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Mechanisms of neuroblastoma cell growth inhibition by CARP-1 functional mimetics
Magesh Muthu1, Vino T Cheriyan1, Sara Munie1
1John D. Dingell VA Medical Center, Wayne State University, Detroit, Michigan, United States of America; Oncology Department, Wayne State University, Detroit, Michigan, United States of America.
Abstract:
Neuroblastomas (NBs) are a clinically heterogeneous group of extra cranial pediatric tumors. Patients with high-risk, metastatic NBs have a long-term survival rate of below 40%, and are often resistant to current therapeutic modalities. Due to toxic side effects associated with radiation and chemotherapies, development of new agents is warranted to overcome resistance and effectively treat this disease in clinic. CARP-1 functional mimetics (CFMs) are an emerging class of small molecule compounds that inhibit growth of diverse cancer cell types. Here we investigated NB inhibitory potential of CFMs and the molecular mechanisms involved. CFM-1, -4, and -5 inhibited NB cell growth, in vitro, independent of their p53 and MYCN status. CFM-4 and -5 induced apoptosis in NB cells in part by activating pro-apoptotic stress-activated kinases (SAPKs) p38 and JNK, stimulating CARP-1 expression and cleavage of PARP1, while promoting loss of the oncogenes C and N-myc as well as mitotic cyclin B1. Treatments of NB cells with CFM-4 or -5 also resulted in loss of Inhibitory κB (IκB) α and β proteins. Micro-RNA profiling revealed upregulation of XIAP-targeting miR513a-3p in CFM-4-treated NB, mesothelioma, and breast cancer cells. Moreover, exposure of NB and breast cancer cells to CFM-4 or -5 resulted in diminished expression of anti-apoptotic XIAP1, cIAP1, and Survivin proteins. Expression of anti-miR513a-5p or miR513a-5p mimic, however, interfered with or enhanced, respectively, the breast cancer cell growth inhibition by CFM-4. CFMs also impacted biological properties of the NB cells by blocking their abilities to migrate, form colonies in suspension, and invade through the matrix-coated membranes. Our studies indicate anti-NB properties of CFM-4 and 5, and suggest that these CFMs and/or their future analogs have potential as anti-NB agents.
Insights
New small molecule compounds, CARP-1 functional mimetics (CFMs), show promise in treating neuroblastomas (NBs). CFMs inhibit NB cell growth and migration, offering a potential new therapy for this aggressive pediatric cancer.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Neuroblastomas (NBs) are aggressive pediatric cancers with poor survival rates for high-risk, metastatic cases.
- Current therapies like chemotherapy and radiation have toxic side effects and limited efficacy against resistant NB.
- CARP-1 functional mimetics (CFMs) are a novel class of small molecules with demonstrated anti-cancer activity.
Purpose of the Study:
- To investigate the potential of CFMs as therapeutic agents against neuroblastomas.
- To elucidate the molecular mechanisms underlying CFM-induced inhibition of NB cell growth and survival.
Main Methods:
- In vitro assessment of CFM-1, -4, and -5 on NB cell proliferation.
- Analysis of apoptosis induction, oncogene and cyclin expression, and protein degradation pathways (PARP1, IκB).
- Micro-RNA profiling and assessment of anti-apoptotic protein expression (XIAP1, cIAP1, Survivin).
- Evaluation of CFM effects on NB cell migration, colony formation, and invasion.
Main Results:
- CFM-1, -4, and -5 inhibited NB cell growth irrespective of p53 and MYCN status.
- CFM-4 and -5 induced apoptosis by activating stress-activated kinases (p38, JNK), upregulating CARP-1, and downregulating oncogenes (C-myc, N-myc) and cyclin B1.
- CFMs reduced expression of anti-apoptotic proteins (XIAP1, cIAP1, Survivin) and impaired NB cell migration, colony formation, and invasion.
Conclusions:
- CFM-4 and CFM-5 exhibit significant anti-neuroblastoma properties.
- These CFMs demonstrate potential as novel therapeutic agents for neuroblastoma treatment.
- Further development of CFMs and their analogs is warranted for clinical application against neuroblastomas.
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