4.8 Article

Mechanistic analysis of carbon-carbon bond formation by deoxypodophyllotoxin synthase

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2113770119

Keywords

C-C coupling; cyclization; oxygenase; natural product; reaction mechanism

Funding

  1. NSF [CHE1845913]
  2. Ministry of Science and Technology, Taiwan [109-2113-M-002-006, 109-2326-B-002-008, 107-2923-B-002-001-MY4, 109-2113-M-003-005]
  3. North Carolina State University
  4. National Taiwan Normal University
  5. National Taiwan University [NTU-110 L893405]

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This study reports the structure and catalytic mechanism of deoxypodophyllotoxin synthase, and finds that the cyclization reaction likely proceeds through hydrogen atom abstraction, ring closure, and rearomatization. This finding provides guidance for the synthesis of deoxypodophyllotoxin analogs.
Deoxypodophyllotoxin contains a core of four fused rings (A to D) with three consecutive chiral centers, the last being created by the attachment of a peripheral trimethoxyphenyl ring (E) to ring C. Previous studies have suggested that the iron(II)- and 2-oxoglutarate-dependent (Fe/2OG) oxygenase, deoxypodophyllotoxin synthase (DPS), catalyzes the oxidative coupling of ring B and ring E to form ring C and complete the tetracyclic core. Despite recent efforts to deploy DPS in the preparation of deoxypodophyllotoxin analogs, the mechanism underlying the regio- and stereo-selectivity of this cyclization event has not been elucidated. Herein, we report 1) two structures of DPS in complex with 20G and (+/-)-yatein, 2) in vitro analysis of enzymatic reactivity with substrate analogs, and 3) model reactions addressing DPS's catalytic mechanism. The results disfavor a prior proposal of on-pathway benzylic hydroxylation. Rather, the DPS-catalyzed cyclization likely proceeds by hydrogen atom abstraction from C7', oxidation of the benzylic radical to a carbocation, Friedel-Crafts-like ring closure, and rearomatization of ring B by C6 deprotonation. This mechanism adds to the known pathways for transformation of the carbon-centered radical in Fe/2OG enzymes and suggests what types of substrate modification are likely tolerable in DPS-catalyzed production of deoxypodophyllotoxin analogs.

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