摩熵化学
数据库官网
小程序
打开微信扫一扫
首页 分子通 化学资讯 化学百科 反应查询 关于我们
请输入关键词

6-amino-1-(2'-deoxy-β-D-erythro-pentofuranosyl)-1H-imidazo<4,5-c>pyridin-4(5H)-one | 87202-41-3

中文名称
——
中文别名
——
英文名称
6-amino-1-(2'-deoxy-β-D-erythro-pentofuranosyl)-1H-imidazo<4,5-c>pyridin-4(5H)-one
英文别名
6-amino-1-(2-deoxy-β-D-erythro-pentofuranosyl)imidazo<4,5-c>pyridin-4(5H)-one;6-amino-1-(2-deoxy-β-D-ribofuranosyl)imidazo<4,5-c>pyridin-4(5H)-one;2'-deoxy-3-deazaguanosine;2'-deoxyguanosine;6-amino-1-(2'-deoxy-β-D-erythro-pentofuranosyl)-1H-imidazo[4,5-c]pyridin-4(5H)-one;3-Deaza-2'-deoxyguanosine;6-amino-1-[(2R,4S,5R)-4-hydroxy-5-(hydroxymethyl)oxolan-2-yl]-5H-imidazo[4,5-c]pyridin-4-one
6-amino-1-(2'-deoxy-β-D-erythro-pentofuranosyl)-1H-imidazo<4,5-c>pyridin-4(5H)-one化学式
CAS
87202-41-3
化学式
C11H14N4O4
mdl
——
分子量
266.257
InChiKey
CZFUQKNOFZPABS-LKEWCRSYSA-N
BEILSTEIN
——
EINECS
——
  • 物化性质
  • 计算性质
  • ADMET
  • 安全信息
  • SDS
  • 制备方法与用途
  • 上下游信息
  • 反应信息
  • 文献信息
  • 表征谱图
  • 同类化合物
  • 相关功能分类
  • 相关结构分类

物化性质

  • 沸点:
    806.4±65.0 °C(Predicted)
  • 密度:
    1.90±0.1 g/cm3(Predicted)

计算性质

  • 辛醇/水分配系数(LogP):
    -1.3
  • 重原子数:
    19
  • 可旋转键数:
    2
  • 环数:
    3.0
  • sp3杂化的碳原子比例:
    0.45
  • 拓扑面积:
    123
  • 氢给体数:
    4
  • 氢受体数:
    6

SDS

SDS:818da3915bcbee1940eaa073ff5633f4
查看

上下游信息

  • 上游原料
    中文名称 英文名称 CAS号 化学式 分子量
  • 下游产品
    中文名称 英文名称 CAS号 化学式 分子量

反应信息

  • 作为反应物:
    描述:
    6-amino-1-(2'-deoxy-β-D-erythro-pentofuranosyl)-1H-imidazo<4,5-c>pyridin-4(5H)-one吡啶sodium hydroxide 作用下, 以 甲醇 为溶剂, 反应 3.33h, 生成 1-(2'-deoxy-β-D-erythro-pentofuranosyl)-6-<(2-methylpropionyl)amino>-1H-imidazo<4,5-c>pyridin-4(5H)-one
    参考文献:
    名称:
    3-脱氮鸟嘌呤N 7-和N 9-(2'-脱氧-β-D-核呋喃核糖苷):固相合成和掺入寡脱氧核糖核苷酸的基本组成部分
    摘要:
    连续的3-deaza-2'-脱氧鸟苷(I)或其N 7-区域异构体2的寡核苷酸通过使用P 111化学的固相合成来制备。用N,N -V-二甲基甲酰胺二乙缩醛保护1或2,然后进行4,4'-二甲氧基三苯甲基化,分别得到咪唑并[4,5- c ]吡啶10b和11b。后者转化成3'-膦酸酯10 Ç分别或Ile; 氰乙基N,N-二异丙基亚磷酰胺10d也准备好了。寡核苷酸构件被用于自动化固相合成中。1他自身互补寡聚体13,15,和17中制备,并用蛇毒磷酸二酯酶随后碱性磷酸酶,其特征在于酶水解。CD光谱显示出B-DNA的一般结构。
    DOI:
    10.1002/hlca.19910740821
  • 作为产物:
    参考文献:
    名称:
    Nucleosides and Nucleotides. 143. Synthesis of 5-Amino-4-imidazolecarboxamide (AICA) Deoxyribosides from Deoxyinosines and Their Conversion into 3-Deazapurine Derivatives.
    摘要:
    描述了一种高效且大规模的5-氨基咪唑-4-氨基乙酸(AICA)2'-脱氧核糖苷(5a)及其3'-脱氧核糖苷(5b)的化学合成。将3', 5'-二-O-乙酰基-N1-三苯甲基-2'-脱氧腺苷(3a)用5 N氢氧化钠在乙醇中处理,随后用无水三氟乙酸处理,从2'-脱氧腺苷(1a)得到的5a的产率为59%。AICA 3'-脱氧核糖苷(5b)也以类似的方式从3'-脱氧腺苷(1b)获得,产率为73%。还描述了将这些AICA衍生物(5a、b)转化为3-去氨嘌呤衍生物(9a、b,15a、b,20a、b)。
    DOI:
    10.1248/cpb.44.288
点击查看最新优质反应信息

