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

| 236404-48-1

中文名称
——
中文别名
——
英文名称
——
英文别名
——
化学式
CAS
236404-48-1
化学式
C40H50N2O8
mdl
——
分子量
686.846
InChiKey
MASNDTVNBIIWED-UMSFTDKQSA-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

计算性质

  • 辛醇/水分配系数(LogP):
    6.79
  • 重原子数:
    50.0
  • 可旋转键数:
    15.0
  • 环数:
    4.0
  • sp3杂化的碳原子比例:
    0.45
  • 拓扑面积:
    120.47
  • 氢给体数:
    1.0
  • 氢受体数:
    9.0

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

反应信息

  • 作为反应物:
    描述:
    在 palladium on activated charcoal 氢气 作用下, 以 乙酸乙酯 为溶剂, 反应 11.0h, 以72%的产率得到(S)-10-(2-tert-butoxy-2-oxoethyl)-1-(9H-fluoren-9-yl)-14,14-dimethyl-3,12-dioxo-2,13-dioxa-4,10-diaza pentadecane-5-carboxylic acid
    参考文献:
    名称:
    Single- or Dual-Mode Switching of Semisynthetic Ribonuclease S′ with an Iminodiacetic Acid Moiety in Response to the Copper(II) Concentration
    摘要:
    Ribonuclease S' bearing iminodiacetic acid as a metal-binding site was designed and semisynthesized by self-assembly of native S-protein with chemically modified S-peptide. Iminodiacetic acid-appended amino acid (Ida(4)) was synthesized and incorporated into the S-peptide sequence by solid-phase peptide synthesis based on Fmoc chemistry at a single site or double sites of the solvent-exposed side of the S-peptide. Circular dichroism (CD) spectroscopy of these S-peptides confirmed that the Cu-II ion induced an increase or decrease of alpha-helix conformation depending on the replacement position. S-Peptide/S-protein titration monitored by conventional enzymatic activity and UV or CD spectroscopy demonstrated that various S-peptides form a stable complex (Ida(4)-RNase S') with S-protein, except when Met13 and Asp14 are replaced with Ida4. In Cu-II titration and thermal denaturation experiments with single-site replacement mutants, Cu-II binding occurred at 1:1 stoichiometry of Ida(4)/Cu-II with perturbation of the a-helix conformation. Both 2:1 and 2:2 stoichiometries were achieved by addition of Cu-II ions to double-site mutants, and were dependent on the Cu-II concentration. Most importantly, the A6/E9Ida(4)-RNase S' mutant shows cooperative binding of Cu-II ion with two Ida(4); holoenzyme stability is enhanced at 2:1 stoichiometry, but at 2:2 stoichiometry, two Ida(4) sites independently bind two Cu-II ions, and the mutant is destabilized. Other double mutants showed simple destabilization of 3D structure upon Cu-II binding. The response of the enzymatic activity of these Ida4-RNase S' to the concentration of Cu-II ion was evaluated by the hydrolysis of polyuridiric acid catalyzed by RNaseS' mutants. The Cu-II-induced activity change of single and double mutants agreed well with the structural response to Cu-II, that is, the activity of AG/E9Ida(4)-RNaseS' was enhanced upon cooperative Cu-II binding at 2:1 stoichiometry and then suppressed at the 2:2 ratio. The activity of all other mutants was simply suppressed by Cu-II ions. These results represent successful switching of A6/E9Ida(4)-RNase S' activity in dual mode, that is, suppression (OFF) or enhancement (ON), depending on the environmental Cu-II concentration. Thus it has been established that rational design of a metal-binding site can confer the dual mode of response to a metal cation on the structure and activity of an enzyme.
    DOI:
    10.1002/(sici)1521-3765(19990503)5:5<1503::aid-chem1503>3.0.co;2-6
  • 作为产物:
    描述:
    Fmoc-Lys(Boc)-OBn碳酸氢钠 、 potassium iodide 作用下, 以 二氯甲烷N,N-二甲基甲酰胺 为溶剂, 反应 105.0h, 生成
    参考文献:
    名称:
    Single- or Dual-Mode Switching of Semisynthetic Ribonuclease S′ with an Iminodiacetic Acid Moiety in Response to the Copper(II) Concentration
    摘要:
    Ribonuclease S' bearing iminodiacetic acid as a metal-binding site was designed and semisynthesized by self-assembly of native S-protein with chemically modified S-peptide. Iminodiacetic acid-appended amino acid (Ida(4)) was synthesized and incorporated into the S-peptide sequence by solid-phase peptide synthesis based on Fmoc chemistry at a single site or double sites of the solvent-exposed side of the S-peptide. Circular dichroism (CD) spectroscopy of these S-peptides confirmed that the Cu-II ion induced an increase or decrease of alpha-helix conformation depending on the replacement position. S-Peptide/S-protein titration monitored by conventional enzymatic activity and UV or CD spectroscopy demonstrated that various S-peptides form a stable complex (Ida(4)-RNase S') with S-protein, except when Met13 and Asp14 are replaced with Ida4. In Cu-II titration and thermal denaturation experiments with single-site replacement mutants, Cu-II binding occurred at 1:1 stoichiometry of Ida(4)/Cu-II with perturbation of the a-helix conformation. Both 2:1 and 2:2 stoichiometries were achieved by addition of Cu-II ions to double-site mutants, and were dependent on the Cu-II concentration. Most importantly, the A6/E9Ida(4)-RNase S' mutant shows cooperative binding of Cu-II ion with two Ida(4); holoenzyme stability is enhanced at 2:1 stoichiometry, but at 2:2 stoichiometry, two Ida(4) sites independently bind two Cu-II ions, and the mutant is destabilized. Other double mutants showed simple destabilization of 3D structure upon Cu-II binding. The response of the enzymatic activity of these Ida4-RNase S' to the concentration of Cu-II ion was evaluated by the hydrolysis of polyuridiric acid catalyzed by RNaseS' mutants. The Cu-II-induced activity change of single and double mutants agreed well with the structural response to Cu-II, that is, the activity of AG/E9Ida(4)-RNaseS' was enhanced upon cooperative Cu-II binding at 2:1 stoichiometry and then suppressed at the 2:2 ratio. The activity of all other mutants was simply suppressed by Cu-II ions. These results represent successful switching of A6/E9Ida(4)-RNase S' activity in dual mode, that is, suppression (OFF) or enhancement (ON), depending on the environmental Cu-II concentration. Thus it has been established that rational design of a metal-binding site can confer the dual mode of response to a metal cation on the structure and activity of an enzyme.
    DOI:
    10.1002/(sici)1521-3765(19990503)5:5<1503::aid-chem1503>3.0.co;2-6
点击查看最新优质反应信息

