Skip to main content
Top
Published in: European Journal of Nuclear Medicine and Molecular Imaging 1/2007

01-06-2007

Radionuclide reporter gene imaging for cardiac gene therapy

Authors: Masayuki Inubushi, Nagara Tamaki

Published in: European Journal of Nuclear Medicine and Molecular Imaging | Special Issue 1/2007

Login to get access

Abstract

Introduction

In the field of cardiac gene therapy, angiogenic gene therapy has been most extensively investigated. The first clinical trial of cardiac angiogenic gene therapy was reported in 1998, and at the peak, more than 20 clinical trial protocols were under evaluation. However, most trials have ceased owing to the lack of decisive proof of therapeutic effects and the potential risks of viral vectors. In order to further advance cardiac angiogenic gene therapy, remaining open issues need to be resolved: there needs to be improvement of gene transfer methods, regulation of gene expression, development of much safer vectors and optimisation of therapeutic genes. For these purposes, imaging of gene expression in living organisms is of great importance. In radionuclide reporter gene imaging, “reporter genes” transferred into cell nuclei encode for a protein that retains a complementary “reporter probe” of a positron or single-photon emitter; thus expression of the reporter genes can be imaged with positron emission tomography or single-photon emission computed tomography. Accordingly, in the setting of gene therapy, the location, magnitude and duration of the therapeutic gene co-expression with the reporter genes can be monitored non-invasively. In the near future, gene therapy may evolve into combination therapy with stem/progenitor cell transplantation, so-called cell-based gene therapy or gene-modified cell therapy.

