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(E,4S,6R)-6-(1,3-dithian-2-yl)-4-methylhept-2-enal | 135663-72-8

中文名称
——
中文别名
——
英文名称
(E,4S,6R)-6-(1,3-dithian-2-yl)-4-methylhept-2-enal
英文别名
——
(E,4S,6R)-6-(1,3-dithian-2-yl)-4-methylhept-2-enal化学式
CAS
135663-72-8
化学式
C12H20OS2
mdl
——
分子量
244.422
InChiKey
QMUNWCVVNRGGTJ-UQRCUPDISA-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):
    3.6
  • 重原子数:
    15.0
  • 可旋转键数:
    5.0
  • 环数:
    1.0
  • sp3杂化的碳原子比例:
    0.75
  • 拓扑面积:
    17.07
  • 氢给体数:
    0.0
  • 氢受体数:
    3.0

反应信息

  • 作为反应物:
    描述:
    (E,4S,6R)-6-(1,3-dithian-2-yl)-4-methylhept-2-enal4-二甲氨基吡啶potassium dihydrogenphosphate 、 sodium amalgam 、 N-氯代丁二酰亚胺正丁基锂silver nitrate1,8-二氮杂双环[5.4.0]十一碳-7-烯三乙胺 作用下, 以 四氢呋喃甲醇二氯甲烷乙腈 为溶剂, 反应 4.66h, 生成 (5E,7E,9E)-(2S,4S,11S,13S,16R)-13-Benzyloxy-17-(tert-butyl-diphenyl-silanyloxy)-11-methoxy-2,4,10,16-tetramethyl-heptadeca-5,7,9-trienal
    参考文献:
    名称:
    Application of the Ibuka-Yamamoto reaction to a problem in stereochemical communication: a strategy for the stereospecific synthesis and stabilization of the triene substructure of rapamycin through sulfone substitution
    摘要:
    The aldehydes 49 and 55 corresponding to carbons 13-30 in a projected total synthesis of rapamycin have been synthesized. The LACDAC technology was used to elaborate dithiane enal 5. The aldehyde 4 was synthesized from D-(+)-glucose. A critical element of that construction involved cuprate-induced displacement reactions on enoates 7 and 8 (see formation of esters 9a and 9b) to correlate the stereochemistry of carbons 8 and 12. The feasibility of conducting a Nozaki-Kishi reaction between iodosulfone 6 and aldehyde 4 was a major simplification. Julia coupling between sulfone 5 and aldehyde 43 was followed by acetylation and elimination of acetic acid. The triene sulfone 54 was obtained stereospecifically. The C4 sulfone linkage is a considerable stabilizing element on the C1-C6 triene. Its presence allows for removal of the dithiane linkage (see formation of aldehyde 55). Cleavage of the sulfone is accomplished with sodium analgam without reduction of an aldehyde function at C30 (see formation of 49).
    DOI:
    10.1021/jo00020a027
  • 作为产物:
    描述:
    (1E,3Z)-1-甲氧基-2-甲基-3-(三甲基硅氧基)-1,3-戊二烯 在 palladium on activated charcoal 、 palladium/alumina lead(IV) acetate草酰氯三氟化硼乙醚氢气potassium acetate二异丁基氢化铝对甲苯磺酸二甲基亚砜三乙胺 、 magnesium bromide 作用下, 以 四氢呋喃乙醚正己烷二氯甲烷乙酸乙酯甲苯乙腈 为溶剂, -78.0~23.0 ℃ 、344.73 kPa 条件下, 反应 129.08h, 生成 (E,4S,6R)-6-(1,3-dithian-2-yl)-4-methylhept-2-enal
    参考文献:
    名称:
    Application of the Ibuka-Yamamoto reaction to a problem in stereochemical communication: a strategy for the stereospecific synthesis and stabilization of the triene substructure of rapamycin through sulfone substitution
    摘要:
    The aldehydes 49 and 55 corresponding to carbons 13-30 in a projected total synthesis of rapamycin have been synthesized. The LACDAC technology was used to elaborate dithiane enal 5. The aldehyde 4 was synthesized from D-(+)-glucose. A critical element of that construction involved cuprate-induced displacement reactions on enoates 7 and 8 (see formation of esters 9a and 9b) to correlate the stereochemistry of carbons 8 and 12. The feasibility of conducting a Nozaki-Kishi reaction between iodosulfone 6 and aldehyde 4 was a major simplification. Julia coupling between sulfone 5 and aldehyde 43 was followed by acetylation and elimination of acetic acid. The triene sulfone 54 was obtained stereospecifically. The C4 sulfone linkage is a considerable stabilizing element on the C1-C6 triene. Its presence allows for removal of the dithiane linkage (see formation of aldehyde 55). Cleavage of the sulfone is accomplished with sodium analgam without reduction of an aldehyde function at C30 (see formation of 49).
    DOI:
    10.1021/jo00020a027
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同类化合物