文献信息

  • Nucleoside derivatives as inhibitors of RNA-dependent RNA viral polymerase
    申请人:——
    公开号:US20020147160A1
    公开(公告)日:2002-10-10
    The present invention provides nucleoside compounds and certain derivatives thereof which are inhibitors of RNA-dependent RNA viral polymerase. These compounds are inhibitors of RNA-dependent RNA viral replication and are useful for the treatment of RNA-dependent RNA viral infection. They are particularly useful as inhibitors of hepatitis C virus (HCV) NS5B polymerase, as inhibitors of HCV replication, and/or for the treatment of hepatitis C infection. The invention also describes pharmaceutical compositions containing such nucleoside compounds alone or in combination with other agents active against RNA-dependent RNA viral infection, in particular HCV infection. Also disclosed are methods of inhibiting RNA-dependent RNA polymerase, inhibiting RNA-dependent RNA viral replication, and/or treating RNA-dependent RNA viral infection with the nucleoside compounds of the present invention.
    本发明提供了核苷化合物及其某些衍生物,这些衍生物是RNA依赖性RNA病毒聚合酶的抑制剂。这些化合物是RNA依赖性RNA病毒复制的抑制剂,可用于治疗RNA依赖性RNA病毒感染。它们特别适用于作为丙型肝炎病毒(HCV)NS5B聚合酶的抑制剂,作为HCV复制的抑制剂,以及/或用于治疗丙型肝炎感染。本发明还描述了包含这种核苷化合物的药物组合物,单独使用或与其他对RNA依赖性RNA病毒感染,特别是HCV感染有效的制剂组合使用。还公开了使用本发明的核苷化合物抑制RNA依赖性RNA聚合酶、抑制RNA依赖性RNA病毒复制和/或治疗RNA依赖性RNA病毒感染的方法。
  • Oligonucleotides having modified nucleoside units
    申请人:——
    公开号:US20040014957A1
    公开(公告)日:2004-01-22
    Disclosed are oligonucleotides and oligonucleosides that include one or more modified nucleoside units. The oligonucleotides and oligonucleosides are particularly useful as antisense agents, ribozymes, aptamer, siRNA agents, probes and primers or, when hybridized to an RNA, as a substrate for RNA cleaving enzymes including RNase H and dsRNase.
    披露的是包括一个或多个修饰核苷单元的寡核苷酸和寡核苷糖。这些寡核苷酸和寡核苷糖特别适用于作为反义剂、核酶、适配体、siRNA试剂、探针和引物,或者当它们与RNA杂交时,作为包括RNase H和dsRNase的RNA切割酶的底物。
  • Synthesis of 2-Deoxy-β-D-ribonucleosides and 2,3-Dideoxy-β-D-pentofuranosides on Immobilized Bacterial Cells
    作者:Ivan Votruba、Antonín Holý、Hana Dvořáková、Jaroslav Günter、Dana Hocková、Hubert Hřebabecký、Tomas Cihlar、Milena Masojídková
    DOI:10.1135/cccc19942303
    日期:——

