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Differentiation of the SH-SY5Y Human Neuroblastoma Cell Line
Published on: February 17, 2016
Anlotinib induces neuronal-like differentiation of neuroblastoma by downregulating CRMP5
Junwen Hu1, Wenlong Yang2, Kang Wang3
1Department of General Surgery, The Second Affiliated Hospital of Nanchang University, Nanchang, China.
Abstract:
The therapeutic effect of anlotinib on neuroblastoma is still not fully understood. This study aims to explore the differentiation therapeutic effects of anlotinib on neuroblastoma and its potential association with the neural development regulatory protein collapsin response mediator protein 5 (CRMP5), both in vivo and in vitro. A patient-derived xenograft (PDX) model was established to observe the therapeutic effect of anlotinib. Neuroblastoma cell lines SK-N-SH and SK-N-AS were cultured to observe the morphological impact of anlotinib. Transwell assay was used to evaluate the cell invasion, and Western blot analysis and immunohistochemistry were employed to detect the expressions of neuronal differentiation-related proteins. Results indicate that anlotinib effectively inhibited tumor growth in the PDX model, modulated the expressions of neuronal differentiation markers. In vitro, anlotinib treatment induced neurite outgrowth in neuroblastoma cells and inhibited their invasive ability, reflecting a change in neuronal marker expression patterns consistent with the PDX model. Similarly, in the SK-N-AS mouse xenograft model, anlotinib demonstrated comparable tumor-suppressing effects and promoted neuronal-like differentiation. Additionally, anlotinib significantly downregulated CRMP5 expression in neuroblastoma both in vivo and in vitro. Overexpression of CRMP5 significantly reversed the differentiation therapy effect of anlotinib, exacerbating the aggressiveness and reducing the differentiation level of neuroblastoma. These findings highlight the potential of anlotinib as an anti-neuroblastoma agent. It may suppress tumor proliferation and invasion by promoting the differentiation of tumor cells towards a neuronal-like state, and this differentiation therapy effect involves the inhibition of CRMP5 signaling.
Insights
Anlotinib shows therapeutic potential against neuroblastoma by promoting neuronal differentiation and inhibiting tumor growth. This effect is linked to the downregulation of collapsin response mediator protein 5 (CRMP5).
Area of Science:
- Oncology
- Neuroscience
- Molecular Biology
Background:
- Neuroblastoma remains a significant pediatric cancer with unmet therapeutic needs.
- The precise mechanisms of anlotinib's therapeutic action in neuroblastoma are not fully elucidated.
- Understanding anlotinib's impact on neuronal differentiation is crucial for novel treatment strategies.
Purpose of the Study:
- To investigate the differentiation-inducing therapeutic effects of anlotinib on neuroblastoma.
- To explore the association between anlotinib's efficacy and collapsin response mediator protein 5 (CRMP5) expression.
- To evaluate anlotinib's anti-tumor activity and impact on neuronal differentiation markers in vivo and in vitro.
Main Methods:
- Utilized a patient-derived xenograft (PDX) model and neuroblastoma cell lines (SK-N-SH, SK-N-AS).
- Assessed anlotinib's effects on tumor growth, cell morphology, and invasion (Transwell assay).
- Analyzed neuronal differentiation markers via Western blot and immunohistochemistry; measured CRMP5 expression.
Main Results:
- Anlotinib inhibited tumor growth in PDX and SK-N-AS xenograft models, promoting neuronal-like differentiation.
- In vitro studies showed anlotinib induced neurite outgrowth and reduced neuroblastoma cell invasion.
- Anlotinib significantly downregulated CRMP5 expression; CRMP5 overexpression reversed anlotinib's differentiation effects.
Conclusions:
- Anlotinib demonstrates potential as an anti-neuroblastoma agent by inducing tumor cell differentiation.
- The therapeutic effect of anlotinib involves promoting a neuronal-like state and inhibiting CRMP5 signaling.
- Anlotinib's ability to suppress proliferation and invasion highlights its promise in neuroblastoma treatment.
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