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Cat. No. ARG0100

PFKFB4 Knockout A-549 Cell Line

  • Product Type:

    Genome-edited Cells

  • Tissue Source:

    Lung

  • Disease:

    Carcinoma

  • Gene Species:

    Homo sapiens (Human)

PFKFB4 Knockout A-549 is a human CRISPR/Cas9-edited alveolar epithelial adenocarcinoma cell line with disruption of PFKFB4, a bifunctional regulator of fructose-2,6-bisphosphate, PFK1 activity, and glycolytic flux. In the NSCLC-relevant A-549 background, this model supports studies of cancer metabolic reprogramming, hypoxia adaptation, and redox homeostasis downstream of HIF1A, PI3K-AKT-mTOR, and AMPK signaling. Representative applications include metabolic flux and Seahorse analysis, targeted metabolomics, glucose uptake and lactate assays, ATP and ROS measurements, hypoxia-response experiments, proliferation and apoptosis assays, and metabolic drug sensitivity or synthetic lethality studies.

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Shipping Info:

Cryopreserved in vials and shipped on dry ice


Disclaimer:

For Research Use Only

  • Characteristics

    Host Cell

    A-549

    Morphology

    Epithelial-like

    Age

    58 years

    Sex of Donor

    Male

    Gene Name

    PFKFB4

    Gene Species

    Homo sapiens (Human)

    Gene Identifier

    NCBI Gene ID 5210

  • Culture Conditions

    Temperature

    37°C

    Atmosphere

    5% CO₂

  • Quality Control

    Sterility testing

    Daily monitoring confirms that the cells are free from bacterial, yeast, and fungal contamination.

    Mycoplasma testing

    Negative for mycoplasma through PCR analysis

    Pathogens

    Cells tested negative for HIV-1, HBV, and HCV.

  • Disclaimer

    Intended Use

    This product is intended for laboratory in vitro use only. lt 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 PFKFB4 Knockout A-549 Cell Line is a human CRISPR/Cas9-engineered cell model in which the PFKFB4 gene has been disrupted to eliminate functional PFKFB4 expression. This stable in vitro knockout model is generated in the A-549 background, a human alveolar epithelial adenocarcinoma cell line, and is intended for mechanistic studies of tumor metabolism, stress adaptation, and pathway-dependent phenotypes. The model is particularly relevant for experiments examining how loss of a key fructose-2,6-bisphosphate regulator alters metabolic signaling and cellular responses in lung cancer cells.

A-549 cells are derived from non-small cell lung cancer and exhibit alveolar type II-like epithelial features, making them a widely used system for studies of pulmonary epithelial biology, lung adenocarcinoma, cancer metabolism, and therapeutic response. Because A-549 cells are extensively applied in analyses of epithelial tumor growth, nutrient utilization, hypoxic adaptation, and signal transduction, they provide a useful host context for interrogating metabolic liabilities in solid tumors. Their established use in NSCLC research also supports integration of this knockout line into comparative studies of proliferation, survival, and drug sensitivity under defined environmental stress conditions.

PFKFB4 encodes a bifunctional 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase that controls intracellular fructose-2,6-bisphosphate abundance and thereby modulates PFK1 activity, glycolytic flux, and coupling between glycolysis and biosynthetic or redox pathways. In cancer cells, PFKFB4 is regulated by HIF1A, hypoxia, glucose limitation, PI3K-AKT signaling, mTOR signaling, AMPK, and MYC. It functions within a metabolic network that includes SLC2A1, HK2, PFKP, PFKFB3, ALDOA, PKM, and LDHA, and it is mechanistically linked to downstream outputs including glucose consumption, lactate production, ATP balance, NADPH homeostasis, ROS levels, and survival under hypoxia. Through these relationships, PFKFB4 contributes to cancer metabolic reprogramming and adaptation to nutrient or oxidative stress.

Disruption of PFKFB4 in A-549 cells provides a relevant system for defining how lung adenocarcinoma cells balance glycolytic throughput with redox and biosynthetic demands. In this host-cell background, PFKFB4 loss can be used to examine pathway dependence downstream of HIF1A, AKT1, MTOR, or PRKAA1-centered metabolic signaling, as well as functional interplay with PFKFB3, HK2, LDHA, or TIGAR. The model is suitable for studying mechanisms associated with NSCLC progression, solid tumor hypoxia, and therapy resistance, particularly where metabolic adaptation is suspected to support survival.

This knockout cell line can support western blotting, RT-qPCR, and RNA-seq analyses of glycolytic and hypoxia-responsive gene programs; targeted metabolomics to quantify fructose-2,6-bisphosphate-associated metabolic effects; glucose uptake and lactate production assays to assess glycolytic output; Seahorse extracellular flux analysis for bioenergetic profiling; and ATP, ROS, and NADPH/NADP+ measurements to evaluate metabolic stress and redox homeostasis. It is also applicable to cell proliferation, colony formation, apoptosis, hypoxia-response, and drug sensitivity studies designed to identify context-specific metabolic vulnerabilities or synthetic lethal interactions in NSCLC cells. Researchers may contact Ascent Research for additional technical information, product details, or related gene-edited cell models.

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