L-抗坏血酸-2-磷酸三钠盐

CAS: 66170-10-3 货号: S304311 分子式: C6H6Na3O9P· xH2O 分子量: 322.05 (anhydrous basis) EC号: 613-904-0
有货
级别和纯度: ≥96%
别名
L-抗坏血酸 -2-磷酸钠盐 | L-抗坏血酸 2-磷酸酯 三钠盐 | 2-磷酸-L-抗坏血酸三钠盐
储存条件
室温,充氩,干燥
运输条件
常规运输
★
规格
库存
价格
数量
1g
S304311-1g
现货 Stock Image
¥29.90
5g
S304311-5g
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¥39.90
25g
S304311-25g
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¥69.90
100g
S304311-100g
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¥229.90
500g
S304311-500g
期货 Stock Image
¥999.90
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为什么选择此级别

提供 ≥96% 纯度,适用于对基线干扰要求严格的色谱和分析工作流程。

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储存与运输

室温,充氩,干燥。常规运输 。请查阅批次 COA 获取详细规格。

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质量文档

SDS、COA、产品数据表及规格说明书均可下载。可通过批号查询获取批次 COA。

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文献证明

在色谱分析、有机合成和交叉偶联反应领域已被 37 篇同行评审文献引用。

概述

L-抗坏血酸-2-磷酸三钠盐已被用作Dulbecco改良Eagle培养基(DMEM)的补充剂,用于培养脂肪来源的干细胞、人间充质干细胞和成骨细胞。

L-ascorbic acid-2-phosphate trisodium salt has been used as a supplement to Dulbecco's modified Eagle medium (DMEM) for the culture of adipose derived stem cells, human mesenchymal stem cells and osteoblasts.

规格

别名
L-抗坏血酸 -2-磷酸钠盐 | L-抗坏血酸 2-磷酸酯 三钠盐 | 2-磷酸-L-抗坏血酸三钠盐
英文别名
2-phospho-l-ascorbic acid trisodium salt | CCG-267723 | Sodium ascorbyl monophosphate;Sodium ascorbyl phosphate | trisodium;[(2R)-2-[(1S)-1,2-dihydroxyethyl]-3-oxido-5-oxo-2H-furan-4-yl] phosphate | L-Ascorbic acid 2-phosphate trisodium | SCHEMBL47301 | S
规格或纯度
≥96%
英文名称
2-Phospho-L-ascorbic acid trisodium salt
生化机理
用于细胞培养的稳定的抗坏血酸衍生物;与FGF-2联合使用可通过增加HGF的表达来维持骨髓间充质干细胞(MSC)的分化潜能。与N-乙酰半胱氨酸结合使用时,在氧化应激下还具有hMSC的协同保护作用。
应用
L-抗坏血酸-2-磷酸三钠盐已被用作Dulbecco改良Eagle培养基(DMEM)的补充剂,用于培养脂肪来源的干细胞、人间充质干细胞和成骨细胞。
储存条件
室温,充氩,干燥
运输条件
常规运输
纯度
≥96%
名称和识别符
PubChem SID
EC号
613-904-0
分子类型
小分子
IUPAC Name
trisodium;[(2R)-2-[(1S)-1,2-dihydroxyethyl]-3-oxido-5-oxo-2H-furan-4-yl] phosphate
INCHI
1S/C6H9O9P.3Na/c7-1-2(8)4-3(9)5(6(10)14-4)15-16(11,12)13;;;/h2,4,7-9H,1H2,(H2,11,12,13);;;/q;3*+1/p-3/t2-,4+;;;/m0.../s1
InChi Key
YRWWOAFMPXPHEJ-OFBPEYICSA-K
Smiles
C(C(C1C(=C(C(=O)O1)OP(=O)([O-])[O-])[O-])O)O.[Na+].[Na+].[Na+]
Isomeric SMILES
C([C@@H]([C@@H]1C(=C(C(=O)O1)OP(=O)([O-])[O-])[O-])O)O.[Na+].[Na+].[Na+]
分子量
322.05 (anhydrous basis)

