Citation: Jiang Chongguo, Chen Sijia, Gong Jianxian, Yang Zhen. Synthetic Study Toward the 4,5-Spirocycle Skeleton of Phainanoids[J]. Acta Chimica Sinica, ;2020, 78(9): 928-932. doi: 10.6023/A20060198 shu

Synthetic Study Toward the 4,5-Spirocycle Skeleton of Phainanoids

  • Corresponding author: Gong Jianxian, gongjx@pku.edu.cn Yang Zhen, zyang@pku.edu.cn
  • Received Date: 1 June 2020
    Available Online: 9 July 2020

    Fund Project: Shenzhen Basic Research Program  JCYJ20170818090044432Project supported by the National Basic Research Program of China  21632002Project supported by the National Basic Research Program of China (Nos. 21632002, 21772008), National Key Research and Development Project (No. 2018YFC0310905), Shenzhen Basic Research Program (No. JCYJ20170818090044432) and Funding Project of Shenzhen-Hong Kong Institute of Brain Science (No. 2019SHIBS0004).National Key Research and Development Project  2018YFC0310905Funding Project of Shenzhen-Hong Kong Institute of Brain Science  2019SHIBS0004Project supported by the National Basic Research Program of China  21772008

Figures(8)

  • Attempts to synthesize the 4,5-spirocycle skeleton of Phainanoids by rhodium-catalyzed arylative cyclization of alkynone 5 and the addition of Grignard reagent 9 to α-alkoxyl cyclobutone 8, followed by intramolecular SNAr reaction are reported. Phainanoids, highly modified triterpenoids, were isolated from Phyllanthus hainanensis by Yue and co-workers. They have been found to show intriguing immunosuppressive activities. The most potent of them, Phainanoid F, inhibit the proliferation of T cells with an IC50 value of (2.04±0.01) nmol/L and B cells with an IC50 value <(1.60±0.01) nmol/L. The noteworthy activities and the lack of Phainanoids in nature resources make the synthesis of them for further biological evaluation a challenge for chemists. Our synthesis started from known compound 1, after Birch reduction and alkylation to give alkynone 5. The rhodium-catalyzed arylative cyclization of alkynone 5 to deliver tetrasubstituted cyclobutene 6 was performed by the following procedure. Under an atmosphere of Ar, to an oven-dried Schlenk tube with[Rh(OH)(cod)]2 (35.5 mg, 0.078 mmol, 0.012n5), phenylboronic acid (2.0 g, 16.3 mmol, 2.5n5), were added a solution of ketone 5 (1.9 g, 6.5 mmol, 1.0n5) in 1,4-dioxane (32.0 mL) and H2O (0.3 mL) at room temperature. The mixture was stirred at 35℃ for 12 h. Another [Rh(OH)(cod)]2 (35.5 mg, 0.078 mmol, 0.012n5) and phenylboronic acid (2.0 g, 16.3 mmol, 2.5n5) was added to the mixture. The mixture was stirred at 35℃ for 12 h. Subsequently, hydroxyl group was protected with ethoxymethyl (EOM) group to furnish 7, followed by ozonolysis to generate ketone 8. Ketone 8 was reacted with fresh prepared Grignard reagent 9 in Felkin-Anh modelinstead ofthe Cram's chelation-control model to deliver alcohol 10. The explanation of the diastereoselectivity of this reaction could be illustrated from two aspects:(1) the rigid structure of α-alkoxyl cyclobutone 8 increased the energy barrier for the transition state of chelation between magnesium ions and alkoxyl substituent; (2) the magnesium ions were not chelated with the alkoxyl substituent as well as the carbonyl oxygen was due to the intramolecular chelation with fluorine atom. Alcohol 10 underwent intramolecular SNAr reaction and deprotection to deliver 4,5-spirocycle compound 18.
  • 加载中
    1. [1]

      Fan, Y.-Y.; Zhang, H.; Zhou, Y.; Liu, H.-B.; Tang, W.; Zhou, B.;Zuo, J.-P.; Yue, J.-M. J. Am. Chem. Soc. 2015, 137, 138.

    2. [2]

      Xie, J.; Wang, J.; Dong, G. Org. Lett. 2017, 19, 3017.

    3. [3]

      Zhang, C. L.; Nan, F. J. Tetrahedron Lett. 2017, 58, 4357.