同类化合物

(S)-2-N-Fmoc-氨基甲基吡咯烷盐酸盐 (2S,4S)-Fmoc-4-三氟甲基吡咯烷-2-羧酸 黎芦碱 鳥胺酸 魏因勒卜链接剂 雷迪帕韦二丙酮合物 雷迪帕韦中间体6 雷迪帕韦 雷迪帕维中间体 雷迪帕维中间体 雷尼托林 锰(2+)二{[乙酰基(9H-芴-2-基)氨基]氧烷负离子} 醋酸丁酸纤维素 达托霉素杂质 赖氨酸杂质4 试剂9,9-Dioctyl-9H-fluoren-2-amine 螺[环戊烷-1,9'-芴] 螺[环庚烷-1,9'-芴] 螺[环己烷-1,9'-芴] 螺[3.3]庚烷-2,6-二-(2',2'',7',7''-四碘螺芴) 螺-(金刚烷-2,9'-芴) 螺(环己烷-1,9'-芴)-3-酮 藜芦托素 荧蒽 反式-2,3-二氢二醇 草甘膦-FMOC 英地卡胺 苯芴醇杂质A 苯甲酸-(芴-9-基-苯基-甲基酯) 苯甲酸-(9-苯基-芴-9-基酯) 苯并[b]芴铯盐 苯并[a]芴酮 苯基芴胺 苯基(9-苯基-9-芴基)甲醇 苯(甲)醛,9H-芴-9-亚基腙 苯(甲)醛,4-羟基-3-甲氧基-,(3-甲基-9H-茚并[2,1-c]吡啶-9-亚基)腙 芴甲氧羰酰胺 芴甲氧羰酰基高苯丙氨酸 芴甲氧羰酰基肌氨酸 芴甲氧羰酰基环己基甘氨酸 芴甲氧羰酰基正亮氨酸 芴甲氧羰酰基D-环己基甘氨酸 芴甲氧羰酰基D-Β环己基丙氨酸 芴甲氧羰酰基-O-三苯甲基丝氨酸 芴甲氧羰酰基-D-正亮氨酸 芴甲氧羰酰基-6-氨基己酸 芴甲氧羰基-高丝氨酸内酯 芴甲氧羰基-缬氨酸-1-13C 芴甲氧羰基-叔丁基二甲基硅-D-丝氨酸 芴甲氧羰基-beta-赖氨酰酸(叔丁氧羰基) 芴甲氧羰基-S-叔丁基-L-半胱氨酸五氟苯基脂