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N6522

Sigma-Aldrich

β-Nicotinamide adenine dinucleotide hydrate

≥98%, BioUltra, from yeast

Synonym(s):

β-DPN, β-NAD, Coenzyme 1, Cozymase, DPN, Diphosphopyridine nucleotide, NAD, Nadide

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About This Item

Empirical Formula (Hill Notation):
C21H27N7O14P2 · xH2O
CAS Number:
Molecular Weight:
663.43 (anhydrous basis)
EC Number:
MDL number:
UNSPSC Code:
41106305
eCl@ss:
39200202
PubChem Substance ID:
NACRES:
NA.55

biological source

yeast

Quality Level

product line

BioUltra

assay

≥98%

form

powder

impurities

≤0.1% Insoluble matter

color

white to off-white

solubility

H2O: 0.1 M, clear, colorless to faintly yellow

anion traces

chloride (Cl-): ≤0.2%
sulfate (SO42-): ≤0.05%

cation traces

Al: ≤0.0005%
Ca: ≤0.005%
Cu: ≤0.001%
Fe: ≤0.001%
K: ≤0.005%
Mg: ≤0.0005%
NH4+: ≤0.05%
Na: ≤0.005%
Pb: ≤0.001%
Zn: ≤0.0005%

storage temp.

−20°C

SMILES string

NC1=NC=NC2=C1N=CN2.O[C@@H]3[C@@H](COP(O)(OP(OC[C@@H](O4)[C@@H](O)[C@@H](O)[C@H]4[N+]5=CC=CC(C(N)=O)=C5)([O-])=O)=O)OC[C@@H]3O

InChI

1S/C21H27N7O14P2/c22-17-12-19(25-7-24-17)28(8-26-12)21-16(32)14(30)11(41-21)6-39-44(36,37)42-43(34,35)38-5-10-13(29)15(31)20(40-10)27-3-1-2-9(4-27)18(23)33/h1-4,7-8,10-11,13-16,20-21,29-32H,5-6H2,(H5-,22,23,24,25,33,34,35,36,37)/t10-,11-,13-,14-,15-,16-,20-,21-/m1/s1

InChI key

BAWFJGJZGIEFAR-NNYOXOHSSA-N

Gene Information

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Application


  • Electrochemical Sensor Development: β-Nicotinamide adenine dinucleotide hydrate is utilized in the development of carbon nanomaterial-based electrochemical sensors and biosensors. These devices are designed for the sensitive detection of pharmaceutical and biological compounds, highlighting its crucial role in enhancing the sensitivity and specificity of biochemical assays (Adhikari et al., 2015).

Biochem/physiol Actions

Electron acceptor

Packaging

Packaged by solid weight.

Other Notes

This is the common form of NAD.

Storage Class

13 - Non Combustible Solids

wgk_germany

WGK 3

flash_point_f

Not applicable

flash_point_c

Not applicable

ppe

Eyeshields, Gloves, type N95 (US)


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Ana P Gomes et al.
Cell, 155(7), 1624-1638 (2013-12-24)
Ever since eukaryotes subsumed the bacterial ancestor of mitochondria, the nuclear and mitochondrial genomes have had to closely coordinate their activities, as each encode different subunits of the oxidative phosphorylation (OXPHOS) system. Mitochondrial dysfunction is a hallmark of aging, but
Brian J North et al.
The EMBO journal, 33(13), 1438-1453 (2014-05-16)
Mice overexpressing the mitotic checkpoint kinase gene BubR1 live longer, whereas mice hypomorphic for BubR1 (BubR1(H/H)) live shorter and show signs of accelerated aging. As wild-type mice age, BubR1 levels decline in many tissues, a process that is proposed to
Teigo Asai et al.
Organic letters, 15(8), 2058-2061 (2013-04-13)
Graphiopsis chlorocephala was separated from the surface-sterilized healthy leaves of Paeonia lactiflora (Paeoniaceae) and cultivated with nicotinamide (an NAD(+)-dependent HDAC inhibitor). The culture conditions significantly enhanced secondary metabolite production in the fungus and led to the isolation of a structurally
Jeerus Sucharitakul et al.
The Journal of biological chemistry, 288(49), 35210-35221 (2013-10-17)
3-Hydroxybenzoate 6-hydroxylase (3HB6H) from Rhodococcus jostii RHA1 is an NADH-specific flavoprotein monooxygenase that catalyzes the para-hydroxylation of 3-hydroxybenzoate (3HB) to form 2,5-dihydroxybenzoate (2,5-DHB). Based on results from stopped-flow spectrophotometry, the reduced enzyme-3HB complex reacts with oxygen to form a C4a-peroxy
Christian Dölle et al.
The FEBS journal, 280(15), 3530-3541 (2013-04-27)
Mitochondrial metabolism is intimately connected to the universal coenzyme NAD. In addition to its role in redox reactions of energy transduction, NAD serves as substrate in regulatory reactions that lead to its degradation. Importantly, all types of the known NAD-consuming

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