Biomedical Engineering Applications

Biomedical engineering applications are the use of engineering principles, materials, and technologies to understand biology and improve the prevention, diagnosis, treatment, and rehabilitation of disease. They work by translating biological needs into measurable design requirements, then combining approaches such as biomechanics, biomaterials, electronics, and computational modeling to develop and test devices or therapies under physiological constraints. Applications include prosthetic limbs, medical imaging systems, biosensors, drug-delivery platforms, and tissue-engineered constructs. By connecting engineering with biology and clinical practice, this field improves patient care, supports personalized medicine, and advances the development of safer, more effective healthcare technologies.

Biomedical Engineering Applications - Related Videos

Research

JoVE Journal - Medicine

Generation of Alginate Microspheres for Biomedical Applications

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Cited by 33 •

2012

In the following sections, we outline procedures for the preparation of alginate microspheres for use in biomedical applications. We specifically illustrate a technique for creating multilayered alginate microspheres for the dual purpose of cell and protein encapsulation as a potential treatment for type 1 diabetes.

Synthesis of Keratin-based Nanofiber for Biomedical Engineering

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Cited by 12 •

2016

Electrospun nanofibers have a high surface area to weight ratio, excellent mechanical integrity, and support cell growth and proliferation. These nanofibers have a wide range of biomedical applications. Here we fabricate keratin/ PCL nanofibers, using the electrospinning technique, and characterize the fibers for possible applications in tissue engineering.

Fabricating Superhydrophobic Polymeric Materials for Biomedical Applications

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Cited by 4 •

2015

Two- and three-dimensional superhydrophobic polymeric materials are prepared by electrospinning or electrospraying biodegradable polymers blended with a lower surface energy polymer of similar composition.

Fabrication of Mechanically Tunable and Bioactive Metal Scaffolds for Biomedical Applications

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Cited by 11 •

2015

Bioactive and mechanically reliable metal scaffolds have been fabricated through a method which consists of two processes, dynamic freeze casting for the fabrication of porous Ti, and coating and densification of the Ti scaffolds. The densification process is simple, effective and applicable to the fabrication of functionally graded scaffolds.

Designing Silk-silk Protein Alloy Materials for Biomedical Applications

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Cited by 2 •

2014

Blending is an efficient approach to generate biomaterials with a broad range of properties and combined features. By predicting the molecular interactions between different natural silk proteins, new silk-silk protein alloy platforms with tunable mechanical resiliency, electrical response, optical transparency, chemical processability, biodegradability, or thermal stability can be designed.

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