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Mechanical Properties in the Glioma Microenvironment: Emerging Insights and Theranostic Opportunities
Adip G Bhargav1, Joseph S Domino1, Roukoz Chamoun1
1Department of Neurological Surgery, University of Kansas Medical Center, Kansas City, KS, United States.
Abstract:
Gliomas represent the most common malignant primary brain tumors, and a high-grade subset of these tumors including glioblastoma are particularly refractory to current standard-of-care therapies including maximal surgical resection and chemoradiation. The prognosis of patients with these tumors continues to be poor with existing treatments and understanding treatment failure is required. The dynamic interplay between the tumor and its microenvironment has been increasingly recognized as a key mechanism by which cellular adaptation, tumor heterogeneity, and treatment resistance develops. Beyond ongoing lines of investigation into the peritumoral cellular milieu and microenvironmental architecture, recent studies have identified the growing role of mechanical properties of the microenvironment. Elucidating the impact of these biophysical factors on disease heterogeneity is crucial for designing durable therapies and may offer novel approaches for intervention and disease monitoring. Specifically, pharmacologic targeting of mechanical signal transduction substrates such as specific ion channels that have been implicated in glioma progression or the development of agents that alter the mechanical properties of the microenvironment to halt disease progression have the potential to be promising treatment strategies based on early studies. Similarly, the development of technology to measure mechanical properties of the microenvironment in vitro and in vivo and simulate these properties in bioengineered models may facilitate the use of mechanical properties as diagnostic or prognostic biomarkers that can guide treatment. Here, we review current perspectives on the influence of mechanical properties in glioma with a focus on biophysical features of tumor-adjacent tissue, the role of fluid mechanics, and mechanisms of mechanical signal transduction. We highlight the implications of recent discoveries for novel diagnostics, therapeutic targets, and accurate preclinical modeling of glioma.
Insights
Mechanical properties of the brain tumor microenvironment significantly impact glioma progression and treatment resistance. Understanding these biophysical factors is key to developing new therapies and diagnostic tools for brain tumors.
Area of Science:
- Neuro-oncology
- Biophysics
- Cancer Biology
Background:
- Gliomas, particularly high-grade types like glioblastoma, are aggressive brain tumors with poor prognoses.
- Current treatments (surgery, chemoradiation) are often ineffective due to tumor resistance.
- The tumor microenvironment's role in adaptation and resistance is increasingly recognized.
Purpose of the Study:
- To review the influence of mechanical properties on glioma progression.
- To highlight the role of biophysical factors in tumor heterogeneity and treatment resistance.
- To explore novel diagnostic and therapeutic strategies targeting the mechanical microenvironment.
Main Methods:
- Review of current literature on glioma mechanical properties.
- Focus on biophysical features of tumor-adjacent tissue.
- Examination of fluid mechanics and mechanical signal transduction pathways.
Main Results:
- Mechanical properties are critical in glioma progression and treatment resistance.
- Biophysical factors contribute to tumor heterogeneity and cellular adaptation.
- Targeting mechanical pathways and properties offers potential therapeutic avenues.
Conclusions:
- Understanding the mechanical microenvironment is crucial for improving glioma treatment.
- Novel diagnostics and therapeutics can be developed by targeting mechanical properties.
- Bioengineered models incorporating mechanical properties can enhance preclinical research.
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