Gene
acat2
- ID
- ZDB-GENE-990714-22
- Name
- acetyl-CoA acetyltransferase 2
- Symbol
- acat2 Nomenclature History
- Previous Names
- Type
- protein_coding_gene
- Location
- Chr: 20 Mapping Details/Browsers
- Description
- Predicted to enable acetyl-CoA C-acetyltransferase activity. Is expressed in liver; nervous system; and yolk syncytial layer. Human ortholog(s) of this gene implicated in coronary artery disease. Orthologous to human ACAT2 (acetyl-CoA acetyltransferase 2).
- Genome Resources
- Note
- None
- Comparative Information
-
- All Expression Data
- 8 figures from 5 publications
- Cross-Species Comparison
- High Throughput Data
- Thisse Expression Data
-
- MGC:56153 (6 images)
- eu94 (1 image)
Wild Type Expression Summary
- All Phenotype Data
- No data available
- Cross-Species Comparison
- Alliance
Phenotype Summary
Mutations
Allele | Type | Localization | Consequence | Mutagen | Supplier |
---|---|---|---|---|---|
la028243Tg | Transgenic insertion | Unknown | Unknown | DNA | |
sa32299 | Allele with one point mutation | Unknown | Premature Stop | ENU |
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No data available
Human Disease
Disease Ontology Term | Multi-Species Data | OMIM Term | OMIM Phenotype ID |
---|---|---|---|
?ACAT2 deficiency | 614055 |
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Domain, Family, and Site Summary
Domain Details Per Protein
Protein | Additional Resources | Length | Thiolase | Thiolase, active site | Thiolase, conserved site | Thiolase, C-terminal | Thiolase-like | Thiolase, N-terminal |
---|---|---|---|---|---|---|---|---|
UniProtKB:Q7ZU18 | InterPro | 395 | ||||||
UniProtKB:A0A8M9PSH6 | InterPro | 273 |
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- Genome Browsers
Interactions and Pathways
No data available
Plasmids
No data available
No data available
Relationship | Marker Type | Marker | Accession Numbers | Citations |
---|---|---|---|---|
Contained in | BAC | CH211-195E3 | ZFIN Curated Data | |
Encodes | EST | eu94 | Thisse et al., 2005 | |
Encodes | EST | fb10a06 | ZFIN Curated Data | |
Encodes | EST | fb53f08 | ZFIN Curated Data | |
Encodes | cDNA | MGC:56153 | ZFIN Curated Data | |
Encodes | cDNA | MGC:192398 | ZFIN Curated Data |
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- Deng, R., Medico-Salsench, E., Nikoncuk, A., Ramakrishnan, R., Lanko, K., Kühn, N.A., van der Linde, H.C., Lor-Zade, S., Albuainain, F., Shi, Y., Yousefi, S., Capo, I., van den Herik, E.M., van Slegtenhorst, M., van Minkelen, R., Geeven, G., Mulder, M.T., Ruijter, G.J.G., Lütjohann, D., Jacobs, E.H., Houlden, H., Pagnamenta, A.T., Metcalfe, K., Jackson, A., Banka, S., De Simone, L., Schwaede, A., Kuntz, N., Palculict, T.B., Abbas, S., Umair, M., AlMuhaizea, M., Colak, D., AlQudairy, H., Alsagob, M., Pereira, C., Trunzo, R., Karageorgou, V., Bertoli-Avella, A.M., Bauer, P., Bouman, A., Hoefsloot, L.H., van Ham, T.J., Issa, M., Zaki, M.S., Gleeson, J.G., Willemsen, R., Kaya, N., Arold, S.T., Maroofian, R., Sanderson, L.E., Barakat, T.S. (2023) AMFR dysfunction causes autosomal recessive spastic paraplegia in human that is amenable to statin treatment in a preclinical model. Acta Neuropathologica. 146(2):353-368
- Yang, G., Sun, S., He, J., Wang, Y., Ren, T., He, H., Gao, J. (2022) Enoyl-CoA hydratase/3-hydroxyacyl-CoA dehydrogenase (ehhadh) is essential for production of DHA in zebrafish. Journal of Lipid Research. 64(3):100326
- Lai, C.Y., Yeh, K.Y., Lin, C.Y., Hsieh, Y.W., Lai, H.H., Chen, J.R., Hsu, C.C., Her, G.M. (2021) MicroRNA-21 Plays Multiple Oncometabolic Roles in the Process of NAFLD-Related Hepatocellular Carcinoma via PI3K/AKT, TGF-β, and STAT3 Signaling. Cancers. 13(5):
- Takashima, S., Takemoto, S., Toyoshi, K., Ohba, A., Shimozawa, N. (2021) Zebrafish model of human Zellweger syndrome reveals organ-specific accumulation of distinct fatty acid species and widespread gene expression changes. Molecular genetics and metabolism. 133(3):307-323
- Yang, W.Y., Rao, P.S., Luo, Y.C., Lin, H.K., Huang, S.H., Yang, J.M., Yuh, A.C. (2019) Omics-based Investigation of Diet-induced Obesity Synergized with HBx, Src, and p53 Mutation Accelerating Hepatocarcinogenesis in Zebrafish Model. Cancers. 11(12):
- Zhao, Y., Bao, Z., Wan, Z., Fu, Z., Jin, Y. (2019) Polystyrene microplastic exposure disturbs hepatic glycolipid metabolism at the physiological, biochemical, and transcriptomic levels in adult zebrafish. The Science of the total environment. 710:136279
- Santangeli, S., Notarstefano, V., Maradonna, F., Giorgini, E., Gioacchini, G., Forner-Piquer, I., Habibi, H.R., Carnevali, O. (2018) Effects of diethylene glycol dibenzoate and Bisphenol A on the lipid metabolism of Danio rerio. The Science of the total environment. 636:641-655
- Bayés, À., Collins, M.O., Reig-Viader, R., Gou, G., Goulding, D., Izquierdo, A., Choudhary, J.S., Emes, R.D., Grant, S.G. (2017) Evolution of complexity in the zebrafish synapse proteome. Nature communications. 8:14613
- Zhang, J., Sun, P., Kong, T., Yang, F., Guan, W. (2016) Tributyltin promoted hepatic steatosis in zebrafish (Danio rerio) and the molecular pathogenesis involved. Aquatic toxicology (Amsterdam, Netherlands). 170:208-215
- Elkon, R., Milon, B., Morrison, L., Shah, M., Vijayakumar, S., Racherla, M., Leitch, C.C., Silipino, L., Hadi, S., Weiss-Gayet, M., Barras, E., Schmid, C.D., Ait-Lounis, A., Barnes, A., Song, Y., Eisenman, D.J., Eliyahu, E., Frolenkov, G.I., Strome, S.E., Durand, B., Zaghloul, N.A., Jones, S.M., Reith, W., Hertzano, R. (2015) RFX transcription factors are essential for hearing in mice. Nature communications. 6:8549
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