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Biomedical subjects

T W Goodwin

Publications and source records attributed to T W Goodwin.

At least 73 records · Page 4Linked to original sources

Biosynthesis of phytoquinones. Incorporation of L-[Me-14C,3H]methionine into terpenoid quinones and chromanols in maize shoots.

1. Radioactivity from l-[Me-(14)C,(3)H]methionine is incorporated into phylloquinone, plastoquinone, gamma-tocopherol, alpha-tocopherol, alpha-tocopherolquinone and ubiquinone in maize shoots. 2. Comparative studies with other terpenoids (squalene and beta-carotene) and chemical degradation of selected quinones (ubiquinone and plastoquinone) established that all the radioactivity is confined to nuclear methyl substituents. 3. In ubiquinone 76% of the radioactivity is in the methoxyl groups and 24% in the ring C-methyl group. 4. Taking the phytosterols as an internal reference and accepting the atomic ratio of (14)C/(3)H transferred from l-[Me-(14)C,(3)H]methionine to the supernumerary group at C(24) to be 1:2 the ratio of all the quinones and chromanols examined approached 1:3. After allowing for the fact that for plastoquinone, gamma-tocopherol, alpha-tocopherol and alpha-tocopherolquinone one nuclear methyl group is formed from the beta-carbon of tyrosine, these results show that one nuclear C-methyl group for phylloquinone, plastoquinone and gamma-tocopherol, two nuclear methyl groups for alpha-tocopherol and alpha-tocopherolquinone and one nuclear methyl and two methoxyl groups for ubiquinone are formed by the transfer of intact methyl groups from methionine. 5. From a comparison of the incorporation of (14)C radioactivity into these compounds it would appear that the methylation reactions involved in phylloquinone and plastoquinone biosynthesis take place in the chloroplast, whereas those involved with ubiquinone biosynthesis occur else-where within the cell.

Carbon Isotopes↗

The biosynthesis of beta-amyrin. Mechanism of squalene cyclization.

1. beta-Amyrin synthesized by pea seedlings in the presence of (3RS)-[2-(14)C,(4R)-4-(3)H(1)]mevalonic acid (for nomenclature see Cahn, Ingold & Prelog, 1956) was subjected to a series of degradations to locate the positions within the molecule of the incorporated tritium. 2. The location of five of the six labelled hydrogen atoms at C-3, C-9, C-18 and C-19 (two) confirms that the mechanism of cyclization of squalene expected from the biogenetic isoprene rule is functioning in vivo.

Carbon Isotopes↗

Studies in phytosterol biosynthesis. Mechanism of biosynthesis of cycloartenol.

1. The mechanism of cycloartenol biosynthesis in leaves of Solanum tuberosum was investigated with the use of [2-(14)C,(4R)-4-(3)H(1)]mevalonic acid. 2. The (3)H/(14)C atomic ratio in cycloartenol was 6:6, the same as that in squalene; this eliminates lanosterol as a possible biosynthetic precursor of cycloartenol, and indicates that a hydrogen migration from C-9 to C-8 occurs. 3. Chemical isomerization of the cycloartenol to lanosterol ((3)H/(14)C ratio 5:6) and parkeol ((3)H/(14)C ratio 6:6) confirms the hydrogen migration from C-9 to C-8. 4. Possible mechanisms for the biosynthesis of cycloartenol and parkeol are discussed. 5. The (3)H/(14)C ratio for 24-methylenecycloartanol was 6:6, demonstrating that the hydrogen atom at C-24 is retained during alkylation of the cycloartenol side chain.

Carbon Isotopes↗

Nature, intracellular distribution and formation of terpenoid quinones in Euglena gracilis.

