Literature DB >> 11533926

Local drug and gene delivery through microbubbles.

E C Unger1, E Hersh, M Vannan, T O Matsunaga, T McCreery.   

Abstract

Ultrasound contrast agents (microbubbles) lower the threshold for cavitation by ultrasound energy. Ultrasound microbubbles may be used as cavitation nuclei for drug and gene delivery. By tailoring the physical properties of microbubbles and coating materials, drugs and genetic drugs can be incorporated into ultrasound contrast agents. As the microbubbles enter the region of insonation, the microbubbles cavitate, locally releasing the therapeutic agents. Cavitation also causes a local shockwave that improves cellular uptake of the therapeutic agent. As a result of the human genome project and continuing advances in molecular biology, many therapeutic genes have been discovered. In the cardiovascular system, gene therapy has the potential to improve myocardial vascularization and ameliorate congestive heart failure. For successful development of clinical gene therapy, however, effective gene delivery vectors are needed. Ultrasound contrast agents can be used to develop new, more effective vectors for gene delivery. Transthoracic ultrasound can be focused on the heart so that an intravenous injection of gene-bearing microbubbles will deliver genes relatively selectively to the myocardium. Using this technique, we have produced high levels of transgene expression in the insonated region of the myocardium. This new technology, using microbubbles and ultrasound for drug and gene delivery, merits further study and development. Copyright 2001 by W.B. Saunders Company.

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Year:  2001        PMID: 11533926     DOI: 10.1053/pcad.2001.26443

Source DB:  PubMed          Journal:  Prog Cardiovasc Dis        ISSN: 0033-0620            Impact factor:   8.194


  49 in total

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Journal:  J Control Release       Date:  2018-11-29       Impact factor: 9.776

Review 2.  [Ultrasound contrast agents--physical basics].

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Review 3.  Nonviral gene delivery: what we know and what is next.

Authors:  Xiang Gao; Keun-Sik Kim; Dexi Liu
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4.  Microbubbling by co-axial electrohydrodynamic atomization.

Authors:  U Farook; E Stride; M J Edirisinghe; R Moaleji
Journal:  Med Biol Eng Comput       Date:  2007-07-12       Impact factor: 2.602

5.  Novel methods for preparing phospholipid coated microbubbles.

Authors:  K P Pancholi; U Farook; R Moaleji; E Stride; M J Edirisinghe
Journal:  Eur Biophys J       Date:  2007-08-09       Impact factor: 1.733

6.  Application of ultrasound microbubble contrast technology in ophthalmic targeted therapy: literature analysis.

Authors:  Jia-Ying Yuan; Jian-Hua Zhang; Chong Tang; Hong Zhu; Hua Xie; Shuan-Jie Gao
Journal:  Int J Ophthalmol       Date:  2011-10-18       Impact factor: 1.779

7.  Nanomedicine: Addressing Cardiovascular Disease and Cardiovascular Tissue Regeneration.

Authors:  Rebekah A Neal; Olugbemisola Oredein-McCoy; Edward A Botchwey
Journal:  Curr Bioact Compd       Date:  2009

Review 8.  Contrast enhanced ultrasound imaging.

Authors:  Steven B Feinstein; Blai Coll; Daniel Staub; Dan Adam; Arend F L Schinkel; Folkert J ten Cate; Kai Thomenius
Journal:  J Nucl Cardiol       Date:  2010 Jan-Feb       Impact factor: 5.952

9.  A micrometer-sized ultrasound contrast agent with nanometer-scale polygonal patterning surfaces.

Authors:  Zhonghua Teng; Shiping Cao; Wei Li; Li Yang; Wen Shi; Yuegang Wang; Juefei Wu; Jianping Bin
Journal:  J Med Ultrason (2001)       Date:  2014-05-27       Impact factor: 1.314

10.  The Roles of Tight Junctions and Claudin-1 in the Microbubble-Mediated Ultrasound-Induced Enhancement of Drug Concentrations in Rat Prostate.

Authors:  Yonggang Shang; Xiaoxiao Dong; Guangwei Han; Jia Li; Dong Cui; Chengcheng Liu; Longkun Li; Shanhong Yi
Journal:  J Membr Biol       Date:  2015-08-20       Impact factor: 1.843

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