    Alginate gel-entrapped cells of auxotrophic thymine-dependent strain of E. coli catalyze the transfer of 2-deoxy-D-ribofuranosyl moiety of 2'-deoxyuridine to purine and pyrimidine bases as well as their aza and deaza analogs. All experiments invariably gave β-anomers; in most cases, the reaction was regiospecific, affording N9-isomers in the purine and N1-isomers in the pyrimidine series. Also a 2,3-dideoxynucleoside can serve as donor of the glycosyl moiety. The acceptor activity of purine bases depends only little on substitution, the only condition being the presence of N7-nitrogen atom. On the other hand, in the pyrimidine series the activity is limited to only a narrow choice of mostly short 5-alkyl and 5-halogeno uracil derivatives. Heterocyclic bases containing amino groups are deaminated; this can be avoided by conversion of the base to the corresponding N-dimethylaminomethylene derivative which is then ammonolyzed. The method was verified by isolation of 9-(2-deoxy-β-D-ribofuranosyl) derivatives of adenine, guanine, 2-chloroadenine, 6-methylpurine, 8-azaadenine, 8-azaguanine, 1-deazaadenine, 3-deazaadenine, 1-(2-deoxy-β-D-ribofuranosyl) derivatives of 5-ethyluracil, 5-fluorouracil, and 9-(2,3-dideoxy-β-D-pentofuranosyl)hypoxanthine, 9-(2,3-dideoxy-β-D-pentofuranosyl)-6-methylpurine, and other nucleosides.

    藻酸盐凝胶包埋的辅助胸腺嘧啶依赖菌株大肠杆菌细胞催化2'-脱氧尿嘧啶的2-脱氧-D-核糖呋喃基团转移到嘌呤和嘧啶碱基以及它们的氮杂和去氮类似物。所有实验都不可避免地产生β-异构体;在大多数情况下,反应是区域特异性的,产生嘌呤中的N9-异构体和嘧啶系列中的N1-异构体。此外,2,3-二脱氧核苷酸可以作为糖基团的供体。嘌呤碱基的受体活性仅在取代上有少许影响,唯一的条件是存在N7-氮原子。另一方面,在嘧啶系列中,活性仅限于大多数短链5-烷基和5-卤代尿嘧啶衍生物的狭窄选择。含氨基的杂环碱基会发生脱氨作用;可以通过将碱基转化为相应的N-二甲氨基甲烯基衍生物来避免这种情况,然后进行氨解作用。该方法通过分离腺嘌呤、鸟嘌呤、2-氯腺嘌呤、6-甲基嘌呤、8-氮杂腺嘌呤、8-氮杂鸟嘌呤、1-去氮腺嘌呤、3-去氮腺嘌呤的9-(2-脱氧-β-D-核糖呋喃基)衍生物,5-乙基尿嘧啶、5-氟尿嘧啶的1-(2-脱氧-β-D-核糖呋喃基)衍生物,以及9-(2,3-二脱氧-β-D-戊呋喃基)缺氧嘌呤、9-(2,3-二脱氧-β-D-戊呋喃基)-6-甲基嘌呤和其他核苷酸的验证。
  • NUCLEOSIDE DERIVATIVES AS INHIBITORS OF RNA-DEPENDENT RNA VIRAL POLYERMASE
    申请人:MERCK SHARP & DOHME CORP.
    公开号:US20170183373A1
    公开(公告)日:2017-06-29
