Customized Sized Manganese Sulfide Nanospheres as Efficient T1 MRI Contrast Agents for Enhanced Tumor Theranostics.

IF 8.1 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2024-12-11 eCollection Date: 2024-01-01 DOI:10.34133/bmr.0116
Yufang Gong, Kai Guo, Siyu Cai, Ke Ren, Liya Tian, Yingqi Wang, Mengyao Mu, Qingwei Meng, Jie Liu, Xiao Sun
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Abstract

The impact of nanoparticle size on the effectiveness of magnetic resonance imaging (MRI) using sulfurized manganese nanoparticles (MnS@PAA) stabilized with polyacrylic acid (PAA) as a binder was thoroughly investigated. MnS@PAA nanoparticles of varying sizes were synthesized by altering the ratio of ethylene glycol (EG) to diethylene glycol (DEG) during the synthesis process. These nanoparticles exhibited a uniform size distribution and demonstrated high T1 relaxation rates, along with a notable pH-responsive behavior. As the nanoparticle size increased, the T1 relaxation rate decreased, indicating that size plays a crucial role in their MRI performance. Additionally, research has revealed that the efficiency of tumor uptake by these nanoparticles is size dependent. Specifically, MnS@PAA nanoparticles with a core size of 100 nm (MS100) exhibited greater tumor accumulation and provided enhanced MRI contrast. Once within the acidic environment of a tumor, MS100 decomposes into Mn2+ and H2S. Mn2+ ions promote the generation of hydroxyl radicals, which leads to lipid peroxidation and induces ferroptosis. Concurrently, the release of H2S inhibits catalase activity, resulting in elevated levels of hydrogen peroxide (H2O2), achieving a synergistic effect between chemodynamic therapy (CDT) and gas therapy. This study explores the influence of nanoparticle size on its potential applications as an MRI contrast agent and as a therapeutic agent in cancer treatment.

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