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5-(溴甲基)-2,4(1H,3H)-嘧啶二酮 | 4874-37-7

中文名称
5-(溴甲基)-2,4(1H,3H)-嘧啶二酮
中文别名
——
英文名称
5-bromomethyl-1H-pyrimidine-2,4-dione
英文别名
5-bromomethyluracil;5-(bromomethyl)-1H-pyrimidine-2,4-dione
5-(溴甲基)-2,4(1H,3H)-嘧啶二酮化学式
CAS
4874-37-7
化学式
C5H5BrN2O2
mdl
——
分子量
205.011
InChiKey
PTDZLXBJOJLWKG-UHFFFAOYSA-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

  • 熔点:
    >330 °C (decomp)
  • 密度:
    1.751±0.06 g/cm3(Predicted)

计算性质

  • 辛醇/水分配系数(LogP):
    -1
  • 重原子数:
    10
  • 可旋转键数:
    1
  • 环数:
    1.0
  • sp3杂化的碳原子比例:
    0.2
  • 拓扑面积:
    58.2
  • 氢给体数:
    2
  • 氢受体数:
    2

SDS

SDS:94459e5104b630a933e3f518d590095c
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反应信息

  • 作为反应物:
    描述:
    参考文献:
    名称:
    ORZESZKO, GRAZYNA;BITNY-SZLACHTO, STANISLAW, ACTA POL. PHARM., 45,(1988) N, C. 237-240
    摘要:
    DOI:
  • 作为产物:
    描述:
    5-羟甲基脲嘧啶氢溴酸 作用下, 反应 2.0h, 以90%的产率得到5-(溴甲基)-2,4(1H,3H)-嘧啶二酮
    参考文献:
    名称:
    Facile and Selective Electrostatic Stabilization of Uracil N(1)- Anion by a Proximate Protonated Amine:  A Chemical Implication for Why Uracil N(1) Is Chosen for Glycosylation Site
    摘要:
    A question of how uracil nitrogen N(1) is selectively activated in enzymes (e.g., for deglycosylation in uracil-DNA glycosylase) has been utterly overlooked, to which we have addressed by a model study with 6-((1,4,7,10-tetraazacyclododecyl)methyl)uracil (HL, cyclen-attached uracil). The uracil N(1)H of the diprotonated cyclen-attached uracil (HL . 2H(+)) is easily deprotonated to be N(1)(-) anion form (L-. 2H(+)) in aqueous solution. The deprotonation constant (pK(a)) of 7.14 for HL . 2H(+) reversible arrow L-. 2H(+) + H+ was determined by potentiometric pH titration at 25 degrees C with I = 0.10 (NaClO4). The unusually low deprotonation constant (cf. pK(a) = 9.9 for 3-methyluracil) is due to the electrostatic stabilization of the N(1)(-) anion by a proximate secondary ammonium cation of the diprotonated cyclen at physiological pH. The X-ray crystal structure of HL . 2H(+) as its dipicrate revealed that the uracil N(1)H is linked by a hydrogen bond network to one of the cyclen secondary ammonium cation through a water. Crystals of HL . 2H(+).(picrate)(2) . H2O (C25H32N12O17) are triclinic, space group P (1) over bar (no. 2) with a = 9.295(4) Angstrom, b = 19.67(1) Angstrom, c = 8.886(6) Angstrom, alpha = 94.36(3)degrees, beta = 102.95(4)degrees, gamma = 87.04(4)degrees, V = 1576(8) Angstrom(3), Z = 2, R = 0.054, and R-W = 0.081. The electrostatic stabilization of uracil N(1)(-) anion is reassessed by a comparative study with a zinc(II) complex with the cyclen-attached uracil, where Zn2+ in the cyclen cavity strongly binds to the uracil N(1)(-) (localized) anion. The deprotonation of N(1)H of HL (1 mM) occurred below pH 5 by the effect of equimolar Zn2+, a stronger acid than two protons. Crystals of the zinc(II) complex (C13H23N6O2Zn . ClO4 . H2O) are triclinic, space group P (1) over bar (no. 2) with a = 9.461(3) Angstrom, b = 13.156(4) Angstrom, c = 8.687(2) Angstrom, alpha = 101.21(2)degrees, beta = 103.55(2)degrees, gamma = 73.21(2)degrees, V = 997(0) Angstrom(3), Z = 2, R = 0.063, and R-W = 0.093. For comparison, we also have investigated the uracil N(1) acidity with an ethylenediamine-attached uracil and an isomeric cyclen-attached (at C(5)) uracil. The present example of electrostatic stabilization of N(1)(-) anion may explain the facile uracil N(1)-alkyl (e.g., glycosyl) bond formation and cleavage in enzymes.
    DOI:
    10.1021/ja972129n
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文献信息