    4. [4]

      Reviews:(a) Mascareñas, J. L.; Varela, I.; López, F. Acc. Chem. Res. 2019, 52, 465.(b) Kwiatkowski, M. R.; Alexanian, E. J. Acc. Chem. Res. 2019, 52, 1134.(c) Montgomery, J. Angew. Chem., Int. Ed. 2004, 43, 3890.(d) Bates, R. W.; Satcharoenb, V. Chem. Soc. Rev. 2002, 31, 12.(e) Inglesby, P. A.; Evans, P. A. Chem. Soc. Rev. 2010, 39, 2791.(f) Marinetti, A.; Jullien, H.; Voituriez, A. Chem. Soc. Rev. 2012, 41, 4884.(g) Aubert, C.; Fensterbank, L.; Garcia, P.; Malacria, M.; Simonneau, A. Chem. Rev. 2011, 111, 1954.(h) Ojima, I.; Tzamarioudaki, M.; Li, Z.; Donovan, R. J. Chem. Rev. 1996, 96, 635.(i) Aubert, C.; Buisine, O.; Malacria, M. Chem. Rev. 2002, 102, 813.(j) Grigg, R.; Sridharan,V. J. Organomet. Chem. 1999, 576, 65.(k) Xiao M. Y.; Zhu S.; Shen Y. B.; Wang L.; Xiao J. N. Chin. J. Org. Chem. 2018, 38, 328.(l) Li J. X.; Lin S.; Huang R. K.; Li C.; Yang S. R. Chin. J. Org. Chem. 2019, 39, 1417.(m) Geng D. G.; Chin. J. Org. Chem. 2019, 39, 301.(n) Qian X. Y.; Xiong P.; Xu H. C. Acta Chim. Sinica 2019, 77, 879.(o) Xu J.; Zhang S. F.; Luo Y.; Zhang, L.; Zhang, F.; Huang, T. J.; Song, Q. L. Acta Chim. Sinica 2019, 77, 932.(p) Liao F. M.; Du Y.; Zhou F.; Zhou J. Acta Chim. Sinica 2018, 76, 862.(q) Wang, W. G.; Huang, S.; Yan, S. K.; Sun, X. J.; Tung, C. H.; Xu, Z. H. Chin. J. Chem. 2020, 38, 445.(r) Zhou, L. J.; Xu, B.; Ji, D. T.; Zhang, Z. M.; Zhang, J. L. Chin. J. Chem. 2020, 38, 577.

    5. [5]

      Miura, T.; Shimada, M.; Murakami, M. Tetrahedron 2007, 63, 6131.

    6. [6]

      (a) Cram, D. J.; Kopecky, K. R. J. Am. Chem. Soc. 1959, 81, 2748.(b) Mengel, A.; Reiser, O. Chem. Rev. 1999, 99, 1191.(c) Chen, X.; Hortelano, E. R.; Eliel, E. L. J. Am. Chem. Soc. 1990, 112, 6130.(d) Fan, X. Y.; Walsh, P. J. Acc. Chem. Res. 2017, 50, 2389.(e) Bartolo, N. D.; Read, J. A.; Valentín, E. M.; Woerpel, K. A. Chem. Rev. 2020, 120, 1513.(f) Stanton, G. R.; Koz, G.; Walsh, P. J. J. Am. Chem. Soc. 2011, 133, 7969.(g) Ye, J. L.; Huang, P. Q.; Lu, X. J. Org. Chem. 2007, 72, 35.(h) Bailey, W. F.; Reed, D. P.; Clark, D. R.; Kapur, G. N. Org. Lett. 2001, 3, 1865.

    7. [7]

      Ciceri, P.; Demnitz, F. W. J. Tetrahedron Lett. 1997, 38, 389.

    8. [8]

      Ali, A.; Guile, S. D.; Saxton, J. E.; Thornton-Pett, M. Tetrahedron 1991, 41, 6407.

    9. [9]

      (a) Ito, Y.; Hirao, T.; Saegusa, T. J. Org. Chem. 1978, 43, 1011.(b) Toyooka, N.; Okumura, M.; Nemoto, H. J. Org. Chem. 2002, 67, 6078.

    10. [10]

      Moustafa, G. A. I.; Saku, Y.; Aoyama, H.; Yoshimitsu, T. Chem. Commun. 2014, 50, 15706.

    11. [11]

      Chérest, M.; Felkin, H.; Prudent, N. Tetrahedron Lett. 1968, 9, 2199.

    12. [12]

      Butenschn, H. Chem. Ber. 1994, 127, 137.

    13. [13]

      Hegedus, L. S.; Ranslow, P. B. Synthesis 2000, 7, 953.

