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  • 80. Metal-Hydride C–C Cross-Coupling of Alkenes Through a Double Outer-Sphere Mechanism

    80. Metal-Hydride C–C Cross-Coupling of Alkenes Through a Double Outer-Sphere Mechanism

    80. Dao, N.; Gan, X.-c.; Shenvi, R. A. “Metal-Hydride C–C Cross-Coupling of Alkenes Through a Double Outer-Sphere Mechanism” [invited] J. Org. Chem. 2024, 89, 16106–16113.

  • 78. Methylation Confers Accessibility, Stability and Selectivity to Picrotoxinin

    78. Methylation Confers Accessibility, Stability and Selectivity to Picrotoxinin

    78. Tong, G.; Griffin, S.; Sader, A.; Crowell, A. B.; Beavers, K.; Watson, J.; Buchan, Z.; Chen, S.; Shenvi, R. A. C5 Methylation Confers Accessibility, Stability and Selectivity to Picrotoxinin Nature Commun. 2023, 14, 8308. ChemRxiv DOI: 10.26434/chemrxiv-2022-0l4nt

  • 65.  Stereodivergent attached ring synthesis via non-covalent interactions: a short formal synthesis of merrilactone

    65.  Stereodivergent attached ring synthesis via non-covalent interactions: a short formal synthesis of merrilactone

    65. Huffman, B. J.; Chu, T.; Hanaki, Y.; Wong, J. J.; Chen, S.; Houk, K. N.; Shenvi, R. A. Stereodivergent attached ring synthesis via non-covalent interactions: a short formal synthesis of merrilactone A Angew. Chem. Int. Ed. 2022, 61, e202114514.

  • 64. Revision of the unstable picrotoxinin hydrolysis product

    64. Revision of the unstable picrotoxinin hydrolysis product

    64. Tong, G.; Shenvi, R. A. Revision of the unstable picrotoxinin hydrolysis product Angew. Chem. Int. Ed. 2021, 60, 19113.

  • 62. Natural Product Synthesis through the Lens of Informatics

    62. Natural Product Synthesis through the Lens of Informatics

    62. Woo, S.; Shenvi, R. A. Natural Product Synthesis through the Lens of Informatics Acc. Chem. Res. 2021, 54, 1157–1167.

  • 61. Change the channel: CysLoop receptor antagonists from Nature

    61. Change the channel: CysLoop receptor antagonists from Nature

    61. Tong, G.; Baker, M. A.; Shenvi, R. A. Change the channel: CysLoop receptor antagonists from Nature. Pest Manag. Sci. 2020, 77, 3650–3662. [Special Issue honoring Tom Sparks for the Kenneth Spencer Award]

  • 59. Synthetic, Mechanistic and Biological Interrogation of Ginkgo biloba Chemical Space en route to (–)-Bilobalide

    59. Synthetic, Mechanistic and Biological Interrogation of Ginkgo biloba Chemical Space en route to (–)-Bilobalide

    59. Demoret, R. M.; Baker, M. A.; Ohtawa, M.; Chen, S.; Lam, C.-C.; Khom, S.; Roberto, M.; Forli, S.; Houk, K.; Shenvi, R. A. Synthetic, Mechanistic and Biological Interrogation of Ginkgo biloba Chemical Space en route to (–)-Bilobalide. J. Am. Chem. Soc. 2020, 142, 18599–18618.ChemRxiv DOI: 10.26434/ chemrxiv.12132939.v2

  • 57. Total Synthesis of (–)-Picrotoxinin

    57. Total Synthesis of (–)-Picrotoxinin

    57. Crossley, S. W. M.; Tong, G.; Lambrecht, M. J.; Burdge, H. E.; Shenvi, R. A. Total Synthesis of (–)-Picrotoxinin J. Am. Chem. Soc. 2020, 142, 11376–11381. ChemRxiv DOI: 10.26434/chemrxiv.8263415.v1

  • 54. Electronic Complementarity Permits Hindered Butenolide Heterodimerization and Discovery of Novel cGAS/STING Pathway Antagonists

    54. Electronic Complementarity Permits Hindered Butenolide Heterodimerization and Discovery of Novel cGAS/STING Pathway Antagonists

    54. Huffman, B. J.; Chen, S.; Schwarz, J. L; Plata, R. E.; Chin, E.; Houk, K. N.; Lairson, L. L.; Shenvi, R. A. Electronic Complementarity Permits Hindered Butenolide Heterodimerization and Discovery of Novel cGAS/STING Pathway Antagonists, Nature Chem. 2020, 12, 310–317.

  • 51. Concise Asymmetric Synthesis of (–)-Bilobalide

    51. Concise Asymmetric Synthesis of (–)-Bilobalide

    51. Baker, M.; Demoret, R.; Ohtawa, M.; Shenvi, R. A. Concise Asymmetric Synthesis of (–)-Bilobalide Nature 2019, 575, 643–646. DOI: 10.1038/s41586-019-1690-5. ChemRxiv DOI: 10.26434/chemrxiv.8202053.v1 Featured in Org. Chem. Highlights

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