Ethylene metabolism in Pisum sativum L.

[1]  F. B. Abeles,et al.  Ethylene in Plant Biology , 2022 .

[2]  A. Smith,et al.  The measurement of ethylene binding and metabolism in plant tissue , 1989, Planta.

[3]  W. H. Elliott,et al.  Data for Biochemical Research , 1986 .

[4]  T. Kodadek,et al.  Epoxidation of olefins by cytochrome P-450 model compounds: kinetics and stereochemistry of oxygen atom transfer and origin of shape selectivity , 1985 .

[5]  J. Taylor,et al.  Ethylene metabolism in Pisum sativum L.: Kinetic parameters, the effects of propylene, silver and carbon dioxide and comparison with other systems , 1984, Plant Growth Regulation.

[6]  K. Wimalasena,et al.  Rubredoxin from Pseudomonas oleovorans: effects of selective chemical modification and metal substitution , 1984 .

[7]  T. Kodadek,et al.  Epoxidation of olefins by cytochrome P-450 model compounds: mechanism of oxygen atom transfer. , 1984, Proceedings of the National Academy of Sciences of the United States of America.

[8]  F. B. Abeles A comparative study of ethylene oxidation inVicia faba andMycobacterium paraffinicum , 1984, Journal of Plant Growth Regulation.

[9]  G. Taylor The Significance of the Developing Energy Technologies of Coal Conversion to Plant Productivity , 1983, HortScience.

[10]  H. Bolt,et al.  Exhalation of ethylene oxide by rats on exposure to ethylene. , 1983, Mutation research.

[11]  V. Oyenuga,et al.  Accumulation of mineral elements in five tropical leafy vegetables as influenced by nitrogen fertilization and age , 1983 .

[12]  A. Fulco,et al.  Epoxidation of unsaturated fatty acids by a soluble cytochrome P-450-dependent system from Bacillus megaterium. , 1981, The Journal of biological chemistry.

[13]  P. Ortiz de Montellano,et al.  Destruction of cytochrome P-450 by ethylene. Structure of the resulting prosthetic heme adduct. , 1981, The Journal of biological chemistry.

[14]  P. Ortiz de Montellano,et al.  Destruction of cytochrome P-450 by ethylene and other olefins. , 1980, Molecular pharmacology.

[15]  D. Parke,et al.  The effects of carbon disulphide on rat liver microsomal mixed-function oxidases, in vivo and in vitro. , 1980, The Biochemical journal.

[16]  E. Beyer [C]Ethylene Metabolism during Leaf Abscission in Cotton. , 1979, Plant physiology.

[17]  M. Lieberman Biosynthesis and Action of Ethylene , 1979 .

[18]  E. Beyer Rapid metabolism of propylene by pea seedlings. , 1978, Plant physiology.

[19]  O. Sundin,et al.  14C2H4 Metabolism in Morning Glory Flowers , 1978 .

[20]  H. Dalton,et al.  The soluble methane mono-oxygenase of Methylococcus capsulatus (Bath). Its ability to oxygenate n-alkanes, n-alkenes, ethers, and alicyclic, aromatic and heterocyclic compounds. , 1977, The Biochemical journal.

[21]  E. Beyer 14C2H4: Its Incorporation and Oxidation to 14CO2 by Cut Carnations , 1977 .

[22]  R. Battino,et al.  Low-pressure solubility of gases in liquid water , 1977 .

[23]  E. Beyer A potent inhibitor of ethylene action in plants. , 1976, Plant physiology.

[24]  L. Fishbein Environmental health aspects of fungicides. I. Dithiocarbamtes. , 1976, Journal of toxicology and environmental health.

[25]  H. Yamamoto,et al.  Properties of NADPH and oxygen-dependent zeaxanthin epoxidation in isolated chloroplasts. A transmembrane model for the violaxanthin cycle. , 1975, Archives of biochemistry and biophysics.

[26]  E. Beyer 14C2H4: Its Incorporation and Metabolism by Pea Seedlings under Aseptic Conditions , 1975 .

[27]  J. Duggan,et al.  Induction of porphyrin synthesis in etiolated bean leaves by chelators of iron. , 1974, Plant physiology.

[28]  Y. Cheng,et al.  Relationship between the inhibition constant (K1) and the concentration of inhibitor which causes 50 per cent inhibition (I50) of an enzymatic reaction. , 1973, Biochemical pharmacology.

[29]  E. Beyer Mechanism of Ethylene Action: Biological Activity of Deuterated Ethylene and Evidence against Isotopic Exchange and cis-trans-Isomerization. , 1972, Plant physiology.

[30]  F. B. Abeles,et al.  Mechanisms of hormone action: use of deuterated ethylene to measure isotopic exchange with plant material and the biological effects of deuterated ethylene. , 1972, Plant physiology.

[31]  E. W. Maynert,et al.  Epoxides as obligatory intermediates in the metabolism of olefins to glycols. , 1970, The Journal of biological chemistry.

[32]  D. Mellor,et al.  Stability Constants of Internal Complexes , 1947, Nature.

[33]  P. G. Smith,et al.  Oxidation of ethylene by cotyledon extracts from Vicia faba L. , 2004, Planta.

[34]  M. Venis Hormone binding sites in plants , 1985 .

[35]  E. Beyer 12 – ETHYLENE METABOLISM , 1985 .

[36]  F. B. Abeles Role of Ethylene Oxidation in the Mechanism of Ethylene Action , 1984 .

[37]  Edward C. Sislert,et al.  Anti-ethylene Effects of cis-2-butene and cyclic olefins , 1984 .

[38]  E. Beyer,et al.  Ethylene Metabolism and Its Possible Physiological Role in Plants , 1980 .

[39]  C. West Hydroxylases, Monooxygenases, and Cytochrome P-450 , 1980 .

[40]  E. Beyer,et al.  Effect of silver ion, carbon dioxide, and oxygen on ethylene action and metabolism. , 1979, Plant physiology.

[41]  O. Sundin,et al.  C(2)H(4) metabolism in morning glory flowers. , 1978, Plant physiology.

[42]  E. Beyer C(2)H(4): Its Incorporation and Oxidation to CO(2) by Cut Carnations. , 1977, Plant physiology.

[43]  R. Croteau,et al.  Biosynthesis of hydroxyfatty acid polymers. Enzymatic epoxidation of 18-hydroxyoleic acid to 18-hydroxy-cis-9,10-epoxystearic acid by a particulate preparation from spinach (Spinacia oleracea). , 1975, Archives of biochemistry and biophysics.

[44]  E. Beyer C(2)H(4): Its Incorporation and Metabolism by Pea Seedlings under Aseptic Conditions. , 1975, Plant physiology.

[45]  R. Croteau,et al.  Biosynthesis of hydroxyfatty acid polymers. Enzymatic hydration of 18-hydroxy-cis-9,10-epoxystearic acid to threo 9,10,18-trihydroxystearic acid by a particulate preparation from apple (Malus pumila). , 1975, Archives of biochemistry and biophysics.

[46]  S P Burg,et al.  Molecular requirements for the biological activity of ethylene. , 1967, Plant physiology.