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[4]6-amino-lin-tri[1=>6]hexanoylamino-hexanoic acid | 5834-64-0

中文名称
——
中文别名
——
英文名称
[4]6-amino-lin-tri[1=>6]hexanoylamino-hexanoic acid
英文别名
6-{6-[6-(6-Amino-hexanoylamino)-hexanoylamino]-hexanoylamino}-hexansaeure;[4]6-Amino-lin-tri[1=>6]hexanoylamino-hexansaeure;6-[6-[6-(6-Aminohexanoylamino)hexanoylamino]hexanoylamino]hexanoic acid
[4]6-amino-<i>lin</i>-tri[1=>6]hexanoylamino-hexanoic acid化学式
CAS
5834-64-0
化学式
C24H46N4O5
mdl
——
分子量
470.653
InChiKey
AFXWLACSNLWASU-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

计算性质

  • 辛醇/水分配系数(LogP):
    -1.5
  • 重原子数:
    33
  • 可旋转键数:
    23
  • 环数:
    0.0
  • sp3杂化的碳原子比例:
    0.83
  • 拓扑面积:
    151
  • 氢给体数:
    5
  • 氢受体数:
    6

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

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文献信息

  • Rothe; Kunitz, Justus Liebigs Annalen der Chemie, 1957, vol. 609, p. 88,100
    作者:Rothe、Kunitz
    DOI:——
    日期:——
  • Zahn; Hildebrand, Chemische Berichte, 1957, vol. 90, p. 320,328
    作者:Zahn、Hildebrand
    DOI:——
    日期:——
  • Zahn; Kunde, Justus Liebigs Annalen der Chemie, 1958, vol. 618, p. 158,164
    作者:Zahn、Kunde
    DOI:——
    日期:——
  • West, Faserforschung und Textiltechnik, 1954, vol. 5, p. 145,154
    作者:West
    DOI:——
    日期:——
  • Enzymatic synthesis of nylon-6 units in organic solvents containing low concentrations of water
    作者:Yasuyuki Kawashima、Kengo Yasuhira、Naoki Shibata、Yusuke Matsuura、Yusuke Tanaka、Masaaki Taniguchi、Yoshiaki Miyoshi、Masahiro Takeo、Dai-ichiro Kato、Yoshiki Higuchi、Seiji Negoro
    DOI:10.1016/j.molcatb.2010.02.006
    日期:2010.6
    NyIB' carboxylesterase, which is 88% homologous to functional 6-aminohexanoate-dimer hydrolase (NyIB) from Arthrobacter sp., possesses trace synthetic activity [0.0004 mu mol min(-1) mg(-1) (U/mg)] from 6-aminohexanoate (Ahx) to its oligomers in 90% tert-butyl alcohol. The synthetic activity and the ratio of the synthetic activity to the hydrolytic activity were significantly affected by amino acid substitutions at positions 181, 266 and 370. The synthetic activity was enhanced to 2.7 U/mg by G181D-H266N substitutions, and the activity was further enhanced in the G181D-H266N-D370Y triple mutant to a level approximately 10(4)-fold greater than the parental carboxylesterase form (3.4 U/mg), which was nearly equal to the ordinary hydrolytic activity in water (type A-mutants). Type A-mutants possessed more than 50% of the 6-aminohexanoate-linear dimer (Ald)-hydrolytic activity at 0-70% tert-butyl alcohol, but the synthetic reaction became predominant at 85-90% tert-butyl alcohol. In contrast, type B-mutants (G181E-H266N and G181N-H266N) possessed quite low levels of Aid-hydrolytic activity (<0.01 U/mg) at 0-70% tert-butyl alcohol. However, both the hydrolytic and synthetic activities were enhanced at higher concentrations, and the maximum activity was obtained at 90% tert-butyl alcohol for both hydrolysis and synthesis. In a type C-mutant (R187S-F264C-D370Y), the Ald-hydrolytic activity was enhanced to approximately 80-fold that of the parental carboxylesterase, but the mutant barely demonstrated any synthetic activity. On the basis of the three-dimensional structure of the Ald-bound enzyme and a kinetic study for typical mutant enzymes, we propose that the efficient enzymatic syntheses of nylon-6 units were achieved by (i) stable binding of the 1st-Ahx at the N-terminal region with Asp181, (ii) interaction of the 2nd-Ahx at the C-terminal region with Tyr370, and (iii) motion of Tyr170 that generated a closed form in the catalytic center of Ald hydrolase. (C) 2010 Elsevier B.V. All rights reserved.
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