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Updated: May 11, 2026

Three-Dimensional In Vitro Biomimetic Model of Neuroblastoma Using Collagen-Based Scaffolds
Published on: July 9, 2021
Heterogeneity of neuroblastoma cell lines in insulin-like growth factor 1 receptor/Akt pathway-mediated cell
Lei Qi1, Hidemi Toyoda, Vipin Shankar
1Department of Pediatrics and Developmental Science, Graduate School of Medicine, Mie University, Tsu, Japan.
Abstract:
Insulin-like growth factor 1 receptor (IGF-1R) is critical for cancer cell proliferation; however, recent clinical anti-IGF-1R trials did not show clear clinical benefit in cancer therapy. We hypothesized that IGF-1R signaling-mediated proliferative response is heterogeneous in neuroblastoma (NB) cells, and analyzed the cell growth of 31 NB cell lines cultured in three different media, including Hybridoma-SFM medium (with insulin) and RPMI1640 with/without 10% FBS. Three growth patterns were found. In response to IGF and insulin, cell proliferation and Akt phosphorylation were upregulated in 13 cell lines, and suppressed by MK2206 (Akt inhibitor) and picropodophyllin (IGF-1R inhibitor). Interestingly, 3 of these 13 cell lines showed Akt self-phosphorylation and cell proliferation in RPMI1640; their proliferation was downregulated by anti-IGF-1 or anti-IGF-2 neutralizing antibody, suggesting the existence of an autocrine loop in the IGF-1R/Akt pathway. Eighteen NB cell lines did not proliferate in RPMI1640, even though Akt phosphorylation was upregulated by IGF and insulin. Based on the heterogeneous response of the IGF-1R/Akt pathway, the 31 NB cell lines could be classified into group 1 (autocrine IGF-mediated), group 2 (exogenous IGF-mediated) and group 3 (partially exogenous IGF-mediated) NB cell lines. In addition, group 3 NB cell lines were different from group 1 and 2, in terms of serum starvation-induced caspase 3 cleavage and picropodophyllin-induced G2/M arrest. These results indicate that the response of the IGF-1R/Akt pathway is an important determinant of the sensitivity to IGF-1R antagonists in NB. To our knowledge, this is the first report describing heterogeneity in the IGF-1R/Akt-mediated proliferation of NB cells.
Insights
Neuroblastoma (NB) cell growth varies in response to Insulin-like growth factor 1 receptor (IGF-1R) signaling. This heterogeneity impacts sensitivity to IGF-1R inhibitors, classifying NB cells into distinct groups based on pathway activation.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Insulin-like growth factor 1 receptor (IGF-1R) signaling is crucial for cancer cell proliferation.
- Recent clinical trials targeting IGF-1R in cancer therapy have yielded limited success.
- The heterogeneous nature of IGF-1R signaling in neuroblastoma (NB) requires further investigation.
Purpose of the Study:
- To investigate the heterogeneity of IGF-1R signaling-mediated proliferation in neuroblastoma (NB) cells.
- To classify NB cell lines based on their differential response to IGF-1R pathway activation and inhibition.
- To understand the implications of this heterogeneity for therapeutic strategies targeting IGF-1R.
Main Methods:
- Cultured 31 NB cell lines in three different media (Hybridoma-SFM, RPMI1640 with/without FBS).
- Analyzed cell proliferation and Akt phosphorylation in response to IGF, insulin, and specific inhibitors (MK2206, picropodophyllin).
- Utilized neutralizing antibodies for IGF-1 and IGF-2 to identify autocrine loops.
Main Results:
- Identified three distinct growth patterns among NB cell lines.
- Classified 31 NB cell lines into three groups based on IGF-1R/Akt pathway response: autocrine IGF-mediated, exogenous IGF-mediated, and partially exogenous IGF-mediated.
- Observed differential responses to serum starvation and IGF-1R inhibition (picropodophyllin) among the classified groups.
Conclusions:
- The heterogeneous response of the IGF-1R/Akt pathway is a key determinant of sensitivity to IGF-1R antagonists in NB.
- This study provides the first report on heterogeneity in IGF-1R/Akt-mediated proliferation in NB cells.
- Understanding this heterogeneity is critical for developing effective targeted therapies for neuroblastoma.
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