Claims
- 1. An isolated modified lipolytic enzyme having improved wash performance which as compared to its parent enzyme has a peptide addition at its C-terminus and/or at its N-terminus with the exception of the following peptide additions:
(a) Lys-Lys-Thr-Ala-IIe-Ala-Val-Leu-Ala-Gly-Phe-Ala-Thr-Val-Ala-Gln-Ala, (b) Gly-Lys-Ala-IIe-Phe-Ala-IIe-Phe-Ala-IIe-Ala-IIe-Ala-Gly-Thr, and (c) Gly-Lys-Ala-Leu-Ala-Leu-Ala-Leu-Ala-Leu-Phe-Val-Ala-Gly-Thr.
- 2. The modified enzyme of claim 1, which comprises a peptide addition at its N-terminus.
- 3. The modified enzyme of claim 1, wherein the peptide addition is selected so as to increase the affinity of the parent enzyme towards its substrate.
- 4. The modified lipolytic enzyme of claim 1, wherein the peptide addition is selected so as to confer stability to the modified lipolytic enzyme.
- 5. The modified lipolytic enzyme of claim 1, wherein the peptide addition is one which is capable of forming a covalent binding to the mature part of the parent enzyme.
- 6. The modified enzyme of claim 1, which comprises a cysteine residue in the peptide addition and a cysteine residue in the mature part of the parent enzyme in such a manner that the said cysteine residues together forms a cysteine bridge.
- 7. The modified lipolytic enzyme of claim 6, wherein the cysteine residue in the mature part of the parent enzyme has been inserted or has replaced an amino acid residue of the parent enzyme.
- 8. The modified lipolytic enzyme of claim 1, wherein the peptide addition is one which has a low susceptibility to proteolytic degradation by proteolytic enzymes of a host cell used for expressing the modified lipolytic enzyme.
- 9. The modified lipolytic enzyme of claim 1, wherein the peptide addition comprises at least one proline residues, such as two or three proline residues.
- 10. The modified enzyme of claim 1, wherein the peptide addition comprises at least one, such as one, two or three positive or hydrophobic amino acids residues.
- 11. The modified enzyme of claim 1, wherein the length of the peptide addition is from 1 and 200 amino acids.
- 12. The modified enzyme of claim 1, wherein the peptide addition is one of the following peptide additions:
1. Arg (R), or Lys (K), or Leu (L), or IIe (I), or 2. Val (V), or Trp (W) or Phe (F), or 3. Arg-Pro (RP), or 4. Lys-Lys (KK), or 5. Arg-Lys (RK), or 6. Lys-Arg (KR), or 7. Arg-Arg (RR), or 8. Arg-Arg-Pro (RRP), or 9. Arg-Pro-Val-Ser-Gln-Asp (RPVSQD) 10. Ser-Pro-IIe-Arg-Met (SPIRM), or 11. Ser-Pro-IIe-Arg-Ala-Arg (SPIRAR), or 12. Ser-Pro-IIe-Arg-Pro-Arg (SPIRPR) or 13. Ser-Pro-IIe-Arg-Glu-Arg (SPIRER), or 14. Ser-Pro-IIe-Arg-Lys (SPIRK), or 15. Ser-Pro-IIe-Lys-Lys (SPIKK), or 16. Ser-Pro-IIe-Arg-Arg-Pro (SPIRRP), or 17. Ser-Pro-Pro-Arg-Arg (SPPRR), or 18. Ser-Pro-Iso-Pro-Arg (SPIPR), or 19. Ser-Pro-Arg-Pro-Arg (SPRPR), or 20. Ser-Pro-IIe-Arg (SPIR), or 21. Ser-Pro-IIe-Arg-Arg (SPIRR), or 22. Ser-Cys-IIe-Arg-Arg, (SCIRR), or 23. Ser-Pro-IIe-Arg-Pro-Arg-Pro (SPIRPRP), or 24. Ser-Cys-IIe-Arg-Pro-Arg-Pro (SCPIRPRP), or 25. Ser-Pro-Arg-Arg-Pro-Arg-Thr (SPRRPRT), or 26. Ser-Pro-Phe-Arg-Pro-Lys-Leu (SPFRPKL), or 27. Ser-Pro-Pro-Arg-Arg-Pro (SPPRRP), or 28. Ser-Pro-IIe-Arg-Arg-Glu (SPIRRE), or 29. Ser-Pro-Pro-Arg-Pro-Pro (SPPRPP), or 30. Ser-Pro-Pro-Arg-Pro-Arg (SPPRPR), or 31. Ser-Pro-Pro-Trp-Trp-Pro (SPPWWP), or 32. Ser-Pro-Pro-Trp-Arg-Pro (SPPWRP), or 33. Ser-Pro-Pro-Arg-Trp-Pro (SPPRWP), or 34. Ser-Pro-Pro-Arg-Trp-Pro (SPPRWP), or 35. Ser-His-Trp-Arg-Arg-Trp (SHWRRW), or 36. Ser-His-Trp-Arg-Lys (SHWRK), or 37. Ser-His-Trp-Arg-Arg (SHWRR), or 38. Thr-Ala-IIe-Arg-Pro-Arg-Lys (TAIRPRK), 39. Ser-Thr-Arg-Arg-Pro-Arg-Pro (STRRPRP), 40. Gly-Pro-IIe-Arg-Pro-Arg-Pro (GPIRPRP), 41. Leu-Pro-Phe-Arg-Glu-Arg-Pro (LPFRQRP), 42. Ser-Arg-Ser-Arg-His-Asp-Ala (SRSRHNA), 43. IIe-Pro-IIe-Arg-Pro-Arg-Arg (IPIRPRR), 44. Ser-Thr-Arg-Arg-Pro-Arg-Pro (STRRPRP), 45. Thr-Ala-IIe-Arg-Pro-Arg-Lys (TAIRPRK), 46. Trp-Arg-Trp-Arg-Trp-Arg (WRWRWR), 47. Glu-Pro-IIe-Arg-Arg (QPIRR), 48. Ser-His-Trp-Glu-Glu (SHWQQ), 49. Arg-Pro-Arg-Pro-Arg-Pro-Arg-Pro (RPRPRPRP), or 50. Ser-Ser-Thr-Arg-Arg-Ala-Ser-Pro-IIe-Lys-Lys (SSTRRASPIKK), or 51. Ala-Trp-Trp-Pro-Ser-Pro-IIe-Arg-Pro-Arg-Pro (AWWPSPIRPRP), or 52. Ala-Pro-Pro-Pro-Arg-Pro-Arg-Pro-Arg-Pro-Arg-Pro (APPPRPRPRPRP), or 53. Ala-Pro-Pro-Pro-Arg-Thr-Arg-Pro-Arg-Pro-Arg-Ser (APPPRTRPRPRS), or 54. Ser-Pro-Lys-Arg-Lys-Pro-Arg-Pro (SPKRKPRP), or 55. Ser-Gln-Arg-IIe-Lys-Gln-Arg-IIe-Lys (SQRIKQRIK), or 56. Ser-Pro-Pro-Pro-Arg-Pro-Arg-Pro (SPPPRPRP), or 57. Ser-Pro-IIe-Arg-Pro-Arg-Pro-Arg-Pro-Arg SPIRPRPRPR, or 58. Ser-Pro-IIe-Arg-Lys-Ala-Trp-Trp-Pro (SPIRKAWWP), or 59. Ala-Pro-Pro-Pro-Lys-Ala-Ser-Pro-Arg-Gln-Arg-Pro (APPPKASPRQRP), or 60. Ser-Pro-IIe-Arg-Pro-Arg-Pro-Ser-Pro-IIe-Arg-Pro-Arg-Pro-Arg (SPIRPRPSPIRPRP), or 61. Ser-Pro-Pro-Arg-Trp-Pro-Arg-Arg (SPPRWPRR), or 62. Ser-Pro-Pro-Arg-Trp-Pro-Arg-Trp (SPPRWPRW), or 63. Ser-Pro-Pro-Arg-Trp-Pro-Trp-Arg (SPPRWPWR), or 64. Ser-Pro-Pro-Trp-Arg-Pro-Arg-Arg (SPPWRPRR), or 65. Ser-Pro-Pro-Trp-Trp-Pro-Arg-Trp (SPPWWPRW, or 66. Ser-Pro-Pro-Trp-Trp-Pro-Trp-Arg (SPPWWPWR), or 67. Ser-Pro-Pro-Trp-Trp-Pro-Trp-Trp (SPPWWPWW), or 68. Trp-Pro (WP), or 69. Ser-Pro-Pro-Trp-Pro-Arg-pro-Arg-Pro (SPPWPRPRP).
- 13. The lipolytic enzyme of claim 1, which, compared to a parent lipolytic enzyme, has been modified by deletion or substitution of at least one amino acid residue in a lipid contact zone of the parent lipolytic enzyme or insertion of at least one amino acid residue in said lipid contact zone.
- 14. The lipolytic enzyme of claim 1, which is a variant of a parent lipolytic enzyme which comprises at least one mutation within and at least one mutation outside the lipid contact zone of the parent lipolytic enzyme.
- 15. The modified enzyme of claim 1, which, in addition to the peptide addition, comprises a mutation in a non-structural part of the N-terminus and/or C-terminus of the parent enzyme.
- 16. The modified enzyme of claim 15 wherein said mutation has resulted in the removal of at least one negatively charged amino acid residue.
- 17. The modified enzyme of claim 15, wherein a negatively charged amino acid residue of said non-structural part has been deleted or replaced by a neutral or positively charged amino acid residue or by a hydrophobic amino acid residue, or wherein a neutral amino acid residue has been replaced with a positively charged amino acid residue.
