Experiment set6IT020 for Marinobacter adhaerens HP15

Compare to:

Tween 20

Group: carbon source
Media: DinoMM_noCarbon_HighNutrient + Tween 20 (1 vol%), pH=7
Culturing: Marino_ML2, tube, Aerobic, at 30 (C), shaken=200 rpm
Growth: about 4.7 generations
By: Adam on 3/4/2014
Media components: 20 g/L Sea salts, 0.3 g/L Ammonium Sulfate, 0.1 g/L Potassium phosphate monobasic, Wolfe's mineral mix (0.03 g/L Magnesium Sulfate Heptahydrate, 0.015 g/L Nitrilotriacetic acid, 0.01 g/L Sodium Chloride, 0.005 g/L Manganese (II) sulfate monohydrate, 0.001 g/L Cobalt chloride hexahydrate, 0.001 g/L Zinc sulfate heptahydrate, 0.001 g/L Calcium chloride dihydrate, 0.001 g/L Iron (II) sulfate heptahydrate, 0.00025 g/L Nickel (II) chloride hexahydrate, 0.0002 g/L Aluminum potassium sulfate dodecahydrate, 0.0001 g/L Copper (II) sulfate pentahydrate, 0.0001 g/L Boric Acid, 0.0001 g/L Sodium Molybdate Dihydrate, 0.003 mg/L Sodium selenite pentahydrate), Wolfe's vitamin mix (0.1 mg/L Pyridoxine HCl, 0.05 mg/L 4-Aminobenzoic acid, 0.05 mg/L Lipoic acid, 0.05 mg/L Nicotinic Acid, 0.05 mg/L Riboflavin, 0.05 mg/L Thiamine HCl, 0.05 mg/L calcium pantothenate, 0.02 mg/L biotin, 0.02 mg/L Folic Acid, 0.001 mg/L Cyanocobalamin)

Specific Phenotypes

For 5 genes in this experiment

For carbon source Tween 20 in Marinobacter adhaerens HP15

For carbon source Tween 20 across organisms

SEED Subsystems

Subsystem #Specific
Acetyl-CoA fermentation to Butyrate 1
Branched-Chain Amino Acid Biosynthesis 1
Butanol Biosynthesis 1
Isoleucine degradation 1
Leucine Biosynthesis 1
Polyhydroxybutyrate metabolism 1
Valine degradation 1
n-Phenylalkanoic acid degradation 1

Metabolic Maps

Color code by fitness: see overview map or list of maps.

Maps containing gene(s) with specific phenotypes:

MetaCyc Pathways

Pathways that contain genes with specific phenotypes:

