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Hyaluronic-Acid Based Hydrogels for 3-Dimensional Culture of Patient-Derived Glioblastoma Cells
Published on: August 24, 2018
Characterization and structure-property relationships of an injectable thiol-Michael addition hydrogel toward
Zerin Mahzabin Khan1, Emily Wilts2, Eli Vlaisavljevich1
1Virginia Tech - Wake Forest University School of Biomedical Engineering and Sciences, Virginia Tech, Blacksburg, VA 24061, United States.
Abstract:
Glioblastoma multiforme (GBM) is an aggressive primary brain cancer and although patients undergo surgery and chemoradiotherapy, residual cancer cells still migrate to healthy brain tissue and lead to tumor relapse after treatment. New therapeutic strategies are therefore urgently needed to better mitigate this tumor recurrence. To address this need, we envision after surgical removal of the tumor, implantable biomaterials in the resection cavity can treat or collect residual GBM cells for their subsequent eradication. To this end, we systematically characterized a poly(ethylene glycol)-based injectable hydrogel crosslinked via a thiol-Michael addition reaction by tuning its hydration level and aqueous NaHCO3 concentration. The physical and chemical properties of the different formulations were investigated by assessing the strength and stability of the polymer networks and their swelling behavior. The hydrogel biocompatibility was assessed by performing in vitro cytotoxicity assays, immunoassays, and immunocytochemistry to monitor the reactivity of astrocytes cultured on the hydrogel surface over time. These characterization studies revealed key structure-property relationships. Furthermore, the results indicated hydrogels synthesized with 0.175 M NaHCO3 and 50 wt% water content swelled the least, possessed a storage modulus that can withstand high intracranial pressures while avoiding a mechanical mismatch, had a sufficiently crosslinked polymer network, and did not degrade rapidly. This formulation was not cytotoxic to astrocytes and produced minimal immunogenic responses in vitro. These properties suggest this hydrogel formulation is the most optimal for implantation in the resection cavity and compatible toward GBM therapy. STATEMENT OF SIGNIFICANCE: Survival times for glioblastoma patients have not improved significantly over the last several decades, as cancer cells remain after conventional therapies and form secondary tumors. We characterized a biodegradable, injectable hydrogel to reveal structure-property relationships that can be tuned to conform the hydrogel toward glioblastoma therapy. Nine formulations were systematically characterized to optimize the hydrogel based on physical, chemical, and biological compatibility with the glioblastoma microenvironment. This hydrogel can potentially be used for adjuvant therapy to glioblastoma treatment, such as by providing a source of molecular release for therapeutic agents, which will be investigated in future work. The optimized formulation will be developed further to capture and eradicate glioblastoma cells with chemical and physical stimuli in future research.
Insights
We developed an optimized injectable hydrogel for glioblastoma (GBM) therapy. This biomaterial shows promise for treating residual cancer cells after surgery, potentially improving patient outcomes for this aggressive brain cancer.
Area of Science:
- Biomaterials Science
- Neuro-oncology
- Polymer Chemistry
Background:
- Glioblastoma multiforme (GBM) is an aggressive brain cancer with poor patient survival rates.
- Residual cancer cells after surgery and chemoradiotherapy lead to tumor recurrence.
- Novel therapeutic strategies are needed to target residual GBM cells.
Purpose of the Study:
- To characterize poly(ethylene glycol)-based injectable hydrogels for glioblastoma therapy.
- To establish structure-property relationships for optimizing hydrogel formulations.
- To assess hydrogel biocompatibility and suitability for implantation in the resection cavity.
Main Methods:
- Systematic characterization of nine hydrogel formulations with varying hydration and NaHCO3 concentrations.
- Assessment of physical properties: network strength, stability, and swelling behavior.
- Evaluation of in vitro biocompatibility: cytotoxicity, immunoassays, and astrocyte reactivity.
Main Results:
- Hydrogels with 0.175 M NaHCO3 and 50 wt% water content exhibited minimal swelling and degradation.
- Optimized hydrogels possessed suitable storage modulus for intracranial pressure and network integrity.
- Formulations demonstrated no cytotoxicity to astrocytes and minimal in vitro immunogenic response.
Conclusions:
- An optimized hydrogel formulation was identified with favorable physical, chemical, and biological properties for GBM therapy.
- This hydrogel is a promising candidate for implantation in the resection cavity post-surgery.
- Further research will explore its potential for targeted glioblastoma cell capture and eradication.

