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CC-488

F9 Easy KO Kit

For research use only. Not intended for any clinical use.

Cat. No. :   CC-488

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Product Information

Gene Information

Cat. No. CC-488
Description A complete kit for efficient gene knockout in mammalian cells, combining chemically synthesized sgRNAs with Cas9 RNPs to induce targeted DNA cleavage and generate frameshift mutations or deletions. All essential reagents for transfection and knockout validation are included for rapid, high-efficiency gene disruption.
Gene Abbr F9
Species Human
EnsemblID ENSG00000101981
NCBIGeneID 2158
Uni ProtID P00740
Features
  • All-in-One workflow from gene editing to knockout validation for users with no prior experience.
  • Pre-validated sgRNAs and primers for rapid setup.
  • Streamlined experiment handling.
  • CRISPR RNP method ensures precise and efficient gene knockout.
Applications This kit enables in vitro gene knockout in human-derived cells using chemically synthesized sgRNAs and Cas9-gRNA RNP complexes. Transfected RNPs cleave early exons of the target gene, inducing deletions or frameshift mutations for efficient and rapid knockout.
Reactions 5–10 reactions per target gene
Kit Components 2–3 chemically synthesized sgRNAs (200pmol each)
3 PCR/Sequencing primers (500pmol each)
LM cell lysate (500µL)
Cas9 protein (12µg)
LM RNP transfection reagent (50µL)
Storage Store at -80°C for up to 1 year or at -20°C for up to 6 months. Avoid repeated freeze-thaw cycles.
Target Gene F9
Background This gene encodes vitamin K-dependent coagulation factor IX that circulates in the blood as an inactive zymogen. This factor is converted to an active form by factor XIa, which excises the activation peptide and thus generates a heavy chain and a light chain held together by one or more disulfide bonds. The role of this activated factor IX in the blood coagulation cascade is to activate factor X to its active form through interactions with Ca+2 ions, membrane phospholipids, and factor VIII. Alterations of this gene, including point mutations, insertions and deletions, cause factor IX deficiency, which is a recessive X-linked disorder, also called hemophilia B or Christmas disease. Alternative splicing results in multiple transcript variants encoding different isoforms that may undergo similar proteolytic processing. [provided by RefSeq, Sep 2015]
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