Three birds with one stone: co-encapsulation of diclofenac and DL-menthol for realizing enhanced energy deposition, glycolysis inhibition and anti-inflammation in HIFU surgery.
Haitao WuHu ZhouWenjie ZhangPing JinQianqian ShiZhaohua MiaoHua WangZhengbao ZhaPublished in: Journal of nanobiotechnology (2022)
Despite attracting increasing attention in clinic, non-invasive high-intensity focused ultrasound (HIFU) surgery still commonly suffers from tumor recurrence and even matastasis due to the generation of thermo-resistance in non-apoptotic tumor cells and adverse therapy-induced inflammation with enhanced secretion of growth factors in irradiated region. In this work, inspired by the intrinsic property that the expression of thermo-resistant heat shock proteins (HSPs) is highly dependent with adenosine triphosphate (ATP), dual-functionalized diclofenac (DC) with anti-inflammation and glycolysis-inhibition abilities was successfully co-encapsulated with phase-change dl-menthol (DLM) in poly(lactic-co-glycolic acid) nanoparticles (DC/DLM@PLGA NPs) to realize improved HIFU surgery without causing adverse inflammation. Both in vitro and in vivo studies demonstrated the great potential of DC/DLM@PLGA NPs for serving as an efficient synergistic agent for HIFU surgery, which can not only amplify HIFU ablation efficacy through DLM vaporization-induced energy deposition but also simultaneously sensitize tumor cells to hyperthermia by glycolysis inhibition as well as diminished inflammation. Thus, our study provides an efficient strategy for simultaneously improving the curative efficiency and diminishing the harmful inflammatory responses of clinical HIFU surgery.
Keyphrases
- high intensity
- minimally invasive
- coronary artery bypass
- oxidative stress
- heat shock
- resistance training
- surgical site infection
- diabetic rats
- drug delivery
- dendritic cells
- emergency department
- stem cells
- cell death
- high glucose
- immune response
- heat stress
- high resolution
- cancer therapy
- poor prognosis
- risk assessment
- mesenchymal stem cells
- drug induced
- atrial fibrillation
- body composition
- free survival