    14. [14]

      (a) Yamazaki, T.; Ando, M.; Kitazume, T.; Kubota, T.; Omura, M. Org. Lett. 1999, 1, 905.(b) Yamazaki, T.; Kawashita, S.; Kitazume, T; Kubota, T. Chem. Eur. J. 2009, 15, 11461.(c) Tenza, K.; Northen, J. S.; O'Hagan, D.; Slawin, A. M. Z. J. Fluorine Chem. 2004, 125, 1779.(d) Sazonov, P. K.; Oprunenko, Y. F.; Khrustalev, V. N.; Beletskaya, I. P. J. Fluorine Chem. 2011, 132, 587.(e) Kulawiec, R. J.; Holt, E. M.; Lavin, M.; Crabtree, R. H. Inorg. Chem. 1987, 26, 2559.(f) Ooi, T.; Kagoshima, N.; Maruoka, K. J. Am. Chem. Soc. 1997, 119, 5754.(g) Kawachi, A.; Tani, A.; Machida, K.; Yamamoto, Y. Organometallics 2007, 26, 4697.(h) Bizet, V.; Cahard, D. Chimia. 2014, 68, 378.(i) Carrell, H. L.; Glusker, J. P.; Piercy, E. A.; Stallings, W. C.; Zacharias, D. E.; Davis, R. L.; Astbury, C.; Kennard, C. H. L. J. Am. Chem. Soc. 1987, 109, 8067.

    15. [15]

      Nakamura, K.; Ohmori, K.; Suzuki, K. Angew. Chem., Int. Ed.2017, 56, 182.

  • 加载中
    1. [1]

      Kexin Dong Chuqi Shen Ruyu Yan Yanping Liu Chunqiang Zhuang Shijie Li . Integration of Plasmonic Effect and S-Scheme Heterojunction into Ag/Ag3PO4/C3N5 Photocatalyst for Boosted Photocatalytic Levofloxacin Degradation. Acta Physico-Chimica Sinica, 2024, 40(10): 2310013-. doi: 10.3866/PKU.WHXB202310013

    2. [2]

      Juntao Yan Liang Wei . 2D S-Scheme Heterojunction Photocatalyst. Acta Physico-Chimica Sinica, 2024, 40(10): 2312024-. doi: 10.3866/PKU.WHXB202312024

    3. [3]

      Ruolin CHENGHaoran WANGJing RENYingying MAHuagen LIANG . Efficient photocatalytic CO2 cycloaddition over W18O49/NH2-UiO-66 composite catalyst. Chinese Journal of Inorganic Chemistry, 2024, 40(3): 523-532. doi: 10.11862/CJIC.20230349

    4. [4]

      Endong YANGHaoze TIANKe ZHANGYongbing LOU . Efficient oxygen evolution reaction of CuCo2O4/NiFe-layered bimetallic hydroxide core-shell nanoflower sphere arrays. Chinese Journal of Inorganic Chemistry, 2024, 40(5): 930-940. doi: 10.11862/CJIC.20230369

    5. [5]

      Zhengyu Zhou Huiqin Yao Youlin Wu Teng Li Noritatsu Tsubaki Zhiliang Jin . Synergistic Effect of Cu-Graphdiyne/Transition Bimetallic Tungstate Formed S-Scheme Heterojunction for Enhanced Photocatalytic Hydrogen Evolution. Acta Physico-Chimica Sinica, 2024, 40(10): 2312010-. doi: 10.3866/PKU.WHXB202312010

    6. [6]

      Bairu MengZongji ZhuoHan YuSining TaoZixuan ChenErik De ClercqChristophe PannecouqueDongwei KangPeng ZhanXinyong Liu . Design, synthesis, and biological evaluation of benzo[4,5]thieno[2,3-d]pyrimidine derivatives as novel HIV-1 NNRTIs. Chinese Chemical Letters, 2024, 35(6): 108827-. doi: 10.1016/j.cclet.2023.108827

    7. [7]

      Zhen Shi Wei Jin Yuhang Sun Xu Li Liang Mao Xiaoyan Cai Zaizhu Lou . Interface charge separation in Cu2CoSnS4/ZnIn2S4 heterojunction for boosting photocatalytic hydrogen production. Chinese Journal of Structural Chemistry, 2023, 42(12): 100201-100201. doi: 10.1016/j.cjsc.2023.100201

    8. [8]

      Xiaoling LUOPintian ZOUXiaoyan WANGZheng LIUXiangfei KONGQun TANGSheng WANG . Synthesis, crystal structures, and properties of lanthanide metal-organic frameworks based on 2, 5-dibromoterephthalic acid ligand. Chinese Journal of Inorganic Chemistry, 2024, 40(6): 1143-1150. doi: 10.11862/CJIC.20230271

    9. [9]

      Xiutao Xu Chunfeng Shao Jinfeng Zhang Zhongliao Wang Kai Dai . Rational Design of S-Scheme CeO2/Bi2MoO6 Microsphere Heterojunction for Efficient Photocatalytic CO2 Reduction. Acta Physico-Chimica Sinica, 2024, 40(10): 2309031-. doi: 10.3866/PKU.WHXB202309031