1. Light-grown cells of Euglena gracilis strain Z, var. bacillaris and 1224/5g contain phylloquinone, plastoquinone, alpha-tocopherol, alpha-tocopherolquinone and ubiquinone-9 (i.e. ubiquinone with 9 isoprene units/mol.). 2. The concentration (per g. dry wt.) of plastoquinone (and chlorophyll) in light-grown cells of strain Z was governed by the composition of the culture medium and age of the cells. Highest yields of plastoquinone were obtained under autotrophic conditions, the concentration reaching a maximum after 6-8 days' growth. The concentrations were less in heterotrophic media. The concentration of ubiquinone was relatively unaffected by the age of the cells or composition of the medium. 3. In light-grown cells of strain Z plastoquinone, alpha-tocopherolquinone and alpha-tocopherol were mainly localized in the chloroplast; ubiquinone was found to be in the mitochondria. 4. Etiolated (dark-grown) cells of strain Z contained no phylloquinone, plastoquinone or alpha-tocopherolquinone; alpha-tocopherol was present in lower concentrations compared with light-grown cells; ubiquinone concentrations were similar to those for light-grown cells. The presence of alpha-tocopherol in etiolated cells suggested that this chromanol was not entirely confined to the chloroplast. 5. On illumination of etiolated cells of strain Z the chloroplastidic components plastoquinone, alpha-tocopherolquinone and alpha-tocopherol were synthesized in step with chloroplast formation. Ubiquinone concentrations, as expected, were unaffected. 6. [2-(14)C]Mevalonic acid, the specific distal terpenoid precursor, was not incorporated into any of the terpenoid components examined. This was attributed to the impermeability of the cell wall to this compound, rather than to a novel pathway of terpenoid biosynthesis.

Bacteriological Techniques↗

Nature, intracellular distribution and formation of terpenoid quinones in maize and barley shoots.

1. Maize and barley shoots have been shown to contain phylloquinone, plastoquinone, alpha-tocopherol (and gamma-tocopherol in maize), alpha-tocopherolquinone and ubiquinone-9. 2. No solanesol was detected in any tissue examined. 3. In maize shoots plastoquinone and alpha-tocopherolquinone were localized in the chloroplast; ubiquinone was in the mitochondria. 4. Etiolated (dark-grown) shoots contained smaller amounts of phylloquinone and plastoquinone; alpha-tocopherolquinone was entirely absent; ubiquinone and alpha-tocopherol concentrations were unaffected. 5. On illumination of etiolated shoots the chloroplastidic quinones phylloquinone, plastoquinone and alpha-tocopherolquinone were synthesized in step with chloroplast development. alpha-Tocopherolquinone was not formed at the immediate expense of alpha-tocopherol.

Carotenoids↗

Biosynthesis of the prenyl side chains of plastoquinone and related compounds in maize and barley shoots.

The incorporation of (14)C by etiolated maize and barley shoots exposed to light of (14)CO(2) and [2-(14)C]mevalonic acid into phylloquinone, plastoquinone, ubiquinone, alpha-tocopherolquinone and alpha-tocopherol was examined. In maize (the principal tissue studied) it was demonstrated that (14)C from [2-(14)C]mevalonic acid is incorporated into phylloquinone, plastoquinone and ubiquinone. alpha-Tocopherol and alpha-tocopherolquinone, although undoubtedly labelled from this substrate, were not purified completely. As expected, (14)C from (14)CO(2) was incorporated into all components examined. Ozonolytic degradation studies showed that (14)C from [2-(14)C]mevalonic acid was incorporated specifically into the prenyl side chains of plastoquinone and ubiquinone, and from this it was inferred that mevalonic acid can be regarded as the specific distal precursor to the prenyl portions of all terpenoid quinones occurring in plant tissues. From a comparison of the relative incorporation of (14)C from (14)CO(2) and [2-(14)C]mevalonic acid into the intra- and extra-chloroplastidic terpenoids evidence was obtained consistent with the tenet that the prenyl portions of the chloroplastidic quinones phylloquinone and plastoquinone, along with beta-carotene, are biosynthesized within the confines of the chloroplast, the side chain of the extraplastidic ubiquinone and phytosterols being synthesized elsewhere within the cell. The results obtained for the incorporation of (14)C from (14)CO(2) and [2-(14)C]mevalonic acid into alpha-tocopherol and alpha-tocopherolquinone were not readily interpretable with regard to the site of synthesis of these compounds.

Carbon Dioxide↗

The stereospecific biosynthesis of phytoene and polyunsaturated carotenes.

1. The incorporation of [2-(14)C,(5R)-5-(3)H(1)]mevalonic acid and [2-(14)C,5-(3)H(2)]-mevalonic acid into phytoene, phytofluene, zeta-carotene, neurosporene, alpha-, beta-, gamma- and delta-carotene and lycopene by slices of fruit from two tomato mutants (delta and tangerine) and into alpha- and beta-carotene by bean leaves has been studied. 2. In the formation of phytoene, all the pro-R-hydrogen atoms from C-5 of mevalonic acid are retained whereas two pro-S-hydrogen atoms are lost. 3. Possible mechanisms for the condensation of two molecules of all-trans-geranylgeranyl pyrophosphate are outlined. 4. In each dehydrogenation step from phytoene to the fully unsaturated carotenes, one pro-R-hydrogen atom from C-5 of mevalonic acid is lost, indicating that the sequential dehydrogenation is stereospecific and in the same sense at each step.

