Gene: CCNT1
Official Full Name: cyclin T1provided by HGNC
Gene Summary: This gene encodes a member of the highly conserved cyclin C subfamily. The encoded protein tightly associates with cyclin-dependent kinase 9, and is a major subunit of positive transcription elongation factor b (p-TEFb). In humans, there are multiple forms of positive transcription elongation factor b, which may include one of several different cyclins along with cyclin-dependent kinase 9. The complex containing the encoded cyclin and cyclin-dependent kinase 9 acts as a cofactor of human immunodeficiency virus type 1 (HIV-1) Tat protein, and is both necessary and sufficient for full activation of viral transcription. This cyclin and its kinase partner are also involved in triggering transcript elongation through phosphorylation of the carboxy-terminal domain of the largest RNA polymerase II subunit. Overexpression of this gene is implicated in tumor growth. Alternative splicing results in multiple transcript variants. [provided by RefSeq, Apr 2013]
Catalog Number | Product Name | Species | Gene | Passage ratio | Mycoplasma testing | Price |
---|---|---|---|---|---|---|
KO06370 | CCNT1 Knockout cell line (HeLa) | Human | CCNT1 | 1:3~1:6 | Negative | Online Inquiry |
KO06371 | CCNT1 Knockout cell line (HCT 116) | Human | CCNT1 | 1:2~1:4 | Negative | Online Inquiry |
KO06372 | CCNT1 Knockout cell line (HEK293) | Human | CCNT1 | 1:3~1:6 | Negative | Online Inquiry |
KO06373 | CCNT1 Knockout cell line (A549) | Human | CCNT1 | 1:3~1:4 | Negative | Online Inquiry |
CCNT1 Gene Knockout Cell Lines are a powerful research tool designed to facilitate the investigation of the cellular and molecular roles of the CCNT1 gene, which encodes the cyclin-dependent kinase-activating kinase (CAK) subunit of the cyclin-dependent kinase (CDK) complex. These cell lines have been engineered using advanced CRISPR/Cas9 technology to create precise gene knockouts, ensuring the complete absence of the CCNT1 protein. This feature enables researchers to disentangle the complex signaling pathways involved in cell cycle regulation, transcriptional control, and potential oncogenic processes.
The primary function of CCNT1 involves the activation of CDKs, which are crucial for the progression of the cell cycle. By disrupting the CCNT1 gene, the cell lines provide insights into the functional consequences of decreased CDK activity, revealing how alterations in this pathway may lead to abnormal cellular behavior, including tumorigenesis. These knockout models are essential for elucidating the fundamental biological mechanisms underpinning diseases characterized by dysregulated cell division and proliferation.
In terms of scientific importance, CCNT1 Gene Knockout Cell Lines serve as invaluable resources in both basic research and drug discovery applications. Their ability to model specific genetic alterations allows for the assessment of therapeutic targets, evaluation of potential drug compounds, and investigation of resistance mechanisms in cancer therapy. Researchers can leverage these cell lines to gain a more comprehensive understanding of CCNT1's role in cellular activities and its implications for oncology.
One significant advantage of our CCNT1 Gene Knockout Cell Lines is the rigor and precision associated with their creation, ensuring reproducibility and reliability of data. Unlike alternative models that may exhibit variable expression levels or incomplete knockdowns, our engineered cell lines deliver consistent genetic modifications, providing confidence in experimental results. Additionally, the versatility of these cell lines allows for a wide range of applications, from high-throughput screening to detailed mechanistic studies.
For researchers and clinicians seeking to advance their understanding of cell cycle regulation and its related implications, the CCNT1 Gene Knockout Cell Lines offer a robust platform for innovative discoveries. Our commitment to quality and excellence in biological research tools underscores our expertise in delivering comprehensive solutions tailored to the needs of the scientific community. Let our expertise propel your research to new heights with precision-engineered cell models.
Please note that all services are for research use only. Not intended for any clinical use.
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