- 18. A modified lipolytic enzyme comprising a peptide addition of claim 1, said peptide addition having been applied by
(a) subjecting a DNA sequence encoding a parent enzyme with a peptide addition to random mutagenesis in the part of the DNA sequence encoding the peptide addition and optionally a non-structural N-terminal or C-terminal part of the mature form of the parent enzyme, (b) expressing the resulting mutated DNA sequence in a suitable host cell so as to produce a modified lipolytic enzyme, and (c) screening for modified lipolytic enzymes resulting from step c) which has an improved performance as compared to the parent enzyme.
- 19. The modified lipolytic enzyme of claim 18, wherein the random mutagenesis is performed so as to introduce one or more positively charged or hydrophobic amino acid residues into the peptide addition and optionally the non-structural part of the parent enzyme.
- 20. The modified enzyme of claim 1, wherein the parent enzyme is derived from Humicola.
- 21. The modified enzyme of claim 1, wherein the parent enzyme is derived from a strain of H. lanuginosa or H. insolens.
- 22. The modified lipolytic enzyme of claim 1, wherein the parent enzyme is the lipolytic enzyme derived from H. lanuginosa strain DSM 4109 having the amino acid sequence shown in FIG. 1.
- 23. The modified enzyme of claim 22, in which the peptide addition has replaced the amino acid residue occupying position 1 in the mature parent enzyme, i.e. the E1.
- 24. The lipolytic enzyme of claim 22, which comprises at least one mutation compared to the parent enzyme.
- 25. The lipolytic enzyme of claim 24, wherein one of the mutations is a deletion or substitution of an amino acid residue in a lipid contact zone of the lipolytic enzyme or an addition of an amino acid residue to the lipid contact zone.
- 26. The lipolytic enzyme of claim 24, wherein one of the mutations is a deletion or substitution of an amino acid residue outside the lipid contact zone of the lipolytic enzyme or an addition of an amino acid residue to the part of the lipolytic enzyme located outside the lipid contact zone.
- 27. The lipolytic enzyme of claim 22, which is the result of a combination between at least two of the following mutants or a part thereof:
1. E56R,D57L,I90F,D96L,E99K 2. E56R,D57L,V60M,D62N,S83T,D96P,D102E 3. D57G,N94K,D96L,L97M 4. E87K,G91A,D96R,I100V,E129K,K237M,I252L,P256T,G263A,L264Q 5. E56R,D57G,S58F,D62C,T64R,E87G,G91A,F95L,D96P,K98I,(K237M) 6. E210K 7. S83T,N94K,D96N 8. E87K,D96V 9. N94K,D96A 10. E87K,G91A,D96A 11. D167G,E210V 12. S83T,G91A,Q249R 13. E87K,G91A 14. S83T,E87K,G91A,N94K,D96N,D111N. 15. N73D,E87K,G91A,N94I,D96G. 16. L67P,I76V,S83T,E87N,I90N,G91A,D96A,K98R. 17. S83T,E87K,G91A,N92H,N94K,D96M 18. S85P,E87K,G91A,D96L,L97V. 19. E87K,I90N,G91A,N94S,D96N,I100T. 20. I34V, S54P, F80L, S85T, D96G, R108W, G109V, D111G, S116P, L124S, V132M, V140Q,V141A, F142S, H145R, N162T, I166V, F181P, F183S, R205G,A243T, D254G, F262L.
- 28. The lipolytic enzyme of claim 22, in which at least one of the following amino acid residues has been replaced with another amino acid residue: A49, G59, S85, S116, Q126, D137, S170 or W221
- 29. The lipolytic enzyme of claim 22, which comprises at least one of the following substitutions: A49P, G59V, I90F, S85F, S116P, Q126R, D137G, S170P or W221L or a substitution to an amino acid residue belonging to the same charge group as the indicated substituent.
