Gene
kcnj2b
- ID
- ZDB-GENE-091204-290
- Name
- potassium inwardly rectifying channel subfamily J member 2b
- Symbol
- kcnj2b Nomenclature History
- Previous Names
-
- Kir2.1b (1)
- si:ch211-8c17.5
- Type
- protein_coding_gene
- Location
- Chr: 3 Mapping Details/Browsers
- Description
- Predicted to enable inward rectifier potassium channel activity. Predicted to be involved in potassium ion import across plasma membrane and regulation of monoatomic ion transmembrane transport. Predicted to act upstream of or within monoatomic ion transmembrane transport and potassium ion transport. Predicted to be located in membrane. Predicted to be part of monoatomic ion channel complex. Predicted to be active in plasma membrane. Is expressed in brain; head; heart; otic vesicle; and trunk. Human ortholog(s) of this gene implicated in Andersen-Tawil syndrome; familial atrial fibrillation; familial periodic paralysis; and short QT syndrome. Orthologous to human KCNJ2 (potassium inwardly rectifying channel subfamily J member 2).
- Genome Resources
- Note
- None
- Comparative Information
-
- All Expression Data
- 4 figures from 4 publications
- Cross-Species Comparison
- High Throughput Data
- Thisse Expression Data
- No data available
Wild Type Expression Summary
- All Phenotype Data
- No data available
- Cross-Species Comparison
- Alliance
Phenotype Summary
Mutations
Targeting Reagent | Created Alleles | Citations |
---|---|---|
CRISPR1-kcnj2b | Zebrafish Nomenclature Committee | |
CRISPR2-kcnj2b | LaCoursiere et al., 2024 | |
CRISPR3-kcnj2b | LaCoursiere et al., 2024 |
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Human Disease
Disease Ontology Term | Multi-Species Data | OMIM Term | OMIM Phenotype ID |
---|---|---|---|
Andersen-Tawil syndrome | Alliance | Andersen syndrome | 170390 |
familial atrial fibrillation | Alliance | Atrial fibrillation, familial, 9 | 613980 |
short QT syndrome | Alliance | Short QT syndrome 3 | 609622 |
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Domain, Family, and Site Summary
Type | InterPro ID | Name |
---|---|---|
Domain | IPR013673 | Potassium channel, inwardly rectifying, Kir, N-terminal |
Domain | IPR040445 | Potassium channel, inwardly rectifying, transmembrane domain |
Domain | IPR041647 | Inward rectifier potassium channel, C-terminal |
Family | IPR003274 | Potassium channel, inwardly rectifying, Kir3.1 |
Family | IPR016449 | Potassium channel, inwardly rectifying, Kir |
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Domain Details Per Protein
Protein | Additional Resources | Length | Immunoglobulin E-set | Inward rectifier potassium channel, C-terminal | Potassium channel, inwardly rectifying, Kir | Potassium channel, inwardly rectifying, Kir3.1 | Potassium channel, inwardly rectifying, Kir, cytoplasmic | Potassium channel, inwardly rectifying, Kir, N-terminal | Potassium channel, inwardly rectifying, transmembrane domain |
---|---|---|---|---|---|---|---|---|---|
UniProtKB:A0A8M6YZC2 | InterPro | 440 |
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Type | Name | Annotation Method | Has Havana Data | Length (nt) | Analysis |
---|---|---|---|---|---|
mRNA |
kcnj2b-201
(1)
|
Ensembl | 1,323 nt |
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Interactions and Pathways
No data available
Plasmids
No data available
Relationship | Marker Type | Marker | Accession Numbers | Citations |
---|---|---|---|---|
Contained in | BAC | CH211-8C17 | ZFIN Curated Data |
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Type | Accession # | Sequence | Length (nt/aa) | Analysis |
---|---|---|---|---|
RNA | RefSeq:XM_017354866 (1) | |||
Genomic | GenBank:BX511176 (1) | 116813 nt | ||
Polypeptide | UniProtKB:A0A8M6YZC2 (1) | 440 aa |
- LaCoursiere, C.M., Ullmann, J.F.P., Koh, H.Y., Turner, L., Baker, C.M., Robens, B., Shao, W., Rotenberg, A., McGraw, C.M., Poduri, A.H. (2024) Zebrafish models of candidate human epilepsy-associated genes provide evidence of hyperexcitability. iScience. 27:110172110172
- Fang, C., Wang, P., Yu, D., Zhang, X., Gou, D., Liang, L., Bai, X., Xie, W., Li, H., Pu, J., Yao, Y., Wang, B., Ren, X., Ke, T., Tu, X., Xu, C., Wang, Q.K. (2022) Genome-Wide Association Study for Idiopathic Ventricular Tachyarrhythmias Identifies Key Role of CCR7 and PKN2 in Calcium Homeostasis and Cardiac Rhythm Maintenance. Circulation. Genomic and precision medicine. 15(5):e003603
- Silic, M.R., Murata, S.H., Park, S.J., Zhang, G. (2021) Evolution of inwardly rectifying potassium channels and their gene expression in zebrafish embryos. Developmental Dynamics : an official publication of the American Association of Anatomists. 251(4):687-713
- Gou, D., Zhou, J., Song, Q., Wang, Z., Bai, X., Zhang, Y., Zuo, M., Wang, F., Chen, A., Yousaf, M., Yang, Z., Peng, H., Li, K., Xie, W., Tang, J., Yao, Y., Han, M., Ke, T., Chen, Q., Xu, C., Wang, Q. (2020) Mog1 knockout causes cardiac hypertrophy and heart failure by downregulating tbx5-cryab-hspb2 signaling in zebrafish. Acta physiologica (Oxford, England). 231(3):e13567
- Hassinen, M., Korajoki, H., Abramochkin, D., Krivosheya, P., Vornanen, M. (2019) Transcript expression of inward rectifier potassium channels of Kir2 subfamily in Arctic marine and freshwater fish species. Journal of comparative physiology. B, Biochemical, systemic, and environmental physiology. 189(6):735-749
- Tsata, V., Kroehne, V., Reinhardt, S., El-Armouche, A., Brand, M., Wagner, M., Reimer, M.M. (2019) Electrophysiological Properties of Adult Zebrafish Oligodendrocyte Progenitor Cells. Frontiers in Cellular Neuroscience. 13:102
- Benz, A., Kossack, M., Auth, D., Seyler, C., Zitron, E., Juergensen, L., Katus, H.A., Hassel, D. (2016) miR-19b Regulates Ventricular Action Potential Duration in Zebrafish. Scientific Reports. 6:36033
- Hassinen, M., Haverinen, J., Hardy, M.E., Shiels, H.A., Vornanen, M. (2015) Inward rectifier potassium current (I K1) and Kir2 composition of the zebrafish (Danio rerio) heart. Pflugers Archiv : European journal of physiology. 467(12):2437-46
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