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TDP1 Knockout Cell Lines

Gene: TDP1

Official Full Name: tyrosyl-DNA phosphodiesterase 1provided by HGNC

Gene Summary: The protein encoded by this gene is involved in repairing stalled topoisomerase I-DNA complexes by catalyzing the hydrolysis of the phosphodiester bond between the tyrosine residue of topoisomerase I and the 3-prime phosphate of DNA. This protein may also remove glycolate from single-stranded DNA containing 3-prime phosphoglycolate, suggesting a role in repair of free-radical mediated DNA double-strand breaks. This gene is a member of the phospholipase D family and contains two PLD phosphodiesterase domains. Mutations in this gene are associated with the disease spinocerebellar ataxia with axonal neuropathy (SCAN1). [provided by RefSeq, Aug 2016]

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Products Background

Products

Catalog Number Product Name Species Gene Passage ratio Mycoplasma testing Price
KO13494 TDP1 Knockout cell line (HeLa) Human TDP1 1:3~1:6 Negative Online Inquiry
KO13495 TDP1 Knockout cell line (HCT 116) Human TDP1 1:2~1:4 Negative Online Inquiry
KO13496 TDP1 Knockout cell line (HEK293) Human TDP1 1:3~1:6 Negative Online Inquiry
KO13497 TDP1 Knockout cell line (A549) Human TDP1 1:3~1:4 Negative Online Inquiry

Background

TDP1 Gene Knockout Cell Lines are genetically engineered cell lines designed to selectively disrupt the expression of the TDP1 gene, which encodes for the protein tyrosine phosphatase 1, a critical player in DNA repair mechanisms and cellular response to DNA damage. These cell lines serve as a fundamental tool for researchers to study the biological functions and implications of TDP1 in various pathways, particularly in the context of cancer biology and drug resistance.

The primary function of these knockout cell lines lies in their ability to facilitate the observation of phenotypic changes resulting from the absence of TDP1. Studies have shown that TDP1 is vital for the repair of DNA single-strand breaks, and by inhibiting its function, researchers can elucidate the consequences on cell viability, proliferation, and response to chemotherapeutic agents. Through the use of these knockout models, scientists gain insights into how TDP1 influences cancer cell survival and sensitivity to existing treatment modalities.

The scientific importance of TDP1 Gene Knockout Cell Lines is profound in both basic and applied research fields. Clinically, these models can help in understanding the mechanisms underlying resistance to DNA-damaging agents like topoisomerase inhibitors, thus paving the way for the development of more effective therapeutic strategies. Additionally, they hold potential in the exploration of novel biomarkers for cancer treatment responsiveness.

Compared to traditional cell lines, TDP1 Gene Knockout Cell Lines offer unique advantages by providing a precise platform for investigating gene function. The knockout approach eliminates confounding variables, thereby allowing researchers to observe direct correlations between TDP1 disruption and resulting cellular behaviors. This specificity can lead to more reliable data and insights that can accelerate drug discovery efforts and enhance treatment personalization.

For researchers and clinicians alike, the value of TDP1 Gene Knockout Cell Lines lies in their ability to drive a deeper understanding of DNA repair mechanisms and their role in disease. These cell lines empower studies that could ultimately lead to breakthroughs in cancer therapies and improved patient outcomes.

Our company is dedicated to advancing scientific research by providing high-quality, reliable biological products. We leverage our expertise in genetic engineering to offer unique tools like the TDP1 Gene Knockout Cell Lines, aimed at enabling breakthroughs in life sciences research and clinical applications.

Please note that all services are for research use only. Not intended for any clinical use.

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