Literature DB >> 20861057

Gene therapy during cardiac surgery: role of surgical technique to minimize collateral organ gene expression.

Michael G Katz1, JaBaris D Swain, Anthony S Fargnoli, Charles R Bridges.   

Abstract

Effective gene therapy for heart failure has not yet been achieved clinically. The aim of this study is to quantitatively assess the cardiac isolation efficiency of the molecular cardiac surgery with recirculating delivery (MCARD™) and to evaluate its efficacy as a means to limit collateral organ gene expression. 10(14) genome copies (GC) of recombinant adeno-associated viral vector 6 encoding green fluorescent protein under control of the cytomegalovirus promoter was delivered to the nine arrested sheep hearts. Blood samples were assessed using real-time quantitative polymerase chain reaction (RT QPCR). Collateral organ gene expression was assessed at four-weeks using immunohistochemical staining. The blood vector GC concentration in the cardiac circuit during complete isolation trended from 9.59±0.73 to 9.05±0.65 (log GC/cm(3)), and no GC were detectable in the systemic circuit (P<0.001). The washing procedure performed prior to relinquishing the cardiac circuit decreased the systemic blood vector GC concentration >800-fold (P<0.001), consistent with >99% isolation efficiency. Conversely, incomplete isolation resulted in equalization of vector GC concentration in the circuits, leading to robust collateral organ gene expression. MCARD™ is an efficient, clinically translatable myocardial delivery platform for cardiac specific gene therapy. The cardiac surgical techniques utilized are critically important to limit collateral organ gene expression.

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Year:  2010        PMID: 20861057      PMCID: PMC3690494          DOI: 10.1510/icvts.2010.244301

Source DB:  PubMed          Journal:  Interact Cardiovasc Thorac Surg        ISSN: 1569-9285


  15 in total

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Authors:  Charles R Bridges; James M Burkman; Ramin Malekan; Stephane M Konig; Haiyan Chen; Charles B Yarnall; Timothy J Gardner; Alan S Stewart; Mark M Stecker; Terry Patterson; Hansell H Stedman
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3.  Cardiac gene delivery with cardiopulmonary bypass.

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4.  Efficient myocyte gene delivery with complete cardiac surgical isolation in situ.

Authors:  Charles R Bridges; Kapil Gopal; David E Holt; Charles Yarnall; Steven Cole; Rochelle B Anderson; Xiaoqing Yin; Anthony Nelson; Benjamin W Kozyak; Zhonglin Wang; James Lesniewski; Leonard T Su; Danielle M Thesier; Hari Sundar; Hansell H Stedman
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Review 5.  Cardiac gene therapy: optimization of gene delivery techniques in vivo.

Authors:  Michael G Katz; JaBaris D Swain; Jennifer D White; David Low; Hansell Stedman; Charles R Bridges
Journal:  Hum Gene Ther       Date:  2010-04       Impact factor: 5.695

6.  Is there a safe limit to coronary sinus pressure during retrograde cardioplegia?

Authors:  C C Eke; S R Gundry; N Fukushima; L L Bailey
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7.  Retrograde coronary sinus perfusion: a method of myocardial protection in the dog during left coronary artery occlusion.

Authors:  G L Hammond; A L Davies; W G Austen
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8.  Comparative macroanatomic investigations of the venous drainage of the heart in Akkaraman sheep and Angora goats.

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9.  Coronary sinus ostial occlusion during retrograde delivery of cardioplegic solution significantly improves cardioplegic distribution and efficacy.

Authors:  E Rudis; R N Gates; H Laks; D C Drinkwater; A Ardehali; A Aharon; P Chang
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10.  Adenoviral gene transfer to the heart during cardiopulmonary bypass: effect of myocardial protection technique on transgene expression.

Authors:  J M Jones; K H Wilson; W J Koch; C A Milano
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  3 in total

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Journal:  Hum Gene Ther Clin Dev       Date:  2017-11-27       Impact factor: 5.032

2.  A pharmacokinetic analysis of molecular cardiac surgery with recirculation mediated delivery of βARKct gene therapy: developing a quantitative definition of the therapeutic window.

Authors:  Anthony S Fargnoli; Michael G Katz; Charles Yarnall; Marina V Sumaroka; Hansell Stedman; Joseph J Rabinowitz; Walter J Koch; Charles R Bridges
Journal:  J Card Fail       Date:  2011-06-14       Impact factor: 5.712

Review 3.  Gene delivery technologies for cardiac applications.

Authors:  M G Katz; A S Fargnoli; L A Pritchette; C R Bridges
Journal:  Gene Ther       Date:  2012-03-15       Impact factor: 5.250

  3 in total

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