- 30. The lipolytic enzyme of claim 22, which comprises the following mutations:
(a) D57G+N94K+D96L+Q249R; (b) D57G+N94K+D96L+S116P+Q249R, (c) D57G+G59V+N94K+D96L+Q249R, (d) D57G+N94K+D96L+S116P+S170P+Q249R; (e) D57G+G59V+N94K+D96L+S170P+Q249R; (f) D57G+N94K+D96L+S170P+Q249R; (g) D167G+E210V+Q249R; (h) E56K+D167G+E210V; (i) D137G+D167G+E210V+Q249R; (j) D167G+E210V+W221L+Q249R; (k) D57G+N94K+F95L+D96H,L+Q249R; (l) D57G+N94K+D96L+E210K; (m) D57G+G59V+N94K+D96L+S116P+S170P+Q249R; (n) S3R+D137G+D167G+E210V+W221L; (o) D137G+D167G+E210V+W221L+N233R; (p) S3R+I90F+D96L+E99K+V187A+Q249R; (q) I90F+D96L+E99K+V187A+D233R; (r) I90F+D96L+E99K+V187A+D234Y; (s) I90F+D96L+E99K+V187A+T231R; (t) I90F+D96L+E99K+V187A; (u) D62R+I90F+D96L+E99K+V187A; (v) I90F+D96L+E99K+V187A+N200R+R209A; (w) I90F+D96L+E99K+V187A+T199R+N200R+R209A; (x) D57G+D62R+N94K+D96L+Q249R; (y) D57G+N94K+D96L+N200R+R209A+Q249R; (z) D57G+N94K+D96L+T199R+N200R+Q249R; (aa) I90F+D96L+E99K+V187A+T199R; (bb) D57G+N94K+D96L+T199R+R209A+Q249R; (cc) I90F+D96L+E99K+V187A+Q249R; (dd) I90F+D96L+E99K+V187A+P253R; (ee) I90F+D96L+E99K+D137G+D167G+V187A+Q249R; (ff) I90F+D96L+E99K+D137G+V187A+Q249R; (gg) D96L+E99K+V187A+Q249R; (hh) V2P+N94K+D96L+Q249R; (ii) V2W+S3R+N94K+D96L+Q249R; (jj) V2R+S3R+N94K+D96L+Q249R; (kk) V2R+S3W+N94K+D96L+Q249R; (ll) V2W+S3R+N94K+D96L+Q249R; (mm) N94K+D96L+Q249R; (nn) V2G+S3T+D57G+N94K+D96L+L97M+Q249R; (oo) V2G+S3T+Q4P+D5E+D57G+N94K+D96L+L97M+Q249R; (pp) V2G+D5Q+L6M+D57G+N94K+D96L+L97M+Q249R; (qq) D57G+G59V+N94K+D96L+L97M+S116P+S170P+Q249R; (rr) A49P+D167G+E210V; (ss) E56K+D57G+D62R+S83T+S85F+D96L+D102Y+E210K; (tt) D57G+N94K+D96L+L97M+Q249R; (uu) D137G+D167G+E210V+W221L; (vv) N94K+F95L+D96H+N101S+F181L+D234Y+I252L+P256T+G263A+L264Q; (ww) I90F+D96L+E99K+V187A; (xx) N94K+D96A+Q249R; (yy) A19P+D167G+E210V+W221L; (zz) N94K+D96L+L97M+Q249R; (aaa) D57G+N94K+D96L+Q249R; (bbb) I90F+D96L+E99K+D137G+V187A; (ccc) N94K+D96L+E99K+Q249R; (ddd) N94K+D96L+E99K+T231R+N233R+D234R+Q249R; (eee) N94K+D96L+E99K+D111N+F211A+G225P+Q249R+T267R; (fff) N94K+D96L+E99K+D111N+F211A+G225P+T231R+N233R+D234R+Q249R+T267R; (ggg) E1K+N94K+D96L+E99K+Q249R; (hhh) N94K+D96L+K223R+Q249R; (iii) N94K+D96L+E99K+N233R; (jjj) N94K+D96L+E99K+T231R+N233R+Q249R; (kkk) N94K+D96L+E99K+N233R+Q249R; or (lll) N94K+D96L+E99K+D234R+Q249R.
- 31. The modified enzyme of claim 1, wherein the enzyme is derived from Pseudomonas sp.
- 32. The modified enzyme of claim 1, wherein the parent enzyme is in a mature form.
- 33. The modified enzyme of claim 1, wherein the parent enzyme is a naturally-occurring enzyme or a variant thereof.
- 34. The modified enzyme of claim 1, wherein the peptide addition is different from the native pre, pro or prepro-sequence of the parent enzyme.
- 35. The modified enzyme of claim 1, which, when present in detergent composition A and/or B defined herein, is capable of removing at least 15% more lard from a lard stained swatch than the same detergent composition without the enzyme, in a one cycle wash assay comprising subjecting 7 lard-stained cotton swatches (9×9 cm) per beaker to a one cycle wash in a thermostated Terg-O-to-Meter (TOM), each beaker containing 1000 ml of water comprising 3.2 mM Ca2+/Mg2+ (in a ratio of 5:1) and 5 g/l of said detergent composition, pH 10, and comprising 12500 LU/I of the lipolytic enzyme, the wash treatment being carried out for 20 minutes at a temperature of 30° C., followed by rinsing for 15 minutes in running tap water and overnight linedrying at room temperature, subsequent extraction and quantification of fatty matter on the swatches by Soxhlet extraction.
