3,8-Dihydroxy-1,2-dimethoxyanthraquinone

Catalog No.: B20012
Anthraquinone
3,8-Dihydroxy-1,2-dimethoxyanthraquinone is an anthraquinone derivative that exhibits notable biological activity. Isolated from the roots of Morinda officinalis, this compound serves as a valuable tool for research into its potential effects on various biochemical pathways. Although it does not inhibit lipopolysaccharide-stimulated nitric oxide production at concentrations below 50 μM, its role in cellular processes warrants further investigation in the study of inflammatory responses and other therapeutic areas.
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Adooq Products cited in reputable paper
Science VOLUME 380, ISSUE 6663 (2023)
Science VOLUME 369, ISSUE 6510 (2020)
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)
Nature volume 573, pages539-545 (2019)
Nature volume 567, pages118-122 (2019)
Nature volume 551, pages639-643 (2017)
Nature volume 551, pages247-250 (2017)
Nature volume 548, pages356-360 (2017)
Nature volume 545, pages187-192 (2017)
Biological Activity
Description3,8-Dihydroxy-1,2-dimethoxyanthraquinone is an anthraquinone derivative that exhibits notable biological activity. Isolated from the roots of Morinda officinalis, this compound serves as a valuable tool for research into its potential effects on various biochemical pathways. Although it does not inhibit lipopolysaccharide-stimulated nitric oxide production at concentrations below 50 μM, its role in cellular processes warrants further investigation in the study of inflammatory responses and other therapeutic areas.
Product Information
Catalog NumB20012
FormulaC16H12O6
Molecular Weight300.26
CAS Number108637-83-8
SMILESO=C1C2=C(C(C3=C(C(OC)=C(C=C13)O)OC)=O)C(O)=CC=C2
Useful Calculator

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

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This equation is commonly abbreviated as: C1V1 = C2V2

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