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Lignin-Based Fluorescent Polymers: From Aggregation-Induced Emission Mechanism to Intelligent Bone Regeneration
Fang Shi1, Shuo Tang1, Yuqing Wang1
1National & Local Joint Engineering Laboratory for New Petro-Chemical Materials and Fine Utilization of Resources, College of Chemistry and Chemical Engineering, Key Laboratory of Light Energy Conversion Materials of Hunan Province College, Hunan Normal University, Changsha, P. R. China.
Abstract:
Lignin's intrinsic fluorescence and bioactivities (antioxidant, antibacterial, photoprotective) arise directly from its polyphenolic macromolecular architecture. This review critically integrates lignin-based fluorescent polymers for intelligent bone regeneration, bridging lignin photophysics and tissue engineering. We dissect the macromolecular origins of lignin's biological modalities and its aggregation-induced emission (AIE) behavior, where clustering of phenylpropanoid units transforms concentration quenching into a luminescent design advantage. Synthetic strategies that employ lignin as macromonomers, initiators, and crosslinkers to fabricate fluorescent polymers with tunable optics and preserved bioactivity are surveyed. We highlight two emerging applications: non-invasive, real-time tracing of scaffold degradation via intrinsic fluorescence, and integrated theranostics that synergize antibacterial defense, oxidative stress modulation, and pro-osteogenic induction within a single macromolecular system. Critically, we identify five translational bottlenecks-heterogeneity-driven photophysical variability, insufficient quantum yield, long-term chromophore biosafety, multifunctionality‑processability trade-offs, and batch‑to‑batch fluorescence inconsistency-and propose chemical and processing strategies to overcome them. By merging lignin macromolecular chemistry, fluorescence photophysics, and bone biology, we position lignin-based fluorescent polymers as a distinct bioactive class where therapeutic function is programmed into the polymer backbone, offering a promising paradigm for macromolecular design.