- 36. A modified lipolytic enzyme which is derived from a parent enzyme from H. lanuginosa strain DSM 4109 having the amino acid sequence shown in FIG. 1, which modified enzyme comprises the following mutations:
(a) SPIRPRP+D57G+N94K+D96L+Q249R; (b) SPPRRP+I90F+D96L+E99K+D137G+V187A; (c) SPIRPRP+N94K+D96L+L97M+Q249R; (d) SPPPRPRP+N94K+D96L+L97M+Q249R; (e) SPIRPRP+D57G+N94K+D96L+L97M+Q249R; (f) SPPRRP+I90F+D96L+E99K+V187A; (g) SPIRPRP+D137G+D167G+E21V+W221L; (h) E1SPIRPRP+I90F+D96L+E99K+V187A; (i) E1SRKRKRK+I90F+D96L+E99K+V187A; (j) E1SPRIKPRIK+I90F+D96L+E99K+V187A; (k) E1SPPRRP+D62R+I90F+D96L+E99K+V187A; (l) E1SPPRRP+I90F+D96L+E99K+V187A+N200R+R209A; (m) E1SPPRRP+I90F+D96L+E99K+V187A+T199R+N200R+R209A; (n) E1SPIRPRP+D57G+D62R+N94K+D96L+Q249R; (o) E1SPIRPRP+D57G+N94K+D96L+N200R+R209A+Q249R; (p) E1SPIRPRP+D57G+N94K+D96L+T199R+N200R+Q249R; (q) E1SPPRRP+I90F+D96L+E99K+V187A+T199R; (r) E1SPIRPRP+D57G+N94K+D96L+T199R+R209A+Q249R; (s) E1SPIRPRP+I90F+D96L+E99K+V187A+Q249R; (t) E1SPPRRP+I90F+D96L+E99K+V187A+P253R; (u) E1SPPRRP+I90F+D96L+E99K+D137G+D167G+V187A+Q249R; (v) E1SPPRRP+I90F+D96L+E99K+D137G+V187A+Q249R; (w) E1SPPRRP+D96L+E99K+V187A+Q249R; (x) E1SPPRPR+V2P+N94K+D96L+Q249R; (y) E1SPPWWP+V2W+S3R+N94K+D96L+Q249R; (z) E1SPPWRP+V2R+S3R+N94K+D96L+Q249R; (aa) E1SPPRWP+V2R+S3R+N94K+D96L+Q249R; (bb) E1SPPWWP+V2R+S3W+N94K+D96L+Q249R; (cc) E1SPPRWP+V2W+S3R+N94K+D96L+Q249R; (dd) E1SPPRWP+V2R+S3W+N94K+D96L+Q249R; (ee) E1SPPRWP+N94K+D96L+Q249R; (ff) E1SPPRRP+N94K+D96L+Q249R; (gg) E1APPPRPRPRPRP+V2G+S3T+D57G+N94K+D96L+L97M+Q249R; (hh) E1APPPRTRPRPRS+V2G+S3T+Q4P+D5E+D57G+N94K+D96L+L97M+Q249R; (ii) E1APPPKASPRQRP+V2G+D5Q+L6M+D57G+N94K+D96L+L97M+Q249R; (jj) SCIRR+N94K+D96L+E239C+Q249R; (kk) E1SPPRRP+D57G+N94K+D96L+Y53C+K127C+Q249R; (ll) E1SPPRRPR+V2R+S3P+N94K+D96L+Q249R; (mm) E1SPPWPRP+V2R+S3P+N94K+D96L+Q249R; (nn) E1SPPRRP+N94K+D96L+E99K; (oo) E1SPPRRP+N94K+D96L+E99K+Q249R; (pp) E1SPPCGRRP+N94K+D96L+E239C+Q249R; (qq) E1SPCRPRP+N94K+D96L+E239C+Q249R; (rr) SPPCRRRP+N94K+D96L+E239C+Q249R; or (sa) E1SPPRRP+D57G+N94K+D96L+Q249R.
- 37. A lipolytic enzyme which, when present in detergent composition A and/or B defined herein, is capable of removing at least 15% more lard from a lard stained swatch than the same detergent composition without the enzyme, in a one cycle wash assay comprising subjecting 7 lard-stained cotton swatches (9×9 cm) per beaker to a one cycle wash in a thermostated Terg-O-to-Meter (TOM), each beaker containing 1000 ml of water comprising 3.2 mM Ca2+/Mg2+ (in a ratio of 5:1) and 5 g/l of said detergent composition, pH 10, and comprising 12500 LU/I of the lipolytic enzyme, the wash treatment being carried out for 20 minutes at a temperature of 30° C., followed by rinsing for 15 minutes in running tap water and overnight linedrying at room temperature, subsequent extraction and quantification of fatty matter on the swatches by Soxhlet extraction.
- 38. The lipolytic enzyme of claim 37, which exhibits lipolytic activity towards mono-, di- and/or triglycerides and/or cutin.
- 39. The lipolytic enzyme of claim 37, which is a variant of a parent lipolytic enzyme which comprises at least 1 mutation as compared to the parent enzyme.
- 40. The lipolytic enzyme of claim 39, in which at least one neutral amino acid residue of the parent enzyme has been replaced with a positively charged amino acid residue, at least one negatively charged amino acid residue has been deleted, or at least one negatively charged amino acid residue has been replaced with a neutral or positively charged amino acid residue.
