Claims
- 1. A process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations, comprising the steps of:
(a) preparing a plurality of cDNA's, each encoding a different protein, wherein each cDNA comprises a promoter region and a coding region and segregating each cDNA into separate chambers; (b) transcribing each cDNA into a mRNA, wherein the mRNA will form a protein encoded by the coding region of the cDNA; (c) translating each mRNA in a cell-free translation system to synthesize a plurality of synthetic proteins, wherein each synthetic protein includes a first binding moiety incorporated therein, and whereby each mRNA molecule can be used to translate a plurality of synthetic proteins to increase yield; (d) attaching a second binding moiety that specifically binds to the first binding moiety, wherein the second binding moiety further comprises an oligonucleotide tag sequence to form a oligonucleotide-addressed synthetic protein; and (e) localizing the oligonucleotide-addressed synthetic proteins onto an oligonucleotide tag mircoarray device, wherein the oligonucleotide tag mircoarray device comprises a plurality of oligonucleotide sequences at known locations, wherein then oligonucleotide sequences are designed to be complementary to an oligonucleotide tag sequence on the second binding moiety, whereby each oligonucleotide-addressed protein localizes to its predefined complementary region on the oligonucleotide tag mircoarray device through nucleic acid hybridization.
- 2. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 1 wherein the cDNA's are prepared through PCR (polymerase chain reaction) techniques.
- 3. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 1 wherein the cDNAs further comprises a tag region that codes on expression for a protein tag, wherein the protein tag sequence is used to affinity bind the synthetic protein in order to wash out unbound first binding moiety.
- 4. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 1 wherein the translating step (c) further comprises adding cell or liver microsomes in order to provide for eukaryotic cell glycosylation of the synthetic protein at N-linked or O-linked glycosylation sites.
- 5. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 1 wherein the first binding moiety is biotin or a biotin derivative thereof, and the second binding moiety is streptavidin or a streptavidin derivative thereof, or the first binding moiety is an antigen and the second binding moiety is an antibody of fragment thereof that binds to the first moiety antigen.
- 6. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 5 wherein the first binding moiety is a biotin moiety that is linked to the synthetic peptide through Lys residues.
- 7. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 1 wherein the oligonucleotide tag sequence attached to the second binding moiety is from about 12 to about 100 nucleotides in length wherein at least 12 nucleotides are exactly complimentary to their corresponding tag array oligonucleotide sequence on the mircoarray device.
- 8. A protein microarray having a plurality of proteins in discrete locations, wherein the protein mircoarray is produced by a process comprising the steps of:
(a) preparing a plurality of cDNA's, each encoding a different protein, wherein each cDNA comprises a promoter region and a coding region; (b) transcribing each cDNA into a mRNA, wherein the mRNA will form a protein encoded by the coding region of the cDNA; (c) translating each mRNA in a cell-free translation system to synthesize a plurality of different proteins, wherein each synthetic protein includes a first binding moiety incorporated therein, and whereby each mRNA molecule can be used to translate a plurality of synthetic proteins; (d) attaching a second binding moiety that specifically binds to the first binding moiety, wherein the second binding moiety further comprises an oligonucleotide tag sequence to form a oligonucleotide-addressed synthetic protein; and (e) localizing the oligonucleotide-addressed synthetic protein onto an oligonucleotide tag mircoarray device, wherein the oligonucleotide tag mircoarray device comprises a plurality of oligonucleotide sequences at known locations, wherein then oligonucleotide sequences are designed to be complementary to an oligonucleotide tag sequence on the second binding moiety, and whereby each oligonucleotide-addressed protein localizes to its predefined complementary region on the oligonucleotide tag mircoarray device through nucleic acid hybridization.
- 9. The protein microarray having a plurality of proteins in discrete locations of claim 8 wherein the cDNA's are prepared through PCR (polymerase chain reaction) techniques.
- 10. The protein microarray having a plurality of proteins in discrete locations of claim 8 wherein the cDNAs further comprises a tag region that codes on expression for a protein tag, wherein the protein tag sequence is used to affinity bind the synthetic protein in order to wash out unbound first binding moiety.
- 11. The protein microarray having a plurality of proteins in discrete locations of claim 8 wherein the translating step (c) further comprises adding cell or liver microsomes in order to provide for eukaryotic cell glycosylation of the synthetic protein at N-linked or O-linked glycosylation sites.
