| Literature DB >> 27999672 |
Hsiu-Wan Meng1, Esther Yun Chien2, Hua-Hong Chien3.
Abstract
BACKGROUND: The purpose of this article is to review and update the current developments of biologically active dental implant surfaces and their effect on osseointegration.Entities:
Keywords: Bioactive surface modification; Dental implant; Osseointegration
Year: 2016 PMID: 27999672 PMCID: PMC5155396 DOI: 10.1186/s40364-016-0078-z
Source DB: PubMed Journal: Biomark Res ISSN: 2050-7771
Surface modification of dental implants with BMPs
| Author | Animal – bone site | Mode of surface modification | Length of study | Findings |
|---|---|---|---|---|
| Becker et al. [ | Dog – mandible and tibia | 1. C: sand-blasted and acid-etched | 4 weeks | BIC and BD: BMP-B > BMP-A > CSA > C |
| Lan et al. [ | Rabbit - femur | 1. A: with rhBMP-2 | 12 weeks | - Pull-out strength: A (36.5 N) > B (27.6 N) |
| Liu et al. [ | Pig – maxilla | 1. Ti + CaP + BMP-2 inc | 3 weeks | - Bone volume was highest for Ti & CaP and lowest for CaP/BMP-2 ads |
| Wikesjo et al. [ | Dog - mandible | 1. TPO + rhBMP-2 (0.2 mg/ml) ads | 8 weeks | % of BIC: |
| Wikesjo et al. [ | Monkey - maxilla | 1. TPO + rhBMP-2 (2.0 mg/ml) ads | 16 weeks | % of BIC |
| Huh et al. [ | Dog - mandible | 1. rhBMP-2 coated implants | 8 weeks | % of BIC |
| Hunziker et al. [ | Pig - maxilla | 1. Ti | 1, 2, and 3 weeks | Volume fraction of total bone |
| Kim et al. [ | Dog - mandible | 1. SLA (control) | 8 weeks | % of BIC |
CSA chromosulfuric acid surface-enhanced; BIC bone to implant contact; BD bone density; Ti titanium; CaP calcium phosphate; BMP bone morphogenetic protein; inc incorporated; ads adsorbed; TPO titanium porous oxide; SLA sandblasted and acid-etched surface
Surface modification of dental implants with other growth factors
| Author | Animal – bone site | Mode of surface modification | Length of study | Findings |
|---|---|---|---|---|
| Anitua [ | Goat – tibia and radius | 1. Ti (control) | 8 weeks | % of BIC |
| Lan et al. [ | Rabbit - femur | 1. Group 1: rhBMP-2 (1.0 mg) + rhbFGF (200 μg) | 4 and 8 weeks | % of new bone formation |
| Park et al. [ | Rabbit - tibia | 1. Group 1: anodized under constant 300 voltage | 12 weeks | Mean removal torque value |
| Nikolidakis et al. [ | Goat – femoral condyle | 1. Control: Ti | 6 weeks | % of BIC |
| Schouten et al. [ | Goat – Femoral condyle | 1. Screw type implant: St | 12 weeks | % of BIC |
| Lee et al. [ | Rabbit – tibia | 1. Group 1: anodized (under 300 voltage) | 12 weeks | % of BIC |
| Ramazanoglu et al. [ | Pig – frontal skull | 1. AE (control) | 1, 2, and 4 weeks | % of BIC for ROI 1 + 4 |
| Schliephake et al. [ | Rat - tibia | 1. SAE (control) | 1, 4, and 13 weeks | % of BIC for 1 and 4 weeks |
Ti titanium implant surface; BIC bone to implant contact; PRGF human plasma-rich growth factor; hrBMP-2 recombinant human bone morphogenetic protein-2; rhbFGF recombinant human basic fibroblast growth factor; rhIGF-1 recombinant human insulin-like growth factor; FGF-FN fibroblast growth factor-fibronectin; TGF-β1 transforming growth factor β1; St screw type implant; Pi push-in type implant; CaP calcium phosphate coating; PLGA poly(lactide-co-glycolide); bFGF basic fibroblast growth factor; AE acid-etched; VEGF vascular endothelial growth factor; CaP calcium phosphate; SAE sandblasted and acid-etched; OAS DNA oligonucleotide anchor strands
