PubMed دسترسی آزاد

Study on 3D-printed methacrylated hyaluronic acid/methacrylated carboxymethyl chitosan/curcumin composite scaffolds for jaw bone regeneration.

استودیوی صوتی مقاله

پخش حرفه‌ای فارسی و انگلیسی

در حال بررسی نسخه‌های صوتی ذخیره‌شده…

صوت تولیدشده با هوش مصنوعی است. برای کاربرد علمی یا درمانی، متن و منبع اصلی را بررسی کنید.
خواندن هوشمند فارسی و انگلیسی در حال آماده‌سازی صداهای مرورگر…
تنظیم صدای طبیعی و سرعت

صداهایی که در نامشان «Natural»، «Neural» یا «Online» دیده می‌شود معمولاً طبیعی‌ترند. انتخاب صدا به صداهای نصب‌شده در ویندوز و مرورگر شما بستگی دارد.

چکیده اصلی

This study investigates the use of composite scaffolds composed of methacrylated hyaluronic acid (HAMA), methacrylated carboxymethyl chitosan (CMCSMA), and curcumin (Cur) in bone tissue regeneration. The repair of oral and maxillofacial bone defects poses a significant clinical challenge, and the development of innovative scaffold materials to facilitate bone regeneration is crucial. The objective of this study was to fabricate a composite scaffold that exhibits favorable biocompatibility and appropriate porosity (76%-87%), and to systematically assess its impact on the proliferation, migration, and osteogenic differentiation of osteoblasts (MC3T3 cells). The CMCSMA/HAMA/Cur composite scaffold was successfully synthesized through chemical processes and three-dimensional printing, followed by a thorough material characterization. In vitro cellular assays revealed that the CMCSMA/HAMA/Cur composite scaffold demonstrated excellent biocompatibility, with a hemolysis rate below 5%, and facilitated the sustained release of Cur, underscoring its potential for localized drug delivery. Furthermore, the scaffold notably enhanced cell proliferation and migration compared to the Control group and modulated the expression of key genes Vegfa, Tnc, Pdgfb in the PI3K-Akt signaling pathway, thereby suggesting its capacity to promote osteogenic differentiation. This study offers a novel approach and provides a theoretical framework for future advancements in bone tissue engineering and regenerative medicine, with the anticipation of further clinical evaluation and application.

متن کامل اصلی

نسخه دارای مجوز در منبع علمی در دسترس است.

لینک مستقیم از metadata منبع گرفته شده و در تب جدید باز می‌شود.

باز کردن متن کامل

کلیدواژه‌ها

BiocompatibilityBone regenerationComposite scaffoldCurcuminOsteogenic differentiation
در همین زیرشاخه

مقاله‌های مرتبط

PubMed2026

Slippery when wet: The effect of a novel zwitterionic coating on silicone ureteral stents.

Silicone ureteral stents provide anti-encrustation properties and patient comfort but are more difficult to insert and remove due to increased surface friction. Applying zwitterionic coatings to silicone stents may reduce friction and facilitate stent placement and removal. This study compared the frictional forces of zwitterionic-coated silicone stents with commercial stents using benchtop models. The static and kinetic frictional for…

PubMed2026

Thermo-aided citrate cross-linking of a pullulan sponge incorporating tissue factor and collagen for potent bleeding wound care.

Most existing wound dressings provide only passive hemostasis and protection, and lack robust bio-interactions, active coagulation capabilities, or pro-healing functions, often leading to prolonged bleeding, delayed repair or recurrent bleeding. This paper describes a multifunctional spongy dressing fabricated via thermo-aided citrate cross-linking of pullulan, incorporating tissue factor (TF, a potent physiological coagulation initiat…

PubMed2026

Perspectives on the future of biofabrication: insights from the winter school for biofabrication.

Biofabrication is a multidisciplinary field that integrates diverse technologies to create three-dimensional structures composed of living cells, biomaterials, and other biological components. One of its main goals is the realization of functional tissue constructs with hierarchical architectures, as observed in native biological tissues, for applications in tissue engineering and regenerative medicine, as well as forin vitromodelling.…

PubMed2026

Sustainable hemocompatibility prediction of electrospun nanomaterials using SEM-driven CNN ensemble learning aligned with ISO 10993.

BACKGROUND: Electrospun nanocomposite biomaterials are promising candidates for blood-contacting medical devices owing to their high surface area, tunable nanoscale morphology, and biomimetic replication of the native extracellular matrix. However, conventional hemocompatibility assessments rely heavily on biological assays. These methods require blood samples, specialized reagents, and consumables, thereby inherently increasing costs,…