- 12. The protein microarray having a plurality of proteins in discrete locations of claim 8 wherein the first binding moiety is biotin or a biotin derivative thereof, and the second binding moiety is streptavidin or a streptavidin derivative thereof, or the first binding moiety is an antigenic epitope and the second binding moiety is an antibody or fragment thereof that binds to the first moiety antigen.
- 13. The protein microarray having a plurality of proteins in discrete locations of claim 12 wherein the first binding moiety is a biotin moiety that is linked to the synthetic peptide through Lys residues.
- 14. The protein microarray having a plurality of proteins in discrete locations of claim 8 wherein the oligonucleotide tag sequence attached to the second binding moiety is from about 12 to about 100 nucleotides in length wherein at least 12 nucleotides are exactly complimentary to their corresponding tag array oligonucleotide sequence on the mircoarray device.
- 15. A process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations, comprising the steps of:
(a) preparing a plurality of cDNA's, each encoding a different protein, wherein each cDNA comprises a promoter region, a coding region and a tag region in frame to the coding region and segregating each cDNA into separate chambers; (b) transcribing each cDNA into a mRNA, wherein the mRNA will form a protein encoded by the coding region of the cDNA and having a peptide tag sequence, wherein each peptide tag sequence is the same across the plurality of proteins; (c) translating each mRNA in a cell-free translation system to synthesize a plurality of different proteins, each containing the same peptide tag sequence, to form the synthetic protein; (d) incorporating in each translated protein a first binding moiety; (e) removing the free first binding moiety by binding the synthetic protein through an affinity third binding moiety that binds to the peptide tag sequence and is attached to a solid phase, and washing to remove free or unbound first binding moiety; (f) attaching a second binding moiety that specifically binds to the first binding moiety, wherein the second binding moiety further comprises an oligonucleotide tag sequence to form a oligonucleotide-addressed synthetic protein; and (g) localizing the oligonucleotide-addressed protein onto an oligonucleotide tag mircoarray device, whereby each oligonucleotide-addressed protein localizes to its predefined complementary region on the oligonucleotide tag mircoarray device through nucleic acid hybridization.
- 16. The protein microarray having a plurality of proteins in discrete locations of claim 15 wherein the oligonucleotide-addressed synthetic proteins are first eluted before being localized onto the oligonucleotide tag microarray device.
- 17. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 15 wherein the cDNA's are prepared through PCR (polymerase chain reaction) techniques.
- 18. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 15 wherein the translating step (c) further comprises adding cell or liver microsomes in order to provide for eukaryotic cell glycosylation of the synthetic protein at N-linked or O-linked glycosylation sites.
- 19. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 15 wherein the first binding moiety is biotin or a biotin derivative thereof, and the second binding moiety is streptavidin or a streptavidin derivative thereof, or the first binding moiety is an antigenic epitope and the second binding moiety is an antibody or fragment thereof that binds to the first moiety antigen.
- 20. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 19 wherein the first binding moiety is a biotin moiety that is linked to the synthetic peptide through Lys residues.
- 21. The process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations of claim 15 wherein the oligonucleotide tag sequence attached to the second binding moiety is from about 12 to about 100 nucleotides in length wherein at least 12 nucleotides are exactly complimentary to their corresponding tag array oligonucleotide sequence on the mircoarray device.
- 22. A protein microarray having a plurality of proteins in discrete locations, wherein the protein mircoarray is produced by a process comprising the steps of:
(a) preparing a plurality of cDNA's, each encoding a different protein, wherein each cDNA comprises a promoter region, a coding region and a tag region in frame to the coding region and segregating each cDNA into separate chambers; (b) transcribing each cDNA into a mRNA, wherein the mRNA will form a protein encoded by the coding region of the cDNA and having a peptide tag sequence, wherein each peptide tag sequence is the same across the plurality of proteins; (c) translating each mRNA in a cell-free translation system to synthesize a plurality of different proteins, each containing the same peptide tag sequence, to form the synthetic protein; (d) incorporating in each translated protein a first binding moiety; (e) removing the free first binding moiety by binding the synthetic protein through an affinity third binding moiety that binds to the peptide tag sequence and is attached to a solid phase, and washing to remove free or unbound first binding moiety; (f) attaching a second binding moiety that specifically binds to the first binding moiety, wherein the second binding moiety further comprises an oligonucleotide tag sequence to form a oligonucleotide-addressed synthetic protein; and (g) localizing the oligonucleotide-addressed protein onto an oligonucleotide tag mircoarray device, whereby each oligonucleotide-addressed protein localizes to its predefined complementary region on the oligonucleotide tag mircoarray device through nucleic acid hybridization.
