3809-32-3
Chemical Structure
2,5-Dimethylcyclohexanol
- CAS No.: 3809-32-3
- Formula:C8H16O
- Molecular Weight:128.21
IUPAC Name: 2,5-dimethylcyclohexan-1-ol
InChIKey: RUADGOLRFXTMCY-UHFFFAOYSA-N
SMILES: CC1CCC(C)C(C1)O
Biological Activity: 2,5-Dimethylcyclohexanol, a volatile organic compound, is a fatty acid that can be isolated from Amphora sp.. 2,5-Dimethylcyclohexanol has significant antineoplastic and antiviral activities with inhibition of SARS-CoV-2 Mpro. 2,5-Dimethylcyclohexanol also has potent antifungal activity against Pseudogymnoascus destructans. 2,5-Dimethylcyclohexanol compromises cell wall and membrane integrity while perturbing energy metabolism, increases the levels of ROS, ATP, Superoxide anion and GSH, and decreases CAT and SOD activities. And 2,5-Dimethylcyclohexanol alters virulence ribosomal genes expression, and disrupts the MAPK signaling pathways, inducing fungal cell apoptosis[1][2][3].
| Cat. No. | Product Name | Purity | Description | Pricing | |||||||||||||||||||
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2,5-Dimethylcyclohexanol | 99.88% | 2,5-Dimethylcyclohexanol, a volatile organic compound, is a fatty acid that can be isolated from Amphora sp.. 2,5-Dimethylcyclohexanol has significant antineoplastic and antiviral activities with inhibition of SARS-CoV-2 Mpro. 2,5-Dimethylcyclohexanol also has potent antifungal activity against Pseudogymnoascus destructans. 2,5-Dimethylcyclohexanol compromises cell wall and membrane integrity while perturbing energy metabolism, increases the levels of ROS, ATP, Superoxide anion and GSH, and decreases CAT and SOD activities. And 2,5-Dimethylcyclohexanol alters virulence ribosomal genes expression, and disrupts the MAPK signaling pathways, inducing fungal cell apoptosis. | ||||||||||||||||||||
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- [1]. Khumaidi A, et al. Fatty acid profile and in silico pharmacological study of diatom Amphora sp[J]. Aquaculture, Aquarium, Conservation & Legislation, 2020, 13(4): 2050-2060.
- [2]. Huang Z, et al. Mechanisms of volatile organic compounds from bat cave environments against Pseudogymnoascus destructans in vitro. Appl Environ Microbiol. 2025 Nov 13:e0118725. [Content Brief]
- [3]. Shehzadi S, et al. Antiviral COVID-19 protein and molecular docking: In silico characterization of various antiviral compounds extracted from Arisaema jacquemontii Blume. Front Public Health. 2022 Sep 23;10:964741. [Content Brief]
Keywords