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Gillespie, W.

Publications and source records attributed to Gillespie, W..

2 recordsLinked to original sources

Focused Ultrasound Blood-Tumor Barrier Opening Rapidly Augments Intratumor CD4 and CD8 T Cell Representation in a Genetically Engineered Mouse Model of Glioma

Glioblastoma (GBM) is a highly aggressive primary brain tumor that remains difficult to treat due in part to its disorganized and heterogeneous vasculature, known as the blood-tumor barrier (BTB), which limits therapeutic delivery and beneficial immune cell infiltration. Focused ultrasound (FUS) with microbubbles (MBs) can transiently disrupt the BTB to enhance drug delivery and may induce sterile inflammation (SI) that can beneficially remodel the tumor immune landscape. However, this concept has only been explored in implanted tumor models with modest immune effects. Here, we utilized a physiologically relevant genetically engineered mouse model (GEMM) generated via in utero electroporation targeting Nf1, Tp53, and Pten to study tumor-vascular-immune interactions. This 3x CRISPR-Cas9 GEMM recapitulates key features of human glioma, including infiltrative growth, histopathology, molecular alterations, and stage-dependent blood-brain barrier disruption. FUS+MBs were applied to transiently disrupt the BTB, and MRI confirmed increased vascular permeability in treated tumors. Flow cytometry revealed robust increases in tumor-infiltrating CD4+ helper and CD8+ effector T cells three days post-FUS treatment, without altering the CD8/Treg ratio. These findings were supported by immunofluorescence imaging. Double-negative and double-positive T cells were detected, but they were not significantly altered by FUS. Ki67 analysis indicated that increased T-cell accumulation was not driven by local proliferation. By seven days post-treatment, immune differences were no longer observed. Collectively, these results demonstrate that FUS-mediated BTB disruption selectively and rapidly enhances lymphocyte infiltration in a clinically relevant glioma model, supporting its potential as a temporally controlled immunomodulatory strategy for GBM.

cancer biology↗

Multisite Assembly of Gateway Induced Clones (MAGIC): a flexible cloning toolbox withdiverse applications in vertebrate model systems.

Here we present the Multisite Assembly of Gateway Induced Clones (MAGIC) system, which harnesses site-specific recombination-based cloning via Gateway technology for rapid, modular assembly of between 1 and 3 "Entry" vector components, all into a fourth, standard high copy "Destination" plasmid backbone. The MAGIC toolkit spans a range of in vitro and in vivo uses, from directing tunable gene expression, to driving simultaneous expression of microRNAs and fluorescent reporters, to enabling site-specific recombinase-dependent gene expression. All MAGIC system components are directly compatible with existing multisite gateway Tol2 systems currently used in zebrafish, as well as existing eukaryotic cell culture expression Destination plasmids, and available mammalian lentiviral and adenoviral Destination vectors, allowing rapid cross-species experimentation. Moreover, herein we describe novel vectors with flanking piggyBac transposon elements for stable genomic integration in vitro or in vivo when used with piggyBac transposase. Collectively, the MAGIC system facilitates transgenesis in cultured mammalian cells, electroporated mouse and chick embryos, as well as in injected zebrafish embryos, enabling the rapid generation of innovative DNA constructs for biological research due to a shared, common plasmid platform.

molecular biology↗