- 41. The lipolytic enzyme of claim 39, wherein the parent enzyme is the lipolytic enzyme from Humicola lanuginosa strain DSM 4109.
- 42. The lipolytic enzyme of claim 37, which further comprises a peptide addition within or at its N-terminal and/or C-terminal end or which comprises a mutation in the non-structural part of the N-terminal and/or C-terminal end of the mature form of the enzyme.
- 43. A DNA sequence encoding a modified enzyme exhibiting lipolytic activity of claim 1, provided that the part of the DNA sequence encoding the peptide addition is different from the DNA sequence which it is normally associated with, and encodes the pro-form or prepro-form of, the parent enzyme.
- 44. A DNA sequence encoding a modified enzyme exhibiting lipolytic activity of claim 36.
- 45. A recombinant vector or transformation vehicle comprising the DNA sequence of claim 44.
- 46. The vector of claim 45, which is a plasmid or a bacteriophage.
- 47. The vector of claim 45, which is an expression vector further comprising DNA sequences permitting expression of the enzyme.
- 48. A host cell harboring a DNA sequence of claim 43.
- 49. The host cell of claim 48, which is a filamentous fungal, a yeast or a bacterial cell.
- 50. The host cell of claim 49, which is a cell of the genus Aspergillus, Fusarium or Saccharomyces.
- 51. The host cell of claim 49, which is a cell of the genus Bacillus, the genus Streptomyces, the genus Pseudomonas or of E. coli.
- 52. The host cell of claim 48, which has been modified so as to have a reduced production of one or more proteolytic enzymes compared to the unmodified host cell, e.g. a host cell which has been made deficient in one or more proteolytic enzymes.
- 53. A process for preparing a modified lipolytic enzyme comprising
(a) cultivating a host cell of claim 48 under conditions conducive for the production of the modified enzyme, and (b) recovering and optionally purifying the resulting enzyme.
- 54. The method of claim 53, wherein the host cell, the cultivation conditions and/or recovery conditions being selected so that at least 5% of the produced modified enzyme comprises the peptide addition encoded by the peptide addition.
- 55. A method of improving the wash performance of a parent lipolytic enzyme, which method comprises applying a peptide addition to the N-terminus and/or the C-terminus of the parent enzyme in its mature form with the exception of the following peptide additions:
(a) Lys-Lys-Thr-Ala-IIe-Ala-Val-Leu-Ala-Gly-Phe-Ala-Thr-Val-Ala-Gln-Ala, (b) Gly-Lys-Ala-IIe-Phe-Ala-IIe-Phe-Ala-IIe-Ala-IIe-Ala-Gly-Thr, and (c) Gly-Lys-Ala-Leu-Ala-Leu-Ala-Leu-Ala-Leu-Phe-Val-Ala-Gly-Thr.
- 56. The method of claim 55, wherein the peptide addition is applied to the parent enzyme by cultivating a host cell comprising a DNA sequence encoding the pre, pro or prepro-form of the parent lipolytic enzyme, the DNA sequence optionally being present on a vector, and recovering the resulting modified lipolytic enzyme, the host cell, cultivation conditions and/or recovery conditions being selected so that at the most a partial processing of the pre, pro or prepro-form of the parent enzyme has occurred resulting in that at least 5% of the produced modified enzyme molecules comprises the desired peptide addition, e.g. the entire pro-sequence or a substantial part thereof.
- 57. The method of claim 55, wherein the peptide addition is applied to the parent enzyme by cultivation of a host cell of claim 48, and recovering the resulting modified lipolytic enzyme, the host cell, cultivation conditions and/or recovery conditions being selected so that at least 5% of the produced modified enzyme comprises the peptide addition encoded by the peptide addition.
- 58. The method of claim 57, wherein the host cell is of a different origin than the parent enzyme, e.g. of another genus than the one from which the parent enzyme is derived, or has another post-translational processing machinery than the source of the parent enzyme.
- 59. The method of claim 58, wherein the parent lipolytic enzyme is derived from a filamentous fungus or a bacterium and the host cell is a yeast cell.
- 60. The method of claim 59, wherein the parent lipolytic enzyme is derived from a strain of a Humicola sp., such as H. lanuginosa or from a strain of a Pseudomonas sp.
- 61. The method of claim 57, wherein the host cell is a yeast cell of the genus Saccharomyces or the genus Hansenula.
- 62. The method of claim 55, wherein the inherent proteolytic enzyme producing capability of the host cell used for applying the peptide addition to the parent lipolytic enzyme has been reduced, e.g. by abolishing the production of one or more proteolytic enzymes by the host cell.
- 63. A method of claim 55, comprising
(a) subjecting a DNA sequence encoding the parent lipolytic enzyme with a peptide addition, of claim 1, to localized random mutagenesis in the part of the DNA sequence encoding the peptide addition or a non-structural part of the C-terminal or N-terminal end of the parent enzyme, (b) expressing the mutated DNA sequence obtained in step a) in a host cell, and (c) screening for host cells expressing a mutated lipolytic enzyme which has an improved performance as compared to the parent lipolytic enzyme.
