Resonance Raman studies of the stoichiometric catalytic turnover of a substrate-stearoyl-acyl carrier protein Delta(9) desaturase complex

Citation
Ks. Lyle et al., Resonance Raman studies of the stoichiometric catalytic turnover of a substrate-stearoyl-acyl carrier protein Delta(9) desaturase complex, BIOCHEM, 39(34), 2000, pp. 10507-10513
Citations number
45
Categorie Soggetti
Biochemistry & Biophysics
Journal title
BIOCHEMISTRY
ISSN journal
00062960 → ACNP
Volume
39
Issue
34
Year of publication
2000
Pages
10507 - 10513
Database
ISI
SICI code
0006-2960(20000829)39:34<10507:RRSOTS>2.0.ZU;2-P
Abstract
Resonance Raman spectroscopy has been used to study the effects of substrat e binding (stearoyl-acyl carrier protein, 18:0-ACP) on the diferric centers of Ricinus communis 18:0-ACP Delta(9) desaturase. These studies show that complex formation produces changes in the frequencies of v(s)(Fe-O-Fe) and v(as)(Fe-O-Fe) consistent with a decrease in the Fe-O-Fe angle from similar to 123 degrees in the ore-bridged diferric centers of the as-isolated enzy me to similar to 120 degrees in ore-bridged diferric centers of the complex . Analysis of the shifts in v(s)(Fe-O-Fe) and v(as)(Fe-O-Fe) as a function of 18:0-ACP concentration also suggests that 4e(-)-reduced Delta 9D contain ing two diferrous centers has a higher affinity for 18:0-ACP than resting D elta 9D containing two diferric centers. Catalytic turnover of a stoichiome tric complex of 18:0-ACP and Delta 9D was used to investigate whether an O- atom from O-2 would be incorporated into a bridging position of the resulta nt mu-oxo-bridged diferric centers during the desaturation reaction. Upon f ormation of similar to 70% yield of 18:1-ACP product in the presence of O-1 8(2), no incorporation of an O-18 atom into the mu-oxo bridge position was detected. The result with 18:0-ACP Delta(9) desaturase differs from that ob tained during the tyrosyl radical formation reaction of the diiron enzyme r ibonucleotide reductase R2 component, which proceeds with incorporation of an O-atom from O-2 into the mu-oxo bridge of the resting diferric site. The possible implications of these results for the O-O bond cleavage reaction and the nature of intermediates formed during Delta 9D catalysis are discus sed.