Léger Spencer J, Marchetti Barbara, Ashfold Michael N R, Karsili Tolga N V
Department of Chemistry, University of Louisiana at Lafayette, Lafayette, LA, United States.
Department of Chemical Engineering, University of Louisiana at Lafayette, Lafayette, LA, United States.
Front Chem. 2020 Dec 22;8:596590. doi: 10.3389/fchem.2020.596590. eCollection 2020.
We present a contemporary mechanistic description of the light-driven conversion of cyclopropenone containing enediyne (CPE) precusors to ring-opened species amenable to further Bergman cyclization and formation of stable biradical species that have been proposed for use in light-induced cancer treatment. The transformation is rationalized in terms of (purely singlet state) Norrish type-I chemistry, wherein photoinduced opening of one C-C bond in the cyclopropenone ring facilitates non-adiabatic coupling to high levels of the ground state, subsequent loss of CO and Bergman cyclization of the enediyne intermediate to the cytotoxic target biradical species. Limited investigations of substituent effects on the ensuing photochemistry serve to vindicate the experimental choices of Popik and coworkers (., 2005, , 1297-1305). Specifically, replacing the phenyl moiety in the chosen model CPE by a 1,4-benzoquinone unit leads to a stronger, red-shifted parent absorption, and increases the exoergicity of the parent → biradical conversion.
我们给出了一个关于含环丙烯酮的烯二炔(CPE)前体光驱动转化为可进一步进行伯格曼环化的开环物种以及形成稳定双自由基物种的当代机理描述,这些双自由基物种已被提议用于光诱导癌症治疗。这种转化可以用(纯单重态)Norrish I型化学来解释,其中环丙烯酮环中一个C-C键的光致开环促进了与基态高能级的非绝热耦合,随后CO的损失以及烯二炔中间体向细胞毒性目标双自由基物种的伯格曼环化。对取代基对后续光化学影响的有限研究证实了Popik及其同事(2005年,……,1297 - 1305页)的实验选择。具体而言,用1,4 - 苯醌单元取代所选模型CPE中的苯基部分会导致更强的、红移的母体吸收,并增加母体→双自由基转化的放能性。