- 23. The protein microarray having a plurality of proteins in discrete locations of claim 22 wherein the cDNA's are prepared through PCR (polymerase chain reaction) techniques.
- 24. The protein microarray having a plurality of proteins in discrete locations of claim 22 wherein the translating step (c) further comprises adding cell or liver microsomes in order to provide for eukaryotic cell glycosylation of the synthetic protein at N-linked or O-linked glycosylation sites.
- 25. The protein microarray having a plurality of proteins in discrete locations of claim 22 wherein the first binding moiety is biotin or a biotin derivative thereof, and the second binding moiety is streptavidin or a streptavidin derivative thereof, or the first binding moiety is an antigenic epitope and the second binding moiety is an antibody or fragment thereof that binds to the first moiety antigen.
- 26. The protein microarray having a plurality of proteins in discrete locations of claim 25 wherein the first binding moiety is a biotin moiety that is linked to the synthetic peptide through Lys residues.
- 27. The protein microarray having a plurality of proteins in discrete locations of claim 22 wherein the oligonucleotide tag sequence attached to the second binding moiety is from about 12 to about 100 nucleotides in length wherein at least 12 nucleotides are exactly complimentary to their corresponding tag array oligonucleotide sequence on the mircoarray device.
- 28. A process for producing a self-assembled protein microarray having a plurality of proteins in discrete locations, comprising: (a) preparing a plurality of cDNA's in separate containers, wherein each cDNA encodes a different protein; (b) amplifying each cDNA with specific primers to produce a plurality of synthetic proteins, wherein each synthetic protein contains a peptide tag at either terminus; (c) incorporating in each synthetic protein a first binding moiety by in vitro translation; (d) capturing each synthetic protein on a solid phase using an antibody directed against the peptide tag; (e) adding a second binding moiety to each synthetic protein in each container, wherein the second binding moiety is multivalent and binds specifically to the first binding moiety, (f) adding a plurality of oligonucleotides labeled with the first binding moiety to bind to the second binding moiety, thereby forming an oligonucleotide-tagged protein complex, wherein the different tag oligonucleotides are designed in a way that they do not cross-hybridize to each other, (g) eluting each oligonucleotide-tagged protein complex from the solid phase; and (h) mixing the oligonucleotide-tagged protein complexes from separate containers and incubating the mixture with an oligonucleotide tag microarray device, wherein each oligonucleotide-tagged protein complex localizes to its predefined complementary region on the oligonucleotide tag microarray device, thereby forming a self-assembled protein microarray having a plurality of proteins in discrete locations.
- 29. The protein microarray having a plurality of proteins in discrete locations of claim 28 wherein the cDNA's are prepared through PCR techniques.
- 30. The protein microarray having a plurality of proteins in discrete locations of claim 28 wherein the first binding moiety is an antigenic epitope or a fragment thereof, and the second binding moiety is an antibody or a fragment thereof that binds to the first binding moiety.
- 31. The protein microarray having a plurality of proteins in discrete locations of claim 28 wherein the first binding moiety is biotin or a biotin derivative thereof, and the second binding moiety is streptavidin or a strepavidin derivative thereof.
- 32. The protein microarray having a plurality of proteins in discrete locations of claim 28 wherein the biotin moiety is linked to the synthetic protein through Lys residues.
- 33. The protein microarray having a plurality of proteins in discrete locations of claim 28 wherein the tag oligonucleotide conjugated to the second binding moiety is from about 10 to about 100 nucleotides in length, wherein at least 12 nucleotides are exactly complimentary to their corresponding oligonucleotide sequence on the oligonucleotide tag microarray device.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This patent application claims priority from U.S. provisional patent application No. 60/315,253 filed Aug. 27, 2001.