Conclusion

Radionuclide reporter gene imaging is now expected to contribute in providing evidence on the usefulness of this novel therapeutic approach, as well as in investigating the molecular mechanisms underlying neovascularisation and safety issues relevant to further progress in conventional gene therapy.
Literature
1.
go back to reference Gambhir SS, Barrio JR, Herschman HR, Phelps ME. Imaging gene expression: principles and assays. J Nucl Cardiol 1999;6:219–33.PubMedCrossRef Gambhir SS, Barrio JR, Herschman HR, Phelps ME. Imaging gene expression: principles and assays. J Nucl Cardiol 1999;6:219–33.PubMedCrossRef
2.
go back to reference Blasberg RG, Tjuvajev JG. Herpes simplex virus thymidine kinase as a marker/reporter gene for PET imaging of gene therapy. Q J Nucl Med 1999;43:163–9.PubMed Blasberg RG, Tjuvajev JG. Herpes simplex virus thymidine kinase as a marker/reporter gene for PET imaging of gene therapy. Q J Nucl Med 1999;43:163–9.PubMed
3.
go back to reference Hajjar RJ, del Monte F, Matsui T, Rosenzweig A. Prospects for gene therapy for heart failure. Circ Res 2000;86:616–21.PubMed Hajjar RJ, del Monte F, Matsui T, Rosenzweig A. Prospects for gene therapy for heart failure. Circ Res 2000;86:616–21.PubMed
4.
go back to reference Kibbe MR, Billiar TR, Tzeng E. Gene therapy for restenosis. Circ Res 2000;86:829–33.PubMed Kibbe MR, Billiar TR, Tzeng E. Gene therapy for restenosis. Circ Res 2000;86:829–33.PubMed
5.
go back to reference Donahue JK, Kikuchi K, Sasano T. Gene therapy for cardiac arrhythmias. Trends Cardiovasc Med 2005;15:219–24.PubMedCrossRef Donahue JK, Kikuchi K, Sasano T. Gene therapy for cardiac arrhythmias. Trends Cardiovasc Med 2005;15:219–24.PubMedCrossRef
6.
go back to reference Lee JS, Feldman AM. Gene therapy for therapeutic myocardial angiogenesis: a promising synthesis of two emerging technologies. Nat Med 1998;4:739–42.PubMedCrossRef Lee JS, Feldman AM. Gene therapy for therapeutic myocardial angiogenesis: a promising synthesis of two emerging technologies. Nat Med 1998;4:739–42.PubMedCrossRef
9.
go back to reference Freedman SB, Isner JM. Therapeutic angiogenesis for ischemic cardiovascular disease. J Mol Cell Cardiol 2001;33:379–93.PubMedCrossRef Freedman SB, Isner JM. Therapeutic angiogenesis for ischemic cardiovascular disease. J Mol Cell Cardiol 2001;33:379–93.PubMedCrossRef
10.
go back to reference Hammond HK, McKirnan MD. Angiogenic gene therapy for heart disease: a review of animal studies and clinical trials. Cardiovasc Res 2001;49:561–7.PubMedCrossRef Hammond HK, McKirnan MD. Angiogenic gene therapy for heart disease: a review of animal studies and clinical trials. Cardiovasc Res 2001;49:561–7.PubMedCrossRef
11.
go back to reference Losordo DW, Vale PR, Symes JF, et al. Gene therapy for myocardial angiogenesis: initial clinical results with direct myocardial injection of phVEGF165 as sole therapy for myocardial ischemia. Circulation 1998;98:2800–4.PubMed Losordo DW, Vale PR, Symes JF, et al. Gene therapy for myocardial angiogenesis: initial clinical results with direct myocardial injection of phVEGF165 as sole therapy for myocardial ischemia. Circulation 1998;98:2800–4.PubMed
12.
go back to reference Yla-Herttuala S, Markkanen JE, Rissanen TT. Gene therapy for ischemic cardiovascular diseases: some lessons learned from the first clinical trials. Trends Cardiovasc Med 2004;14:295–300.PubMedCrossRef Yla-Herttuala S, Markkanen JE, Rissanen TT. Gene therapy for ischemic cardiovascular diseases: some lessons learned from the first clinical trials. Trends Cardiovasc Med 2004;14:295–300.PubMedCrossRef
13.
go back to reference Brewster LP, Brey EM, Greisler HP. Cardiovascular gene delivery: The good road is awaiting. Adv Drug Deliv Rev 2006;58:604–29.PubMedCrossRef Brewster LP, Brey EM, Greisler HP. Cardiovascular gene delivery: The good road is awaiting. Adv Drug Deliv Rev 2006;58:604–29.PubMedCrossRef
15.
go back to reference Inubushi M, Tamaki N. PET reporter gene imaging in myocardium: for monitoring of angiogenic gene therapy in ischemic heart disease. J Card Surg 2005;20:S20–4.PubMedCrossRef Inubushi M, Tamaki N. PET reporter gene imaging in myocardium: for monitoring of angiogenic gene therapy in ischemic heart disease. J Card Surg 2005;20:S20–4.PubMedCrossRef