    The present invention provides nucleoside compounds and certain derivatives thereof which are inhibitors of RNA-dependent RNA viral polymerase. These compounds are inhibitors of RNA-dependent RNA viral replication and are useful for the treatment of RNA-dependent RNA viral infection. They are particularly useful as inhibitors of hepatitis C virus (HCV) NS5B polymerase, as inhibitors of HCV replication, and/or for the treatment of hepatitis C infection. The invention also describes pharmaceutical compositions containing such nucleoside compounds alone or in combination with other agents active against RNA-dependent RNA viral infection, in particular HCV infection. Also disclosed are methods of inhibiting RNA-dependent RNA polymerase, inhibiting RNA-dependent RNA viral replication, and/or treating RNA-dependent RNA viral infection with the nucleoside compounds of the present invention.
    本发明提供了核苷类化合物及其某些衍生物,这些化合物是RNA依赖性RNA病毒聚合酶的抑制剂。这些化合物是RNA依赖性RNA病毒复制的抑制剂,对于治疗RNA依赖性RNA病毒感染非常有用。它们特别适用于作为乙型肝炎病毒(HCV)NS5B聚合酶的抑制剂,作为HCV复制的抑制剂,和/或用于治疗丙型肝炎感染。该发明还描述了含有这种核苷类化合物的药物组合物,单独使用或与其他针对RNA依赖性RNA病毒感染,特别是HCV感染的药物一起使用。还公开了使用本发明的核苷类化合物抑制RNA依赖性RNA聚合酶、抑制RNA依赖性RNA病毒复制和/或治疗RNA依赖性RNA病毒感染的方法。
  • Synthesis and antiviral/antitumor activities of certain 3-deazaguanine nucleosides and nucleotides
    作者:Ganapathi R. Revankar、Pranab K. Gupta、Alexander D. Adams、N. Kent Dalley、Patricia A. McKernan、P. Dan Cook、Peter G. Canonico、Roland K. Robins
    DOI:10.1021/jm00377a002
    日期:1984.11
    3-deazaguanosine (2) has been developed by reacting methyl 5(4)-(cyanomethyl) imidazole-4(5)-carboxylate (4) and 5-(cyanomethyl)-1- (2,3,5-tri-O-benzoyl-beta-D-ribofuranosyl)imidazole-4-carboxylate (6), respectively, with hydrazine. The 3-deazaguanosine 3',5'-cyclic phosphate (13) was prepared from 5-(cyanomethyl)-1-beta-D-ribofuranosyl-imidazole-4-carboxamide 5'-phosphate. Glycosylation of the trimethylsilyl 4
    通过使5(4)-(氰基甲基)咪唑-4(5)-羧酸甲酯反应,开发了一种制备抗病毒和抗肿瘤药3-deazaguanine(1)及其代谢物3-deazaguanosine(2)的新方法。 4)和5-(氰基甲基)-1-(2,3,5-三-O-苯甲酰基-β-D-呋喃呋喃糖基)咪唑-4-羧酸酯(6)与肼。由5-(氰基甲基)-1-β-D-呋喃呋喃糖基-咪唑-4-羧酰胺5'-磷酸制备3-脱氮鸟苷3',5'-环状磷酸酯(13)。在三甲基甲硅烷基三氟甲磺酸酯存在下,用1-O-甲基-2-脱氧-3,5-二-Op-甲苯甲酰基-D-呋喃呋喃糖将三甲基甲硅烷基4糖基化,得到相应的N-1和N-3糖基衍生物,其中α-配置(18和20)作为主要产品,以及少量的β-端基异构体(19和21)。然而,4的钠盐与1-氯-2-脱氧-3,5-二-Op-甲苯甲酰-α-D-赤型五氟呋喃糖(17)的糖基化反应仅产生良好的β-端基异构体(19和2
查看更多

