Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Biomedical Technology”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 109 records · Page 6Linked to original sources

Roles for learning sciences and learning technologies in biomedical engineering education: a review of recent advances.

Education in biomedical engineering offers a number of challenges to all constituents of the educational process-faculty, students, and employers of graduates. Although biomedical engineering educational systems have been under development for 40 years, interest in and the pace of development of these programs has accelerated in recent years. New advances in the learning sciences have provided a framework for the reexamination of instructional paradigms in biomedical engineering. This work shows that learning environments should be learner centered, knowledge centered, assessment centered, and community centered. In addition, learning technologies offer the potential to achieve this environment with efficiency. Biomedical engineering educators are in a position to design and implement new learning systems that can take advantage of advances in learning science, learning technology, and reform in engineering education.

Biomedical Engineering↗

In-house development of test equipment for quality control and training. Case study: a prototype ECG simulator-tester.

The support services for biomedical technology address a variety of technical and administrative issues, concerning the safe and efficient operation of medical equipment over the period of its intended use and the training of hospital personnel in issues concerning safety and quality. Clinical Engineering Departments undertake the responsibility of developing and operating training programs in medical equipment utilisation apart from the traditional role of training and supervising technicians involved in testing, calibration and preventive/corrective maintenance of electromedical equipment. In view of the above, the Institute of Biomedical Technology and the Centre of Biomedical Engineering collaborated for the design and development of a prototype digital ECG and arrhythmia simulator. In the absence of internationally accepted inspection protocols for ECG simulators, the verification phase of the project involved mainly the inspection of the device's conformity to its initial technical specifications. The results demonstrated that this tester. due to simplicity in construction and easiness of use could be a practical, reliable and economical solution for electrocardiograph and ECG monitor testing and waveform recognition training.

Arrhythmias, Cardiac↗

Embryo manipulation and experimentation.

I have argued that early human embryos are not human beings, and do not have normal rights. Like human sperm and ova, they are both alive and biologically human. However, they lack the physiological development necessary to sustain a capacity for sentience. If Ford is right, then they are not yet individual human organisms. But the more important point is that their lack of a capacity for sentience makes them inappropriate candidates for the ascription of moral rights. Thus, research on human embryos produced in vitro is not a wrong against them--at least so long as experimentally manipulated embryos are not returned to the womb, or artificially gestated to a stage at which they might become sentient. Some of the more difficult issues about embryo experimentation involve the rights of women as experimental subject and donors. The consent of both male and female gamete donors should normally be required for the production or experimental use of IVF embryos. (Possible exceptions might include cases in which one or both progenitors have died, and the survivor or other responsible family member wished to donate the (frozen) IVF embryos for research or other uses.) However, it is women's rights that are most apt to be endangered, for example, if the large scale therapeutic or commercial use of human embryos leads to a demand for large numbers of ova. Thus, it is vital that researchers and policy-makers heed feminist concerns about embryo research and the new biomedical technologies it may yield. Given adequate information and appropriate procedural protections, women are capable of making autonomous decisions about donating ova or embryos for biomedical research. But regulatory safeguards are needed to ensure against their being coerced, deceived, or manipulated into becoming ovum or embryo donors. As Daniel Callahan has detailed, biomedical technology has reached the point where we can no longer afford to provide everyone with all of the innovative therapies that might prove beneficial (Callahan, 1989, p 523). Thus, questions about the just and cost-effective distribution of medical resources will become increasingly difficult and important. Among these questions will be whether it is wise or just to invest large sums in the development of innovative methods of assisting human reproduction. We must also consider the interests of future persons who may suffer because of the methods used to bring them into existence.(ABSTRACT TRUNCATED AT 400 WORDS)

Beginning of Human Life↗

Development of a new Clinical Engineering Management Tool & Information System (CLE-MANTIS).

The evolution of the field of biomedical technology has led to the diffusion of an impressive number of medical devices into healthcare institutions. In this environment, Clinical Engineering Departments (CEDs) are expanding their role in healthcare technology management, by changing their structure and introducing quality systems in order to improve their services and monitor the outcomes. In the framework of the national project BIOTECHNET II, a software tool for the management of biomedical technology, named CLE-MANTIS, has been developed, with the aim to assist CEDs in their tasks. CLE-MANTIS functions include the upkeep of an inventory, the support and monitoring of scheduled maintenance, corrective maintenance, vigilance, equipment acquisition and replacement, service contract management and user training. The system offers clinical engineers the possibility to monitor and evaluate the quality and cost-effectiveness of their departments through the monitoring of quality and cost indicators. This paper presents the main features and functions of the system.

Biomedical Engineering↗

Microarray technology in biomedical research.

Microarrays have dozens to millions of probes attached to an inert surface allowing high-throughput analyses of many biologic processes to be performed simultaneously on the same sample. Microarrays with nucleic acid probes are now widely used for gene expression analysis, DNA re-sequencing, single nucleotide polymorphism genotyping, and comparative genomic hybridization. This technology is accelerating research in many fields and now microarrays are moving into clinical application. This review discusses how the microarray facility at the new Kaka'ako campus of the John A. Burns School of Medicine will impact molecular diagnostics, pathogen detection, oncology, and pharmacogenomics.

