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Vanmeerhaeghe, B.

Publications and source records attributed to Vanmeerhaeghe, B..

2 recordsLinked to original sources

Converting Lysosomes into Photothermal Organelles Enables Nanoparticle-Free Tumor Ablation via Intracellular Vapor Bubbles

Photothermal nanomaterials enable precise tumor ablation but face limitations in biodistribution, tissue penetration, toxicity, and biodegradability. Here, we present a unique concept for nanoparticle-free photothermal therapy based on the lysosomal entrapment of cationic amphiphilic small molecular dyes for spatially controlled vapor bubble (VB)-mediated tumor cell ablation. This strategy, which exploits a universal biological and physical effect, employs intracellular pH gradients for extensive local dye enrichment in acidified organelles, transforming them into transient endogenous nanosized photothermal reactors for subsequent light activation. Using sunitinib, a clinically approved lysosomotropic anticancer drug, and the commercially available dye LysoTracker Deep Red, lacking intrinsic anticancer activity, we demonstrate pulsed laser-induced VB formation specifically from dye-loaded lysosomes, leading to selective photomechanical disruption of various cancer cell models across 2D cultures, 3D spheroids, patient-derived neuroblastoma tumoroids and tumor fragments from an ovarian carcinoma patient. This approach allows precise, low-fluence and wavelength-tunable cancer tissue ablation without the need for synthetic photoresponsive nanoparticles.

bioengineering↗

Photodisruption of the inner limiting membrane promotes retinal engraftment of stem-cell derived retinal ganglion cells

Glaucoma is the leading cause of irreversible blindness, driven by the progressive loss of retinal ganglion cells (RGCs). Stem cell-derived RGC transplantation could revolutionize glaucoma treatment, but the inner limiting membrane (ILM) remains a major obstacle by hindering cell migration into the retina. Interestingly, the ILM represents a double-edged sword for RGC engraftment: on the one hand, it greatly hinders cell migration, whereas on the other hand, its presence during retinal development is necessary for neuronal migration and retinal lamination. As an alternative to current invasive and harmful strategies to disrupt the ILM, we introduce ILM photodisruption, a minimally invasive biophotonic method that can manipulate the integrity of the ILM with unprecedented precision. In this study, we have finetuned the technology in bovine and human organotypic retinal explants to create templated ILM pores, creating entryways for donor RGCs to enter the retina while preserving most of the membrane to confer guidance cues for their engraftment. Applying this technology, we were able to promote donor RGC survival, enhance cell spreading and facilitate integration into the retina. Overall, our findings demonstrate that ILM photodisruption effectively addresses a key barrier in RGC replacement, paving the way for advancing retinal regeneration toward clinical application.

pharmacology and toxicology↗