Francisca Carvalhal, A. Neves, Amadeu Câmara, E. Sousa, M. Pinto, M. Correia-da-Silva
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Moreover, these complexes appear to be suitable for sulfation of alcohol groups present in steroids [4]. In this direction, sulfation of four sterols was achieved using triethylamine-sulfur trioxide adduct in dimethylacetamide under heating, with yields ranging from 3% to 93%. Purification involved insolubilization with diethyl ether followed by several methods to obtain the sulfated derivatives free of inorganic impurities, including dialysis and/ or chromatographic processes. Structure elucidation of these new compounds was established by infrared (IR), nuclear magnetic resonance (NMR) and high resolution mass spectrometry (HRMS). Biological activities will be further studied. \n \n \nAcknowledgements: \nThis work was supported through national funds provided by FCT/MCTES - Foundation for Science and Technology from the Ministry of Science, Technology and Higher Education (PIDDAC) and European Regional Development Fund (ERDF) through the COMPETE Programa Operacional Factores de Competitividade (POFC) programme, under the projects PTDC/MAR-BIO/4694/2014 (reference POCI-01-0145-FEDER-016790; Project 3599–PPCDT), PTDC/AAGTEC/0739/2014 (reference POCI-01-0145-FEDER-016793; Project 9471-RIDTI) and POCI-01-0145-FEDER-028736 in the framework of the programme PT2020. Carvalhal F also acknowledges FCT for the grant PTDC/AAG- TEC/0739/2014-018. \n \nReferences: \n[1] Carvalhal, F., M. Correia-da-Silva, M.E. Sousa, M. Pinto, and A. Kijjoa, Journal of Molecular Endocrinology, 2018, 61(2) 211-231. \n[2] NCT02727881 (https://clinicaltrials.gov/ct2/show/NCT02727881, October 15, 2018) \n[3] Correia-da-Silva, M., E. Sousa, and M.M. Pinto, Medicinal Research Reviews, 2014, 34(2) 223-79. \n[4] Al-Horani, R.A., and U.R. Desai, Chemical Sulfation of Small Molecules - Advances and Challenges.Tetrahedron, 2010, 66(16), 2907-2918","PeriodicalId":20450,"journal":{"name":"Proceedings of 4th International Electronic Conference on Medicinal Chemistry","volume":"103 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2018-10-31","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Biologically-active sulfated steroids: synthesis and state-of-art\",\"authors\":\"Francisca Carvalhal, A. Neves, Amadeu Câmara, E. Sousa, M. Pinto, M. 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In this direction, sulfation of four sterols was achieved using triethylamine-sulfur trioxide adduct in dimethylacetamide under heating, with yields ranging from 3% to 93%. Purification involved insolubilization with diethyl ether followed by several methods to obtain the sulfated derivatives free of inorganic impurities, including dialysis and/ or chromatographic processes. Structure elucidation of these new compounds was established by infrared (IR), nuclear magnetic resonance (NMR) and high resolution mass spectrometry (HRMS). Biological activities will be further studied. \\n \\n \\nAcknowledgements: \\nThis work was supported through national funds provided by FCT/MCTES - Foundation for Science and Technology from the Ministry of Science, Technology and Higher Education (PIDDAC) and European Regional Development Fund (ERDF) through the COMPETE Programa Operacional Factores de Competitividade (POFC) programme, under the projects PTDC/MAR-BIO/4694/2014 (reference POCI-01-0145-FEDER-016790; Project 3599–PPCDT), PTDC/AAGTEC/0739/2014 (reference POCI-01-0145-FEDER-016793; Project 9471-RIDTI) and POCI-01-0145-FEDER-028736 in the framework of the programme PT2020. Carvalhal F also acknowledges FCT for the grant PTDC/AAG- TEC/0739/2014-018. \\n \\nReferences: \\n[1] Carvalhal, F., M. Correia-da-Silva, M.E. Sousa, M. Pinto, and A. Kijjoa, Journal of Molecular Endocrinology, 2018, 61(2) 211-231. \\n[2] NCT02727881 (https://clinicaltrials.gov/ct2/show/NCT02727881, October 15, 2018) \\n[3] Correia-da-Silva, M., E. 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引用次数: 0
