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The influence of alendronate on osseointegration of nanotreated dental implants in New Zealand rabbits

Identifieur interne : 003637 ( Main/Exploration ); précédent : 003636; suivant : 003638

The influence of alendronate on osseointegration of nanotreated dental implants in New Zealand rabbits

Auteurs : Efstathia Tsetsenekou [Grèce] ; Triantafillos Papadopoulos [Grèce] ; Demos Kalyvas [Grèce] ; Nikos Papaioannou [Grèce] ; Stefan Tangl [Autriche] ; Georg Watzek [Autriche]

Source :

RBID : ISTEX:619C09960FA93143E9494226F81176EB3BDCFDDD

Descripteurs français

English descriptors

Abstract

Objectives: Growing clinical demands for stronger and faster bone bonding to the implant have motivated the development of methods enhancing osseointegration. Lately, the application of bisphosphonates (bis) in order to optimize bone healing has become a topic of great interest. N‐containing bis, such as alendronate (ALN), are the more potent drugs of this class. It was the aim of this study to determine the effect of ALN on the osseointegration of a well‐documented nanotreated implant system in a rabbit femoral condyle model.

Url:
DOI: 10.1111/j.1600-0501.2011.02189.x


Affiliations:


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Le document en format XML

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<term>Alendronate</term>
<term>Alveolar bone</term>
<term>Biomedical materials research</term>
<term>Bisphosphonates</term>
<term>Bone</term>
<term>Bone areas</term>
<term>Bone density</term>
<term>Bone formation</term>
<term>Bone healing</term>
<term>Bone integration</term>
<term>Bone loss</term>
<term>Bone quality</term>
<term>Bone regeneration</term>
<term>Bone tissue</term>
<term>Calcium phosphate</term>
<term>Cancellous</term>
<term>Cancellous bone</term>
<term>Canine study</term>
<term>Clin</term>
<term>Clinical demands</term>
<term>Clinical practice</term>
<term>Common environment</term>
<term>Condyle</term>
<term>Control group</term>
<term>Control groups</term>
<term>Cortical</term>
<term>Cortical bone</term>
<term>Cortical compartment</term>
<term>Dental implant osseointegration</term>
<term>Dental implants</term>
<term>Dental school</term>
<term>Distal part</term>
<term>Early stages</term>
<term>Endosseous implants</term>
<term>Femoral</term>
<term>Femoral condyle</term>
<term>Femur</term>
<term>Georg watzek</term>
<term>Good integration</term>
<term>Great interest</term>
<term>Healing period</term>
<term>Healing periods</term>
<term>Healthy postmenopausal women</term>
<term>Histological</term>
<term>Histological evaluation</term>
<term>Histological osseointegration</term>
<term>Histomorphometric evaluation</term>
<term>Histomorphometric study</term>
<term>Impl</term>
<term>Implant</term>
<term>Implant innovations</term>
<term>Implant insertion</term>
<term>Implant integration</term>
<term>Implant osseointegration</term>
<term>Implant surface</term>
<term>Implants research</term>
<term>International journal</term>
<term>Intramuscular injection</term>
<term>Intravenous administration</term>
<term>John wiley sons</term>
<term>John wiley sons tsetsenekou</term>
<term>Lamellar</term>
<term>Lamellar bone</term>
<term>Lateral epicondyle</term>
<term>Long axis</term>
<term>Marrow space</term>
<term>Maxillofacial</term>
<term>Maxillofacial surgery</term>
<term>Medical university</term>
<term>Medullary</term>
<term>Meraw reeve</term>
<term>Nanotreated</term>
<term>Narrow structures</term>
<term>Obvious differences</term>
<term>Oral impl</term>
<term>Oral maxillofacial implants</term>
<term>Oral pathology</term>
<term>Oral surgery</term>
<term>Orthopaedic research</term>
<term>Osseointegrated implants</term>
<term>Osseointegration</term>
<term>Osseous healing</term>
<term>Other hand</term>
<term>Ovarian vessels</term>
<term>Ovariectomized rabbits</term>
<term>Periostal</term>
<term>Periostal compartment</term>
<term>Periostal compartments</term>
<term>Periprosthetic bone loss</term>
<term>Plexiform bone</term>
<term>Regeneration</term>
<term>Regenerative processes</term>
<term>Representative sections</term>
<term>Secondary lamellar bone</term>
<term>Standard deviations</term>
<term>Success rate</term>
<term>Systemic administration</term>
<term>Tissue volume</term>
<term>Titanium</term>
<term>Titanium implants</term>
<term>Total knee arthroplasty</term>
<term>Trabecula</term>
<term>Tsetsenekou</term>
<term>Weeks alendronate control</term>
<term>Wider portions</term>
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<term>Alendronate</term>
<term>Alveolar bone</term>
<term>Biomedical materials research</term>
<term>Bisphosphonates</term>
<term>Bone</term>
<term>Bone areas</term>
<term>Bone density</term>
<term>Bone formation</term>
<term>Bone healing</term>
<term>Bone integration</term>
<term>Bone loss</term>
<term>Bone quality</term>
<term>Bone regeneration</term>
<term>Bone tissue</term>
<term>Calcium phosphate</term>
<term>Cancellous</term>
<term>Cancellous bone</term>
<term>Canine study</term>
<term>Clin</term>
<term>Clinical demands</term>
<term>Clinical practice</term>
<term>Common environment</term>
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<term>Control group</term>
<term>Control groups</term>
<term>Cortical</term>
<term>Cortical bone</term>
<term>Cortical compartment</term>
<term>Dental implant osseointegration</term>
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<term>Early stages</term>
<term>Endosseous implants</term>
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<term>Femur</term>
<term>Georg watzek</term>
<term>Good integration</term>
<term>Great interest</term>
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<term>Healing periods</term>
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<term>Histological evaluation</term>
<term>Histological osseointegration</term>
<term>Histomorphometric evaluation</term>
<term>Histomorphometric study</term>
<term>Impl</term>
<term>Implant</term>
<term>Implant innovations</term>
<term>Implant insertion</term>
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<term>Periprosthetic bone loss</term>
<term>Plexiform bone</term>
<term>Regeneration</term>
<term>Regenerative processes</term>
<term>Representative sections</term>
<term>Secondary lamellar bone</term>
<term>Standard deviations</term>
<term>Success rate</term>
<term>Systemic administration</term>
<term>Tissue volume</term>
<term>Titanium</term>
<term>Titanium implants</term>
<term>Total knee arthroplasty</term>
<term>Trabecula</term>
<term>Tsetsenekou</term>
<term>Weeks alendronate control</term>
<term>Wider portions</term>
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<front>
<div type="abstract">Objectives: Growing clinical demands for stronger and faster bone bonding to the implant have motivated the development of methods enhancing osseointegration. Lately, the application of bisphosphonates (bis) in order to optimize bone healing has become a topic of great interest. N‐containing bis, such as alendronate (ALN), are the more potent drugs of this class. It was the aim of this study to determine the effect of ALN on the osseointegration of a well‐documented nanotreated implant system in a rabbit femoral condyle model.</div>
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