Binding Sites↗

Incorporation of DL-[2-14C]mevalonic acid lactone into beta-carotene and the phytol side chain of chlorophyll in cotyledons of four species of pine seedlings.

1. The incorporation of dl-[2-(14)C]mevalonic acid lactone into beta-carotene and the phytol side chain of chlorophyll has been investigated in cotyledons of four species of pine seedlings (Pinus silvestris, P. contorta, P. radiata and P. jeffrei) grown in darkness and in light. 2. The relative incorporation of label into beta-carotene and the phytol side chain of chlorophyll is similar to that observed in experiments on monocotyledons and dicotyledons. 3. The relative incorporation of (14)CO(2) into beta-carotene and phytol is much higher than the incorporation of [2-(14)C]mevalonic acid.

Carbon Dioxide↗

The biosynthesis of cyclic carotenes.

1. The incorporation of (3RS)-[2-(14)C,(4R)-4-(3)H(1)]mevalonic acid into various cyclic carotenes in the fruit of the tomato mutant delta has been studied. The results confirm our previous view that the alpha-ionone ring of alpha-carotene does not arise by isomerization of a beta-ionone residue, and show that the same is also true for the alpha-ionone ring of delta- and in-carotene and alpha-zeacarotene. 2. The incorporation of (3RS)-[2-(14)C,2-(3)H(2)]mevalonic acid into alpha- and beta-carotene in carrot roots has been studied. The results show that the beta-ionone ring of beta-carotene does not arise by isomerization of the alpha-ionone residue of alpha-carotene. 3. These experiments show that alpha- and beta-ionone rings in cyclic carotenes are formed independently, probably by elimination of different protons from the same carbonium ion intermediates.

Carbon Isotopes↗

Observations on the biosynthesis of phytoterpenoid quinone and chromanol nuclei.

1. p-Hydroxy[U-(14)C]benzoic acid, except for loss of the carboxyl group, is effectively incorporated into the nucleus of ubiquinone and an unidentified prenylphenol by maize roots, maize shoots, french-bean leaves, french-bean cotyledons and Ochromonas danica. Plastoquinone, alpha-tocopherol, gamma-tocopherol and alpha-tocopherolquinone are all unlabelled from this substrate. The high radioactivity of the prenylphenol and its behaviour in a pulse-labelling experiment with maize shoots suggested that it may be a ubiquinone precursor. 2. Members of the 2-polyprenylphenol and 6-methoxy-2-polyprenylphenol series, compounds that are known ubiquinone precursors in Rhodospirillum rubrum, could not be detected in maize tissues, but possibly they may occur as their glycosides. 3. [G-(14)C]Shikimic acid is incorporated into the nuclei of phylloquinone, plastoquinone, alpha-tocopherolquinone, gamma-tocopherol, alpha-tocopherol and ubiquinone in maize shoots, showing that in plant tissues the nuclei of these compounds arise via the shikimic acid pathway of aromatic biosynthesis. 4. l-[U-(14)C]Phenylalanine and l-[U-(14)C]tyrosine are incorporated into plastoquinone, gamma-tocopherol, alpha-tocopherolquinone and ubiquinone. alpha-Tocopherol, which is absent from shoots incubated with l-[U-(14)C]tyrosine, is also labelled from l-[U-(14)C]phenylalanine. Degradation studies showed that there is little (14)C radioactivity in the terpenoid portions of the molecules and from this it is concluded that the aromatic portions of these amino acids are giving rise to the quinone and chromanol nuclei. 5. It is proposed that in maize the nucleus of ubiquinone can be formed from either phenylalanine or tyrosine by a pathway involving p-coumaric acid and p-hydroxybenzoic acid. Plastoquinone, tocopherols and tocopherolquinones are formed from tyrosine by some pathway in which the aromatic ring and C-3 of the side chain of this amino acid gives rise to the nucleus and one methyl substituent respectively of these compounds.

Benzoates↗