Multifunctional nanozyme for multimodal imaging-guided enhanced sonodynamic therapy by regulating the tumor microenvironment.
Authors: Liu S, Zhang W, Chen Q, Hou J, Wang J, Zhong Y, Wang X, Jiang W, Ran H, Guo D
Sonodynamic therapy (SDT) is a highly promising approach for cancer therapy, but its efficacy is severely hampered by the low specificity of sonosensitizers and the unfavorable characteristics of the tumor microenvironment (TME), such as hypoxia and glutathione (GSH) overexpression. To solve these problems, in this work, we encapsulated IR780 and MnO<sub>2</sub> in PLGA and linked Angiopep-2 (Ang) to synthesize a multifunctional nanozyme (Ang-IR780-MnO<sub>2</sub>-PLGA, AIMP) to enhance SDT. With Ang functionalization to facilitate blood-brain barrier (BBB) penetration and glioma targeting, and through the function of IR780, these nanoparticles (NPs) showed improved targeting of cancer cells, especially mitochondria, and spread deep into tumor centers. Upon low-intensity focused ultrasound (LIFU) irradiation, reactive oxygen species (ROS) were produced and induced tumor cell apoptosis. Combined with the specific mitochondria-targeting ability of IR780, the sonodynamic effects were amplified because mitochondria are sensitive to ROS. In addition, MnO<sub>2</sub> exhibited enzyme-like activity, reacting with the high levels of hydrogen protons (H<sup>+</sup>), H<sub>2</sub>O<sub>2</sub> and GSH in the TME to continuously produce oxygen and consume GSH, which further enhanced the effect of SDT. Moreover, Mn<sup>2+</sup> can be released in response to TME stimulation and used as a magnetic resonance (MR) contrast agent. In addition, IR780 has photoacoustic (PA)/fluorescence (FL) imaging capabilities. Our results demonstrated that AIMP NPs subjected to LIFU triggering maximally enhanced the therapeutic effect of SDT by multiple mechanisms, including multiple targeting, deep penetration, oxygen supply in situ and GSH depletion, thereby significantly inhibiting tumor growth and distal metastasis without systemic toxicity. In summary, this multifunctional nanozyme provides a promising strategy for cancer diagnosis and treatment under the intelligent guidance of multimodal imaging (PA/FL/MR) and may be a safe clinical translational method.
Introduction
Purpose
Sonodynamic therapy
Study Objective
To develop an Angiopep-2-functionalized multifunctional nanozyme (AIMP) that crosses the BBB, remodels the tumor microenvironment, and enhances low-intensity focused ultrasound (LIFU)-mediated sonodynamic therapy (SDT) for glioma under multimodal imaging guidance.
Animal model / Human subject
BALB/c-nude mice
Disease model
glioblastoma
MRI or image guidance method
MR-guided
Targeted brain region(s)
Brain Tumor Region
Cargo name and characteristics
AIMP nanoparticles (Ang-IR780-MnO₂-PLGA) — a PLGA nanoparticle encapsulating the sonosensitizer IR780 (small molecule) and MnO₂ nanozyme, surface-functionalized with Angiopep-2 for BBB penetration and glioma targeting; also enables PA/FL/MR imaging.
Route of administration
Intravenous
Outcomes and Safety
Summary of Outcomes
AIMP nanoparticles accumulated efficiently in gliomas, relieved hypoxia, depleted glutathione (GSH), increased ROS generation under LIFU, and significantly enhanced SDT, resulting in greater tumor inhibition, apoptosis, reduced angiogenesis, and prolonged survival with multimodal imaging guidance.
Duration of biological effect
Nanoparticle accumulation and PA/FL imaging peaked at ~4 hours, MR imaging peaked at ~6 hours, and therapeutic effects persisted throughout the repeated treatment course (days 1, 4, and 7) with tumor evaluation through day 15.
Safety-related matter
AIMP nanoparticles exhibited high biocompatibility with minimal systemic toxicity, no significant body weight loss, normal blood chemistry, and no detectable histopathological damage in major organs following repeated treatment.
Brain Region
Ultrasound Parameters
Ultrasound instrument
LIFU (LM.SC051 ACA; Institute of Ultrasound Imaging of Chongqing Medical Sciences, Chongqing, China)
FUS Intensity
3 W/cm2
Pulse duration
5 s
Duration of a single FUS session
5 min
Treatment frequency
multiple sessions
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