技术文档

📋 安全数据表 (SDS)

全面的危险、操作、储存及法规合规文件。

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🔬 规格说明书

该级别的完整质量属性和验收标准。

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高级数据

系统学分类

分类树(Taxonomy Tree)

界(kingdom) 有机化合物
超类(Superclass) 有机杂环化合物
类(Class) 二氢呋喃
亚类(Subclass) 呋喃酮
中间层级节点(Intermediate Tree Nodes) 暂无
直接上位类(Direct Parent) 丁烯内酯
其他上位类(Alternative Parents) 磷酸酯  乙烯基酸  烯酸酯类  仲醇  内酯  1,2-二醇  氧环化合物  一元羧酸及其衍生物  伯醇  有机钠盐  有机氧化物  碳氢化合物衍生物  羰基化合物  有机阳离子  
分子骨架(Molecular Framework) 脂肪族杂单环化合物
取代基(Substituents) 1,2-二醇 - 2-呋喃酮 - 羟基苯甲酸酯 - 脂肪族杂单环化合物 - α,β-不饱和羧酸酯 - 羰基 - 羧酸衍生物 - 羧酸酰胺 - 乙酰基 - 烃衍生物 - L-α-氨基酸 - 单羧酸或其衍生物 - 有机碱金属盐 - 有机铵盐 - 有机氧化物 - 有机氧化合物 - 有机磷酸酯 - 有机盐 - 有机钠盐 - 有机氧化合物 - 氧杂环 - 磷酸酯 - 初级醇 - 醛基 - 乙烯基羧酸
描述(Description) 该化合物属于丁烯内酯类有机化合物。这类化合物是二氢呋喃类化合物,其C2碳原子上带有羰基。
外部描述符(External Descriptors) 暂无
三维结构
交互式化学结构模型





化学和物理性质
溶解性
溶于water, 最高浓度 (mg/mL): 32.2, 最高浓度(mM): 100
敏感性
对湿度敏感
熔点
260℃
分子量
322.050 g/mol
XLogP3
氢键供体数Hydrogen Bond Donor Count
2
氢键受体数Hydrogen Bond Acceptor Count
9
可旋转键计数Rotatable Bond Count
3
精确质量Exact Mass
321.944 Da
单同位素质量Monoisotopic Mass
321.944 Da
拓扑极表面积Topological Polar Surface Area
162.000 Ų
重原子数Heavy Atom Count
19
形式电荷Formal Charge
0
复杂度Complexity
357.000
同位素原子数Isotope Atom Count
0
定义的原子立体中心计数Defined Atom Stereocenter Count
2
未定义的原子立体中心计数Undefined Atom Stereocenter Count
0
定义的键立体中心计数Defined Bond Stereocenter Count
0
未定义的键立体中心计数Undefined Bond Stereocenter Count
0
所有立体化学键的总数The total count of all stereochemical bonds
0
共价键合单元计数Covalently-Bonded Unit Count
4
安全和危险性(GHS)
信号词
警告
危险声明

