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The inadequate vascularization and abnormal immune microenvironment in the diabetic bone defect region present a significant challenge to osteogenic regulation. Inspired by the distinctive characteristics of healing staged in diabetic bone defects and the structure-function relationship in the natural periosteum, we fabricated an electrospun bilayer biomimetic periosteum (Bilayer@E) to promote regeneration of diabetic bone defects. Here, the inner layer of biomimetic periosteum was fabricated using coaxial electrospinning fibers, with a shell incorporating zinc oxide nanoparticles (ZnO NPs) and a core containing silicon dioxide nanoparticles (SiO NPs) mimicking the cambium of periosteum; the outer layer consisted of randomly aligned electrospun fibers loaded with deferoxamine (DFO), simulating the fibrous layer of periosteum; finally, epigallocatechin-3-gallate (EGCG) was coated onto the bilayer membrane to obtain Bilayer@E. The presence of EGCG on the Bilayer@E surface efficiently triggers a phenotypic transition in macrophages, shifting them from an M1 proinflammatory state to an M2 anti-inflammatory state. Moreover, the sequential release of ZnO NPs, DFO, and SiO NPs exhibits antimicrobial characteristics while coordinating angiogenesis and promoting osteogenic mineralization in cells. Importantly, the biomimetic periosteum shows strong bone tissue and periosteal regeneration properties in diabetic rats. The integration of sequential drug release and immunomodulation, tailored to meet the specific healing requirements during bone regeneration, offers new insights for advancing the application of biomaterials in this field.
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http://dx.doi.org/10.1021/acsbiomaterials.4c02095 | DOI Listing |
Front Bioeng Biotechnol
August 2025
Department of Orthopaedics, The First Affiliated Hospital of Soochow University, Soochow University, Suzhou, China.
Bone defect repair continues to present a significant clinical challenge due to the limitations of traditional grafting techniques and the complexity involved in establishing a conducive regenerative microenvironment. In this study, we described the development of a multifunctional biomimetic periosteum based on electrospun gelatin methacryloyl (GelMA) membranes functionalized with bone morphogenetic protein-2 (BMP-2)-loaded M2 macrophage-derived exosomes. This engineered periosteum replicated the structural orientation and functional properties of natural periosteum, thereby providing a synergistic approach to promoting bone regeneration.
View Article and Find Full Text PDFAdv Healthc Mater
August 2025
Department of Biosystems Engineering, Kangwon National University, Chuncheon, 24341, Republic of Korea.
Effective bone regeneration requires the integration of immune and mechanical signals, which current biomaterials often fail to achieve. To address this, an immunomodulatory scaffold is developed combining 3D printing and electrospinning, designed to mimic the bone and periosteum. The scaffold features an outer electrospun nanofiber mat and an inner 3D-printed core, creating a biomimetic structure that facilitates the polarization of macrophages into pro-inflammatory (M1) and anti-inflammatory (M2) states under physiological fluid shear stress (FSS).
View Article and Find Full Text PDFCarbohydr Polym
October 2025
College of Materials Science and Engineering, Central South University of Forestry and Technology, Changsha 410004, PR China; Hunan Province Key laboratory of Materials Surface & Interface Science and Technology, Central South University of Forestry and Technology, Changsha 410004, China; Hunan Engi
To enhance the clinical value of carboxymethyl chitosan (CMCS) as an osteogenic material, improving its bioactivity and mechanical strength is crucial. Meanwhile, ellagic acid (EA) has strong bioactivities but low bioavailability due to its hydrophobicity. In this study, by introducing EA units into CMCS molecules, a near-infrared (NIR) light-mediated nanofiber membrane based on polycaprolactone (PCL)/EA-CMCS blended nanofibers coated with an EA-CMCS/graphene oxide (GO) layer (PCL/EA-CMCS@EA-CMCS/GO) was designed.
View Article and Find Full Text PDFJ Nanobiotechnology
July 2025
Institute of Tissue Regeneration Engineering (ITREN), Dankook University, Cheonan, 31116, Republic of Korea.
Treating chronic bone injuries and defects remains a significant challenge in orthopedic medicine, impacting patient mobility, recovery time, and healthcare costs. The periosteum, a specialized, vascularized connective tissue covering the outer bone surface, plays a crucial role in osteogenesis and skeletal repair. While regenerating the periosteum is critical to restoring bone structure and function, current treatments face substantial limitations, including limited donor tissue availability, donor site complications, and the risk of immunological rejection.
View Article and Find Full Text PDFActa Biomater
September 2025
Guanghua School and Hospital of Stomatology, Guangdong Provincial Key Laboratory of Stomatology, Institute of Stomatological Research, Sun Yat-sen University, Guangzhou, 510055, China. Electronic address:
The periosteum is a highly vascularized tissue and possesses exceptional osteogenic and bone regenerative capabilities. These properties make it an important component in bone defect repair. This study introduced a newly developed, polyethyleneimine-enhanced eggshell membrane (PESM) designed to promote dual regeneration of bone and periosteum.
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