Claims
- 1. A microorganism comprising a regulated antigen delivery system (RADS), wherein the RADS comprises
(a) a vector comprising (1) a site for insertion of a gene encoding a desired gene product; (2) a first origin of replication (ori) conferring vector replication using DNA polymerase III; and (3) a second ori conferring vector replication using DNA polymerase I, wherein the second ori is operably linked to a first control sequence repressible by a first repressor, and wherein the runaway vector does not comprise a phage lysis gene; and (b) a gene encoding a first repressor operably linked to a first activatible control sequence.
- 2. The microorganism of claim 1, further comprising a gene encoding a desired gene product inserted into the site of step (a), wherein the gene encoding the desired gene product is operably linked to a second control sequence.
- 3. The microorganism of claim 2, wherein the first control sequence and the second control sequence are the same sequence.
- 4. The microorganism of claim 2, wherein the first control sequence and the second control sequence are different sequences.
- 5. The microorganism of claim 1, wherein the repressor is selected from the group consisting of LacI repressor and C2 repressor, and wherein the second control sequence is repressible by a second repressor.
- 6. The microorganism of claim 2, wherein
(a) the vector is a plasmid; (b) the desired gene product is an antigen and (c) the microorganism is an attenuated derivative of a pathogenic bacterium.
- 7. The microorganism of claim 6, wherein the microorganism is a Salmonella sp.
- 8. The microorganism of claim 6, wherein the first activatible control sequence is araCPBAD.
- 9. The microorganism of claim 6, further comprising a balanced lethal host-vector system consisting of a lack of a functioning essential gene on the chromosome and a recombinant functioning copy of the essential gene on the vector.
- 10. The microorganism of claim 9, wherein the essential gene is an asd gene.
- 11. The microorganism of claim 10, wherein the asd gene is inactivated by the insertion of a repressor gene operably linked to araCPBAD.
- 12. The microorganism of claim 6, further comprising an inactivating mutation in a native gene selected from the group consisting of cya, crp, phoPQ, ompR, galE, cdt, hen, aroA, aroC, aroD and htrA.
- 13. The microorganism of claim 6, wherein the first ori is a pSC ori, and the second ori is a pUC ori
- 14. The microorganism of claim 6, wherein the first control sequence is P22 PR and the first repressor is C2 repressor.
- 15. The microorganism of claim 6, wherein the second control sequence is Ptrc and wherein the second control sequence is repressible by a second repressor, and wherein the second repressor is a LacI repressor.
- 16. The microorganism of claim 15, wherein the first control sequence is P22 PR; the first repressor is C2 repressor; the first ori is a pSC ori, and the second ori is a pUC ori.
- 17. The microorganism of claim 16, wherein the vector is pMEG-771, or modifications thereof, with a gene encoding an antigen.
- 18. The microorganism of claim 6, wherein the antigen is selected from the group consisting of Ery65 and SeM.
- 19. The microorganism of claim 6, wherein the desired gene product is operably linked to a eukaryotic control sequence.
- 20. The microorganism of claim 19, further comprising a ΔendA mutation.
- 21. A runaway vector comprising the vector in the microorganism of claim 19.
- 22. The microorganism of claim 6, which exhibits delayed RADS characteristics, wherein the delayed RADS characteristics are conferred by an alteration selected from the group consisting of: mutations that delay the loss of activator molecules by metabolism and/or leakage, a mutation or insertion to increase repressor concentration, and inclusion of a vector control sequence with binding sites for more than one repressor and/or vector sequences encoding repressor molecules that act on a vector control sequence.
- 23. A method of producing a desired gene product, comprising, in order,
(a) engineering a gene encoding the desired gene product into the vector in the microorganism of claim 6, wherein the microorganism comprises control sequences that repress expression of the second ori under a first environmental condition, but in which the expression of the second ori is derepressed under a second environmental condition; (b) culturing the microorganism of step (a) under the first environmental condition; and (c) culturing the microorganism with runaway vector of step (a) under the second environmental condition for a time sufficient to produce the desired gene product.
- 24. The method of claim 23, wherein the desired gene product is an antigen.
- 25. The method of claim 24, wherein the fat environmental condition comprises the presence of arabinose and the second environmental condition comprises the absence of arabinose.
- 26. The method of claim 25, wherein the first environmental condition comprises in vitro culture conditions and the second environmental condition comprises conditions inside of a vertebrate.
- 27. The method of claim 26, wherein
(a) the first ori is a pSC ori; (b) the second ori is a pUC ori, which is operably linked to a repressing control sequence consisting of P22 PR; (c) the product control sequence is Ptrc; (d) the microorganism comprises a gene encoding a first repressor operably linked to a first activatible control sequence, wherein the first repressor is C2; and (e) the microorganism comprises a gene encoding a second repressor operably linked to a second activatible control sequence, wherein the second repressor is LacI; (f) the microorganism comprises a chromosome without a functional asd gene and the runaway vector comprises a functional asd gene; and (g) the microorganism comprises an inactivating mutation in a native gene selected from the group consisting of cya, crp, phoPQ, ompR, galE, cdt, hemA, aroA, aroC, aroD and htr.
- 28. The method of claim 27, wherein the first environmental condition comprises the presence of arabinose and the second environmental condition comprises the absence of arabinose.
- 29. The method of claim 28, wherein the microorganism further comprises an inactivating deletion in the araCBAD operon and/or the araE gene.
- 30. The method of claim 29, wherein the desired gene product is selected from the group consisting of Ery65 and SeM.
- 31. The method of claim 29, wherein the desired gene product is operably linked to a eukaryotic control sequence.
- 32. A vaccine for immunization of a vertebrate, the vaccine comprising the microorganism of claim 6 in a pharmaceutically acceptable carrier.
- 33. The vaccine of claim 32, wherein the microorganism is a Salmonella sp.
- 34. The vaccine of claim 32, wherein:
(a) the first ori is a pSC ori; (b) the second ori is a pUC ori, which is operably linked to a repressing control sequence consisting of P22 PR; (c) the product control sequence is Pa; (d) a gene encoding a first repressor operably linked to a first inducible control sequence, wherein the first repressor is C2; and (e) a gene encoding a second repressor operably linked to a second inducible control sequence, wherein the second repressor is LacI.
- 35. The vaccine of claim 34, wherein the first activatible control sequence and the second inducible control sequence are both araCPBAD.
- 36. The vaccine of claim 35, wherein the microorganism fixer comprises an inactivating deletion in the araCBAD operon and or the araE gene.
- 37. A method of inducing immunoprotection in a vertebrate comprising administering the vaccine of claim 32 to the vertebrate.
- 38. A method of delivering a desired gene product to a vertebrate comprising administering the microorganism of claim 1 to the vertebrate.
REFERENCE TO GOVERNMENT GRANT
[0001] This invention was made with government support under Grant Numbers DE06669, AI 24533, AI 38599, and USDA 9902097. The government has certain rights in this invention.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/13915 |
4/30/2001 |
WO |
|