KC-1013

Ba/F3-LMNA-NTRK1-Cell-Line

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Background of Ba/F3-LMNA-NTRK1-Cell-Line

"NTRK1, also named Tropomyosin receptor kinase A(TrkA), is the high affinity catalytic receptor for the neurotrophin and play a major role in neuronal differentiation and survival, the overactivation or overexpression of NTRK1 fusion protein, due to chromosomal rearrangement, was originally found in congenital fibrosarcoma and subsequently found in secretory breast cancer and other type cancer, the identification of NTRK1 fusion genes as driver genes has lead to the rapid development of anticancer therapeutics agents, such as LOXO-101, PF_x0002_026732240, TSR-011, RXDX-101. Ba/F3 cell, a murine interleukin-3 dependent pro-B cell line, is a popular system for exploring both kinases and their inhibitors, because some protein kinases can render the Ba/F3 cells to be depended on the activation of the kinases instead of IL-3 supplement, while their inhibitors can antagonize the kinase-dependent growth effects."

Specifications

Catalog NumberKC-1013
Cell Line NameBa/F3-LMNA-NTRK1-Cell-Line
Host Cell LineBa/F3
DescriptionStable Ba/F3 clone expressing exogenous LMNA-NTRK1 protein.
QuantityTwo vials of frozen cells (≥2-106/vial)
StabilityStable in culture over a minimum of 10 passages
ApplicationDrug screening and biological assays
Freezing Medium70% RPMI1640+20% FBS+10% DMSO
Propagation MediumRPMI1640+10%FBS
Selection MarkerPuromycin
MorphologyMostly single, round (some polymorph) cells in suspension
SubcultureSplit saturated culture 1:10 every 3 days; seed out at about 1-3 × 105 cells/mL
Incubation37 °C with 5% CO2
StorageLiquid nitrogen immediately upon receiving
Doubling TimeApproximately 30 hours
Mycoplasma StatusNegative
In Vivo ValidationNA

Cell Line Generation

Ba/F3 LMNA-NTRK1 cell line was generated using retrovirus vector expressing human LMNA-NTRK1 sequence.

Characterization

Figure 1: Characterization of LMNA-NTRK1 overexpressing in Ba/F3 stable clones.

"Figure 1: 1. Harvest and seed the Ba/F3 cells in 96-well plate (3000 cells/90μL medium). 2. Next day, add 10μL 10× serially diluted compound solution each well and incubate the plates for another 72 hours. 3. Add 100μL Cell Titer-Glo each well, mixed and readout using Envision. 4. Plot the dose-responsive curve and fit the IC50 (the centration of 50% inhibition of DMSO vehicle treated clones) using GraphPad Prism software (Version 5)."

Cell Resuscitation

  1. Prewarm culture medium (RPMI1640 + 10% FBS)in a 37°C water bath.
  2. Thaw the frozen vial in a 37°C water bath for 1-2 minutes.
  3. Transfer the vial into biosafety cabinet, and wipe the surface with 70% ethanol.
  4. Unscrew the top of the vial and transfer the cell suspension gently into a sterile centrifuge tube containing 9.0mL complete culture medium.
  5. Spin at ~ 125 × g for 5-7 minutes at room temperature, and discard the supernatant without disturbing the pellet.
  6. Resuspend cell pellet with the appropriate volume of complete medium and transfer the cell suspension into a T25 culture flask.
  7. Incubate the flask at 37°C, 5% CO2 incubator.
  8. Split saturated culture 1:10 every 3 days; seed out at about 1-3 × 105 cells/mL.

Cell Freezing

  1. Prepare the freezing medium (70% RPMI-1640 + 20% FBS + 10% DMSO) fresh immediately before use.
  2. Keep the freezing medium on ice and label cryovials.
  3. Transfer cells to a sterile, conical centrifuge tube, and count the cells.
  4. Centrifuge the cells at 250×g for 5 minutes at room temperature and carefully aspirate off the medium.
  5. Resuspend the cells at a density of at least 3×106 cells/mL in chilled freezing medium.
  6. Aliquot 1 mL of the cell suspension into each cryovial.
  7. Freeze cells in the CoolCell freezing container overnight in a -80°C freezer.
  8. Transfer vials to liquid nitrogen for long-term storage.

References

  1. Anna F Farago MD, P. et al. Durable Clinical Response to Entrectinib in NTRK1-Rearranged Non-Small Cell Lung Cancer. Journal of Thoracic Oncology 10, 1670–1674 (2015).
  2. Sartore-Bianchi, A. et al. Sensitivity to Entrectinib Associated With a Novel LMNA-NTRK1 Gene Fusion in Metastatic Colorectal Cancer. JNCI Journal of the National Cancer Institute 108, 1–4 (2015).
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