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Biology subjects

Quidant, R.

Publications and source records attributed to Quidant, R..

2 recordsLinked to original sources

A Toolbox for the Personalization of Plasmonic Photothermal Therapy in Orthotopic Mouse Tumor Models

The clinical translation of plasmonic photothermal therapy is hindered by a lack of reliable personalization protocols. In this study we implemented a non-invasive toolbox to assess how tumor optical and hemodynamic properties can serve as markers of progression and be used in personalized simulations to extrapolate therapy conditions, both necessary steps for individualized treatment planning. The toolbox integrated near-infrared diffuse optical monitoring techniques, thermal imaging, ex vivo assays and physical simulations. It was applied to patient-derived orthotopic clear cell renal cell carcinoma mouse models, at 1 cm3 volumes, providing clinically more relevant conditions than those of commonly used models. Gold nanorods (GNRs) with absorption tuned to the optical window and fixed irradiation conditions were employed. Therapy safety and efficacy were established using standard methods and pre-GNR injection, pre-therapy and post-therapy measurements obtained with the toolbox were analyzed to model therapy progression. Results revealed an association between tumor water concentration and accumulated GNR fraction in the tumor, a correlation between the pre-therapy tumor absorption coefficient and the maximum skin temperature reached, and a link between simulated treated volume estimates and progression-free survival, among other findings. These results demonstrate the capabilities of optical measurements to model the outcome and explain the mechanisms involved in the therapy, advancing towards a personalization strategy.

biophysics↗

Robotic Laser Tissue Soldering for Damage-free Soft Tissue Fusion Guided by Fluorescent Nanothermometry

Minimally invasive surgical techniques, including endoscopic and robotic procedures, continue to revolutionize patient care, for their ability to minimize surgical trauma, thus promoting faster recovery and reduced hospital stays. Yet, the suturing of soft tissues ensuring damage-free tissue bonding during these procedures remains challenging due to missing haptics and the fulcrum effect. Laser tissue soldering has potential in overcoming these issues, offering damage-free seamless tissue fusion. To ensure the precision and safety of laser tissue soldering, we introduce feedback controlled fluorescent nanothermometry-guided laser tissue soldering using nanoparticle-protein solders within endoscopic and robotic contexts. Temperature-sensitive fluorescent nanoparticles embedded in the solder provide surgeons with immediate feedback on tissue temperatures during laser application, all while within the confines of minimally invasive (robotic) surgical setups. By integrating fluorescent nanothermometry-guided laser tissue surgery into endoscopic and robotic surgery, we pave the way for a new approach for safe and atraumatic soft tissue joining, especially in regions where traditional suturing is unfeasible.

bioengineering↗