trp and Tyr.

3. The fluorescent metal nanocluster bioprobe of claim 1 , wherein Z is a signal peptide sequence that targets an organelle of a cell selected from nucleus, nucleolus, endoplasmic reticulum, Golgi network, lysosome, mitochondrion, actin, microtubule, and cell membrane.

4. The fluorescent metal nanocluster bioprobe of claim 1 , wherein Z is a specific binding sequence for a cellular biomolecule.

5. The fluorescent metal nanocluster bioprobe of claim 4 , wherein Z is a ligand sequence for a molecule selected a group comprising of epidermal growth factor receptor, integrin, somatostatin receptor, gastrin-releasing peptide receptor, cholecystokinin-2/gastrin receptor, melanocortin-1 receptor and glucagon-like peptide-1 receptor.

6. The fluorescent metal nanocluster bioprobe of claim 1 , wherein the metal nanocluster gives a narrow emission wavelength.

7. The fluorescent metal nanocluster bioprobe of claim 1 , wherein said peptide and said metal salt is mixed at molar ratio ranging between 100:1 to 1:200.

8. A method of synthesizing a fluorescent metal nanocluster bioprobe, comprising actions of:

mixing a peptide solution with a solution of either chloroauric acid or silver nitrate at a sufficient molar ratio under ambient temperature at alkaline pH for a sufficient period of time,

wherein said peptide includes a structure of X-Z chemical formula wherein X and Z are covalently bonded, X being a chemical functional group selected from chemical functional groups consisting of hydroxybenzene, carboxylic, guanidino, amide, sulfhydryl, amidocyanogen, indole and imidazole, Z being a specific peptide sequence for targeting a specific biological target, X being either at the N-terminal or the C-terminal side of Z, and said gold or silver metal atom and said peptide molecule form a nanocluster complex structure under ambient temperature and sufficient pH, wherein said structure emits fluorescent light under sufficient exciting condition.

9. The method of claim 8 , wherein X is a side group of an amino acid selected from a group consisting of amino acids of Arg, Asn, Asp, Cys, Gln, Glu, His, Trp and Tyr.

10. The method of claim 8 , wherein Z is a signal peptide sequence that targets an organelle of a cell selected from nucleus, nucleolus, endoplasmic reticulum, Golgi network, lysosome, mitochondrion, actin, microtubule, and cell membrane.

11. The method of claim 8 , wherein Z is a specific binding sequence for a cellular biomolecule.

12. The method of claim 8 , wherein Z is a ligand sequence for a molecule selected from epidermal growth factor receptor, integrin, somatostatin receptor, gastrin-releasing peptide receptor, cholecystokinin-2/gastrin receptor, melanocortin-1 receptor and glucagon-like peptide-1 receptor.

13. The method of claim 8 , wherein the metal nanocluster generates a fluorescent emission of a narrow wavelength.

14. The method of claim 8 , wherein said peptide and said metal salt are mixed at molar ratio ranging between 100:1 to 1:200.

15. A kit for generating a fluorescent metal nanocluster bioprobe, comprising:

a volume of alkaline solution;

a volume of a metal salt solution of either chloroauric acid or silver nitrate;

a control peptide solution; and

a set of said metal salt solutions of different concentrations;

wherein said alkaline solution is used for adjusting pH of a reaction, said set of metal salt solutions is used to react with a user provided peptide solution for optimizing reaction molar ratio, and said control peptide is used for confirmation of a successful reaction condition, wherein said user-provided peptide has an X-Z structure chemical formula wherein X and Z are covalently bonded, X being a chemical functional group selected from a group of hydroxybenzene, carboxylic, guanidino, amide, sulfhydryl, amidocyanogen, indole and imidazole, Z being a specific peptide sequence for targeting a specific biological target, X being either at the N-terminal or the C-terminal side of Z and said metal atom being either gold or silver, and said user provided peptide is to be mixed with at least one of said set of metal solution to form a fluorescent nanocluster structured complex of said user provided peptide and said metal atom.

16. The kit of claim 15 , wherein said X is an amino acid group selected from a group of amino acids of Arg, Asn, Asp, Cys, Gln, Glu, His, Trp and Tyr.

Continuity (2)
Provisional Application 61423041 · Dec 14, 2010
Related Publication 20110118441A1 · May 19, 2011