    10. [10]

      Binyang QinMengqi WangShimei WuYining LiChilin LiuYufei ZhangHaosen Fan . Carbon dots confined nanosheets assembled NiCo2S4@CDs cross-stacked architecture for enhanced sodium ion storage. Chinese Chemical Letters, 2024, 35(7): 108921-. doi: 10.1016/j.cclet.2023.108921

    11. [11]

      Jindong HaoYufen LvShuyue TianChao MaWenxiu CuiHuilan YueWei WeiDong Yi . Additive-free synthesis of β-keto phosphorodithioates via geminal hydro-phosphorodithiolation of sulfoxonium ylides with P4S10 and alcohols. Chinese Chemical Letters, 2024, 35(9): 109513-. doi: 10.1016/j.cclet.2024.109513

    12. [12]

      Weizhong LINGXiangyun CHENWenjing LIUYingkai HUANGYu LI . Syntheses, crystal structures, and catalytic properties of three zinc(Ⅱ), cobalt(Ⅱ) and nickel(Ⅱ) coordination polymers constructed from 5-(4-carboxyphenoxy)nicotinic acid. Chinese Journal of Inorganic Chemistry, 2024, 40(9): 1803-1810. doi: 10.11862/CJIC.20240068

    13. [13]

      Qianqian Liu Xing Du Wanfei Li Wei-Lin Dai Bo Liu . Synergistic Effects of Internal Electric and Dipole Fields in SnNb2O6/Nitrogen-Enriched C3N5 S-Scheme Heterojunction for Boosting Photocatalytic Performance. Acta Physico-Chimica Sinica, 2024, 40(10): 2311016-. doi: 10.3866/PKU.WHXB202311016

    14. [14]

      Yi YANGShuang WANGWendan WANGLimiao CHEN . Photocatalytic CO2 reduction performance of Z-scheme Ag-Cu2O/BiVO4 photocatalyst. Chinese Journal of Inorganic Chemistry, 2024, 40(5): 895-906. doi: 10.11862/CJIC.20230434

    15. [15]

      Siyu HOUWeiyao LIJiadong LIUFei WANGWensi LIUJing YANGYing ZHANG . Preparation and catalytic performance of magnetic nano iron oxide by oxidation co-precipitation method. Chinese Journal of Inorganic Chemistry, 2024, 40(8): 1577-1582. doi: 10.11862/CJIC.20230469

    16. [16]

      Guangming YINHuaiyao WANGJianhua ZHENGXinyue DONGJian LIYi'nan SUNYiming GAOBingbing WANG . Preparation and photocatalytic degradation performance of Ag/protonated g-C3N4 nanorod materials. Chinese Journal of Inorganic Chemistry, 2024, 40(8): 1491-1500. doi: 10.11862/CJIC.20240086

    17. [17]

      Hailang JIAHongcheng LIPengcheng JIYang TENGMingyun GUAN . Preparation and performance of N-doped carbon nanotubes composite Co3O4 as oxygen reduction reaction electrocatalysts. Chinese Journal of Inorganic Chemistry, 2024, 40(4): 693-700. doi: 10.11862/CJIC.20230402

    18. [18]

      Min WANGDehua XINYaning SHIWenyao ZHUYuanqun ZHANGWei ZHANG . Construction and full-spectrum catalytic performance of multilevel Ag/Bi/nitrogen vacancy g-C3N4/Ti3C2Tx Schottky junction. Chinese Journal of Inorganic Chemistry, 2024, 40(6): 1123-1134. doi: 10.11862/CJIC.20230477

    19. [19]

      Tong Zhou Xue Liu Liang Zhao Mingtao Qiao Wanying Lei . Efficient Photocatalytic H2O2 Production and Cr(VI) Reduction over a Hierarchical Ti3C2/In4SnS8 Schottky Junction. Acta Physico-Chimica Sinica, 2024, 40(10): 2309020-. doi: 10.3866/PKU.WHXB202309020

    20. [20]

      Junke LIUKungui ZHENGWenjing SUNGaoyang BAIGuodong BAIZuwei YINYao ZHOUJuntao LI . Preparation of modified high-nickel layered cathode with LiAlO2/cyclopolyacrylonitrile dual-functional coating. Chinese Journal of Inorganic Chemistry, 2024, 40(8): 1461-1473. doi: 10.11862/CJIC.20240189

Metrics
  • PDF Downloads(18)
  • Abstract views(2207)
  • HTML views(374)

通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索
Address:Zhongguancun North First Street 2,100190 Beijing, PR China Tel: +86-010-82449177-888
Powered By info@rhhz.net

/

DownLoad:  Full-Size Img  PowerPoint
Return