DNMBP Knockout HEK293 Cell Line

DNMBP Knockout HEK293 Cell Line
Cat.No.:

EDJ-KQ7934

Species:

Human

Cell Name:

HEK293

Gene:

DNMBP

Gene ID:

23268

Size:

1×10⁶cells

DNMBP 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-KQ7934
Product Name DNMBP 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 ARHGEF36|CTRCT48|TUBA
Summary
This gene encodes a protein belonging to the guanine nucleotide exchange factor family, and which regulates the configuration of cell junctions. It contains multiple binding sites for dynamin and thus links dynamin to actin regulatory proteins. Polymorphisms in this gene have been linked to Alzheimer's disease in some populations, though there are conflicting reports of such linkages in other populations. Alternative splicing results in multiple transcript variants. [provided by RefSeq, Dec 2015]
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.
LociSTR Info (Sample Cell)
Sample Cell Line: HEK293
STR Info (Cell bank)
Cell Line: HEK293
Allele1Allele2Allele1Allele2
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.
* Research Use Disclaimer: Content is generated from publicly available research data, bioinformatic resources, and computational analyses for research reference only.

Research Publications

IF=3.9
The Journal of biological chemistry
The ubiquitin ligase Nedd4-2/NEDD4L, comprised of C2-WW(x4)-HECT domains, is known to regulate several ion transporters and channels. We recently showed that elevated intracellular [Na] and osmolarity enhances Nedd4-2 enzymatic activity. To globally identify its interactome and substrates in cells under hyperosmotic stress, we performed a BioID screen using miniTurbo with Nedd4-2 as a bait under hyperosmotic (vs. isosmotic) conditions. One of the top hits identified that preferentially binds Nedd4-2 under hyperosmolarity was Dynamin Binding Protein (DNMBP)/Tuba, a known GEF for Cdc42. We then showed that DNMBP is a substrate for Nedd4-2, and that active Nedd4-2 targets DNMBP to P-body condensates under hyperosmotic stress. Moreover, DNMBP itself promotes P-body formation under hyperosmolarity. Both Nedd4-2 and DNMBP are required for the activation of Cdc42 following hyperosmotic treatment, and accordingly, knockout of DNMBP results in suppression of Cdc42 and its downstream effector p38-MAPK. We thus propose that Nedd4-2-mediated targeting of DNMBP to P-bodies under hyperosmotic stress facilitates the activation of Cdc42 by this GEF.
This KO model may be useful for: - Investigating the role of DNMBP in stress granule and P-body dynamics under hyperosmotic conditions. - Studying ubiquitin-mediated regulation of DNMBP localization and turnover. - Exploring DNMBP function in cellular stress response pathways. - Validating Nedd4-2-dependent signaling mechanisms in protein degradation and trafficking. - Functional characterization of DNMBP in osmotic stress adaptation and mRNA decay processes.

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