H315: 引起皮肤刺激

H319: 引起严重眼睛刺激

H335: 可能引起呼吸道刺激

预防措施声明

P261: 避免吸入灰尘/烟雾/气体/雾/蒸汽/喷雾

P305+P351+P338: 如进入眼睛:用水小心冲洗几分钟。如戴隐形眼镜并可方便地取出,取出隐形眼镜。继续冲洗。

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批号(Lot Number) 证书类型 货号
F2630666 分析证书 S304311
F2630667 分析证书 S304311
F2630677 分析证书 S304311
F2630676 分析证书 S304311
F2630675 分析证书 S304311
E2304360 分析证书 S304311
A2329015 分析证书 S304311
A2304217 分析证书 S304311
E2608049 分析证书 S304311
F2603005 分析证书 S304311
F2603006 分析证书 S304311
I2503604 分析证书 S304311
I2503612 分析证书 S304311
I2503613 分析证书 S304311
I2503614 分析证书 S304311
I2503617 分析证书 S304311
G2508423 分析证书 S304311
G2508424 分析证书 S304311
G2508643 分析证书 S304311
G2508665 分析证书 S304311
G2508666 分析证书 S304311
A2515547 分析证书 S304311
A2515546 分析证书 S304311
A2515545 分析证书 S304311
A2515538 分析证书 S304311
B2217364 分析证书 S304311
C2122042 分析证书 S304311
J2218336 分析证书 S304311
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B2217322 分析证书 S304311
A2417090 分析证书 S304311
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技术文档和文章
植物抗坏血酸合成相关糖核苷酸代谢研究进展
Progress in Research on Sugar-Nucleotide Metabolism Related to Ascorbate Biosynthesis in Plants
谷胱甘肽外用护肤机制解析:细胞氧化还原调节、皮肤递送难点与 SLNs 递送策略
Mechanistic Analysis of Topical Glutathione in Skincare: Cellular Redox Regulation, Skin Delivery Challenges, and SLN-Based Delivery Strategies
曲酸淡化色素沉着的作用机制:从酪氨酸酶抑制到黑色素生成调控
Mechanism of Kojic Acid in Reducing Hyperpigmentation: From Tyrosinase Inhibition to Melanin Production Regulation
α-硫辛酸的皮肤抗老机制:ALA/DHLA 氧化还原循环、抗氧化网络与胶原 AGEs 形成调控
The Skin Anti-Aging Mechanisms of α-Lipoic Acid: ALA/DHLA Redox Cycling, the Antioxidant Network, and Regulation of Collagen AGE Formation
维生素E家族中的生育酚:如何阻断皮肤脂质过氧化的链式反应
Tocopherols in the Vitamin E Family: How They Block the Chain Reaction of Lipid Peroxidation in Skin Lipids
水解珍珠原料解析:制备工艺、活性成分与护肤配方应用
Analysis of Hydrolyzed Pearl as a Cosmetic Raw Material: Preparation Process, Active Components, and Skincare Formulation Applications
4-MSK 的双靶向美白机制:抑制黑色素生成与减少表皮色素滞留
The Dual-Targeted Skin-Brightening Mechanism of 4-MSK: Inhibiting Melanin Production and Reducing Epidermal Pigment Retention
阿魏酸在护肤中的抗氧化机制、维生素C/E协同与稳定递送应用
Antioxidant Mechanisms of Ferulic Acid in Skincare, Vitamin C/E Synergy, and Stable Delivery Applications
胶原蛋白肽如何作用于皮肤?从表面水合、经皮递送到成纤维细胞与胶原稳态
How Do Collagen Peptides Act on the Skin? From Surface Hydration and Percutaneous Delivery to Fibroblasts and Collagen Homeostasis
苯乙基间苯二酚(377)的结构特征、黑色素生成调控机制及相关配方研究应用
Phenylethyl Resorcinol (377): Structural Characteristics, Melanogenesis-Regulating Mechanisms, and Related Applications in Formulation Research
传明酸在色斑护理中的作用机制:从纤溶酶系统到炎症促黑信号调节
Mechanism of Action of Tranexamic Acid in Pigmentation Care: From the Plasmin System to Regulation of Inflammation-Driven Pro-Melanogenic Signaling
胶原三肽如何作用于皮肤:角质层递送、基质保护与胶原稳态调节
How Does Collagen Tripeptide Act on the Skin: Stratum Corneum Delivery, Matrix Protection, and Regulation of Collagen Homeostasis
乙酰基六肽-8在表情纹管理中的作用基础:SNARE复合体干预、经皮递送限制与复配思路
Mechanistic Basis of Acetyl Hexapeptide-8 in the Management of Expression Lines: SNARE Complex Interference, Constraints on Percutaneous Delivery, and Combination Strategies
此产品的引用文献
引用文献