  • ORZESZKO, GRAZYNA;BITNY-SZLACHTO, STANISLAW, ACTA POL. PHARM., 45,(1988) N, C. 237-240
    作者:ORZESZKO, GRAZYNA、BITNY-SZLACHTO, STANISLAW
    DOI:——
    日期:——
  • KIEFER, G.;KEPPELER, K.
    作者:KIEFER, G.、KEPPELER, K.
    DOI:——
    日期:——
  • Facile and Selective Electrostatic Stabilization of Uracil N(1)<sup>-</sup> Anion by a Proximate Protonated Amine:  A Chemical Implication for Why Uracil N(1) Is Chosen for Glycosylation Site
    作者:Eiichi Kimura、Hideyuki Kitamura、Tohru Koike、Motoo Shiro
    DOI:10.1021/ja972129n
    日期:1997.11.1
    A question of how uracil nitrogen N(1) is selectively activated in enzymes (e.g., for deglycosylation in uracil-DNA glycosylase) has been utterly overlooked, to which we have addressed by a model study with 6-((1,4,7,10-tetraazacyclododecyl)methyl)uracil (HL, cyclen-attached uracil). The uracil N(1)H of the diprotonated cyclen-attached uracil (HL . 2H(+)) is easily deprotonated to be N(1)(-) anion form (L-. 2H(+)) in aqueous solution. The deprotonation constant (pK(a)) of 7.14 for HL . 2H(+) reversible arrow L-. 2H(+) + H+ was determined by potentiometric pH titration at 25 degrees C with I = 0.10 (NaClO4). The unusually low deprotonation constant (cf. pK(a) = 9.9 for 3-methyluracil) is due to the electrostatic stabilization of the N(1)(-) anion by a proximate secondary ammonium cation of the diprotonated cyclen at physiological pH. The X-ray crystal structure of HL . 2H(+) as its dipicrate revealed that the uracil N(1)H is linked by a hydrogen bond network to one of the cyclen secondary ammonium cation through a water. Crystals of HL . 2H(+).(picrate)(2) . H2O (C25H32N12O17) are triclinic, space group P (1) over bar (no. 2) with a = 9.295(4) Angstrom, b = 19.67(1) Angstrom, c = 8.886(6) Angstrom, alpha = 94.36(3)degrees, beta = 102.95(4)degrees, gamma = 87.04(4)degrees, V = 1576(8) Angstrom(3), Z = 2, R = 0.054, and R-W = 0.081. The electrostatic stabilization of uracil N(1)(-) anion is reassessed by a comparative study with a zinc(II) complex with the cyclen-attached uracil, where Zn2+ in the cyclen cavity strongly binds to the uracil N(1)(-) (localized) anion. The deprotonation of N(1)H of HL (1 mM) occurred below pH 5 by the effect of equimolar Zn2+, a stronger acid than two protons. Crystals of the zinc(II) complex (C13H23N6O2Zn . ClO4 . H2O) are triclinic, space group P (1) over bar (no. 2) with a = 9.461(3) Angstrom, b = 13.156(4) Angstrom, c = 8.687(2) Angstrom, alpha = 101.21(2)degrees, beta = 103.55(2)degrees, gamma = 73.21(2)degrees, V = 997(0) Angstrom(3), Z = 2, R = 0.063, and R-W = 0.093. For comparison, we also have investigated the uracil N(1) acidity with an ethylenediamine-attached uracil and an isomeric cyclen-attached (at C(5)) uracil. The present example of electrostatic stabilization of N(1)(-) anion may explain the facile uracil N(1)-alkyl (e.g., glycosyl) bond formation and cleavage in enzymes.
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