Surface modification of dental implants with peptides
| Author | Animal – bone site | Surface modification | Length of study | Findings |
|---|---|---|---|---|
| Germanier et al. [ | Pig – maxilla | 1. SLA (control) | 2 and 4 weeks | % of BIC |
| Barros et al. [ | Dog – mandible | 1. A: microstructured + HA + low concentrated (20 μg/ml) peptide | 12 weeks | % of BIC |
| Yang et al. [ | Rabbit – femur and tibia | 1. Control: uncoated | 4, 8, and 12 weeks | % of BIC |
| Lutz et al. [ | Pig – forehead | 1. Group A: HA | 14 and 30 days | % of BIC for ROI A and ROI B, respectively |
| Yoo et al. [ | Rabbit - tibia | 1. Anodized Ti implant (control) | 3 and 7 weeks | % of BIC (total) |
SLA sandblasted and acid-etched surface; PLL-g-PEG poly(L-lysine)-graft-poly(ethylene glycol); RDG Arg-Asp-Gly; RGD Arg-Gly-Asp; BIC bone to implant contact; BD bone density; HA hydroxyapatite; P-15 P-15 peptide; ROI region of interest
Modification of dental implant surfaces with ECM
| Author | Animal – bone site | Surface modification | Length of study | Findings |
|---|---|---|---|---|
| Morra et al. [ | Rabbit – femur | 1. pTi: anodization of titanium implant | 4 weeks | % of BIC |
| Schliephake et al. [ | Dog - mandible | 1. Machined titanium surface (control) | 1 and 3 months | % of BIC |
| Stadlinger et al. [ | Pig – mandible | 1. Coll: collagen type I | 22 weeks | % of BIC |
| Ferguson et al. [ | Sheep – pelvis | 1. Ti: sandblasted and acid-etched titanium | 8 weeks | Removal torque values at 8 weeks (N-mm) |
| Stadlinger et al. [ | Pig – mandible | 1. Coll: collagen coated Ti | 3, 4, 5 and 6 weeks | % of BIC at 3, 4, 5, and 6 weeks Total |
| Stadlinger et al. [ | Pig – mandible | 1. Coll: collagen | 6 months | % of BIC |
| Langhoff et al. [ | Sheep – pelvis | 1. Control: sandblasted and acid-etched Ti | 8 weeks | - All implants were well osseointegrated |
| Schliephake et al. [ | Dog – mandible | 1. MS: machined surface | 4 and 12 weeks | % of BIC |
| Stadlinger et al. [ | Pig – mandible | 1. Control: sandblasted and acid-etched Ti | 1 and 2 months | % of BIC for the entire implant at 1 and 2 months |
| Morra et al. [ | Rabbit – femur and tibia | 1. Ti: acid-etched titanium | 2 and 4 weeks | % of BIC was significantly higher around CollTi when compared with Ti both in femur and tibia at 2 weeks. No significant differences were observed at 4 weeks. |
| Alghamdi et al. [ | Dog - mandible | 1. Ti (control) | 4 and 12 weeks | Overall BV |
| Stadlinger et al. [ | Pig - maxilla | 1. SAE | 4 and 8 weeks | % of BIC |
| Lee et al. [ | Rabbit - tibia | 1. AE (control) | 6 weeks | % of BIC |
ECM extracellular matrix; HA hydroxyapatite; BVD newly formed peri-implant bone; BMP-4 bone morphogenetic protein-4; Ti titanium implant; ISQ implant stability quotient; CaP calcium phosphate; Bisphos bisphosphonate; CS chondroitin sulfate; DC decorin; TGF-β1 transforming growth factor β1; rhBMP-4 recombinant human bone morphogenetic protein-4; RGD RGD peptide; SH sulfate hyaluronan; AE acid-etched