1. Yu Liu, Fangfang Wang, Yawen Liu, Zhigang Zhang, Haiming Hu, Yiqing Wang, Lei Xiong, Junping Zheng, Hongtao Liu.  (2023)  A label-free AuNPs-based ultrasensitive plasmonic ELISA by alkaline phosphatase and ferrous ion-initiated cascade amplification.  SENSORS AND ACTUATORS B-CHEMICAL,  [10.1016/j.snb.2023.135049]
2. Jiansen Lie, Feili Luo, Yafang Liu, Yixuan Yang, Qingling Nie, Xiaochuan Chen, Ruiyun You, Yunzhen Liu, Xiufeng Xiao, Yudong Lu.  (2023)  Recyclable magnetic nanoparticles combined with TiO2 enrichment and “Off” to “On” SERS assay for sensitive detection of alkaline phosphatase.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2023.147241]
3. Meijie Ren, Yongzhen Dong, Jianlong Wang, Jianhan Lin, Lijie Qu, Yang Zhou, Yiping Chen.  (2023)  Computer vision-assisted smartphone microscope imaging digital immunosensor based on click chemistry-mediated microsphere counting technology for the detection of aflatoxin B1 in peanuts.  ANALYTICA CHIMICA ACTA,  [PMID:37709427] [10.1016/j.aca.2023.341687]
4. Xinyue Yuwen, Yingzhao Zeng, Shilong Ruan, Xin Li, Guosong Lai.  (2023)  Dual cascade nucleic acid recycling-amplified assembly of hyperbranched DNA nanostructures to construct a novel plasmonic colorimetric biosensing method.  ANALYST,  148  (15): (3632-3640).  [PMID:37409607] [10.1039/D3AN00689A]
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6. Yanwen Chen, Liu Zhao, Baoshuai Zhang, Yuqing Guan, Cheng Yao, Xuan Xu.  (2023)  Fe–N hollow mesoporous carbon spheres with high oxidase-like activity for sensitive detection of alkaline phosphatase.  ANALYST,  148  (12): (2825-2833).  [PMID:37227369] [10.1039/D3AN00475A]
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8. Li-Jing Peng, Shi-Jun Yin, Li Chen, Tao Tian, Wei-Yi Zhang, Hang-Yu Zhou, Feng-Qing Yang.  (2022)  Investigating the oxidase-like activity of a Co–Fe Prussian blue analogue nanocube prepared in situ and its applications in the colorimetric detection of ascorbic acid, alkaline phosphatase, α-glucosidase, and ascorbic acid oxidase.  NEW JOURNAL OF CHEMISTRY,  47  (3): (1156-1164).  [10.1039/D2NJ05460D]
9. Luyu Wei, Zhilong Wang, Yiping Chen.  (2022)  Optical Biosensor for Ochratoxin A Detection in Grains Using an Enzyme-Mediated Click Reaction and Polystyrene Nanoparticles.  JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY,  [PMID:36372964] [10.1021/acs.jafc.2c05137]
10. Chengpei Du, Lin Qi, Yi Wang, Kanglin Pei, Renwen Zhang, Di Wu, Wenjing Qi.  (2022)  Fluorescence dual “turn-on” detection of acid phosphatase via fluorescence resonance energy transfer and dual quenching strategy to improve sensitivity.  DYES AND PIGMENTS,  [10.1016/j.dyepig.2022.110554]
11. Xiao-Xue Jiang, Pan Li, Meng-Ya Zhao, Rui-Cong Chen, Zhen-Guang Wang, Jia-Xiu Xie, Yun-Kai Lv.  (2022)  In situ encapsulation of SQDs by zinc ion-induced ZIF-8 growth strategy for fluorescent and colorimetric dual-signal detection of alkaline phosphatase.  ANALYTICA CHIMICA ACTA,  [PMID:35934395] [10.1016/j.aca.2022.340103]
12. Wentao Shi, Xuan Zhang, Lu Bian, Yao Dai, Zhe Wang, Yanjun Zhou, Shuang Yu, Zhijian Zhang, Peng Zhao, Hong Tang, Qing Wang, Xiaojie Lu.  (2022)  Alendronate crosslinked chitosan/polycaprolactone scaffold for bone defects repairing.  INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES,  [PMID:35151707] [10.1016/j.ijbiomac.2022.02.007]