硫化膦,1,3-二硫烷-2-基甲基苯基- 硅烷,三甲基(2-甲基-1,3-二硫烷-2-基)- 沙丙喋呤中间体 四氢-1,2-二噻英 反式-1,2-二噻烷-4,5-二醇1,1-二氧化物 八氟-1,4-二噻烷 二(1,3-二噻烷-2-基)甲烷-D 二(1,3-二噻烷-2-基)甲烷 丁二腈,2,3-二[(1,1-二甲基乙基)硫代]-2,3-二(1,3-二硫烷-2-基甲基)- N-乙基-1,3-二噻烷-2-亚胺 N-(1,3-二硫杂环戊-2-亚基)氨基磷酸二甲酯 N,N’-1,6-己烷二基双氨基甲酸双(1,3-二噻烷-2-基甲基)酯 5alpha-[N-(亚硝基氨基甲酰)-N-(2-氯乙基)氨基]-2beta-甲基-1,3-二噻烷1,1,3,3-四氧化物 5,6-二氢-4H-1,3-二噻英-2-硫酮 4-甲基-2,6,7-三硫杂二环[2.2.2]辛烷 4-(丙氧基甲基)-2,6,7-三硫杂二环[2.2.2]辛烷 3-(1,3-二噻烷-5-基)-1-(2-氟乙基)-1-亚硝基脲 3-(1,3-二噻烷-2-亚基)-2,4-戊二酮 3,3-二甲基二环[2.2.1]庚烷-2-甲醇 2-苯基-1,3-二噻烷锂盐 2-苯基-1,3-二噻烷 2-脱氧-D-阿拉伯糖-己糖亚丙基二硫代缩醛 2-甲基-1,3-二噻烷 2-戊基-1,3-二噻烷 2-异丙基-1,3-二噻烷 2-异丁基-1,3-二噻烷 2-乙炔基-1,3-二噻烷 2-乙基-1,3-二噻烷 2-三甲基硅基-1,3-二噻吩 2-(叔丁基二甲基甲硅烷基)-1,3-二噻烷 2-(三异丙基甲硅烷基)-1,3-二噻烷 2-(3,4-二羟基苯基)-5,7-二羟基-6-[(2S,3R,4R,5S,6R)-3,4,5-三羟基-6-(羟甲基)四氢-2H-吡喃-2-基]-8-[(2S,3R,4S,5S)-3,4,5-三羟基四氢-2H-吡喃-2-基]-4H-色烯-4-酮(non-preferredname) 2-(1,3-二噻烷-2-基)乙醇 2,5-二甲基-2,5-二羟基-1,4-二噻烷 2,5-二甲基-2,5-二羟基-1,4-二噻烷 2,5-二乙氧基-1,4-二噻烷 2,2’-乙烯双(1,3-二噻烷) 2,2-双(三甲基硅基)二噻烷 2,2-二氟-1,3-二噻烷 2,2'-(1,2-亚苯基)二(1,3-二噻烷) 1-(2-氯乙基)-3-(2alpha-甲基-1,3-二噻烷-5alpha-基)-3-亚硝基脲 1-(2-氯乙基)-3-(1,3-二噻烷-5-基)-1-亚硝基脲 1-(2-氯乙基)-1-亚硝基-3-(1,1,3,3-四氧代-1,3-二噻烷-5-基)脲 1-(2-氟乙基)-1-亚硝基-3-(1,1,3,3-四氧代-1,3-二噻烷-5-基)脲 1-(1,3-二噻烷-2-基)乙酮 1-(1,3-二噻烷-2-基)-2-环己烯-1-醇 1-(1,3-二噻烷-2-基)-2,2,2-三氟乙烷酮 1,8-二羟基-2,9-二硫杂三环[8.4.0.03,8]十四烷 1,5,7,11-四硫杂螺[5.5]十一烷 1,4-苯并二噻英,八氢-