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OKN-007 Alters Protein Expression Profiles in High-Grade Gliomas: Mass Spectral Analysis of Blood Sera
Rheal A Towner1,2, James Hocker3, Nataliya Smith1
1Advanced Magnetic Resonance Center, Oklahoma Medical Research Foundation, Oklahoma City, OK 73104, USA.
Abstract:
Current therapies for high-grade gliomas, particularly glioblastomas (GBM), do not extend patient survival beyond 16-22 months. OKN-007 (OKlahoma Nitrone 007), which is currently in phase II (multi-institutional) clinical trials for GBM patients, and has demonstrated efficacy in several rodent and human xenograft glioma models, shows some promise as an anti-glioma therapeutic, as it affects most aspects of tumorigenesis (tumor cell proliferation, angiogenesis, migration, and apoptosis). Combined with the chemotherapeutic agent temozolomide (TMZ), OKN-007 is even more effective by affecting chemo-resistant tumor cells. In this study, mass spectrometry (MS) methodology ESI-MS, mass peak analysis (Leave One Out Cross Validation (LOOCV) and tandem MS peptide sequence analyses), and bioinformatics analyses (Ingenuity® Pathway Analysis (IPA®)), were used to identify up- or down-regulated proteins in the blood sera of F98 glioma-bearing rats, that were either untreated or treated with OKN-007. Proteins of interest identified by tandem MS-MS that were decreased in sera from tumor-bearing rats that were either OKN-007-treated or untreated included ABCA2, ATP5B, CNTN2, ITGA3, KMT2D, MYCBP2, NOTCH3, and VCAN. Conversely, proteins of interest in tumor-bearing rats that were elevated following OKN-007 treatment included ABCA6, ADAMTS18, VWA8, MACF1, and LAMA5. These findings, in general, support our previous gene analysis, indicating that OKN-007 may be effective against the ECM. These findings also surmise that OKN-007 may be more effective against oligodendrogliomas, other brain tumors such as medulloblastoma, and possibly other types of cancers.
Insights
OKN-007 shows promise in treating high-grade gliomas by affecting tumor growth and chemo-resistance. Proteomic analysis revealed specific protein changes in response to OKN-007 treatment in glioma-bearing rats.
Area of Science:
- Neuro-oncology
- Proteomics
- Cancer Biology
Background:
- High-grade gliomas, including glioblastomas (GBM), have a poor prognosis with current therapies.
- OKN-007 is an investigational therapeutic agent showing anti-glioma activity in preclinical models.
- OKN-007 combined with temozolomide (TMZ) demonstrates enhanced efficacy against chemo-resistant glioma cells.
Purpose of the Study:
- To identify proteomic changes in the blood sera of F98 glioma-bearing rats treated with OKN-007.
- To investigate the potential of OKN-007 as a therapeutic agent for gliomas and other cancers.
Main Methods:
- Liquid chromatography-mass spectrometry (LC-MS/MS) was employed for proteomic analysis.
- Tandem mass spectrometry (MS/MS) and Ingenuity Pathway Analysis (IPA) were used for protein identification and functional interpretation.
- Leave One Out Cross Validation (LOOCV) was utilized for mass peak analysis.
Main Results:
- Several proteins, including ABCA2, ATP5B, and NOTCH3, were decreased in sera of OKN-007 treated or untreated tumor-bearing rats.
- Proteins such as ABCA6, VWA8, and LAMA5 were elevated in tumor-bearing rats following OKN-007 treatment.
- Findings suggest OKN-007 may impact the extracellular matrix (ECM) and show potential against various brain tumors.
Conclusions:
- OKN-007 alters the serum proteome in glioma-bearing rats.
- The identified protein changes support OKN-007's potential efficacy against gliomas and possibly other cancers.
- Further research into OKN-007's mechanism and broader applications is warranted.
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