1992
DOI: 10.1021/ja00045a037
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Cryptic stereospecificity of methane monooxygenase

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Cited by 157 publications
(155 citation statements)
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“…In the first step of this mechanism a homolytic cleavage of a CH bond of substrate alkane leads to a radical intermediate, and in the second step the resultant alkyl radical moves to the newly formed OH group, resulting in the formation of an alcohol complex. 9 However, Newcomb, Lippard, and co-workers have suggested from radical-clock experiments that a measured lifetime of a putative radical species in the MMOH catalysis is shorter than ca. 150 fs, which is inconsistent with the formation of a discrete radical species.…”
mentioning
confidence: 99%
“…In the first step of this mechanism a homolytic cleavage of a CH bond of substrate alkane leads to a radical intermediate, and in the second step the resultant alkyl radical moves to the newly formed OH group, resulting in the formation of an alcohol complex. 9 However, Newcomb, Lippard, and co-workers have suggested from radical-clock experiments that a measured lifetime of a putative radical species in the MMOH catalysis is shorter than ca. 150 fs, which is inconsistent with the formation of a discrete radical species.…”
mentioning
confidence: 99%
“…Later radical clock studies revealed no radical rearrangement for the M. capsulatus (Bath) system and very little for the enzyme from M. trichosporium OB3b (19,24). Hydroxylations of chiral tritiated alkanes proceeded with ϳ30% inversion of stereochemistry, an amount corresponding to putative radical lifetimes (Ͻ100 fs) too short to be attributed to formation of a discrete radical intermediate (25,26).The possibility exists that substrate-dependent reactivity might invalidate the conclusions of research based on diagnostic substrate probes. In recent work, 3 we obtained evidence that an intermediate other than Q, the active high valent diiron species that effects methane hydroxylation (1-3), is competent to oxidize olefins.…”
mentioning
confidence: 99%
“…One involves the radical mechanism, wherein an activated oxygen atom species abstracts a hydrogen atom from the substrate methane molecule, followed by radical rebound chemistry of the methyl radical with the hot hydroxyl radical to form the product (19). The other mechanism invokes anchoring of the methane molecule at an activated metal cluster and concerted oxenoid or oxene insertion across one of the C-H bonds via the formation of a four-or three-centered transition state (20,21).…”
mentioning
confidence: 99%
“…When the hydroxylation chemistry mediated by sMMO from Methylosinus trichosporium OB3b (19) and Methylococcus capsulatus (Bath) (22) was investigated by the use of cryptically chiral ethanes, stereochemical analysis of the products revealed partial racemization of the chiral ethanol formed. These results have been interpreted in terms of the formation of a short-lived alkyl radical (19), or one that is so short-lived that the mechanism is essentially concerted yet non-synchronous (22,23). This conclusion seems to be corroborated by stopped flow experiments designed to delineate the kinetic steps of the hydroxylation chemistry in the case of the M. trichosporium (OB3b) enzyme (24).…”
mentioning
confidence: 99%