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Identification of the putative brain tumor antigen BF7/GE2 as the (de)toxifying enzyme microsomal epoxide hydrolase
R Kessler1, M F Hamou, M Albertoni
1Neurosurgery Department, University Hospital (CHUV), Lausanne, Switzerland.
Abstract:
Malignant gliomas are the main cause of death from primary brain tumors. Despite surgery, radiation, and chemotherapy, patients have a median survival of less than a few years; therefore, it is clearly imperative to investigate new ways of treatment. The development of new therapeutic strategies for brain tumors is dependent on a better understanding of the differences between normal and tumoral brain cells. Our group had described previously a Mr 48,000 antigen defined by reactivity with two monoclonal antibodies (GE2 and BF7) obtained by immunization of mice with human glioblastoma cells. Here, we describe the identification of the GE2/BF7 antigen as microsomal epoxide hydrolase (mEH), a drug-metabolizing enzyme that is involved both in toxification and detoxification of carcinogens. We initially used immunoaffinity purification using GE2 and BF7 and analyzed the purified proteins by microsequencing. Edman degradation identified 15 amino acids of the NH2-terminal sequence that were 100% identical to mEH. To further confirm the identity of the BF7/GE2 antigen as mEH, we showed that the protein immunopurified with GE2 and BF7 was recognized by an anti-mEH antibody and that in vitro and in vivo synthesized human mEH is recognized by BF7 and GE2 antibodies. Furthermore, anti-mEH antibody recognizes an antigen expressed both in gliomas and reactive astrocytes, as do BF7 and GE2. Finally, we demonstrate that in contrast to what has been reported in rat embryo fibroblasts, p53 does not regulate mEH mRNA expression in glioma cells.
Insights
Researchers identified a key protein in malignant gliomas, microsomal epoxide hydrolase (mEH), offering new avenues for brain tumor treatment. This finding advances understanding of tumoral brain cells for novel therapeutic strategies.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Biochemistry
Background:
- Malignant gliomas are aggressive primary brain tumors with poor prognoses despite standard treatments.
- New therapeutic strategies require a deeper understanding of differences between normal and tumoral brain cells.
- A previously identified 48 kDa antigen (GE2/BF7) in glioblastomas prompted further investigation.
Purpose of the Study:
- To identify the GE2/BF7 antigen.
- To investigate the role of microsomal epoxide hydrolase (mEH) in glioma cells.
- To explore potential therapeutic targets for malignant gliomas.
Main Methods:
- Immunoaffinity purification of the GE2/BF7 antigen using monoclonal antibodies.
- Protein microsequencing (Edman degradation) of the purified antigen.
- Western blot analysis using anti-mEH antibodies and confirmation of antibody reactivity.
Main Results:
- The GE2/BF7 antigen was identified as microsomal epoxide hydrolase (mEH), a drug-metabolizing enzyme.
- The N-terminal sequence of the purified antigen showed 100% identity to human mEH.
- Both GE2 and BF7 antibodies recognized in vitro and in vivo synthesized human mEH.
- Anti-mEH antibodies recognized antigens in both gliomas and reactive astrocytes, similar to GE2 and BF7.
- p53 was found not to regulate mEH mRNA expression in glioma cells, unlike in rat embryo fibroblasts.
Conclusions:
- The GE2/BF7 antigen is confirmed to be microsomal epoxide hydrolase (mEH).
- mEH is expressed in both malignant gliomas and reactive astrocytes.
- This identification provides a potential new target for brain tumor therapies.