- 64. The method of claim 63, wherein the DNA sequence is the gene or cDNA sequence encoding the parent enzyme in its pro or prepro form.
- 65. The method of claim 55, which further involves introducing a mutation in a non-structural part of the C-terminus or N-terminus of the parent enzyme in its mature form.
- 66. The method of claim 65, wherein the mutation involves deleting or replacing a negatively charged amino acid residue of the non-structural part with a neutral or positively charged amino acid residue or with a hydrophobic amino acid residue, or replacing a neutral amino acid residue with a positively charged amino acid residue.
- 67. A detergent composition comprising a surfactant and a modified enzyme with lipolytic activity which compared to its parent enzyme has a peptide addition at its C-terminus and/or at its N-terminus.
- 68. A detergent composition comprising a surfactant and a modified lipolytic enzyme of claim 36.
- 69. The composition of claim 67, which contains between 0.02 and 200 mg of modified lipolytic enzyme protein/g detergent composition.
- 70. The composition of claim 67, wherein more than 5% of the modified lipolytic enzyme in the composition has a full length peptide addition.
- 71. The composition of claim 67, which further comprises an enzyme selected from the group of proteases, cellulases, peroxidases, cutinases, amylases and lipases.
- 72. A detergent additive in the form of a non-dusting granulate, stabilized liquid or protected enzyme comprising a modified enzyme with lipolytic activity which compared to its parent enzyme has a peptide addition at its C-terminus and/or at its N-terminus.
- 73. A detergent additive in the form of a non-dusting granulate, stabilized liquid or protected enzyme comprising a modified lipolytic enzyme of claim 36.
- 74. The detergent additive of claim 72 which contains 0.02-200 mg of enzyme protein/g of the additive.
- 75. A method of preparing a modified lipolytic enzyme, which method comprises at least the following steps:
(a) subjecting a DNA sequence encoding a parent lipolytic enzyme to mutagenesis to form a variety of mutated DNA sequences; (b) expressing the mutated DNA sequences in host cells; (c) screening for host cells expressing a mutated lipolytic enzyme which has a decreased dependence on calcium and/or an improved tolerance towards a detergent or a detergent component as compared to the parent lipolytic enzyme; and (d) selecting a mutated lipolytic enzyme among those resulting from step (c) which, when present in detergent composition A or B, is capable of removing at least 15% more lard from a lard stained swatch, than the same detergent composition without the enzyme, in a one cycle wash assay comprising subjecting 7 lard-stained cotton swatches (9×9 cm) per beaker to a one cycle wash in a thermostated TOM, each beaker containing 1000 ml of water comprising 3.2 mM Ca2+/Mg2+ (in a ratio of 5:1) and 5 g/l of said detergent composition, adjusted to pH 10, and comprising 12500 LU/I of the lipolytic enzyme, for 20 minutes at a temperature of 30° C., followed by rinsing for 15 minutes in running tap water and overnight linedrying at room temperature, subsequent extraction and quantification of fatty matter from the resulting swatches by Soxhlet extraction.
- 76. The method of claim 75, wherein the mutagenesis of step (a) is a localized random mutagenesis performed in the lipid contact zone or in any peptide addition present at the N-terminal and/or C-terminal of the parent lipolytic enzyme.
- 77. A method of claim 75, wherein steps (a), (b), (c) and/or (d) are repeated one or more times.
- 78. A method of preparing a modified lipolytic enzyme, which method comprises at least the following steps:
(a) constructing mutated DNA sequences by combining i) a DNA sequence encoding a first parent lipolytic enzyme or a part of said DNA sequence and ii) a DNA sequence encoding a second parent lipolytic enzyme or a part of said DNA sequence and optionally iii) further DNA sequences encoding a third (and optionally further) parent lipolytic enzymes or a part of said DNA sequence(s), the DNA sequences to be combined being sufficiently homologous to allow for homologous recombination between the sequences to take place, (b) expressing the resulting mutated DNA sequences in host cells, and (c) selecting a mutated lipolytic enzyme among those resulting from step (b) which, when present in detergent composition A and/or B is capable of removing at least 15% more lard from a lard stained swatch, than the same detergent composition without the enzyme, in a one cycle wash assay comprising subjecting 7 lard-stained cotton swatches (9×9 cm) per beaker to a one cycle wash in a thermostated TOM, each beaker containing 1000 ml of water comprising 3.2 mM Ca2+/Mg2+ (in a ratio of 5:1) and 5 g/l of said detergent composition, adjusted to pH 10, and comprising 12500 LU/I of the lipolytic enzyme, for 20 minutes at a temperature of 30° C., followed by rinsing for 15 minutes in running tap water and overnight linedrying at room temperature, subsequent extraction and quantification of fatty matter from the resulting swatches by Soxhlet extraction.
