English
新闻公告
More
化学进展 1999, Vol. 11 Issue (04): 403- 前一篇   后一篇

• 综述与评论 •

核蛋白的生物功能及核肽的合成和应用

田晓兵;闵吉梅;张礼和   

  1. 北京医科大学
  • 收稿日期:1999-01-01 修回日期:1999-04-01 出版日期:1999-11-24 发布日期:1999-11-24
  • 通讯作者: 张礼和

Biology Functions of Nucleoprotein and Synthesis, Applications of Nucleopeptide

Tian Xiaobing;Min Jimei;Zhang Lihe   

  1. National Research Laboratory of Natural and Biomimetic Drugs, Beijing Medical University, Beijing 10083, China
  • Received:1999-01-01 Revised:1999-04-01 Online:1999-11-24 Published:1999-11-24
  • Contact: Zhang Lihe

核蛋白或核肽是一类其侧链羟基通过磷酸二酯键连接到DNA 或RNA 的3′或5′端的天然生物大分子, 具有广泛的生物学效应, 包括DNA 及RNA 的复制、DNA 的转录、插入、缺失和重组等。核肽也指合成的核蛋白结合位点的片断, 作为一种新的工具既可用于研究核蛋白产生生物效应的机理, 又为开发新一类抗病毒、抗肿瘤药物开辟了道路。

Nucleoprotein or nucleopeptide is a class of natural macromolecules in which the protein or peptide cores are combined with DNA or RNA at 3′or 5′end by phosphodiester linkages in their side chain. They exhibit broad biological effects including the proliferation of DNA and RNA and the transcription, interaction, deletion, reformation of DNA etc. Nucleopeptides can be synthesized as the fragments of nucleoprotein at binding position and used as a tool for the investigation of the mechanism of biological effects of nucleoproteins. It will open a way to the search for anticancer and antiviral drugs.

中图分类号: 

()

