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Verified CAS / Academic Author2 Decoded Studies

Prof. XIN Sen

SinoGreenTech Intelligence Archive (affiliated with Chinese Academy of Sciences research institutes)

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3782-0

Inflammatory microenvironment-triggered oral mucositis treatment by guanosine microneedles

Oral mucositis (OM) is a debilitating complication of cancer therapy, characterized by severe pain, mucosal barrier breakdown, and infection risk. Current hydrogel-based topical systems suffer from poor transmucosal permeation and lack of inflammatory microenvironment-triggered drug release. Here, we report a supramolecular strategy for designing guanosine-fibril hydrogels and derived microneedle patches. Tavaborole (Ta), crisaborole (Cr), and strontium (Sr2+) ions serve dual roles as structural building blocks and biofunctional agents. Unlike conventional G4·K+ fibrils, the unique G4·Sr2+-Ta/Cr fibrils incorporate Ta/Cr via boronic ester bonds on guanosine and Sr2+ through G-quartet cation recognition. This design mechanically reinforces the hydrogel through additional hydrophobic interactions and ion-pair recognition, while synergistically providing antimicrobial/anti-inflammatory effects (Ta/Cr), pro-angiogenic activity (Sr2+), and reactive oxygen species (ROS) scavenging (guanosine). The optimized gelation process enables fabrication of microneedle patches with pseudomembrane-penetrating capability and ROS-triggered drug release via boronic ester hydrolysis. In vivo mouse experiments confirm efficacy in controlling OM-associated inflammation, modulating oral microbiota homeostasis, and promoting angiogenesis at ulcer sites. This work demonstrates multifunctional integration via hierarchical structural design, extending guanosine supramolecular assemblies into bioactive platforms for OM treatment.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3350-4

Building a safe and stable rechargeable lithium-metal battery by applying a flame-retardant, double-network structural hybrid polyester-based quasi-solid-state polymer electrolyte

Rechargeable lithium-metal batteries (LMBs) offer high energy density but suffer from dendrite formation and parasitic reactions with liquid electrolytes, leading to safety hazards and poor cycling stability. Quasi-solid-state polymer electrolytes (QSPEs) mitigate these issues but often exhibit inadequate thermal stability and Li-metal compatibility. This work presents a double-network structural hybrid polyester-based flame-retardant quasi-solid-state polymer electrolyte (DN-FRQSPE) synthesized via one-step in situ UV curing polymerization. The first network is a loosely cross-linked flame-retardant P-N containing polyacrylate from N,N-bis(2-hydroxyethyl acrylate) aminomethyl phosphonic acid diethylester (BHAAPE); the second network is highly cross-linked PMMA. The DN-FRQSPE exhibits excellent electrochemical performance, flexibility, and flame retardancy. Li/Li symmetric cells demonstrate stable cycling exceeding 2000 h with dendrite-free morphology. Li|DN-FRQSPE|LiFePO4 full batteries deliver a capacity retention of 93% after 200 cycles at 0.2C (0.035% decay per cycle) and a charge–discharge plateau gap of only 0.13 V after 100 cycles. The solid-state system outperforms liquid counterparts, which short-circuit within 80 cycles. Post-mortem SEM and XPS analyses reveal suppressed Fe2+ to Fe3+ conversion and reduced electrode corrosion. This DN-FRQSPE design provides a viable pathway for safe, long-life lithium-metal batteries.