- 79. The method of claim 78, wherein prior to step (c) a screening is made for host cells expressing a mutated lipolytic enzyme which has a decreased dependence on calcium and/or an improved tolerance towards a detergent or a detergent component as compared to any of the parent lipolytic enzymes.
- 80. The method of claim 78, wherein one or more of the homologous DNA sequences i)-iii) used for constructing the mutated DNA sequence of step (a) have been prepared by
(a) subjecting a DNA sequence encoding a parent lipolytic enzyme to mutagenesis to form a variety of mutated DNA sequences; (b) expressing the mutated DNA sequences in host cells; (c) screening for host cells expressing a mutated lipolytic enzyme which has a decreased dependence on calcium and/or an improved tolerance towards a detergent or a detergent component as compared to the parent lipolytic enzyme; and optionally (d) selecting a mutated lipolytic enzyme among those resulting from step (c) which, when present in detergent composition A or B, is capable of removing at least 15% more lard from a lard stained swatch, than the same detergent composition without the enzyme, in a one cycle wash assay comprising subjecting 7 lard-stained cotton swatches (9×9 cm) per beaker to a one cycle wash in a thermostated TOM, each beaker containing 1000 ml of water comprising 3.2 mM Ca2+/Mg2+ (in a ratio of 5:1) and 5 g/l of said detergent composition, adjusted to pH 10, and comprising 12500 LU/I of the lipolytic enzyme, for 20 minutes at a temperature of 30° C., followed by rinsing for 15 minutes in running tap water and overnight linedrying at room temperature, subsequent extraction and quantification of fatty matter from the resulting swatches by Soxhlet extraction.
- 81. The method of claim 78, wherein the parent lipolytic enzymes encoded by the homologous DNA sequences i), ii) and iii) constitute different variants of the same naturally occurring lipolytic enzyme.
- 82. The method of claim 78, wherein the parent lipolytic enzyme is derived from a fungus, such as from H. lanuginosa, or from a bacterium, such as a Pseudomonas sp.
- 83. The method of claim 78, wherein the combination of DNA sequences is performed by sexual PCR or gene shuffling.
- 84. The method of claim 78, which comprises an additional step involving culturing a suitable host organism comprising a DNA sequence encoding the first wash mutated lipolytic enzyme selected in step (d) under suitable conditions for expressing the enzyme and recovering the expressed enzyme from the culture medium.
- 85. A modified lipolytic enzyme constructed or produced by the method of claim 75.
- 86. A DNA sequence encoding a lipolytic enzyme, which is isolated from the host cell screened in the method of claim 75.
- 87. A method of producing a lipolytic enzyme, which method comprises preparing a variant lipolytic enzyme in accordance with the method of claim 78 and recovering the lipolytic enzyme variant from the host cell screened in step (c).
Priority Claims (7)
Number |
Date |
Country |
Kind |
0832/95 |
Jul 1995 |
DK |
|
0905/95 |
Aug 1995 |
DK |
|
1013/95 |
Sep 1995 |
DK |
|
1096/95 |
Sep 1995 |
DK |
|
1306/95 |
Nov 1995 |
DK |
|
0372/96 |
Apr 1996 |
DK |
|
0374/96 |
Apr 1996 |
DK |
|
CROSS-REFERENCE TO RELATED APPICATIONS
[0001] This application is a continuation of U.S. Ser. No. 09/007,288 filed on Jan. 4, 1998, which is a continuation-in-part of application serial nos. WO 97/04079 and WO 97/07202, filed on Jul. 12, 1996 and Aug. 12, 1996, respectively, in which application serial no. WO 97/04079 claims priority of U.S. provisional application Nos. 60/011,634 and 60/020,461, filed on Feb. 14, 1996 and May 7, 1996, respectively, and Danish application nos. 0832/95, 1013/95, 1096/95, 1306/95, and 0372/96, filed on Jul. 14, 1995, Sep. 13, 1995, Sep. 29, 1995, Nov. 21, 1995 and Apr. 1, 1996, respectively, and in which application serial no. WO 97/07202, claims priority from U.S. provisional application Nos. 60/011,627 and 60/016,754, filed on Feb. 14, 1996 and May 7, 1996, respectively, and Danish application nos. 0905/95,1096/95, and 0374/96 filed on Aug. 11, 1995, Sep. 29, 1995, and Apr. 1, 1996, respectively, the contents of which are fully incorporated herein by reference.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60011634 |
Feb 1996 |
US |
|
60020461 |
May 1996 |
US |
|
60011627 |
Feb 1996 |
US |
|
60016754 |
May 1996 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09007288 |
Jan 1998 |
US |
Child |
10232544 |
Aug 2002 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
PCT/DK96/00341 |
Aug 1996 |
US |
Child |
09007288 |
Jan 1998 |
US |
Parent |
PCT/DK96/00322 |
Jul 1996 |
US |
Child |
09007288 |
Jan 1998 |
US |