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Cat. No. ARG43939

KLK5 Knockout HaCaT Cell Line

  • Product Type:

    In Stock Cell Lines

  • Species:

    Homo sapiens (Human)

  • Tissue Source:

    Skin

  • Disease:

    Normal

The KLK5 Knockout HaCaT Cell Line is a CRISPR/Cas9-edited human keratinocyte line with targeted disruption of KLK5, the serine protease responsible for epidermal desquamation through cleavage of corneodesmosomal proteins DSG1, DSC1, and CDSN, and for PAR2 activation and cathelicidin processing. Its activity is inhibited by LEKTI (SPINK5). Loss of KLK5 impairs skin barrier homeostasis, making this model valuable for studying Netherton syndrome, atopic dermatitis, and related inflammatory skin diseases. Applications include investigating protease-dependent barrier formation, screening KLK5 inhibitors, and dissecting PAR2-mediated inflammatory pathways. Representative assays involve calcium-induced differentiation, barrier function measurement, and caseinolytic activity detection.

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Shipping Info:

Cryopreserved in vials and shipped on dry ice


Disclaimer:

For Research Use Only

  • Characteristics

    Host Cell

    HaCaT

    Sex of Donor

    Male

    Age

    62 years

    Derived From Site

    Back

    Gene Name

    KLK5

    Gene Identifier

    NCBI Gene ID 25818

    Morphology

    Epithelial-like

    Growth Mode

    Adherent

    Storage

    Liquid nitrogen (LN2)

  • Culture Conditions

    Temperature

    37°C

    Atmosphere

    5% COâ‚‚

  • Quality Control

    Sterility testing

    The bacterial, yeast, and fungi are not detected in these cells by daily monitor.

    Mycoplasma testing

    Negative for mycoplasma through PCR analysis

  • Disclaimer

    Intended Use

    This product is intended for laboratory in vitro use only. It is not intended for diagnostic, therapeutic, or clinical applications.

    Disclaimer

    Ascent Research endeavors to provide accurate and up-to-date product information. However, no warranties or representations are made regarding its completeness or reliability. References to scientific literature and patents are for informational purposes only, and the customer assumes sole responsibility for verifying their accuracy.

    By accepting this product, the customer acknowledges and agrees to assume all risks associated with its receipt, handling, storage, disposal, and use, including compliance with all applicable safety and environmental regulations and precautions. Relevant laws, regulations, and ethical guidelines must be followed in conducting any research, modifications, or derivatives derived from this product.

    This product is provided "AS IS", and except as expressly stated herein, Ascent Research disclaims all other warranties, express or implied. Under no circumstances shall Ascent Research, its affiliates, or representatives be liable for indirect, incidental, consequential, or punitive damages arising from the use of this material. While Ascent Research employs rigorous quality control measures, we shall not be held responsible for damages resulting from misidentification or misinterpretation of the provided materials.

Description

The KLK5 Knockout HaCaT Cell Line is a CRISPR/Cas9-edited human keratinocyte line in which the KLK5 gene has been disrupted, generating a stable loss-of-function model. Derived from the HaCaT immortalized keratinocyte background, this cell line provides a consistent platform for investigating KLK5-dependent processes. The knockout was achieved through CRISPR/Cas9-mediated gene editing, resulting in ablation of KLK5 protein expression while preserving the host cells’ differentiation capacity.

HaCaT cells are a spontaneously immortalized, non-tumorigenic human epidermal keratinocyte line established from adult skin. They retain the ability to differentiate and form stratified epidermal-like structures upon calcium stimulation, making them a physiologically relevant in vitro system for studying keratinocyte biology, skin barrier formation, cornification, and wound healing. This host background is widely used in dermatological research to model cutaneous homeostasis and disease.

KLK5 encodes a secreted serine protease central to epidermal desquamation and skin barrier maintenance. It cleaves corneodesmosomal adhesion proteins desmoglein 1 (DSG1), desmocollin 1 (DSC1), and corneodesmosin (CDSN) to facilitate controlled corneocyte shedding. KLK5 also activates protease-activated receptor 2 (PAR2), triggering inflammatory and pruritic signaling, and processes cathelicidin into the antimicrobial LL-37 peptide. Activity is inhibited by lymphoepithelial Kazal-type-related inhibitor (LEKTI; encoded by SPINK5) and influenced by extracellular calcium gradients. As part of the kallikrein cascade, KLK5 activates pro-KLK7 and pro-KLK14, amplifying stratum corneum proteolysis. Through these actions, KLK5 integrates desquamation, innate immunity, and PAR2 signaling to regulate barrier integrity and inflammation.

In HaCaT keratinocytes, KLK5 disruption provides a model for barrier dysfunction and inflammatory skin pathology. As a key effector downstream of SPINK5/LEKTI, KLK5 loss enables precise study of the LEKTI-KLK5 interplay relevant to Netherton syndrome, where SPINK5 mutations cause unopposed KLK5 activity. This knockout line is also valuable for atopic dermatitis, psoriasis, rosacea, and ichthyosis research, where dysregulated KLK5 and PAR2 signaling are implicated. Eliminating KLK5 allows researchers to uncouple its specific contributions from parallel proteolytic pathways and examine impacts on corneodesmosome stability, barrier integrity, and inflammatory mediator expression.

Key applications include skin barrier studies, desquamation research, inflammatory disease modeling, and drug screening for protease inhibitors. Representative assays are Western blot for KLK5, caseinolytic activity assays, immunofluorescence for DSG1/DSC1/CDSN, PAR2 cleavage and cathelicidin processing experiments, calcium-induced differentiation monitored by transepithelial electrical resistance, and scratch wound migration assays. This defined genetic model enables dissection of epidermal homeostasis and screening of modulators targeting the kallikrein?CPAR2?Ccathelicidin axis. For technical inquiries, please contact Ascent Research.

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