EXOC6B Knockout HEK293 Cell Line
Cat.No.:
EDJ-KQ7902
Species:
Human
Cell Name:
HEK293
Gene:
EXOC6B
Gene ID:
23233
Size:
1×10⁶cells
EXOC6B 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-KQ7902 |
|---|---|
| Product Name | EXOC6B Knockout Cell Line (HEK293) |
| 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 | SEC15B|SEC15L2|SEMDJL3 |
| Summary |
This gene encodes a protein which is a part of the evolutionarily conserved exocyst, a multimeric protein complex necessary for exocytosis, which in turn, is crucial for cell growth, polarity and migration. Disruption of this gene may be associated with phenotypes exhibiting multiple symptoms including intellectual disability and developmental delay (DD). [provided by RefSeq, Jun 2016]
|
| 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
EXOC6B promotes cilial elongation via autophagy-dependent protein turnover.
IF=2.2
Biochemical and biophysical research communications
Exocyst Complex Component 6b (EXOC6B), a constituent of highly conserved octameric exocyst complex, plays a pivotal role in tethering and spatial targeting of post-Golgi vesicles to the plasma membrane, thereby facilitating exocytosis. Mutations in the EXOC6B gene has been associated with severe neurological and skeletal disorders, such as spondyloepimetaphyseal dysplasia with joint laxity type 3 (SEMDJL3) and Laurin-Sandrow Syndrome, highlighting its critical role in the development. SEMDJL3 patient fibroblasts showed impaired ciliogenesis. Thus, in this study, we investigated the functional importance of EXOC6B in cilium formation and the underlying molecular mechanisms. Here, we observed that cilia were shorter in EXOC6B knockout HEK 293T cells. On the other hand, forced expression of EXOC6B in HEK 293T cells augmented cilia length. Mechanistic analysis of EXOC6B-mediated cilia effects revealed that EXOC6B enhanced basal autophagy through the activation of AMPK and inhibition of mTOR signalling pathways. Analysis of clinically reported mutations in EXOC6B gene showed that the region beyond amino acid Tyr is critical for interaction with ciliary proteins, induction of basal autophagy and cilia length enhancement. Taken together, we show that EXOC6B promotes cilia length through the activation of basal autophagy.
This KO model may be useful for:
- Investigating the role of EXOC6B in primary cilia biology and ciliary elongation mechanisms
- Studying autophagy-dependent protein turnover and its regulation by exocyst complex components
- Exploring the crosstalk between vesicle trafficking and ciliogenesis pathways
- Functional validation of EXOC6B in cellular signaling processes linked to ciliary function
- Modeling ciliopathy-related phenotypes in a human cell context for target discovery