Multifunctional PAMAM nanoparticles with sequential antimicrobial-remineralization therapy for dentin caries management

脱盐 牙本质 生物膜 基质金属蛋白酶 再矿化 材料科学 牙科 抗菌剂 牙齿再矿化 微生物学 医学 化学 细菌 生物化学 生物 搪瓷漆 遗传学
作者
Mingxiao Liu,Jiahe Li,Ziyou Wang,Miao Chen,Jianru Yi,Zhihe Zhao,Kunneng Liang
出处
期刊:Journal of Materials Chemistry B [Royal Society of Chemistry]
卷期号:13 (38): 12085-12100 被引量:2
标识
DOI:10.1039/d5tb01477h
摘要

Dentin caries is a multifactorial pathological process characterized by bacterial colonization and biofilm formation that result in concurrent acid-mediated demineralization and matrix metalloproteinase (MMP)-mediated degradation of the collagenous matrix. While remineralization therapies offer minimal invasiveness, their long-term efficacy is compromised by ongoing collagen degradation and persistent bacterial acid production that counteract remineralization efforts. To address these limitations, we designed PAMAM-G4@EG (PGE) nanoparticles (NPs) using polyamide amine (PAMAM) dendrimers as mineral deposition templates, with antimicrobial peptide G(IIKK)4I-NH2 (G4) grafted onto the external surface groups and epigallocatechin gallate (EG) encapsulated within the internal cavities to provide biofilm disintegration and collagen protection for comprehensive dentin caries intervention. First, the PGE NPs reach lesion surfaces and accelerate EG release under acidic conditions. EG loosens Streptococcus mutans (S. mutans) biofilms, followed by G4-mediated disruption of planktonic S. mutans cell membranes. In vitro antimicrobial assays demonstrated a bactericidal efficacy of 99.75% after PGE intervention. Upon deeper lesion penetration, PGE releases EG to inhibit MMP activity and preserve the collagen scaffold, achieving a 74% reduction in hydroxyproline (HYP) levels. Simultaneously, PAMAM promotes controlled hydroxyapatite (HA) deposition, facilitating dentin remineralization. Treatment with PGE in artificial saliva containing collagenase restored dentin hardness to 89.88% of intact values. In vivo validation using a rat caries model confirmed therapeutic efficacy through significant reductions in Keyes scores, decreased salivary S. mutans counts, and increased molar mineral density. These findings demonstrate the therapeutic efficacy of PGE in dentin caries prevention and treatment, supporting its potential for clinical application.
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