[1 ] Robels J , Edroso E P, Grands A , J. Org. Chem. , 1994, 59, 2482—2486.
[2 ] Salas M , Ann. Rev. Biochem. , 1991, 60, 39—71.
[3 ] Blanco L , Lazaro J M , de Vaga M et al. , Proc. Natl. Acad. Sci. USA , 1994, 91, 12198—12202.
[4 ] Serrano M , Salas M , Hermoso J M , Science, 1990, 248, 1012—1016.
[5 ] Blanco L , Salas M , Proc. Natl. Acad. Sci. USA , 1984, 81, 5325—5329.
[6 ] Hermoso J M , Mendez E, Soriano F et al. , N ucleic Acids Res. , 1985, 13, 7715—7728.
[7 ] Mendz J , Blanco L , Esteban J A et al. , Proc. Natl. Acad. Sci. USA , 1992, 89, 9579—9583.
[8 ] Blanco L , Bernad A , Lazalo J M et al. , J. Biol. Chem. , 1989, 264, 8935—8940.
[9 ] Depew R E, Liu L F, Wang J C, J. Biol. Chem. , 1978, 253, 511—518.
[10 ] Jaxel C, Capranico G, Kerrigan D et al. , J. Biol. Chem. , 1981, 256, 4805—4809.
[11 ] Champoux J J , J. Biol. Chem. , 1991, 266, 20418—20423.
[12 ] Shuman S, Kane E M , Morhan S G, Proc. Natl. Acad. Sci. USA , 1989, 86, 9703—9797.
[13 ] Wittschieben J , Peters B 5 , Shuman S, N ucleic Acids Res. , 1998, 26, 490—496.
[14 ] Tse Y C, McCarron B G, Arentzen R et al. , N ucleic Acdis Res. , 1983, 11, 8691—8701.
[15 ] Tse Y C, Kirgaard K, Wang J C, J. Biol. Chem. , 1980, 255, 5560—5565.
[16 ] Nelsen E M , Tewey K M , Liu L F, Proc. Natl. Acad. Sci. USA , 1984, 81, 1361—1365.
[17 ] Liu L F, Ann. Rev. Biochem. , 1989, 58, 371—375.
[18 ] Merino A , Madden K R, Lane W S et al. , Nature, 1993, 365, 227—232.
[19 ] Kretzchmar M , Meisterenst M , Loeder R, Proc. Natl. Acad. Sci. USA , 1993, 90, 11508—11512.
[20 ] Zhu J , Schiestl R H, Mol. Cell. Biol. , 1996, 4, 1805—1912.
[21 ] Meima R, Haan G J , Venema G et al. , Nucleic Acids Res. , 1998, 26, 2366—2373.
[22 ] Svejstrup J Q , Christiansen K, Cromova I I et al. , J. Mol. Biol. , 1991, 222, 669—678.
[23 ] Shuman S, J. Biol. Chem. , 1992, 267, 16755—16758.
[24 ] Hennigfeld K A , Hecht SM , Biochemistry , 1995, 34, 6120—6129.
[25 ] Christiansen K, Westergraad O , J. Biol. Chem. , 1994, 269, 721—729.
[26 ] Hennigfeld K A , Arslan T , Hech t SM , J. Am. Chem. Soc. , 1996, 118, 11701—11714.
[27 ] Dreef-Tromp C M , Van der Elst H, Van der Boogaart J E et al. , Nucleic Acids Res. , 1992, 20,4015—4020.
[28 ] Dreef-Tromp C M , Van der Elst H, Van der Boogaart J E et al. , Nucleic Acids Res. , 1992, 20,2435—2439.
[29 ] Kuyl-Yehenskiely E, tromp C M , Lefeber A W M et al. , Tetrahedron, 1988, 44, 6515—6523.
[30 ] Ueno Y, Saio R, Hata T ,nucleic Acids Res. , 1993, 21, 4451—4457.
[31 ] Filippov D, Kuyl-Yehenskiely E, Van der Marel G A et al. , Tetrahedron Lett. , 1998, 39, 3597—3600.
[32 ] Robles J , Pedroso E, Gandas A , Tetrahedron Lett. , 1994, 35, 4449—4452.
[33 ] Waldmann H, Gabold S, Chem. Commun. , 1997, 1861.
[34 ] Barton D J , Flangan J B, J. Virol. , 1997, 71, 8482—8489.
[35 ] Young D C, Dunn B M , Tobin G J et al. , J. Virol. , 1986, 58, , 715—723.
[36 ] Baron M H, Baltimore D, Cell, 1982, 30, 745—752.
[37 ] Takeda N , Kuhn R J , Yang C F et al. , J. Virol. , 1986, 60, 43—53.
[38 ] Tobin G J , Yong D C, Flanegan J B, Cell, 1989, 59, 511—519.
[39 ] Wang J C, Ann. Rev. Biochem. , 1985, 54, 665—697.
[40 ] Champoux J J ,in DNA Topologyand Biological Effects. , Cold Spring Harbor Laboratory, Cold Spring Harbor, N Y, 1990, 217—242.
[41 ] Sekiguchi J , Shuman S, J. Biol. Chem. , 1996, 271, 19436—19442.
[42 ] Boege F, Straub T , Kehr A et al. , J. Biol. Chem. , 1996, 271, 2262—2270.
[43 ] Hiasa H, Yousef D O , Marians K J , J. Biol. Chem. , 1996, 271, 26424—26429.
[44 ] Haralambidis J , Duncan L , Angus K et al. , Nucleic Acids Res. , 1990, 18, 493—499.
[45 ] Diek G, Hartmut S, Gema T et al. , CA , 1998, 651727.
[46 ] Vickers T , Baker B F, Cook P D et al. , Nucleic Acids Res. , 1991, 19, 3359.
[47 ] Kofoed T , Rasmussen P B, Valentin-Hansen P et al. , Acta Chemica Scandinavica, 1997, 51, 318—324.
[48 ] Gamper H, Reed M W , Cox T et al. , Nucleic Acids Res. , 1993, 21, 145—150.
[49 ] Eritja R, Pons A , Escarceller M et al. , Tetrahedron, 1991, 47, 4133—4120.
[50 ] dela Torre B G, Avino A , Tarrason G et al. , Tetrahedron Lett. , 1994, 35, 2733—2736.
[51 ] LiX X, Cheng Y Z, Hu X Y et al. , Peptide: Biologyand Chemistry. The Proceedings of the ChinesePep tide S ymp osium 98.
[52 ] Ede N , Tregear G W , Haralambidis J , Bioconjugate Chem. , 1994, 5, 373—378.
[53 ] Soukchareun S, Tregear G W , Haralambidis J , Bioconjugate Chem. , 1995, 6, 43—53.
[54 ] Soukchareun S, Haralambidis J , Tregear G W , Bioconjugate Chem. , 1998, 9, 466—475.

