Colonystimulating factor CSF2 mediates the phenotypic plasticity of smallcell lung cancer by regulating the

Hui Li1, Rui Zhong1, Chunying He2

  • 1Translational Cancer Research Lab, Jilin Cancer Hospital, Changchun, Jilin 130000, P.R. China.

Oncology Reports
|May 18, 2022
PubMed

Insights

Small-cell lung cancer (SCLC) relapse is linked to intratumoral heterogeneity. Colony-stimulating factor 2 (CSF2) drives phenotypic plasticity and drug resistance in SCLC by regulating the p-STAT3/MYC pathway.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Research

Background:

  • Relapse and drug resistance are primary causes of mortality in small-cell lung cancer (SCLC).
  • Intratumoral heterogeneity (ITH), driven by phenotypic plasticity, is a key mechanism underlying SCLC relapse and drug resistance.
  • The precise mechanisms and regulatory factors governing SCLC phenotypic plasticity remain incompletely understood.

Purpose of the Study:

  • To elucidate the role of colony-stimulating factor 2 (CSF2) in regulating phenotypic plasticity in SCLC.
  • To investigate the molecular pathways involved in CSF2-mediated phenotypic switching and its impact on drug sensitivity.
  • To explore CSF2 as a potential therapeutic target for overcoming drug resistance in SCLC.

Main Methods:

  • Assessed cell proliferation and phenotypic switching using trypan blue exclusion and cell switch assays.
  • Determined drug sensitivity using Alamar Blue assays.
  • Identified differentially expressed genes via RNA sequencing, followed by validation using RT-qPCR and Western blotting for CSF2, p-STAT3, MYC, neuroendocrine markers, and drug targets.

Main Results:

  • SCLC cell line NCI-H69 exhibited switchable adherent (H69A) and suspensive (H69S) phenotypes with distinct drug sensitivities and marker expressions.
  • Colony-stimulating factor 2 (CSF2) was identified as a key differentially expressed gene, highly expressed in H69A cells.
  • CSF2 inhibition promoted H69A to H69S transformation, enhanced drug sensitivity, increased neuroendocrine marker expression, and decreased non-neuroendocrine markers, mediated via the p-STAT3/MYC pathway.

Conclusions:

  • CSF2 regulates SCLC phenotypic plasticity through the p-STAT3/MYC pathway, influencing cell clone transformation and drug sensitivity.
  • Targeting CSF2 may represent a viable therapeutic strategy to combat drug resistance in SCLC by modulating ITH.
  • Understanding CSF2's role provides insights into mechanisms of SCLC treatment failure and suggests novel therapeutic avenues.

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