PON3 Knockout HEK293 Cell Line
Cat.No.:
EDJ-KQ5505
Species:
Human
Cell Name:
HEK293
Gene:
PON3
Gene ID:
5446
Size:
1×10⁶cells
PON3 Knockout Cell Line (HEK293) is an exclusive upgraded CRISPR/Cas9 system-mediated gene knockout cell, with the advantages of Optimized Strategy Design, Efficient Cell Transfection, High-Performance Cas9 Protein and Hassle-Free Cell Selection.
| Cat.No. | EDJ-KQ5505 |
|---|---|
| Product Name | PON3 Knockout Cell Line(HEK 293) |
| Cell Line | HEK293 |
| Cellosaurus ID | CVCL_0045 |
| Cell Line Synonyms | Hek293, HEK-293, HEK/293, (HEK)293, HEK 293, HEK,293, 293, 293 HEK, 293 Ad5, Graham 293, Graham-293, Human Embryonic Kidney 293 |
| Gene | |
| NCBI Gene ID | |
| Gene Synonyms | - |
| Summary |
This gene is a member of the paraoxonase family and lies in a cluster on chromosome 7 with the other two family members. The encoded protein is secreted into the bloodstream and associates with high-density lipoprotein (HDL). The protein also rapidly hydrolyzes lactones and can inhibit the oxidation of low-density lipoprotein (LDL), a function that is believed to slow the initiation and progression of atherosclerosis. Alternatively spliced variants which encode different protein isoforms have been described; however, only one has been fully characterized. [provided by RefSeq, Jul 2008]
|
| Associated Diseases | Non-tumor |
| Morphology | Adherent |
| Passage Ratio | 1/5,2days |
| Complete Culture Medium | DMEM + 10% FBS |
| Freezing Medium | 95% Complete culture medium+ 5% DMSO |
| QC | Indels validated by Sanger sequencing; sterility confirmed via microbial testing. |
* For research use only. Not intended for use in humans or animals, including clinical, therapeutic, or diagnostic purposes.
| Loci | STR Info (Sample Cell) Sample Cell Line: HEK293 | STR Info (Cell bank) Cell Line: HEK293 | ||
| Allele1 | Allele2 | Allele1 | Allele2 | |
| Amelogenin | X | X | ||
| CSF1P0 | 12 | 11 | 12 | |
| D2S1338 | 19 | 19 | ||
| D3S1358 | 15 | 17 | 15 | 17 |
| D5S818 | 8 | 8 | 9 | |
| D7S820 | 11 | 12 | 11 | 12 |
| D8S1179 | 12 | 14 | 12 | 14 |
| D13S317 | 12 | 14 | 12 | 14 |
| D16S539 | 9 | 13 | 9 | 13 |
| D18S51 | 17 | 18 | 17 | 18 |
| D19S433 | 15 | 18 | 15 | 18 |
| D21S11 | 28 | 30.2 | 28 | 30.2 |
| FGA | 23 | 23 | ||
| Penta D | 9 | 10 | 9 | 10 |
| Penta E | 7 | 15 | 7 | 15 |
| TH01 | 7 | 9.3 | 7 | 9.3 |
| TPOX | 11 | 11 | ||
| vWA | 16 | 19 | 16 | 19 |
| D6S1043 | 11 | 11 | ||
| D12S391 | 19 | 21 | 11 | 15 |
| D2S441 | 11 | 15 | 11 | 15 |
* STR authentication data of this cell line matches with that of cell lines sourced from ATCC, DSMZ, JCRB, and RIKEN databases.
Conclusion: The STR identification of this cell is correct.
Conclusion: The STR identification of this cell is correct.
* Research Use Disclaimer: Content is generated from publicly available research data, bioinformatic resources, and computational analyses for research reference only.
Research Publications
Paraoxonase 3 regulates the pore-forming α subunit of the large-conductance K channel.
IF=3.7
Biochimica et biophysica acta. Molecular cell research
Paraoxonase 3 (PON3) is expressed in the aldosterone-sensitive distal nephron (ASDN) where the fine tuning of Na and K homeostasis in the kidney occurs. Flow-induced K secretion within intercalated cells (ICs) of the ASDN is mediated by the large-conductance K (BK) channels. We have previously shown that renal PON3 expression was altered by dietary K intake and that Pon3 knockout (KO) mice had lower plasma [K]. These findings led us to hypothesize that PON3 may have a role in regulating renal K secretion by altering BK channel functional expression. The present study shows that both PON3 and the pore-forming α subunit of the BK channel (αBK) are expressed in ICs of mouse kidney and that the two proteins co-localize to the same cellular compartments when expressed in HEK293 cells. Using a biochemical approach, we show that PON3 interacts with αBK endogenously in the mouse kidney and when both proteins were co-expressed in HEK293 cells. We also examined the effects of PON3 on αBK expression and channel activity in HEK293 cells. We found that paxilline-sensitive BK currents were significantly reduced by PON3 expression, likely a consequence of lower surface abundance of αBK. Consistent with this finding, we observed a stronger αBK staining signal in ICs of Pon3 KO kidneys. Together, our data suggest that PON3 negatively regulates the functional expression of BK channels.
This KO model may be useful for:
- Investigating the regulatory role of PON3 in ion channel function, specifically the BK channel α subunit.
- Studying the impact of PON3 on potassium channel-mediated cellular excitability and signaling pathways.
- Exploring PON3-dependent mechanisms in vascular or neuronal physiology.
- Functional validation of PON3 as a modulator of large-conductance K⁺ channel activity.
- Screening for compounds that modulate PON3-channel interactions in a knockout background.