Surface modified deproteinized human demineralized tooth matrix for bone regeneration: Physicochemical characterization and osteoblast cell biocompatibility

IF 5.6 1区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Regenerative Biomaterials Pub Date : 2024-03-21 DOI:10.1093/rb/rbae030
Natwara Chokwattananuwat, S. Suttapreyasri
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Abstract

Tooth presents an intriguing option as a bone graft due to its compositional similarity to bone. However, the deproteinized human demineralized tooth matrix (dpDTM), developed to overcome the limited availability of autologous tooth grafts, have suboptimal pore size and surface roughness. This study aimed to fabricate a surface-modified dpDTM using acid etching and collagen coating, followed by in vitro evaluation of physicochemical and biological properties. The dpDTM was modified into two protocols: Acid-modified dpDTM (A-dpDTM) and Collagen-modified dpDTM (C-dpDTM). Results demonstrated that A-dpDTM and C-dpDTM had increased pore sizes and rougher surfaces compared to dpDTM. Collagen immobilization was evidenced by nitrogen presence exclusively in C-dpDTM. All groups had a Ca/P molar ratio of 1.67 and hydroxyapatite as the sole constituent, with 65-67% crystallinity. Degradation rates significantly increased to 30% and 20% for C-dpDTM and A-dpDTM respectively, compared to 10% for dpDTM after 120 days. Cumulative collagen release of C-dpDTM on Day 30 was 45.16 µg/ml. Osteoblasts attachment and proliferation were enhanced on all scaffolds, especially C-dpDTM, which displayed the highest proliferation and differentiation rates. In conclusion, surface modified of dpDTM, including A-dpDTM and C-dpDTM, significantly enhances bioactivity by altering surface properties and promoting osteoblast activity, thereby demonstrating promise for bone regeneration applications.
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用于骨再生的表面改性去蛋白化人脱矿牙齿基质:理化特性和成骨细胞的生物相容性
由于牙齿的成分与骨相似,因此是一种令人感兴趣的骨移植选择。然而,为克服自体牙移植的有限性而开发的去蛋白化人脱矿牙基质(dpDTM)的孔径和表面粗糙度都不理想。本研究旨在利用酸蚀刻和胶原涂覆技术制造一种表面改性的 dpDTM,然后对其理化和生物学特性进行体外评估。dpDTM 的改性分为两种方案:酸改性 dpDTM(A-dpDTM)和胶原改性 dpDTM(C-dpDTM)。结果表明,与 dpDTM 相比,A-dpDTM 和 C-dpDTM 的孔径更大,表面更粗糙。C-dpDTM中只存在氮,这证明了胶原固定化。所有组的 Ca/P 摩尔比均为 1.67,羟基磷灰石是唯一的成分,结晶度为 65-67%。120 天后,C-dpDTM 和 A-dpDTM 的降解率分别明显增加到 30% 和 20%,而 dpDTM 的降解率仅为 10%。第 30 天,C-dpDTM 的累积胶原释放量为 45.16 µg/ml。成骨细胞在所有支架上的附着和增殖都得到了增强,尤其是 C-dpDTM 的增殖率和分化率最高。总之,包括 A-dpDTM 和 C-dpDTM 在内的 dpDTM 表面改性可通过改变表面性质和促进成骨细胞活性来显著提高生物活性,从而为骨再生应用带来希望。
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来源期刊
Regenerative Biomaterials
Regenerative Biomaterials Materials Science-Biomaterials
CiteScore
7.90
自引率
16.40%
发文量
92
审稿时长
10 weeks
期刊介绍: Regenerative Biomaterials is an international, interdisciplinary, peer-reviewed journal publishing the latest advances in biomaterials and regenerative medicine. The journal provides a forum for the publication of original research papers, reviews, clinical case reports, and commentaries on the topics relevant to the development of advanced regenerative biomaterials concerning novel regenerative technologies and therapeutic approaches for the regeneration and repair of damaged tissues and organs. The interactions of biomaterials with cells and tissue, especially with stem cells, will be of particular focus.
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