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11-(N-trifluoroacetyl)aminoundecanoyl chloride | 151554-86-8

中文名称
——
中文别名
——
英文名称
11-(N-trifluoroacetyl)aminoundecanoyl chloride
英文别名
11-[(2,2,2-trifluoroacetyl)amino]undecanoyl chloride
11-(N-trifluoroacetyl)aminoundecanoyl chloride化学式
CAS
151554-86-8
化学式
C13H21ClF3NO2
mdl
——
分子量
315.763
InChiKey
RRCQBDHAKRAFOE-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

  • 沸点:
    367.8±42.0 °C(predicted)
  • 密度:
    1.152±0.06 g/cm3(Temp: 20 °C; Press: 760 Torr)(predicted)

计算性质

  • 辛醇/水分配系数(LogP):
    3.94
  • 重原子数:
    20.0
  • 可旋转键数:
    11.0
  • 环数:
    0.0
  • sp3杂化的碳原子比例:
    0.85
  • 拓扑面积:
    46.17
  • 氢给体数:
    1.0
  • 氢受体数:
    2.0

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:
    3-氨基丙基三乙氧基硅烷11-(N-trifluoroacetyl)aminoundecanoyl chloride三乙胺 作用下, 以 甲苯 为溶剂, 反应 1.0h, 以85%的产率得到11-(N-trifluoroacetyl)aminoundecanoylaminopropyltriethoxysilane
    参考文献:
    名称:
    Enhanced stability of urease immobilized onto phospholipid covalently bound to silica, tungsten, and fluoropolymer surfaces
    摘要:
    Exceptionally high stability of urease covalently immobilized on silica, tungsten, and poly-(tetrafluoroethylene) (Teflon) supports has been observed by using a novel immobilization protocol which links the enzyme via its surface-exposed carboxylic groups (rather than conventionally used amino groups) to phospholipid-coated surfaces. Silanization of each of the three solid supports with [N-[11-(trifluoroacetamido)unde-canoyl]amino]propyltriethoxysilane, followed by removal of the trifluoroacetyl protective group, furnished the required amino-functionalized surfaces. The supports were linked to amino-functionalized phospholipids, which, in turn, were coupled to the carboxylic moieties of urease through diimide activation of the latter. For comparison, aminated supports, without the phospholipid coatings, were linked directly to carboxylic groups of urease. Also for comparison, urease was immobilized to the derivatized surfaces via its amino moieties using as cross-linkers, cyanuric chloride, as well as a new reagent, phthaloyl chloride. All of the surfaces were characterized by FTIR and X-ray photoelectron spectroscopy as well as by solid-state NMR in the case of the silica surfaces. Spectrophotometric assays revealed that the urease carboxyl-based protocols gave higher total and active immobilized enzyme yields. Among the non-lipid surfaces, urease was the least stable when immobilized on tungsten. On the lipid-coated surfaces, urease exhibited superior retention of activity after heating to temperatures up to 100-degrees-C. This stability was largely independent of the nature of the support material. It was found that urease bound to lipid-coated silica or Teflon could be boiled in aqueous solution for 1 h with minimal loss of activity.
    DOI:
    10.1021/ac00066a010
  • 作为产物:
    参考文献:
    名称:
    Enhanced stability of urease immobilized onto phospholipid covalently bound to silica, tungsten, and fluoropolymer surfaces
    摘要:
    Exceptionally high stability of urease covalently immobilized on silica, tungsten, and poly-(tetrafluoroethylene) (Teflon) supports has been observed by using a novel immobilization protocol which links the enzyme via its surface-exposed carboxylic groups (rather than conventionally used amino groups) to phospholipid-coated surfaces. Silanization of each of the three solid supports with [N-[11-(trifluoroacetamido)unde-canoyl]amino]propyltriethoxysilane, followed by removal of the trifluoroacetyl protective group, furnished the required amino-functionalized surfaces. The supports were linked to amino-functionalized phospholipids, which, in turn, were coupled to the carboxylic moieties of urease through diimide activation of the latter. For comparison, aminated supports, without the phospholipid coatings, were linked directly to carboxylic groups of urease. Also for comparison, urease was immobilized to the derivatized surfaces via its amino moieties using as cross-linkers, cyanuric chloride, as well as a new reagent, phthaloyl chloride. All of the surfaces were characterized by FTIR and X-ray photoelectron spectroscopy as well as by solid-state NMR in the case of the silica surfaces. Spectrophotometric assays revealed that the urease carboxyl-based protocols gave higher total and active immobilized enzyme yields. Among the non-lipid surfaces, urease was the least stable when immobilized on tungsten. On the lipid-coated surfaces, urease exhibited superior retention of activity after heating to temperatures up to 100-degrees-C. This stability was largely independent of the nature of the support material. It was found that urease bound to lipid-coated silica or Teflon could be boiled in aqueous solution for 1 h with minimal loss of activity.
    DOI:
    10.1021/ac00066a010
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