Pathway #Steps #Present #Specific
benzoyl-CoA biosynthesis 3 3 3
fatty acid β-oxidation III (unsaturated, odd number) 1 1 1
oleate β-oxidation 35 30 27
fatty acid β-oxidation I (generic) 7 5 5
fatty acid salvage 6 6 4
2-methyl-branched fatty acid β-oxidation 14 10 9
adipate degradation 5 5 3
fatty acid β-oxidation IV (unsaturated, even number) 5 4 3
glutaryl-CoA degradation 5 3 3
fatty acid β-oxidation II (plant peroxisome) 5 3 3
valproate β-oxidation 9 6 5
pyruvate fermentation to hexanol (engineered) 11 8 6
oleate β-oxidation (thioesterase-dependent, yeast) 2 2 1
L-isoleucine degradation I 6 5 3
pyruvate fermentation to butanol II (engineered) 6 4 3
propanoate fermentation to 2-methylbutanoate 6 3 3
acetoacetate degradation (to acetyl CoA) 2 1 1
(8E,10E)-dodeca-8,10-dienol biosynthesis 11 6 5
fatty acid β-oxidation VI (mammalian peroxisome) 7 4 3
pyruvate fermentation to butanoate 7 4 3
(R)- and (S)-3-hydroxybutanoate biosynthesis (engineered) 5 5 2
adipate biosynthesis 5 4 2
5,6-dehydrokavain biosynthesis (engineered) 10 6 4
fatty acid β-oxidation V (unsaturated, odd number, di-isomerase-dependent) 5 3 2
9-cis, 11-trans-octadecadienoyl-CoA degradation (isomerase-dependent, yeast) 10 4 4
4-hydroxybenzoate biosynthesis III (plants) 5 2 2
pyruvate fermentation to butanol I 8 4 3
superpathway of Clostridium acetobutylicum acidogenic fermentation 9 6 3
ketolysis 3 2 1
polyhydroxybutanoate biosynthesis 3 2 1
methyl ketone biosynthesis (engineered) 6 3 2
benzoate biosynthesis I (CoA-dependent, β-oxidative) 9 3 3
oleate β-oxidation (reductase-dependent, yeast) 3 1 1
L-glutamate degradation V (via hydroxyglutarate) 10 5 3
3-phenylpropanoate degradation 10 3 3
benzoyl-CoA degradation I (aerobic) 7 3 2
L-valine degradation I 8 7 2
(2S)-ethylmalonyl-CoA biosynthesis 4 3 1
L-glutamate degradation VII (to butanoate) 12 4 3
2-methylpropene degradation 8 2 2
oleate β-oxidation (isomerase-dependent, yeast) 4 1 1
superpathway of Clostridium acetobutylicum solventogenic fermentation 13 6 3
phenylacetate degradation I (aerobic) 9 9 2
superpathway of glyoxylate cycle and fatty acid degradation 14 11 3
ketogenesis 5 3 1
fatty acid β-oxidation VII (yeast peroxisome) 5 2 1
isopropanol biosynthesis (engineered) 5 2 1
pyruvate fermentation to acetone 5 2 1
L-tryptophan degradation III (eukaryotic) 15 5 3
androstenedione degradation I (aerobic) 25 6 5
methyl tert-butyl ether degradation 10 2 2
ethylbenzene degradation (anaerobic) 5 1 1
benzoate biosynthesis III (CoA-dependent, non-β-oxidative) 5 1 1
glycerol degradation to butanol 16 10 3
crotonate fermentation (to acetate and cyclohexane carboxylate) 16 5 3
superpathway of phenylethylamine degradation 11 10 2
superpathway of testosterone and androsterone degradation 28 6 5
superpathway of Clostridium acetobutylicum acidogenic and solventogenic fermentation 17 8 3
benzoate fermentation (to acetate and cyclohexane carboxylate) 17 5 3
L-leucine biosynthesis 6 6 1
3-hydroxypropanoate/4-hydroxybutanate cycle 18 8 3
6-gingerol analog biosynthesis (engineered) 6 2 1
4-ethylphenol degradation (anaerobic) 6 2 1
toluene degradation VI (anaerobic) 18 4 3
superpathway of cholesterol degradation I (cholesterol oxidase) 42 8 7
10-trans-heptadecenoyl-CoA degradation (reductase-dependent, yeast) 12 2 2
10-cis-heptadecenoyl-CoA degradation (yeast) 12 2 2
10-trans-heptadecenoyl-CoA degradation (MFE-dependent, yeast) 6 1 1
jasmonic acid biosynthesis 19 4 3
(4Z,7Z,10Z,13Z,16Z)-docosapentaenoate biosynthesis (6-desaturase) 13 2 2
superpathway of cholesterol degradation II (cholesterol dehydrogenase) 47 9 7
androstenedione degradation II (anaerobic) 27 4 4
3-methylbutanol biosynthesis (engineered) 7 6 1
acetyl-CoA fermentation to butanoate 7 5 1
docosahexaenoate biosynthesis III (6-desaturase, mammals) 14 2 2
mevalonate pathway II (haloarchaea) 7 1 1
mevalonate pathway I (eukaryotes and bacteria) 7 1 1
Spodoptera littoralis pheromone biosynthesis 22 4 3
2-deoxy-D-ribose degradation II 8 3 1
mevalonate pathway III (Thermoplasma) 8 1 1
isoprene biosynthesis II (engineered) 8 1 1
mevalonate pathway IV (archaea) 8 1 1
cholesterol degradation to androstenedione I (cholesterol oxidase) 17 2 2
platensimycin biosynthesis 26 7 3
1-butanol autotrophic biosynthesis (engineered) 27 19 3
4-oxopentanoate degradation 9 4 1
L-lysine fermentation to acetate and butanoate 10 4 1
superpathway of geranylgeranyldiphosphate biosynthesis I (via mevalonate) 10 4 1
ethylmalonyl-CoA pathway 11 3 1
gallate degradation III (anaerobic) 11 3 1
cholesterol degradation to androstenedione II (cholesterol dehydrogenase) 22 3 2
superpathway of cholesterol degradation III (oxidase) 49 5 4
photosynthetic 3-hydroxybutanoate biosynthesis (engineered) 26 20 2
superpathway of branched chain amino acid biosynthesis 17 17 1
sitosterol degradation to androstenedione 18 1 1
superpathway of ergosterol biosynthesis I 26 3 1
superpathway of cholesterol biosynthesis 38 3 1
superpathway of L-lysine degradation 43 12 1
Methanobacterium thermoautotrophicum biosynthetic metabolism 56 20 1