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Cat. No. ARG0339

BPNT1 Knockout HeLa Cell Line

  • Product Type:

    Genome-edited Cells

  • Tissue Source:

    Uterus (cervix)

  • Disease:

    Adenocarcinoma

  • Gene Species:

    Homo sapiens (Human)

The BPNT1 Knockout HeLa Cell Line is a CRISPR/Cas9-edited derivative of HeLa human cervical adenocarcinoma cells. BPNT1 encodes a PAP/PAPS phosphatase; its disruption leads to PAP accumulation, which inhibits IMPase and INPP1, thereby impairing inositol phosphate recycling and PIP2-dependent signaling, mimicking lithium's mood-stabilizing mechanism. Applications include lithium signaling studies, bipolar disorder research, sulfur metabolism pathway analysis, and skeletal dysplasia modeling. Representative assays encompass LC-MS quantification of PAP and PAPS, HPLC-based inositol phosphate profiling, IMPase activity measurements, and calcium imaging for phosphoinositide signaling.

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Shipping Info:

Cryopreserved in vials and shipped on dry ice


Disclaimer:

For Research Use Only

  • Characteristics

    Host Cell

    HeLa

    Morphology

    Epithelial-like

    Age

    31 years

    Sex of Donor

    Female

    Gene Name

    BPNT1

    Gene Species

    Homo sapiens (Human)

    Gene Identifier

    NCBI Gene ID 10380

  • 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 BPNT1 Knockout HeLa Cell Line is a CRISPR/Cas9-edited HeLa derivative in which the BPNT1 gene has been disrupted, creating a stable loss-of-function model. This cell line enables dissection of BPNT1-dependent processes in phosphoinositide and sulfur metabolism without reliance on inhibitory drugs.

HeLa cells, the host for this knockout line, are immortalized human cervical adenocarcinoma epithelial cells isolated in 1951 from Henrietta Lacks. HPV-18 positive and genetically stable, they serve as a standard model in cancer biology, virology, and cell signaling research, providing a well-characterized platform for gene disruption studies.

BPNT1 encodes a magnesium-dependent inositol monophosphatase family protein that catalyzes dephosphorylation of PAP and PAPS to AMP and inorganic phosphate. Through this activity, BPNT1 regulates both sulfur metabolism and phosphoinositide signaling, functioning at a key metabolic node. The enzyme is directly inhibited by lithium, connecting its function to lithium-responsive neuropsychiatric conditions. In the knockout cell line, loss of BPNT1 activity leads to PAP and PAPS accumulation. Elevated PAP acts as a competitive inhibitor of inositol phosphate phosphatases, including IMPase (IMPA1/2) and inositol polyphosphate 1-phosphatase (INPP1), impairing dephosphorylation of inositol monophosphates and disrupting regeneration of phosphatidylinositol 4,5-bisphosphate (PIP2). Consequently, production of the calcium-mobilizing second messenger IP3 is reduced, recapitulating a lithium-mimetic state. Additionally, the transcription factor NRF2 is implicated as a potential upstream regulator under oxidative stress, adding a redox-sensitive layer of control over BPNT1 expression.

Within the HeLa cellular environment, the BPNT1 knockout provides a tractable system for studying lithium-sensitive phosphoinositide dynamics. HeLa cells express IMPase and INPP1 and maintain phospholipase C-coupled receptor signaling, allowing direct measurement of PIP2 turnover and calcium flux. Eliminating BPNT1 avoids off-target effects of lithium, enabling dissection of BPNT1-specific actions. This model integrates nucleotide metabolism, sulfation, and inositide signaling, bridging neuropharmacology and cancer biology.

This cell line supports applications in lithium signaling, bipolar disorder research, sulfur metabolism, sulfation pathway analysis, skeletal dysplasia modeling, and inositol phosphate signaling studies. Representative assays include Western blotting for BPNT1 ablation, LC-MS quantification of PAP/PAPS, inositol phosphate profiling, IMPase activity measurements, calcium imaging, and lithium sensitivity assays. RNA-seq can be used for transcriptomic profiling. For further details, please contact Ascent Research.

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