同类化合物

4-氨基-1-(2’,3’,5’-三-O-叔-丁基二甲基硅烷基-beta-D-呋喃核糖基)-咪唑并[4,5-a]吡啶 3-脱氮腺苷 3-去氮杂鸟苷酸 3-去氮杂鸟苷三磷酸酯 3-去氮杂鸟苷 1-(2-脱氧-beta-D-赤式-呋喃戊糖基)-1H-咪唑并[4,5-c]吡啶-4-胺 1-(2,3,5-三-O-乙酰基-beta-D-呋喃核糖基)-4,6-二氯咪唑并[4,5-c]吡啶 5'-O-(N-L-seryl)sulfamoyl-3-deaza-adenosine 5'-O-(N-glycyl)sulfamoyl-3-deaza-adenosine 5'-O-(N-L-isoleucyl)sulfamoyl-3-deaza-adenosine 2-Fluoro-3-deaza-adenosine 4-(pyridin-3-yl)-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine 4-(pyrrol-3-yl)-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine 4-(pyrrol-2-yl)-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine 4-(furan-2-yl)-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine 1-(β-D-ribofuranosyl)-4-(thiophen-3-yl)-1H-imidazo[4,5-c]pyridine 4-cyclopropyl-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine 4-methyl-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine 1-(β-D-ribofuranosyl)-4-(thiophen-2-yl)-1H-imidazo[4,5-c]pyridine Adenosine, 3-deaza- (2R,3S,5R)-5-(4-Dimethylamino-imidazo[4,5-c]pyridin-1-yl)-2-hydroxymethyl-tetrahydro-furan-3-ol (2R,3S,5R)-2-Hydroxymethyl-5-(4-mercapto-imidazo[4,5-c]pyridin-1-yl)-tetrahydro-furan-3-ol 4-chloro-7-fluoro-1-(2'-C-methyl-β-D-ribofuranosyl)-imidazo[4,5-c]pyridine 4-ethyl-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine (2R,3S,5R)-5-(4-Benzylamino-imidazo[4,5-c]pyridin-1-yl)-2-hydroxymethyl-tetrahydro-furan-3-ol 4-(Methylsulfanyl)-1-pentofuranosyl-1H-imidazo[4,5-c]pyridine 4,7-difluoro-1-(2,3,5-tri-O-benzoyl-2-C-methyl-β-D-ribofuranosyl)-imidazo[4,5-c]pyridine 6-Chloro-n,n-dimethyl-1-pentofuranosyl-1h-imidazo[4,5-c]pyridin-4-amine 2-(6-Chloro-4-methoxyimidazo[4,5-c]pyridin-1-yl)-5-(hydroxymethyl)oxolane-3,4-diol 2-(4-Benzylsulfanyl-6-chloroimidazo[4,5-c]pyridin-1-yl)-5-(hydroxymethyl)oxolane-3,4-diol 2-(6-Chloro-4-methylsulfanylimidazo[4,5-c]pyridin-1-yl)-5-(hydroxymethyl)oxolane-3,4-diol N-[4-bromo-1-[3,4-dihydroxy-5-(hydroxymethyl)oxolan-2-yl]imidazo[4,5-c]pyridin-6-yl]acetamide 5,6-Diamino-1-[3,4-dihydroxy-5-(hydroxymethyl)oxolan-2-yl]imidazo[4,5-c]pyridin-4-one 1-amino-3-deazaguanosine 3-deazainosine 6-chloro-4-(cyclohexylamino)-1-(3-deoxy-β-D-ribofuranosyl)-1H-imidazo<4,5-c>pyridine [(2R,3R,4R,5R)-3,4-dibenzoyloxy-5-(4,6-dichloroimidazo[4,5-c]pyridin-1-yl)-4-methyloxolan-2-yl]methyl benzoate 4-amino-6-chloro-1-(3-deoxy-β-D-ribofuranosyl)-1H-imidazo<4,5-c>pyridine 4-amino-1-(2-deoxy-b-d-ribofuranosyl)-7-(1-naphthylethynyl)-imidazo[4,5-c]pyridine 3-Deazaguanosine 3',5'-cyclic phosphate 4-chloro-7-fluoro-1-(β-D-ribofuranosyl)imidazo[4,5-c]pyridine (2R,3S,5R)-5-(4-Benzylsulfanyl-imidazo[4,5-c]pyridin-1-yl)-2-hydroxymethyl-tetrahydro-furan-3-ol 4-(1H-pyrazol-5-yl)-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine 2-bromo-5-methyl-1-(2,3,5-tri-O-t-butyldimethyl-silyl-β-D-ribofuranosyl)imidazo[4,5-c]pyridin-4(5H)-one 4-amino-6-fluoro-1-(2,3,5-tri-O-benzyl-β-D-arabinofuranosyl)imidazo[4,5-c]pyridine 4-amino-6-fluoro-1-(2,3,5-tri-O-benzyl-α-D-arabinofuranosyl)imidazo[4,5-c]pyridine 4-chloro-1-(2',3'-dideoxy-α-D-glycero-pentofuranosyl)-1H-imidazo<4,5-c>pyridine 4-chloro-1-(2',3'-dideoxy-5'-O-<(1'',1 ''-dimethylethyl)dimethylsilyl>-β-D-glycero-pentofuranosyl)-1H-imidazo<4,5-c>pyridine 4-chloro-1-(2',3'-dideoxy-5'-O-<(1'',1 ''-dimethylethyl)dimethylsilyl>-α-D-glycero-pentofuranosyl)-1H-imidazo<4,5-c>pyridine 4-(furan-3-yl)-1-(β-D-ribofuranosyl)-1H-imidazo[4,5-c]pyridine