Date published: 2026-8-13

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Fibulin-1 CRISPR/Cas9 KO Plasmid (m): sc-420294

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Datasheets
  • Target species: mouse
  • 20 µg of transfection-ready, purified plasmid DNA; Suitable for up to 20 transfections
  • Fibulin-1 CRISPR/Cas9 Knockout (KO) Plasmid (m) is a pool of plasmids, each encoding Cas9 nuclease and a target-specific 20 nt guide RNA (gRNA) designed for maximum knockout efficiency using sequences derived from the GeCKO v2 library
  • gRNA sequences direct Cas9 to induce site-specific double-strand breaks (DSBs) in the Fibulin-1 genomic locus, resulting in gene knockout through non-homologous end joining (NHEJ)
  • The puromycin resistance and RFP genes are flanked by LoxP sites, enabling removal of selection markers via Cre recombinase (Cre Vector: sc-418923) after establishing stable knockout cell lines
  • Following transfection, gene knockout efficiency can be assayed by WB, IF or IHC using antibody: Fibulin-1 Antibody (C11): sc-517435
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    Ordering Information

    Product NameCatalog #UNITPriceQtyFAVORITES

    Fibulin-1 CRISPR/Cas9 KO Plasmid (m)

    sc-420294
    20 µg
    $397.00

    Overview

    Fbln1 encodes fibulin-1, a secreted extracellular matrix glycoprotein that associates with basement membranes and elastic fibers to regulate matrix assembly, tissue elasticity, and cell–matrix signaling. Fibulin-1 interacts with structural and adhesive components such as fibronectin, laminins, and proteoglycans, influencing focal adhesion dynamics, cell migration, and mechanotransduction. In mouse systems, altered Fbln1 expression or matrix incorporation has been linked to defects in vascular and connective tissue organization and to remodeling processes relevant to fibrosis and tumor-associated stromal changes. These functions make Fibulin-1 a useful node for dissecting extracellular matrix homeostasis and microenvironmental control of cellular phenotypes.

    Fibulin-1 CRISPR/Cas9 KO Plasmid (m) is a pool of plasmids designed for targeted disruption of the Fbln1 gene in mouse cell lines. Each plasmid co-expresses a unique single guide RNA (sgRNA) targeting a distinct site within the Fbln1 together with the Streptococcus pyogenes Cas9 nuclease. The plasmids also encode GFP, allowing fluorescent identification and enrichment of successfully transfected cells by fluorescence microscopy or flow cytometry.

    The multi-guide design increases the likelihood of generating insertions or deletions (indels) that disrupt the Fbln1 open reading frame following Cas9-mediated double-strand break formation. DNA breaks introduced by the CRISPR/Cas9 system are repaired through endogenous non-homologous end joining (NHEJ) pathways, frequently resulting in frameshift mutations that abolish Fibulin-1 protein expression.

    This CRISPR knockout system enables efficient generation of Fbln1-deficient cell models for investigation of Fibulin-1 signaling, functional genomics studies, cancer biology research, and evaluation of therapeutic responses in human cell lines.

    Key Features

    • sgRNAs targeting Fbln1 exon(s) critical for Fibulin-1 function
    • Co-expression of SpCas9 and sgRNA from a single plasmid for simplified delivery
    • GFP reporter for identification of transfected cells
    • Pool of plasmids targeting multiple Fbln1 genomic sites to improve knockout efficiency
    • Compatible with delivery by transfection

    Design Variants

    CRISPRs +/- HDRs

    • gRNAs encoded by Fibulin-1 CRISPR/Cas9 KO Plasmid (m) and Fibulin-1 CRISPR/Cas9 KO Plasmid (m2) target distinct sites within the Fbln1 locus. One or both targeting designs may be available. See Related Products for availability.
    • HDR donor constructs encoded by Fibulin-1 HDR Plasmid (m) and Fibulin-1 HDR Plasmid (m2) contain a puromycin resistance cassette and an RFP reporter flanked by Fbln1 homology arms to support homology-directed repair at defined Fbln1 target sites corresponding to the CRISPR/Cas9 KO designs. HDR donor availability may vary. See Related Products for availability.

    For Research Use Only. Not Intended for Diagnostic or Therapeutic Use.