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Content Provider | IEEE Xplore Digital Library |
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Author | Mishima, F. Nakagawa, K. Chuzawa, M. Mori, T. Akiyama, Y. Nishijima, S. |
Copyright Year | 2002 |
Abstract | To solve the problems of side effects and medicinal lowering, studies on the magnetic drug delivery system (MDDS) have been applied. MDDS is a technique to accumulate drugs by using magnetic force as the physical driving force. It is necessary to apply a strong external magnetic field and high magnetic gradient to accumulate the ferromagnetic drugs to a deep diseased part noninvasively. However, by applying a static magnetic field from one direction, the drug accumulates only at the body surface near the magnet. In this study, we proposed a new method of MDDS in which a high-temperature superconducting (HTS) bulk magnet rotates around a target part. First, the particle trajectory simulation was conducted to examine the drug kinetics in a capillary blood vessel under the condition of rotating a magnet. Based on the results, the accumulation experiments of ferromagnetic particles with model blood vessels were conducted. As a result, the accumulation possibility of the ferromagnetic particles in the deep targeted part of the body was confirmed. |
Sponsorship | Council on Superconductivity Appl. Superconductivity Conference Inc MIT |
Starting Page | 4400704 |
Ending Page | 4400704 |
Page Count | 1 |
File Size | 411946 |
File Format | |
ISSN | 10518223 |
Volume Number | 23 |
Issue Number | 3 |
Language | English |
Publisher | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
Publisher Date | 2013-06-01 |
Publisher Place | U.S.A. |
Access Restriction | One Nation One Subscription (ONOS) |
Rights Holder | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
Subject Keyword | Superconducting magnets High temperature superconductors Magnetic fields Magnetic flux Drugs Force Trajectory targeted drug delivery Magnetic forces magnetic particles superconducting magnets |
Content Type | Text |
Resource Type | Article |
Subject | Condensed Matter Physics Electronic, Optical and Magnetic Materials Electrical and Electronic Engineering |
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