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Chemical Structure| 140-67-0 Chemical Structure| 140-67-0

Structure of Estragole
CAS No.: 140-67-0

Chemical Structure| 140-67-0

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Estragole (4-Allylanisole), a relatively nontoxic volatile terpenoid ether, is a major component of the essential oil of many plants. Estragole dose-dependently blocks nerve excitability. Estragole displays anti-toxoplasma activity.

Synonyms: 4-Allylanisole; Methyl Chavicol; NSC 404113

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Product Details of Estragole

CAS No. :140-67-0
Formula : C10H12O
M.W : 148.20
SMILES Code : COC1=CC=C(CC=C)C=C1
Synonyms :
4-Allylanisole; Methyl Chavicol; NSC 404113
MDL No. :MFCD00008653
InChI Key :ZFMSMUAANRJZFM-UHFFFAOYSA-N
Pubchem ID :8815

Safety of Estragole

GHS Pictogram:
Signal Word:Warning
Hazard Statements:H302-H351-H361
Precautionary Statements:P301+P312+P330

Isoform Comparison

Biological Activity

In Vitro:

Cell Line
Concentration Treated Time Description References
NER-deficient CHO UV cells 50 μM 2 h To study the role of NER in DNA adduct repair. Results showed no significant NER repair in NER-deficient CHO UV cells. Arch Toxicol. 2020 Apr;94(4):1349-1365
CHO wild-type cells 50 μM 2 h To study the role of NER in DNA adduct repair. Results showed that NER played a role in repairing E-3′-N2-dG adducts in CHO wild-type cells, but with limited efficiency as 80% of adducts remained after 24 h. Arch Toxicol. 2020 Apr;94(4):1349-1365
Primary rat hepatocytes 50 μM 2 h To study DNA adduct formation and repair. Results showed that DNA adduct formation was detected upon exposure to both estragole and 1′-hydroxyestragole in primary rat hepatocytes, but higher adduct levels were observed with 1′-hydroxyestragole. Arch Toxicol. 2020 Apr;94(4):1349-1365
HepaRG cells 50 μM 2 h To study DNA adduct formation and repair. Results showed that DNA adduct formation was detected upon exposure to both estragole and 1′-hydroxyestragole in HepaRG cells, but higher adduct levels were observed with 1′-hydroxyestragole. Arch Toxicol. 2020 Apr;94(4):1349-1365
HepG2 cells 50 μM 2 h To study DNA adduct formation and repair. Results showed that DNA adduct formation was detected upon exposure to 1′-hydroxyestragole but not to estragole in HepG2 cells. Arch Toxicol. 2020 Apr;94(4):1349-1365

Protocol

Bio Calculators
Preparing Stock Solutions 1mg 5mg 10mg

1 mM

5 mM

10 mM

6.75mL

1.35mL

0.67mL

33.74mL

6.75mL

3.37mL

67.48mL

13.50mL

6.75mL

Dissolving Methods
Please choose the appropriate dissolution scheme according to your animal administration guide.For the following dissolution schemes, clear stock solution should be prepared according to in vitro experiments, and then cosolvent should be added in turn:

in order to ensure the reliability of the experimental results, the clarified stock solution can be properly preserved according to the storage conditions; The working fluid for in vivo experiment is recommended to be prepared now and used on the same day;

The percentage shown in front of the following solvent refers to the volume ratio of the solvent in the final solution; If precipitation or precipitation occurs in the preparation process, it can be assisted by heating and/or ultrasound.
Protocol 1
Protocol 2

References

 

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