Sp-dATPαS

Catalog No.: A93124
Biochemical Reagent
Sp-dATPαS is a biochemical reagent that serves as a regulator of ADP-binding proteins. Due to its enhanced metabolic stability compared to ATP, Sp-dATPαS is ideal for applications in biochemical assays and studies investigating nucleotide interactions and signaling pathways. Its stability can facilitate prolonged experimental conditions and improve the accuracy of results in various research contexts.
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5mg
10mg
50mg
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Research use only. We do not sell to patients.

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Adooq Products cited in reputable paper
Science VOLUME 380, ISSUE 6663 (2023)
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Science VOLUME 356, ISSUE 6336 (2017)
Cell Vol. 185 Issue 23 p4428-4447.e28
Cell Vol 177, Issue 7, p1933-1947.e25
Cell Vol 156, Issue 5, p857-1114
Nature Volume 622 Issue 7982 (2023)
Nature volume 620, pages890-897 (2023)
Nature volume 610, pages540-546 (2022)
Nature volume 588, pages83-88 (2020)
Nature volume 574, pages268-272 (2019)
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Nature volume 551, pages639-643 (2017)
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Nature volume 548, pages356-360 (2017)
Nature volume 545, pages187-192 (2017)
Biological Activity
DescriptionSp-dATPαS is a biochemical reagent that serves as a regulator of ADP-binding proteins. Due to its enhanced metabolic stability compared to ATP, Sp-dATPαS is ideal for applications in biochemical assays and studies investigating nucleotide interactions and signaling pathways. Its stability can facilitate prolonged experimental conditions and improve the accuracy of results in various research contexts.
Product Information
Catalog NumA93124
FormulaC10H16N5O11P3S
Molecular Weight507.25
CAS Number80875-87-2
SMILESO[C@H]1C[C@H](N2C3=NC=NC(N)=C3N=C2)O[C@@H]1CO[P@@](OP(OP(O)(O)=O)(O)=O)(S)=O
Useful Calculator

This calculator helps you calculate mass of compound based on solution concentration, volume and molecular weight in a specific solution using the formula:

Mass (mg) = Concentration (mM) × Volume (mL) × Molecular Weight (g/mol)

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Please check COA/MSDS for correct molecular weight.

Calculate the dilution required to prepare a stock solution.
This equation is commonly abbreviated as: C1V1 = C2V2

  • C1

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    C2

    V2