Biomedical Research↗

[Application of DNA chip technology to biomedical research].

The completion of Human Genome Project enabled us to access to the information on nucleotide sequences of whole human genome. One of the most valuable information on human genome would be the list of approximately 35,000 genes. Although 35% of them are still needed to annotate their functions, we can genome-widely approach to various conditions including disease states. To analyze bunch of information at once, we need high-throughput technology containing most of genes. DNA chip successfully provide a stable platform technology for the massive screening of genomes. Microarrays can be used to obtain genome-wide fingerprint on transcriptional changes in various physiological and pathological conditions, leading to the mining novel genes related to those specific states. We can check the multiple molecular markers for diagnosis, prediction or prognosis of specific diseases. Data from microarray will provide huge amounts of experssion profile, which might induce the transformation of biomedical research.

Base Sequence↗

Project support of practical training in biophysics.

The Department of Biophysics ensures practical training in biophysics and related subjects for students of medical and health study programmes. Demonstrations of medical technology are an important part of this training. Teaching for Faculty of Sciences in biophysical study programmes becomes also very important. Some lectures and demonstrations of technology are involved, but the practical trainig is missing. About 1 mil. CZK for additional laboratory equipment was obtained from the HEIDF project No. 1866/ 2005 "The demonstration and measuring technology for education in medical biophysics and radiological physics" for measuring system DEWETRON for high frequency signal analysis, Fluke Ti30 IR camera, PM 9000B patient monitor, ARSENAL AF 1 fluorescence microscope, and Nikon Coolpix 4500 digital camera with accessories for microphotography. At the present time, further financial resources are being provided by a development project of Ministry of Education "Inter-university co-operation in biomedical technology and engineering using top technologies" in total amount of almost 5 mil CZK, whereas over 2 mil CZK from this project are reserved for student laboratory equipment. The main goal of this project is to ensure the participation of Medical Faculty in educational co-operation in the biomedical technology and engineering, namely with the Faculty of Electrical Engineering and Communication (FEEC), Brno University of Technology. There will be taught those areas of biophysics which are not covered by FEEC, thus forming a separate subject "General Biophysics". The following instruments will be installed: UV-VIS spectrophotometers, rotation viscometers, tensiometers, microscopes with digital image processing, cooled centrifuge, optical benches, and some smaller instruments for practical measurements.

Biophysics↗

Dolly, Polly and other 'ollys': likely impact of cloning technology on biomedical uses of livestock.

The idea of generating transgenic livestock which secrete into their milk large quantities of proteins for therapeutic use, was pioneered in the late 1980s with the disclosure of the production of a number of transgenic sheep. One particular animal, a sheep called Tracy, produced milk where over 50% of the protein consisted of human alpha 1 anti-trypsin. Sheep-derived protein has now entered clinical trials for cystic fibrosis (UK, USA) and congenital emphysema (UK). There are many other examples where this technology is making inroads into more traditional ways of making biopharmaceuticals. However, although robust, this technology has several limitations, including an inability to allow targeted insertion/modification of the animal genome, long timelines to production flocks/herds, and the rather unpredictable expression levels seen when different transgenic founders are compared. We believe that there is now a technical solution to all of these problems. Dolly is a high profile example of a new technology comprising the generation of identical animals from cultured somatic cells. This work has many implications. In the commercial context, the real benefits of this advance will be seen when genetically engineered somatic cells are shown to be suitable nuclear donors, and particularly when the manipulations are targeted to pre-determined sites in the host cell genome. The first objective has now been achieved with the birth of Polly, a cloned sheep which contains the human gene encoding Factor IX, a protein involved in preventing haemophilia.

Animal Husbandry↗

Micromachining technology and biomedical engineering.

Medical science and clinical medicine include many microscopic environments. Recent micromachining techniques fit the microscopic environments and are applied to microsurgery, fiberscopic operation, micromanipulation, artificial organs, and drug delivery systems. Microactuators, microsensors, and micro mechanical parts will be prepared for such medical devices and techniques. Virtual reality, stereovision, and fiber imaging support handling of cells and small targets of living body. The paper reports some perspectives of microtechnologies in biomedical engineering.

Angioplasty, Laser↗

Electrospray ionization and matrix-assisted laser desorption ionization mass spectrometry. Emerging technologies in biomedical sciences.

Tremendous progress in biomedical sciences has been made possible in part by recent advances in bioanalytical methods, in particular biological mass spectrometry. Since the introduction of electrospray ionization mass spectrometry (ESI-MS) in 1984 and matrix-assisted laser desorption ionization mass spectrometry (MALDI-MS) in 1988, the field of bioanalytical mass spectrometry has seen rapid growth. In concert with separation techniques such as capillary electrophoresis and high performance liquid chromatography, mass spectrometry allows characterization of a large array of small organic molecules, peptides, proteins, oligonucleotides, and RNA fragments. Thus, substantially more expedient and definitive determination of molecular weight is now possible by mass spectrometric analysis. In this commentary, general descriptions of ESI- and MALDI-MS are presented. Furthermore, several recent developments and applications in addressing difficult biological problems are discussed.

Forecasting↗