Claims
- 1. A method for the production of C30-aldehyde carotenoid compounds comprising:
(a) providing a transformed host cell comprising:
(i) suitable levels of farnesyl pyrophosphate; (ii) at least one isolated nucleic acid molecule encoding an enzyme having diapophytoene synthase activity under the control of suitable regulatory sequences; (iii) at least one isolated nucleic acid molecule encoding an enzyme having diapophytoene desaturase activity under the control of suitable regulatory sequences; and (iv) at least one isolated nucleic acid molecule encoding an enzyme having the ability to introduce an omega-aldehyde functional group on the omega carbon of a conjugated polyene carbon skeleton under the control of suitable regulatory sequences; (b) contacting the host cell of step (a) under suitable growth conditions with an effective amount of fermentable carbon substrate whereby a C30-aldehyde carotenoid compound is produced.
- 2. The method of claim 1, wherein the isolated nucleic acid molecule encoding an enzyme having diapophytoene synthase activity is selected from the group consisting of:
(a) An isolated nucleic acid molecule encoding the amino acid sequence as set forth in SEQ ID NO:2; (b) An isolated nucleic acid molecule encoding the amino acid sequence as set forth in SEQ ID NO:10; (c) An isolated nucleic acid molecule that hybridizes with (a) or (b) under the following hybridization conditions: 0.1×SSC, 0.1% SDS, 65° C. and washed with 2×SSC, 0.1% SDS followed by 0.1×SSC, 0.1% SDS; (d) An isolated nucleic acid molecule comprising a first nucleotide sequence encoding a polypeptide of at least 363 amino acids that has at least 60% identity based on the Smith-Waterman method of alignment when compared to a polypeptide having the sequence as set forth in SEQ ID NO:2; and (e) an isolated nucleic acid molecule that is complementary to (a), (b), (c), or (d).
- 3. The method of claim 1, wherein the isolated nucleic acid molecule encoding an enzyme having diapophytoene desaturase activity is selected from the group consisting of:
(a) An isolated nucleic acid molecule encoding the amino acid sequence as set forth in SEQ ID NO:4; (b) An isolated nucleic acid molecule encoding the amino acid sequence as set forth in SEQ ID NO:12; (c) An isolated nucleic acid molecule that hybridizes with (a) or (b) under the following hybridization conditions: 0.1×SSC, 0.1% SDS, 65° C. and washed with 2×SSC, 0.1% SDS followed by 0.1×SSC, 0.1% SDS; (d) An isolated nucleic acid molecule comprising a first nucleotide sequence encoding a polypeptide of at least 511 amino acids that has at least 34% identity based on the Smith-Waterman method of alignment when compared to a polypeptide having the sequence as set forth in SEQ ID NO:4; and (e) an isolated nucleic acid molecule that is complementary to (a), (b), (c), or (d).
- 4. The method of claim 1, wherein the isolated nucleic acid molecule encoding an enzyme having the ability to introduce an omega-aldehyde functional group on the omega carbon of a conjugated polyene carbon skeleton is selected from the group consisting of:
(a) An isolated nucleic acid molecule encoding the amino acid sequence as set forth in SEQ ID NO:8; (b) An isolated nucleic acid molecule encoding the amino acid sequence as set forth in SEQ ID NO:14; (c) An isolated nucleic acid molecule that hybridizes with (a) or (b) under the following hybridization conditions: 0.1×SSC, 0.1% SDS, 65° C. and washed with 2×SSC, 0.1% SDS followed by 0.1×SSC, 0.1% SDS; (d) An isolated nucleic acid molecule comprising a first nucleotide sequence encoding a polypeptide of at least 497 amino acids that has at least 51% identity based on the Smith-Waterman method of alignment when compared to a polypeptide having the sequence as set forth in SEQ ID NO:8; (e) An isolated nucleic acid molecule comprising a first nucleotide sequence encoding a polypeptide of at least 497 amino acids that has at least 55% identity based on the Smith-Waterman method of alignment when compared to a polypeptide having the sequence as set forth in SEQ ID NO:14; (f) an isolated nucleic acid molecule that is complementary to (a), (b), (c), (d), or (e).
- 5. The method of claim 1, wherein:
(a) The diapophytoene synthase is selected from the group consisting of SEQ ID NOs: 2 and 10; (b) The diapophytoene desaturase is selected from the group consisting of SEQ ID NOs:4 and 12; and (c) The enzyme introducing an omega-aldehyde functional group is selected from the group consisting of SEQ ID NOs:8 and 14.
- 6. The method of claim 5, wherein:
(a) The diapophytoene synthase has the amino acid sequence is set forth in SEQ ID NO:10; and (b) The enzyme introducing an omega-aldehyde functional group as the amino acid sequence is set forth in SEQ ID NO:8.
