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Discovery and therapeutic exploitation of Master Regulatory miRNAs in Glioblastoma.

Authors: Saha S, Zhang Y, Gilbert MK, Dube C, Hanif F, Mulcahy EQX, Bednarek S, Marcinkiewicz P, Wang X, Kwak G, Hudson K, Sun Y, Dinda M, Saha T, Guessous F, Cruickshanks N, Colon RR, Dell'Olio L, Anbu R, Kefas B, Kumar P, Klibanov AL, Schiff D, Suk JS, Hanes J, Mata J, Hafner M, Abounader R

Glioblastoma is a fatal primary malignant brain tumor, with an average survival of only 15 months despite surgical resection, chemotherapy, and radiation therapy. Due to the concurrent deregulation of numerous genes in glioblastoma, molecular monotherapies have not improved clinical outcomes. Evidence suggests that effectively targeting multiple deregulated molecules is essential for better therapies; however, this is limited by the lack of suitable drugs and the increased toxicity of combination therapies. To address this, we hypothesized that miRNAs, small gene-regulatory RNAs that suppress multiple target genes via sequence complementarity, could be developed to inhibit multiple deregulated genes simultaneously, leading to more effective treatments. We identified master regulatory miRNAs-those that target several deregulated genes in glioblastoma-using PAR-CLIP screenings in glioblastoma cells and analyzed TCGA tumor data to find which targets were deregulated. An algorithm ranked these targets based on their significance in glioblastoma malignancy. We selected two tumor suppressor master regulatory miRNAs, miR-340 and miR-382, and one oncogenic miRNA, miR-17. Validation showed that these miRNAs target critical glioblastoma pathways and significantly inhibit cell growth, survival, invasion, and tumor growth in vivo. We developed an innovative therapeutic delivery approach using Brain Penetrating Nanoparticles in combination with MRI-guided focused ultrasound and microbubbles, resulting in reduced tumor volume and extended survival in glioblastoma-bearing mice. This strategy offers a promising pathway for translating miRNA-based therapies into clinical trials for glioblastoma and other cancers.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To identify master regulatory microRNAs that simultaneously target multiple deregulated genes in glioblastoma and develop a nanoparticle plus MRI-guided focused ultrasound delivery strategy to therapeutically inhibit tumor growth.
Animal model / Human subject Mouse (Mus musculus); strain: not specified; age: not specified; sex: not specified
Disease model glioblastoma
MRI or image guidance method MRI-guided focused ultrasound
Cargo name and characteristics miR-340 and miR-382 (tumor-suppressor microRNAs) and miR-17 (oncogenic microRNA); small non-coding regulatory RNAs (microRNAs) used as therapeutic cargo

Outcomes and Safety

Summary of Outcomes Overexpression of tumor‑suppressive miR‑340 and miR‑382 (and inhibition of oncogenic miR‑17) reduced glioblastoma cell proliferation, survival, invasion, and neurosphere formation and decreased in vivo tumor growth while extending survival in mice. Therapeutic delivery of miR‑340 via PEGylated PBAE brain‑penetrating nanoparticles plus MRI‑guided focused ultrasound with microbubbles successfully opened the BBB and delivered payload to tumors; specific focused ultrasound parameters were not varied or reported.
Safety-related matter The paper notes that combining multiple conventional drugs can lead to an exponential increase in toxicity; in contrast, their miRNA delivery approach (PEGylated PBAE brain-penetrating nanoparticles with MRI-guided focused ultrasound and microbubbles) reduced tumor growth and prolonged survival in mice, and "the mice did not exhibit any signs of toxicity."

Brain Region

Visualization unavailable

Ultrasound Parameters

Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None

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