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Genome-edited Cells | Product categories | ovaryresearch.com
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Genome-edited Cells

Genome-edited Cells are engineered using technologies like CRISPR/Cas9, TALENs, or ZFNs to introduce genetic modifications. Our portfolio includes genome-edited cells for knockout, overexpression, and reporter cell lines. Gene-edited cells are available in multiple backgrounds. CRISPR edited cells are generated using CRISPR-Cas9 ribonucleoproteins (RNPs) or lentiviral vectors, with high efficiency and specificity. CRISPR Cas9 edited cells have specific insertions or deletions (indels) or precise edits via homology-directed repair (HDR). Genome engineering services and products include custom cell line generation, validation, and quality control. Gene knockout cell lines have targeted disruption of a specific gene, resulting in loss of protein expression; they are used for functional genomics, drug target validation, and pathway mapping. CRISPR knockout cell lines are validated for loss of protein expression by sequencing. CRISPR KO cell line is available for thousands of human and mouse genes. Crispr modified cells may have multiplex edits (two or more genes disrupted simultaneously) using multiple guide RNAs.

In loss-of-function studies, knockout cell lines and ko cell lines are widely used to disrupt gene function. For gain-of-function analysis, overexpression cell lines are routinely generated. The demand for ready-made knockout tools is reflected in the frequent use of ko cell lines. When targeted validation of a single gene is required, a gene knockout cell line is the preferred model. Whether a single knockout cell line or a KO cell line for high‑throughput screening is needed, these standard formats are well established in functional genomics research.

Researchers use CRISPR knockout cell lines to study gene function in cancer, development, and metabolism. Knockout cell line pairs with rescue experiments using cDNA expression to confirm specificity. Gene edited cell lines are used for disease modeling, including introducing patient-specific mutations into isogenic backgrounds. Our genome-edited cells are sequence-validated (Sanger sequencing). Whether you need CRISPR KO cell line for drug target validation, or conditional knockout cells for developmental studies, our Genome-edited Cells category supports your functional genomics research with high-quality, validated products.

Showing 12 of 41986 results

CAMSAP2 Knockout SK-HEP-1 Polyclonal Cells

CAMSAP2 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CAMSAP2 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32454

CAMSAP1 Knockout SK-HEP-1 Polyclonal Cells

CAMSAP1 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CAMSAP1 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32453

CAMKK2 Knockout SK-HEP-1 Polyclonal Cells

CAMKK2 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CAMKK2 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32452

CAMK2G Knockout SK-HEP-1 Polyclonal Cells

CAMK2G Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CAMK2G was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32451

CAMK1 Knockout SK-HEP-1 Polyclonal Cells

CAMK1 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CAMK1 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32448

CALU Knockout SK-HEP-1 Polyclonal Cells

CALU Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CALU was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32447

CALR Knockout SK-HEP-1 Polyclonal Cells

CALR Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CALR was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32446

CALD1 Knockout SK-HEP-1 Polyclonal Cells

CALD1 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CALD1 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32445

CALCOCO2 Knockout SK-HEP-1 Polyclonal Cells

CALCOCO2 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CALCOCO2 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32444

CADM1 Knockout SK-HEP-1 Polyclonal Cells

CADM1 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CADM1 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32443

CACUL1 Knockout SK-HEP-1 Polyclonal Cells

CACUL1 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CACUL1 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32442

CABLES1 Knockout SK-HEP-1 Polyclonal Cells

CABLES1 Knockout SK-HEP-1 Polyclonal Cells is a knockout polyclonal cell population. The CABLES1 was knocked out in the SK-HEP-1 cells using the CRISPR RNP technique.
Cat. No. ARG32441

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