13. Dan Zhao, Juan Li, Chuanyun Peng, Shuyun Zhu, Jian Sun, Xiurong Yang.  (2019)  Fluorescence Immunoassay Based on the Alkaline Phosphatase Triggered in Situ Fluorogenic Reaction of o-Phenylenediamine and Ascorbic Acid.  ANALYTICAL CHEMISTRY,  [PMID:30688059] [10.1021/acs.analchem.8b05203]
14. Ruiying Li, Qiang Liu, Yan Jin, Baoxin Li.  (2018)  Fluorescent enzyme-linked immunoassay strategy based on enzyme-triggered in-situ synthesis of fluorescent copper nanoclusters.  SENSORS AND ACTUATORS B-CHEMICAL,  [10.1016/j.snb.2018.09.128]
15. Ting Xiao, Jian Sun, Jiahui Zhao, Shuang Wang, Guoyong Liu, Xiurong Yang.  (2018)  FRET Effect between Fluorescent Polydopamine Nanoparticles and MnO2 Nanosheets and Its Application for Sensitive Sensing of Alkaline Phosphatase.  ACS Applied Materials & Interfaces,  [PMID:29384352] [10.1021/acsami.7b18816]
16. Jian Sun, Tao Hu, Chuanxia Chen, Dan Zhao, Fan Yang, Xiurong Yang.  (2016)  Fluorescence Immunoassay System via Enzyme-Enabled in Situ Synthesis of Fluorescent Silicon Nanoparticles.  ANALYTICAL CHEMISTRY,  [PMID:27657654] [10.1021/acs.analchem.6b02847]
17. Xiaolong Zheng, Linlin Sun, Yanan Zhao, Hualin Yang, Yuanhua Zhu, Junxiang Zhang, Die Xu, Xingping Zhang, Yu Zhou.  (2024)  A fluorescence and colorimetric dual-mode immunoassay for detection of ochratoxin A based on cerium nanoparticles.  MICROCHEMICAL JOURNAL,  [10.1016/j.microc.2024.110419]
18. Dan Li, Yutao Shen, Na Li, Xiaolong Li, Mao Li, Zijia Huang, Yong Zhao.  (2025)  A fluorescent optical fiber sensor for real-time, portable detection of alkaline phosphatase activity.  SENSORS AND ACTUATORS B-CHEMICAL,  [10.1016/j.snb.2025.137568]
19. Yu Liu, Yawen Liu, Fangfang Wang, Zhigang Zhang, Haiming Hu, Lei Xiong, Junping Zheng, Hongtao Liu.  (2024)  A silver auto-catalyzed plasmonic enzyme-linked immunosorbent assay for colorimetric and fluorescent detection of neutrophil gelatinase associated lipocalin (NGAL).  MICROCHEMICAL JOURNAL,  [10.1016/j.microc.2024.111551]
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23. Yufeng Liu, Jing Zhang, Yuxin Wan, Cong Li, Shuai Cui, Xuejiao J. Gao, Hui Wei, Dongzhi Yang.  (2025)  Engineering Perovskite Hydroxide as a Cold-Adapted Oxidase Mimic for Construction of the Robust Low-Temperature Adaptive Biosensors.  ACS Sensors,  [PMID:40073385] [10.1021/acssensors.4c02848]
24. Jie Liu, Hao Deng, Bao-Zhu Jia, Ze-Shan Lin, Yu Wang, Hong Wang, Zhen-Lin Xu, Lin Luo.  (2024)  Ratiometric fluorescence and photothermal dual-mode immunosensor based on MnO2 nanosheets for the detection of isocarbophos.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2024.157951]
25. Li Jiawei, Sun Ziying, Lv Zhongyang, Jiang Huiming, Liu Anlong, Wang Maochun, Tan Guihua, Guo Hu, Sun Heng, Wu Rui, Xu Xingquan, Yan Wenjin, Jiang Qing, Ikegawa Shiro, Shi Dongquan.  (2021)  Microtubule Stabilization Enhances the Chondrogenesis of Synovial Mesenchymal Stem Cells.  Frontiers in Cell and Developmental Biology,  [PMID:34746145] [10.3389/fcell.2021.748804]
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