Nanoparticle-mediated sodium butyrate delivery for repairing hypoxic-ischemic brain injury in premature infants.
Authors: Zhao J, Zhang J, Hou L, Yang C, Jiang L, Liang D
Hypoxic-ischemic encephalopathy of prematurity (HIEP) is a leading cause of acute mortality and chronic neurological injury in premature infants. This study investigates the molecular mechanisms by which magnetic fluorescent nanoparticles loaded with sodium butyrate (MNs@SB) repair HIEP by modulating the Sp1 and TGF-β1 signaling pathways. Untargeted metabolomics analysis revealed significant suppression of the butyrate metabolism pathway in the intestinal tissues of HIEP mice. We synthesized and characterized MNs@SB nanoparticles, with zeta potential and DLS results indicating an average nanoparticle size of approximately 79.89 nm and a zeta potential of -36.87 mV. TEM images confirmed that the nanoparticles formed polymer-coated clusters. MNs@SB demonstrated excellent biocompatibility and stable magnetic targeting behavior. The nanoparticles were delivered to the brain via tail vein injection and magnetic targeting, with focused ultrasound facilitating their diffusion. The results showed that HIEP mice exhibited a significant increase in infarct size and extensive tissue loss, whereas MNs@SB treatment effectively reversed HIEP-induced brain damage, improving both short-term and long-term neurological deficits. Single-cell RNA sequencing and high-throughput transcriptome analysis revealed that MNs@SB promoted brain repair by upregulating neuronal Sp1, activating the TGF-β1 signaling pathway, and inhibiting neuronal apoptosis. In vivo experiments further confirmed that MNs@SB treatment restored SP1 mRNA and protein expression in the brain. Additionally, MNs@SB treatment significantly restored TGF-β1, p-SMAD2, and p-SMAD3 protein expression, indicating activation of the TGF-β1/SMAD2/3 signaling pathway. This study presents a novel nanomedicine therapeutic strategy with potential clinical applications.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To determine whether magnetic fluorescent nanoparticles loaded with sodium butyrate (MNs@SB) can target the brain to repair hypoxic-ischemic encephalopathy of prematurity by modulating Sp1 and TGF-β1/SMAD signaling pathways.
Animal model / Human subject
Mouse (Mus musculus), strain not specified, age not specified, sex not specified
Disease model
Hypoxic-ischemic encephalopathy of prematurity
Cargo name and characteristics
Sodium butyrate (small molecule, short-chain fatty acid) loaded into magnetic fluorescent polymer-coated nanoparticles (MNs@SB); average particle size ~79.89 nm, zeta potential −36.87 mV, TEM shows polymer-coated clusters, designed for IV delivery with magnetic targeting and focused ultrasound–facilitated BBB diffusion, reported biocompatible.
Route of administration
Intravenous (tail vein injection) with magnetic targeting and focused ultrasound-assisted delivery
Outcomes and Safety
Summary of Outcomes
Magnetic nanoparticles loaded with sodium butyrate (MNs@SB), delivered via tail‑vein injection with magnetic targeting and aided by focused ultrasound, accumulated in the brain, reduced infarct size and tissue loss, improved short‑ and long‑term neurological deficits, upregulated neuronal Sp1, activated the TGF‑β1/SMAD2/3 signaling pathway, and inhibited neuronal apoptosis. The paper did not report testing multiple FUS parameter sets or compare different FUS settings.
Duration of biological effect
7 days
Safety-related matter
No significant adverse effects were observed in short‑term studies: MNs@SB showed excellent biocompatibility with negligible cytotoxicity to neurons and microglia, minimal hemolysis at tested concentrations, and no significant changes in IL‑6, TNF‑α, or CRP; however, the authors caution about potential iron‑related hyperferritinemia in preterm infants and note the absence of long‑term and human safety data.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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