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Merck
CN

D6375

Sigma-Aldrich

2′-脱氧腺苷-5′-单磷酸

98-100%, synthetic (organic), powder

别名:

2′-脱氧-AMP, dAMP, 脱氧腺苷酸

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关于此项目

经验公式(希尔记法):
C10H14N5O6P
化学文摘社编号:
分子量:
331.22
EC 号:
MDL编号:
UNSPSC代码:
41106305
eCl@ss:
32160414
PubChem化学物质编号:
NACRES:
NA.51
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产品名称

2′-脱氧腺苷-5′-单磷酸, Sigma Grade, 98-100%

生物来源

synthetic (organic)

质量水平

等级

Sigma Grade

方案

98-100%

表单

powder

溶解性

1 N NH4OH: 50 mg/mL, clear, colorless

储存温度

−20°C

SMILES字符串

Nc1ncnc2n(cnc12)[C@H]3C[C@H](O)[C@@H](COP(O)(O)=O)O3

InChI

1S/C10H14N5O6P/c11-9-8-10(13-3-12-9)15(4-14-8)7-1-5(16)6(21-7)2-20-22(17,18)19/h3-7,16H,1-2H2,(H2,11,12,13)(H2,17,18,19)/t5-,6+,7+/m0/s1

InChI key

KHWCHTKSEGGWEX-RRKCRQDMSA-N

相关类别

一般描述

N2′-脱氧腺苷5′-单磷酸是一种核苷酸,可作为合成DNA的结构单元。

应用

2’-脱氧腺苷-5’-单磷酸可用于蛋白质的紫外共振拉曼光谱技术研究。

储存分类代码

11 - Combustible Solids

WGK

WGK 3

闪点(°F)

Not applicable

闪点(°C)

Not applicable


历史批次信息供参考:

分析证书(COA)

Lot/Batch Number

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Toxic effects and DNA transformation
Savkovic S J
Journal of Separation Science, 6, 15-19 (2018)
Kathryn W Woodburn et al.
Antibiotics (Basel, Switzerland), 9(1) (2020-01-17)
Acne vulgaris, caused by the Gram-positive bacterium Cutibacterium acnes, is a prevalent dermatologic condition with substantial cutaneous and psychological morbidity. Mild acne is treated with topical antibiotics with more severe inflammatory forms requiring the prolonged use of oral antibiotics, resulting
Joe A B McCann et al.
Journal of the American Chemical Society, 129(22), 7055-7064 (2007-05-15)
Multiple kinetic isotope effects (KIEs) on deoxyadenosine monophosphate (dAMP) hydrolysis in 0.1 M HCl were used to determine the transition state (TS) structure and probe its intrinsic reactivity. The experimental KIEs revealed a stepwise (SN1) mechanism, with a discrete oxacarbenium
Gabriela Petroselli et al.
Organic & biomolecular chemistry, 5(17), 2792-2799 (2007-08-19)
UV-A radiation (320-400 nm) induces damages to the DNA molecule and its components through photosensitized reactions. Pterins, heterocyclic compounds widespread in biological systems, participate in relevant biological processes and are able to act as photosensitizers. We have investigated the photosensitization
Chang Chen et al.
Nature communications, 9(1), 1733-1733 (2018-05-02)
Solid-state nanopores promise a scalable platform for single-molecule DNA analysis. Direct, real-time identification of nucleobases in DNA strands is still limited by the sensitivity and the spatial resolution of established ionic sensing strategies. Here, we study a different but promising

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