摘要
据报道,近150种海洋衍生硫酸类固醇具有多种生物活性,包括药理学(抗菌、抗肿瘤、心血管和/或抗炎活性)和环境(防污活性)应用[1]。磺化在自然中被用来避免毒性,因此海洋启发的磺化类固醇可能是一种有趣的药物发现策略。从角鲨的内脏中分离出的磺化氨基甾醇角鲨胺作为抗血管生成药物已进入临床三期试验[2],这证明了磺化类固醇的潜力。使用三氧化硫-胺配合物对小分子进行磺化有几个优点,如过硫酸盐、低降解和在后处理中的可行性[3]。此外,这些配合物似乎适合于类固醇中存在的醇基的磺化[4]。在这个方向上,使用三乙胺-三氧化硫加合物在二甲基乙酰胺中加热实现了四种甾醇的磺化,收率在3% ~ 93%之间。纯化包括用乙醚不溶化,然后用几种方法获得无无机杂质的硫酸化衍生物,包括透析和/或色谱处理。利用红外(IR)、核磁共振(NMR)和高分辨率质谱(HRMS)对这些新化合物进行了结构解析。生物活性将进一步研究。致谢:本工作得到了国家科学技术和高等教育部(PIDDAC)和欧洲区域发展基金(ERDF)通过竞争计划运营竞争力因素(POFC)计划提供的国家基金的支持,项目为PTDC/MAR-BIO/4694/2014(参考文献poci -01-0145-联邦-016790;项目3599-PPCDT), PTDC/AAGTEC/0739/2014(参考文献poci -01-0145- federal -016793;PT2020计划框架内的9471-RIDTI项目和poci -01-0145- federal -028736。Carvalhal F也认可FCT授予PTDC/AAG- TEC/0739/2014-018。[1]张晓东,张晓东,张晓东,等。中国生物医学工程学报,2018,32(2):481 - 481。[2]张晓明,张晓明,张晓明,等。中国生物医学工程杂志,2018,10月15日。[3]中国生物医学工程杂志,2014,34(2):223-79。[4]陈晓明,陈晓明,陈晓明,等。小分子硫酸化研究进展与展望。四面体,2010,66(16),2907-2918
Biologically-active sulfated steroids: synthesis and state-of-art
Several biological activities from nearly 150 marine-derived sulfated steroids have been reported with both pharmacological (antimicrobial, antitumor, cardiovascular and/ or anti-inflammatory activities) and environmental (antifouling activity) applications [1]. Sulfation is used in Nature to avoid toxicity and therefore marine-inspired sulfated steroids could be an interesting strategy for drug discovery. The sulfated aminosterol squalamine, isolated from the internal organs of the dogfish shark, is in phase III of clinical trials as anti-angiogenic drug [2], which evidences the potential of sulfated steroids.
Sulfation of small molecules using sulfur trioxide-amine complexes entails several advantages, such as persulfation, low degradation, and feasibility in the work-up [3]. Moreover, these complexes appear to be suitable for sulfation of alcohol groups present in steroids [4]. In this direction, sulfation of four sterols was achieved using triethylamine-sulfur trioxide adduct in dimethylacetamide under heating, with yields ranging from 3% to 93%. Purification involved insolubilization with diethyl ether followed by several methods to obtain the sulfated derivatives free of inorganic impurities, including dialysis and/ or chromatographic processes. Structure elucidation of these new compounds was established by infrared (IR), nuclear magnetic resonance (NMR) and high resolution mass spectrometry (HRMS). Biological activities will be further studied.
Acknowledgements:
This work was supported through national funds provided by FCT/MCTES - Foundation for Science and Technology from the Ministry of Science, Technology and Higher Education (PIDDAC) and European Regional Development Fund (ERDF) through the COMPETE Programa Operacional Factores de Competitividade (POFC) programme, under the projects PTDC/MAR-BIO/4694/2014 (reference POCI-01-0145-FEDER-016790; Project 3599–PPCDT), PTDC/AAGTEC/0739/2014 (reference POCI-01-0145-FEDER-016793; Project 9471-RIDTI) and POCI-01-0145-FEDER-028736 in the framework of the programme PT2020. Carvalhal F also acknowledges FCT for the grant PTDC/AAG- TEC/0739/2014-018.
References:
[1] Carvalhal, F., M. Correia-da-Silva, M.E. Sousa, M. Pinto, and A. Kijjoa, Journal of Molecular Endocrinology, 2018, 61(2) 211-231.
[2] NCT02727881 (https://clinicaltrials.gov/ct2/show/NCT02727881, October 15, 2018)
[3] Correia-da-Silva, M., E. Sousa, and M.M. Pinto, Medicinal Research Reviews, 2014, 34(2) 223-79.
[4] Al-Horani, R.A., and U.R. Desai, Chemical Sulfation of Small Molecules - Advances and Challenges.Tetrahedron, 2010, 66(16), 2907-2918