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Proliferation and Differentiation of Murine Myeloid Precursor 32D/G-CSF-R Cells
Published on: February 21, 2018
Colony‑stimulating factor CSF2 mediates the phenotypic plasticity of small‑cell lung cancer by regulating the
Hui Li1, Rui Zhong1, Chunying He2
1Translational Cancer Research Lab, Jilin Cancer Hospital, Changchun, Jilin 130000, P.R. China.
Abstract:
Relapse and drug resistance are the main causes of mortality in patients with small‑cell lung cancer (SCLC). Intratumoral heterogeneity (ITH) is a key biological mechanism that leads to relapse and drug resistance. Phenotypic plasticity is an important factor that leads to ITH in SCLC, although its mechanisms and key regulatory factors remain to be elucidated. In the present study, cell proliferation and cell switch assay were measured using trypan blue. Alamar Blue was used to test drug sensitivity. Differential genes were screened by RNA sequencing. Reverse transcription‑quantitative PCR and western blotting were performed to assess the expressions of CSF2/p‑STAT3/MYC pathway related molecules, neuroendocrine (NE)/non‑neuroendocrine (non‑NE), transcription factors and drug‑related targets. The present study found that SCLC cell line NCI‑H69 exhibited adherent (H69A) and suspensive (H69S) phenotypes, which could switch back and forth. The two phenotypic cells had significant differences in cellular NE and non‑NE characteristics, drug sensitivity and expression of drug‑related targets. RNA sequencing showed that granulocyte‑macrophage colony‑stimulating factor [i.e., colony‑stimulating factor 2 (CSF2)] was the main differentially expressed gene between the two phenotypes and that H69A cells highly expressed CSF2. The inhibition of CSF2 promoted the transformation from H69A to H69S, increased drug sensitivity and NE marker expression and decreased the non‑NE marker expression in H69A. The STRING, Pathway Commons and Reactome databases showed a potential regulatory relationship between CSF2 and phosphorylated signal transducer and activator of transcription 3 (p‑STAT3)/MYC. p‑STAT3 and MYC expression was higher in H69A cells than in H69S cells and CSF2 silencing inhibited their expression. Taken together, these results indicated that CSF2 may regulate the phenotypic plasticity of SCLC through the phosphorylated STAT3/MYC pathway, thereby limiting the transformation between cell clones with different phenotypes and changing the sensitivity of specific cell clones to targeted drugs. Targeting CSF2 may be a potential therapeutic strategy to overcome drug resistance in SCLC treatment by influencing ITH.
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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