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Glioblastoma (GBM) is the most common primary brain cancer in adults, with a dismal median survival of just 12-15 months1,2,3,4,5. Survival has not significantly improved since 2005 when the current clinical standard of maximal surgical resection followed by radiation and concomitant and adjuvant temozolomide chemotherapy was adopted6,7. While this treatment provides patients with a temporary relief of symptoms, standard of care treatment invariably results in recurrence as invasive cancer foci evade resection and are protected from systemic therapies by the blood-brain barrier (BBB). Strategies which target invasive tumor foci while circumventing the BBB are urgently needed to gain traction against this aggressive and debilitating disease.
Human mesenchymal stem cells (MSCs) show promise as drug delivery vehicles for GBM due to their native tumor tropism8,9. MSCs possess receptors for and migrate towards soluble factors that tumors secrete, including stromal cell-derived factor 1α (SDF-1α), matrix metalloproteinase-1 (MMP-1), and monocyte chemoattractant protein-1 (MCP-1) among others10,11,12,13. Engineering MSCs to express and secrete cytotoxic drugs allows them to be harnessed as tumor-homing drug delivery vehicles. Engineered MSCs move toward invasive tumor foci and deliver therapeutic proteins. This approach has demonstrated feasibility in a variety of preclinical GBM models9,14. However, the vast majority of these models do not include surgical resection despite the clinical relevance of this component. Emerging studies using new models of resection revealed that surgical tumor removal reduces the persistence of stem cells that are directly injected into the surgical cavity15. Loss of viability resulted in reduced efficacy, likely due to decreases in the dose and duration of drug delivered to the invasive tumor foci.
To increase stem cell viability and drug delivery, MSCs can be seeded onto scaffolds prior to implantation. In this protocol, biocompatible and resorbable electrospun nanofibrous poly(lactic acid) (PLA) is used as scaffolding for the MSCs. PLA flexes and conforms to the shape of the resection cavity upon implant, which maximizes therapeutic coverage and minimizes the distance MSCs must travel to reach tumor cells. MSCs remain on the scaffold during implantation and then migrate off the scaffold toward tumor cells after implantation16,17. MSCs and the cytotoxic drugs they carry then accumulate at the tumor foci. Delivery of cytotoxic drug to the tumor requires MSC viability and persistence, both of which are aided by implantation on scaffolds.
In this procedure, lentiviral vectors are used to induce stable expression of fluorescent (in vitro tracking) and bioluminescent (in vivo tracking) markers in both cancer and stem cell lines. The human GBM line U87 is infected with mCherry and firefly luciferase (U87 mCh-Fl), and the non-therapeutic MSCs with GFP and renilla luciferase (MSC GFP-Rluc). The therapeutic variant of MSCs express TNFα-related apoptosis inducing ligand (MSC-TRAIL). TRAIL, a constitutively-secreted protein, binds to nearby death receptors on cancer cells and initiates caspase-mediated apoptosis18.
Here, we provide a protocol for preclinical image-guided GBM surgical resection and implantation of MSC-seeded scaffolds. In brief, nude mice are given a craniotomy followed three days later by stereotactic orthotopic injection of U87 mCh-Fl to establish the primary tumor. The engrafted tumor grows for a period of approximately one week. PLA scaffolds are seeded with MSCs 48 h prior to resection surgery. The tumor is then resected under fluorescent guidance, and the MSC-loaded scaffold is implanted into the resection cavity. Tumor burden and mouse survival are then tracked post-operatively with bioluminescence imaging (BLI). A timeline of these procedures is provided below (Figure 1).

Figure 1: Timeline of procedures. Mice initially receive a cranial window (Day 0). After a recovery period of three days, tumors are implanted (Day 3) and grow for approximately one week. Scaffolds are seeded with MSCs (Day 8) two days in advance of the tumor resection and implantation procedure (Day 10). Tumor progression and therapeutic efficacy are evaluated via post-operative imaging thereafter (Day 10+). Please click here to view a larger version of this figure.