- 7. A method according to claim 1 wherein the C30-aldehyde carotenoid compound is selected form the group consisting of: diaponeurosporene monoaldehyde, diapocarotene monoaldehyde, diapocarotene dialdehyde and functional derivatives thereof.
- 8. A method for the production of diapocarotene dialdehyde, comprising:
(a) providing a transformed host cell comprising:
(i) suitable levels of farnesyl pyrophosphate; (ii) an isolated nucleic acid molecule encoding an enzyme having diapophytoene synthase activity under the control of suitable regulatory sequences, wherein the amino acid sequence of the diapophytoene synthase is set forth in SEQ ID NO:10; (iii) a pair of isolated nucleic acid molecules encoding enzymes having diapophytoene desaturase activity under the control of suitable regulatory sequences, wherein the amino acid sequences of the diapophytoene desaturases are set forth in SEQ ID NOs: 4 and 12; and (iv) an isolated nucleic acid molecule encoding an enzyme having the ability to introduce an omega-aldehyde functional group on the omega carbon of a conjugated polyene carbon skeleton under the control of suitable regulatory sequences, wherein the amino acid sequence of the omega-aldehyde introducing enzyme is set forth in SEQ ID NO:8; and (b) contacting the host cell of step (a) under suitable growth conditions with an effective amount of fermentable carbon substrate whereby diapocarotene dialdehyde is produced.
- 9. A method according to claims 1 or 8 wherein the suitable levels of farnesyl pyrophosphate are provided by the over-expression of heterologous upper pathway isoprenoid pathway genes.
- 10. A method according to claim 9 wherein said upper pathway isoprenoid genes are selected from the group consisting of D-1-deoxyxylulose-5-phosphate synthase (dxs), D-1-deoxyxylulose-5-phosphate reductoisomerase (dxr), 2C-methyl-D-erythritol cytidylyltransferase (ispD), 4-diphosphocytidyl-2-C-methylerythritol kinase (ispE), 2C-methyl-d-erythritol 2,4-cyclodiphosphate synthase (ispF), CTP synthase (pyrG), IytB, gcpE, idi, and farnesyl diphosphate synthase (ispA).
- 11. A method according to claim 10 wherein said over-expressed upper pathway isoprenoid genes are dxs and idi and wherein said over-expression is the result of up-regulating the promoter activity upstream of each gene.
- 12. The method according to claims 1 or 8 wherein the host cell is selected from the group consisting of bacteria, yeast, filamentous fungi, algae, and green plants.
- 13. The method according to claim 12, wherein the transformed host cell is selected from the group consisting of Aspergillus, Trichoderma, Saccharomyces, Phaffia, Pichia, Candida, Rhodotorula, Rhodosporidium, Hansenula, Salmonella, Bacillus, Acinetobacter, Zymomonas, Agrobacterium, Erythrobacter, Chlorobium, Chromatium, Flavobacterium, Cytophaga, Rhodobacter, Rhodococcus, Streptomyces, Brevibacterium, Corynebacteria, Mycobacterium, Deinococcus, Escherichia, Erwinia, Pantoea, Pseudomonas, Sphingomonas, Methylomonas, Methylobacter, Methylococcus, Methylosinus, Methylomicrobium, Methylocystis, Methylobacterium, Alcaligenes, Synechocystis, Synechococcus, Anabaena, Thiobacillus, Methanobacterium, Klebsiella, Myxococcus, and Staphylococcus.
- 14. The method according to claim 13, wherein the transformed host cell is Escherichia coli.
- 15. The method according to claim 12, wherein the transformed host cell is selected from the group consisting of soybean, rapeseed (Brassica napus, B. campestris), pepper, sunflower (Helianthus annus), cotton (Gossypium hirsutum), corn, tobacco (Nicotiana tabacum), alfalfa (Medicago sativa), wheat (Triticum sp.), barley (Hordeum vulgare), oats (Avena sativa, L), sorghum (Sorghum bicolor), rice (Oryza sativa), Arabidopsis, cruciferous vegetables, melons, carrots, celery, parsley, tomatoes, potatoes, strawberries, peanuts, grapes, grass seed crops, sugar beets, sugar cane, beans, peas, rye, flax, hardwood trees, softwood trees, marigold, and forage grasses.
- 16. The method according to claim 12, wherein the transformed host cell is selected from the group consisting of Spirulina, Haemotacoccus, and Dunalliela.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/475,743 filed Jun. 4, 2003.
Provisional Applications (1)
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Number |
Date |
Country |
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60475743 |
Jun 2003 |
US |