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Both bone mesenchymal stem cells (BMSCs) and their exosomes suggest promising therapeutic tools for bone regeneration. Lithium has been reported to regulate BMSC function and engineer exosomes to improve bone regeneration in patients with glucocorticoid-induced osteonecrosis of the femoral head. However, the mechanisms by which lithium promotes osteogenesis have not been elucidated. Here, we demonstrated that lithium promotes the osteogenesis of BMSCs via lithium-induced increases in the secretion of exosomal Wnt10a to activate Wnt/β-catenin signaling, whose secretion is correlated with enhanced MARK2 activation to increase the trafficking of the Rab11a and Rab11FIP1 complexes together with exosomal Wnt10a to the plasma membrane. Then, we compared the proosteogenic effects of exosomes derived from lithium-treated or untreated BMSCs (Li-Exo or Con-Exo) both in vitro and in vivo. We found that, compared with Con-Exo, Li-Exo had superior abilities to promote the uptake and osteogenic differentiation of BMSCs. To optimize the in vivo application of these hydrogels, we fabricated Li-Exo-functionalized gelatin methacrylate (GelMA) hydrogels, which are more effective at promoting osteogenesis and bone repair than Con-Exo. Collectively, these findings demonstrate the mechanism by which lithium promotes osteogenesis and the great promise of lithium for engineering BMSCs and their exosomes for bone regeneration, warranting further exploration in clinical practice.
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http://dx.doi.org/10.1021/acsami.4c04199 | DOI Listing |
Langmuir
September 2025
Key Laboratory of Functional Molecular Solids (Ministry of Education), College of Chemistry and Materials Science, Anhui Key Laboratory of Biomedical Materials and Chemical Measurement, Anhui Normal University, Wuhu 241000, China.
The sluggish kinetics and diffusion of lithium polysulfide (LiPS) intermediates lead to the decline in the capacity and rate of high-energy lithium-sulfur (Li-S) batteries. Integrating adsorbents and electrocatalysts into the Li-S system is an effective strategy for suppressing the polysulfide shuttle and enhancing the redox kinetics of sulfur species. The disordered structure of the electrocatalysts exhibits significantly enhanced catalytic activity.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
Yunnan Key Laboratory of Non-ferrous Metals Vacuum Metallurgy, Kunming University of Science and Technology, Kunming, 650093, China.
To address palladium supply-demand challenges and conventional recovery inefficiencies, this study develops a lithium-mediated electrodeposition process for efficient palladium recycling from spent catalysts. Density functional theory calculations identified a controlled Pd→LiPd (Pd)→LiPdO (Pd) transformation pathway, and experimental verification confirmed that LiPd precursors underwent oxidative transformation into LiPdO with structural inheritance. LiPdO exhibited Pd-O coordination and underwent rapid dissolution in dilute hydrochloric acid.
View Article and Find Full Text PDFJ Colloid Interface Sci
August 2025
Beijing Key Laboratory of Advanced Functional Polymer Composites, Beijing University of Chemical Technology, Beijing 100029, China. Electronic address:
Lithium‑sulfur batteries (LSBs) are promising alternatives to lithium-ion batteries due to their high energy density and low cost. However, issues like the lithium polysulfide (LiPSs) shuttle effect, lithium dendrite growth, and flammable electrolytes hinder commercialization. In this study, we have developed a metal-based catalyst, bismuth oxychloride (BiOCl) nanoflowers coated with conductive polypyrrole (Bi@Ppy), via hydrothermal synthesis.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
Jiangsu Provincial Key Lab for The Chemistry and Utilization of Agro-forest Biomass, Jiangsu Key Lab of Biomass Based Green Fuels and Chemicals, College of Chemical Engineering, Nanjing Forestry University, Nanjing, 210037, China.
Aramid films are potential separator candidates for high-safety lithium-ion batteries (LIBs) due to their inherent flame retardancy and outstanding thermal stability. However, both weak liquid electrolyte wettability and poor mechanical properties of aramid separators for lithium-ion batteries result in low ionic conductivity and unsatisfactory electrochemical performance for LIBs. Herein, a novel asymmetric porous composite separator composed of a relatively dense nanocellulose (CNC) layer and a porous poly(m-phenylene isophthalamide) (PMIA) supporting layer has been fabricated by using a water-induced phase conversion process.
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
School of Materials and New Energy, South China Normal University, Shanwei 516600, China.
Nowadays, the continuous advancement of sodium-ion battery technology has made it an important choice in the new energy field and promoted the development of lithium-ion batteries. The cycling stability of cathode materials for sodium-ion batteries at high voltage (>4.0 V) is still a key challenge.
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