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Computationally Augmented Retrosynthesis: Total Synthesis of Paspaline A and Emindole?PB

Computationally Augmented Retrosynthesis: Total Synthesis of Paspaline A and Emindole?PB

来源:ChemRxiv_logoChemRxiv
英文摘要

The diverse molecular architectures of terpene natural products are assembled by exquisite enzyme-catalyzed reactions. Successful recapitulation of these transformations using chemical synthesis is hard to predict from first principles and therefore challenging to execute. A means of evaluating the feasibility of such chemical reactions would greatly enable the development of concise syntheses of complex small molecules. Herein, we report the computational analysis of the energetic favorability of a key bio-inspired transformation, which we use to inform our synthetic strategy. This approach was applied to synthesize two constituents of the historically challenging indole diterpenoid class, resulting in a concise route to (¨C)-paspaline A in 9 steps from commercially available materials and the first pathway to and structural confirmation of emindole PB in 13 steps. This work highlights how traditional retrosynthetic design can be augmented with quantum chemical calculations to reveal energetically feasible synthetic disconnections, minimizing time-consuming and expensive empirical evaluation.

Daria E. Kim、Timothy Newhouse、Joshua E. Zweig

Daria E. KimTimothy NewhouseJoshua E. Zweig

10.26434/chemrxiv.7322330.v1

化学生物化学分子生物学

Total SynthesisComputational ChemistryNatural Products

Daria E. Kim,Timothy Newhouse,Joshua E. Zweig.Computationally Augmented Retrosynthesis: Total Synthesis of Paspaline A and Emindole?PB[EB/OL].(1970-01-01)[2025-05-26].https://chemrxiv.org/engage/chemrxiv/article-details/60c73f5b469df48322f42a73.点此复制

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