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Related Concept Videos

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Parenteral Drug Delivery Systems: Injectables, Implants, and Infusion Devices

Parenteral drug delivery systems play a crucial role in modern therapeutics by enabling the direct administration of drugs into the systemic circulation, bypassing the gastrointestinal tract. These systems are particularly valuable for poorly absorbed oral medications that are unstable in the digestive environment or require rapid onset or sustained therapeutic levels. Delivery is achieved through intravenous, intramuscular, or subcutaneous routes, each selected based on the drug's properties...
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Intrauterine Drug Delivery Systems

Controlled-release systems for intravaginal and intrauterine drug delivery have been developed primarily for the administration of contraceptive steroid hormones. These delivery routes circumvent first-pass hepatic metabolism, thereby enhancing bioavailability and allowing for reduced systemic dosages compared to oral administration. Such approaches contribute to improved therapeutic efficacy and patient compliance, particularly in long-term contraceptive regimens.Intravaginal Drug Delivery...
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Oral Drug Delivery Systems: Continuous-Release Systems

Continuous-release drug delivery systems offer a strategic approach to maintaining therapeutic drug levels over extended periods following oral administration. By modulating the release rate of active pharmaceutical ingredients, these systems minimize fluctuations in plasma concentrations, which enhances clinical efficacy and reduces the need for frequent dosing. Such characteristics make them particularly advantageous in managing chronic diseases where patient adherence and stable drug...

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Related Experiment Video

Updated: Jun 13, 2026

Real-Time Dynamic Navigation System for the Precise Quad-Zygomatic Implant Placement in a Patient with a Severely Atrophic Maxilla
05:54

Real-Time Dynamic Navigation System for the Precise Quad-Zygomatic Implant Placement in a Patient with a Severely Atrophic Maxilla

Published on: October 18, 2021

Dental implant systems.

Yoshiki Oshida1, Elif B Tuna, Oya Aktören

  • 1Department of Mechanical and Aerospace Engineering, Syracuse University, NY 13244, USA. yoshida@iupui.edu <yoshida@iupui.edu>

International Journal of Molecular Sciences
|May 19, 2010
PubMed
Summary

Dental implants require biological, mechanical, and morphological compatibility. This review examines these needs, surface texturing, and the overlooked issue of implants in growing patients, proposing an advanced system.

Keywords:
compatibilitydental implant systemgradual functional materialssurface engineeringtitanium materials

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Bioelectric Analyses of an Osseointegrated Intelligent Implant Design System for Amputees
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Bioelectric Analyses of an Osseointegrated Intelligent Implant Design System for Amputees

Published on: July 15, 2009

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Last Updated: Jun 13, 2026

Real-Time Dynamic Navigation System for the Precise Quad-Zygomatic Implant Placement in a Patient with a Severely Atrophic Maxilla
05:54

Real-Time Dynamic Navigation System for the Precise Quad-Zygomatic Implant Placement in a Patient with a Severely Atrophic Maxilla

Published on: October 18, 2021

Bioelectric Analyses of an Osseointegrated Intelligent Implant Design System for Amputees
14:31

Bioelectric Analyses of an Osseointegrated Intelligent Implant Design System for Amputees

Published on: July 15, 2009

Area of Science:

  • Biomaterials Science
  • Surface Engineering
  • Dental Implantology

Background:

  • Dental implants integrate multiple scientific disciplines, including surface chemistry, physics, and biomechanics.
  • Implants interface directly with vital tissues, necessitating stringent biological, mechanical, and morphological compatibility.
  • Magnetic Resonance Imaging (MRI) compatibility is an emerging consideration for dental implant materials.

Purpose of the Study:

  • To review critical requirements for dental implant systems, focusing on tissue compatibility and MRI compatibility.
  • To detail various surface texturing methods used in dental implant manufacturing.
  • To address the under-discussed implications of dental implants in growing patients.

Main Methods:

  • Comprehensive literature review of approximately 500 selected articles.
  • Analysis of requirements for biological, mechanical, and morphological compatibility.
  • Examination of surface texturing techniques and their impact on implant performance.

Main Results:

  • Established key requirements for dental implant success, including biocompatibility and mechanical integration.
  • Detailed various surface modification strategies for enhancing implant osseointegration.
  • Highlighted the controversy and lack of consensus regarding dental implants in pediatric and adolescent patients.

Conclusions:

  • A novel dental implant system integrating advanced materials science and surface technology is proposed.
  • The proposed system aims to enhance bio- and mechano-functionalities for improved clinical outcomes.
  • Further research is needed to address the specific challenges of implant placement in growing individuals.