4.6 Article

Degradation and Bone-Contact Biocompatibility of Two Drillable Magnesium Phosphate Bone Cements in an In Vivo Rabbit Bone Defect Model

相关参考文献

注意:仅列出部分参考文献,下载原文获取全部文献信息。
Review Engineering, Biomedical

Injectable bone cements: What benefits the combination of calcium phosphates and bioactive glasses could bring?

Oznur Demir-Oguz et al.

Summary: Calcium phosphate bone cements (CPCs) have valuable properties such as bioactivity, osteoconductivity, injectability, and moldability, but their low mechanical performance limits their clinical application. Adding bioactive glasses (BGs) as a secondary powder phase can improve the injectable properties of CPCs and enhance the degradation rate, in vitro osteogenic differentiation, cell response, and tissue-material interaction.

BIOACTIVE MATERIALS (2023)

Article Dentistry, Oral Surgery & Medicine

Bone regeneration capacity of newly developed spherical magnesium phosphate cement granules

Andreas Fuchs et al.

Summary: The study demonstrates that CaMgP granules exhibit excellent biocompatibility, fast and continuous degradation, and enable proper bone healing without the interposition of connective tissue. These characteristics make CaMgP granules a promising bone substitute material for bone augmentation procedures, especially in sensitive areas.

CLINICAL ORAL INVESTIGATIONS (2022)

Review Materials Science, Biomaterials

Biodegradable magnesium phosphates in biomedical applications

Xiang Gu et al.

Summary: Magnesium phosphates are biocompatible and biodegradable materials that have been widely used in biomedicine. They can be applied in nanomedicine as monodisperse particles, or used in tissue engineering as cements, ceramics, scaffolds, coatings, etc.

JOURNAL OF MATERIALS CHEMISTRY B (2022)

Article Engineering, Biomedical

Osteogenic lithium-doped brushite cements for bone regeneration

K. Hurle et al.

Summary: This study investigated the osteogenic performance of Li+-doped brushite cements for bone regeneration. The results showed that Li+ favored the formation of monetite and increased in vivo bone density. In addition, Li+ exhibited an accelerating effect on the setting time of the cement. This study provides a promising strategy for further research on bone defect repair.

BIOACTIVE MATERIALS (2022)

Article Radiology, Nuclear Medicine & Medical Imaging

The effect of tin prefiltration on extremity cone-beam CT imaging with a twin robotic X-ray system

K. S. Luetkens et al.

Summary: This study investigates the effect of tin filters in extremity cone-beam CT using a twin-robotic X-ray system. The results show that tin prefiltration can significantly reduce radiation dose, but it does not have an advantage in terms of image quality compared to copper prefiltration. Therefore, in extremity imaging, using a low-kilovolt scan protocol with copper prefiltration provides a better trade-off between dose reduction and image quality.

RADIOGRAPHY (2022)

Article Engineering, Biomedical

Augmentation of suture anchors with magnesium phosphate cement - Simple technique with striking effect

Philipp Heilig et al.

Summary: The study shows that the pullout strength and stiffness of suture anchors can be significantly increased in bone by filling it with magnesium phosphate cement. SwiveLock C anchors perform better when reinforced with additional FibreWire.

JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS (2022)

Article Chemistry, Physical

Experimental Drillable Magnesium Phosphate Cement Is a Promising Alternative to Conventional Bone Cements

Philipp Heilig et al.

Summary: Two new compositions of magnesium phosphate cements have been developed to meet clinical demands for high strength, injectability, and drillability. These cements exhibited a setting time of 5 min 30 s, compressive strength comparable to 12-13 MPa, and displacement of the reduced fracture <2 mm. The combination of these cements with screws also showed a higher maximum load until failure compared to using the cements alone.

MATERIALS (2021)

Review Polymer Science

A Review on the Enhancement of Calcium Phosphate Cement with Biological Materials in Bone Defect Healing

Sok Kuan Wong et al.

Summary: Calcium phosphate cement (CPC) is a promising material for bone defect treatment due to its various advantages, but it also has limitations that require modification and reinforcement. By mixing CPC with different biological materials, researchers have found solutions to improve the mechanical strength and osteogenic effects of the cement material.

POLYMERS (2021)

Article Engineering, Biomedical

Injectable Enzymatically Hardened Calcium Phosphate Biocement

Lubomir Medvecky et al.

JOURNAL OF FUNCTIONAL BIOMATERIALS (2020)

Review Orthopedics

Augmented Fixation for Fractures of the Appendicular Skeleton

Geoffrey Marecek et al.

JOURNAL OF THE AMERICAN ACADEMY OF ORTHOPAEDIC SURGEONS (2019)

Article Chemistry, Physical

Magnesium Phosphate Cement as Mineral Bone Adhesive

Theresa Brueckner et al.

MATERIALS (2019)

Article Dentistry, Oral Surgery & Medicine

Bone grafts: which is the ideal biomaterial?

Havard Jostein Haugen et al.

JOURNAL OF CLINICAL PERIODONTOLOGY (2019)

Article Engineering, Biomedical

Bone regeneration capacity of magnesium phosphate cements in a large animal model

Britta Kanter et al.

ACTA BIOMATERIALIA (2018)

Review Materials Science, Biomaterials

Magnesium Phosphate Cement Systems for Hard Tissue Applications: A Review

Nicole Ostrowski et al.

ACS BIOMATERIALS SCIENCE & ENGINEERING (2016)

Review Materials Science, Biomaterials

Magnesium Phosphate Cement Systems for Hard Tissue Applications: A Review

Nicole Ostrowski et al.

ACS BIOMATERIALS SCIENCE & ENGINEERING (2016)

Article Engineering, Biomedical

In vivo performance of novel soybean/gelatin-based bioactive and injectable hydroxyapatite foams

Anna Kovtun et al.

ACTA BIOMATERIALIA (2015)

Article Materials Science, Ceramics

Chelate Bonding Mechanism in a Novel Magnesium Phosphate Bone Cement

Theresa Christel et al.

JOURNAL OF THE AMERICAN CERAMIC SOCIETY (2015)

Review Surgery

The Rabbit as Experimental Model for Research in Implant Dentistry and Related Tissue Regeneration

Stefan Stuebinger et al.

JOURNAL OF INVESTIGATIVE SURGERY (2013)

Article Engineering, Biomedical

Novel magnesium phosphate cements with high early strength and antibacterial properties

Gemma Mestres et al.

ACTA BIOMATERIALIA (2011)

Article Biophysics

Evaluation of inherent toxicology and biocompatibility of magnesium phosphate bone cement

Yonglin Yu et al.

COLLOIDS AND SURFACES B-BIOINTERFACES (2010)

Article Engineering, Biomedical

In vivo behavior of three different injectable hydraulic calcium phosphate cements

D Apelt et al.

BIOMATERIALS (2004)