Yan-He Li, Attila Mándi, Hong-Lei Li, Xiao-Ming Li, Xin Li, Ling-Hong Meng, Sui-Qun Yang, Xiao-Shan Shi, Tibor Kurtán, Bin-Gui Wang
{"title":"从海洋沉积物来源的真菌环青霉中分离、鉴定三对疣苷差向异构体,并对青霉烯酮A及其类似物进行结构修饰。","authors":"Yan-He Li, Attila Mándi, Hong-Lei Li, Xiao-Ming Li, Xin Li, Ling-Hong Meng, Sui-Qun Yang, Xiao-Shan Shi, Tibor Kurtán, Bin-Gui Wang","doi":"10.1007/s42995-023-00173-2","DOIUrl":null,"url":null,"abstract":"<p><p>Verrucosidins, a methylated α-pyrone class of polyketides rarely reported upon, have been implicated in one or more neurological diseases. Despite the significance of verrucosidins as neurotoxins, the absolute configurations of most of the derivatives have not been accurately characterized yet. In this study, three pairs of C-9 epimeric verrucosidin derivatives, including the known compounds penicyrones A and B (<b>1a/1b</b>) and 9-<i>O</i>-methylpenicyrones A and B (<b>2a/2b</b>), the new compounds 9-<i>O-</i>ethylpenicyrones A and B (<b>3a/3b</b>), together with the related known derivative verrucosidin (<b>4</b>), were isolated and identified from the culture extract of <i>Penicillium cyclopium</i> SD-413, which was obtained from the marine sediment collected from the East China sea. Their structures were established based on an in-depth analysis of nuclear magnetic resonances (NMR) and mass spectroscopic data. Determination of the absolute configurations of these compounds was accomplished by Mosher's method and time-dependent density functional theory (TDDFT) calculations of electronic circular dichroism (ECD) and optical rotation (OR). The configurational assignment of penicyrone A demonstrated that the previously reported C-6 absolute configuration of verrucosidin derivatives needs to be revised from (6<i>S</i>) to (6<i>R</i>). The 9<i>R</i>/9<i>S</i> epimers of compounds <b>1-3</b> were found to exhibit growth inhibition against some pathogenic bacteria, indicating that they have potential as lead compounds for the creation of antimicrobial agents.</p><p><strong>Supplementary information: </strong>The online version contains supplementary material available at 10.1007/s42995-023-00173-2.</p>","PeriodicalId":53218,"journal":{"name":"Marine Life Science & Technology","volume":"5 2","pages":"223-231"},"PeriodicalIF":5.8000,"publicationDate":"2023-05-28","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10232390/pdf/","citationCount":"0","resultStr":"{\"title\":\"Isolation and characterization of three pairs of verrucosidin epimers from the marine sediment-derived fungus <i>Penicillium cyclopium</i> and configuration revision of penicyrone A and related analogues.\",\"authors\":\"Yan-He Li, Attila Mándi, Hong-Lei Li, Xiao-Ming Li, Xin Li, Ling-Hong Meng, Sui-Qun Yang, Xiao-Shan Shi, Tibor Kurtán, Bin-Gui Wang\",\"doi\":\"10.1007/s42995-023-00173-2\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Verrucosidins, a methylated α-pyrone class of polyketides rarely reported upon, have been implicated in one or more neurological diseases. Despite the significance of verrucosidins as neurotoxins, the absolute configurations of most of the derivatives have not been accurately characterized yet. In this study, three pairs of C-9 epimeric verrucosidin derivatives, including the known compounds penicyrones A and B (<b>1a/1b</b>) and 9-<i>O</i>-methylpenicyrones A and B (<b>2a/2b</b>), the new compounds 9-<i>O-</i>ethylpenicyrones A and B (<b>3a/3b</b>), together with the related known derivative verrucosidin (<b>4</b>), were isolated and identified from the culture extract of <i>Penicillium cyclopium</i> SD-413, which was obtained from the marine sediment collected from the East China sea. Their structures were established based on an in-depth analysis of nuclear magnetic resonances (NMR) and mass spectroscopic data. Determination of the absolute configurations of these compounds was accomplished by Mosher's method and time-dependent density functional theory (TDDFT) calculations of electronic circular dichroism (ECD) and optical rotation (OR). The configurational assignment of penicyrone A demonstrated that the previously reported C-6 absolute configuration of verrucosidin derivatives needs to be revised from (6<i>S</i>) to (6<i>R</i>). 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Isolation and characterization of three pairs of verrucosidin epimers from the marine sediment-derived fungus Penicillium cyclopium and configuration revision of penicyrone A and related analogues.
Verrucosidins, a methylated α-pyrone class of polyketides rarely reported upon, have been implicated in one or more neurological diseases. Despite the significance of verrucosidins as neurotoxins, the absolute configurations of most of the derivatives have not been accurately characterized yet. In this study, three pairs of C-9 epimeric verrucosidin derivatives, including the known compounds penicyrones A and B (1a/1b) and 9-O-methylpenicyrones A and B (2a/2b), the new compounds 9-O-ethylpenicyrones A and B (3a/3b), together with the related known derivative verrucosidin (4), were isolated and identified from the culture extract of Penicillium cyclopium SD-413, which was obtained from the marine sediment collected from the East China sea. Their structures were established based on an in-depth analysis of nuclear magnetic resonances (NMR) and mass spectroscopic data. Determination of the absolute configurations of these compounds was accomplished by Mosher's method and time-dependent density functional theory (TDDFT) calculations of electronic circular dichroism (ECD) and optical rotation (OR). The configurational assignment of penicyrone A demonstrated that the previously reported C-6 absolute configuration of verrucosidin derivatives needs to be revised from (6S) to (6R). The 9R/9S epimers of compounds 1-3 were found to exhibit growth inhibition against some pathogenic bacteria, indicating that they have potential as lead compounds for the creation of antimicrobial agents.
Supplementary information: The online version contains supplementary material available at 10.1007/s42995-023-00173-2.
期刊介绍:
Marine Life Science & Technology (MLST), established in 2019, is dedicated to publishing original research papers that unveil new discoveries and theories spanning a wide spectrum of life sciences and technologies. This includes fundamental biology, fisheries science and technology, medicinal bioresources, food science, biotechnology, ecology, and environmental biology, with a particular focus on marine habitats.
The journal is committed to nurturing synergistic interactions among these diverse disciplines, striving to advance multidisciplinary approaches within the scientific field. It caters to a readership comprising biological scientists, aquaculture researchers, marine technologists, biological oceanographers, and ecologists.