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Rat Glioma 101.8 Tissue Strain: Molecular and Morphological Features
Anna Igorevna Alekseeva1, Alexandra Vladislavovna Sentyabreva1,2, Vera Vladimirovna Kudelkina1
1Avtsyn Research Institute of Human Morphology, Federal State Budgetary Scientific Institution 'Petrovsky National Research Center of Surgery', 117418 Moscow, Russia.
Abstract:
The search for markers applicable for efficient differential diagnosis and personalized therapy is a priority task of experimental neuro-oncology. Modern molecular methods allow us to analyze human biopsy material; however, further actions with this extracted tumor tissue are limited. Relevant and sophisticated CNS tumor models are required for precise therapy development. Although it is possible to use human biomaterial to create 2D and 3D cultures and implant them into xenograft animals, the data generated from such models is limited. Due to changes in the classification of the CNS tumors in 2021, a representative model should have not only morphological similarity to human tumors but also key genetic aberrations for studying the mechanisms of carcinogenesis and personalized therapy (such as PDGFRa, Olig1/2, Sox2, and Mki67) for different glioma models such as astrocytoma, oligodendroglioma, and glioblastoma. On the basis of a unique scientific facility "The Collection of experimental tumors of the nervous system and neural tumor cell lines" (Avtsyn Research Institute of Human Morphology of "Petrovsky National Research Center of Surgery"), there is a biobank of chemically induced transplantable tumors of laboratory animals. Their properties, mechanisms, and progression closely correlate with malignant CNS neoplasms in humans. These are potentially useful for identifying novel signaling pathways associated with oncogenesis in the nervous system and personalizing therapeutic approaches. In our work, we characterized a tissue-transplantable brain tumor strain of rat glioma101.8 using MRI, IHC, scRNA-seq, and qPCR-RT methods. According to this study, the cellular composition of the tissue-transplantable rat glioma 101.8 strain was determined, as well as the major genetic signature characteristics of each cell population of this tissue-transplantable strain and its microenvironment.
Insights
This study characterizes a rat glioma model (glioma101.8) for brain tumor research. The model exhibits genetic and cellular similarities to human gliomas, aiding in personalized therapy development.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Animal Models
Background:
- Developing accurate models for central nervous system (CNS) tumors is crucial for personalized therapy.
- Existing human biomaterial models have limitations in data generation.
- Recent CNS tumor classification changes necessitate models with morphological and genetic similarity to human tumors.
Purpose of the Study:
- To characterize a chemically induced, tissue-transplantable rat glioma model (glioma101.8).
- To evaluate its suitability for studying glioma carcinogenesis and developing personalized therapies.
- To identify key genetic aberrations and cellular compositions relevant to human gliomas.
Main Methods:
- Magnetic Resonance Imaging (MRI)
- Immunohistochemistry (IHC)
- Single-cell RNA sequencing (scRNA-seq)
- Quantitative Polymerase Chain Reaction (qPCR-RT)
Main Results:
- Detailed characterization of the rat glioma 101.8 strain.
- Determination of its cellular composition and microenvironment.
- Identification of major genetic signatures within the glioma model.
Conclusions:
- The rat glioma 101.8 strain serves as a valuable, representative model for CNS tumors.
- This model can aid in identifying novel signaling pathways for oncogenesis.
- It holds potential for advancing personalized therapeutic strategies in neuro-oncology.
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