[1] 何静, 陈佳, 邱洪灯. 中药碳点的合成及其在生物成像和医学治疗方面的应用[J]. 化学进展, 2023, 35(5): 655-682.
[2] 鄢剑锋, 徐进栋, 张瑞影, 周品, 袁耀锋, 李远明. 纳米碳分子——合成化学的魅力[J]. 化学进展, 2023, 35(5): 699-708.
[3] 杨孟蕊, 谢雨欣, 朱敦如. 化学稳定金属有机框架的合成策略[J]. 化学进展, 2023, 35(5): 683-698.
[4] 王新月, 金康. 多肽及蛋白质的化学合成研究[J]. 化学进展, 2023, 35(4): 526-542.
[5] 刘雨菲, 张蜜, 路猛, 兰亚乾. 共价有机框架材料在光催化CO2还原中的应用[J]. 化学进展, 2023, 35(3): 349-359.
[6] 龚智华, 胡莎, 金学平, 余磊, 朱园园, 古双喜. 磷酸酯类前药的合成方法与应用[J]. 化学进展, 2022, 34(9): 1972-1981.
[7] 林业竣, 李艳梅. 翻译后修饰Tau蛋白及其化学全/半合成[J]. 化学进展, 2022, 34(8): 1645-1660.
[8] 宝利军, 危俊吾, 钱杨杨, 王雨佳, 宋文杰, 毕韵梅. 酶响应性线形-树枝状嵌段共聚物的合成、性能及应用[J]. 化学进展, 2022, 34(8): 1723-1733.
[9] 徐鹏, 俞飚. 聚糖化学合成的挑战和可能的凝聚态化学问题[J]. 化学进展, 2022, 34(7): 1548-1553.
[10] 李诗宇, 阴永光, 史建波, 江桂斌. 共价有机框架在水中二价汞吸附去除中的应用[J]. 化学进展, 2022, 34(5): 1017-1025.
[11] 王鹏, 刘欢, 杨妲. 烯烃的氢甲酰化串联反应研究[J]. 化学进展, 2022, 34(5): 1076-1087.
[12] 马晓清. 石墨炔在光催化及光电催化中的应用[J]. 化学进展, 2022, 34(5): 1042-1060.
[13] 赵聪媛, 张静, 陈铮, 李建, 舒烈琳, 纪晓亮. 基于电活性菌群的生物电催化体系的有效构筑及其强化胞外电子传递过程的应用[J]. 化学进展, 2022, 34(2): 397-410.
[14] 闫保有, 李旭飞, 黄维秋, 王鑫雅, 张镇, 朱兵. 氨/醛基金属有机骨架材料合成及其在吸附分离中的应用[J]. 化学进展, 2022, 34(11): 2417-2431.
[15] 杨林颜, 郭宇鹏, 李正甲, 岑洁, 姚楠, 李小年. 钴基费托合成催化剂的表界面性质调控[J]. 化学进展, 2022, 34(10): 2254-2266.