16.
go back to reference Shepherd FA, Sridhar SS. Angiogenesis inhibitors under study for the treatment of lung cancer. Lung Cancer 2003;41(Suppl 1):S63–72, Aug.PubMedCrossRef Shepherd FA, Sridhar SS. Angiogenesis inhibitors under study for the treatment of lung cancer. Lung Cancer 2003;41(Suppl 1):S63–72, Aug.PubMedCrossRef
17.
go back to reference Sridhar SS, Shepherd FA. Targeting angiogenesis: a review of angiogenesis inhibitors in the treatment of lung cancer. Lung Cancer 2003;42(Suppl 1):S81–91.PubMedCrossRef Sridhar SS, Shepherd FA. Targeting angiogenesis: a review of angiogenesis inhibitors in the treatment of lung cancer. Lung Cancer 2003;42(Suppl 1):S81–91.PubMedCrossRef
18.
go back to reference Kleiman NS, Patel NC, Allen KB, et al. Evolving revascularization approaches for myocardial ischemia. Am J Cardiol 2003;92:9N–17N.PubMedCrossRef Kleiman NS, Patel NC, Allen KB, et al. Evolving revascularization approaches for myocardial ischemia. Am J Cardiol 2003;92:9N–17N.PubMedCrossRef
20.
go back to reference Iruela-Arispe ML, Dvorak HF. Angiogenesis: a dynamic balance of stimulators and inhibitors. Thromb Haemost 1997;78:672–7.PubMed Iruela-Arispe ML, Dvorak HF. Angiogenesis: a dynamic balance of stimulators and inhibitors. Thromb Haemost 1997;78:672–7.PubMed
21.
go back to reference Stolberg SG. The biotech death of Jesse Gelsinger. NY Times Mag 1999. Nov. 28, 136–50. Stolberg SG. The biotech death of Jesse Gelsinger. NY Times Mag 1999. Nov. 28, 136–50.
22.
go back to reference Raper SE, Chirmule N, Lee FS, et al. Fatal systemic inflammatory response syndrome in a ornithine transcarbamylase deficient patient following adenoviral gene transfer. Mol Genet Metab 2003;80:148–58.PubMedCrossRef Raper SE, Chirmule N, Lee FS, et al. Fatal systemic inflammatory response syndrome in a ornithine transcarbamylase deficient patient following adenoviral gene transfer. Mol Genet Metab 2003;80:148–58.PubMedCrossRef
23.
go back to reference Hacein-Bey-Abina S, Von Kalle C, Schmidt M, et al. LMO2-associated clonal T cell proliferation in two patients after gene therapy for SCID-X1. Science 2003;302:415–9.PubMedCrossRef Hacein-Bey-Abina S, Von Kalle C, Schmidt M, et al. LMO2-associated clonal T cell proliferation in two patients after gene therapy for SCID-X1. Science 2003;302:415–9.PubMedCrossRef
24.
go back to reference Schroder AR, Shinn P, Chen H, Berry C, Ecker JR, Bushman F. HIV-1 integration in the human genome favors active genes and local hotspots. Cell 2002;110:521–9.PubMedCrossRef Schroder AR, Shinn P, Chen H, Berry C, Ecker JR, Bushman F. HIV-1 integration in the human genome favors active genes and local hotspots. Cell 2002;110:521–9.PubMedCrossRef
25.
go back to reference Wolff JA, Malone RW, Williams P, et al. Direct gene transfer into mouse muscle in vivo. Science 1990;247:1465–8.PubMedCrossRef Wolff JA, Malone RW, Williams P, et al. Direct gene transfer into mouse muscle in vivo. Science 1990;247:1465–8.PubMedCrossRef
26.
go back to reference Tsurumi Y, Takeshita S, Chen D, et al. Direct intramuscular gene transfer of naked DNA encoding vascular endothelial growth factor augments collateral development and tissue perfusion. Circulation 1996;94:3281–90.PubMed Tsurumi Y, Takeshita S, Chen D, et al. Direct intramuscular gene transfer of naked DNA encoding vascular endothelial growth factor augments collateral development and tissue perfusion. Circulation 1996;94:3281–90.PubMed
27.
go back to reference Laitinen M, Pakkanen T, Luoma J, et al. Gene transfer into the carotid artery using an adventitial collar: comparison of the effectiveness of plasmid-liposome complexes, retroviruses, pseudotyped retroviruses and adenoviruses. Hum Gene Ther 1997;9:1645–50.CrossRef Laitinen M, Pakkanen T, Luoma J, et al. Gene transfer into the carotid artery using an adventitial collar: comparison of the effectiveness of plasmid-liposome complexes, retroviruses, pseudotyped retroviruses and adenoviruses. Hum Gene Ther 1997;9:1645–50.CrossRef
28.
go back to reference Taniyama Y, Tachibana K, Hiraoka K, et al. Development of safe and efficient novel nonviral gene transfer using ultrasound: enhancement of transfection efficiency of naked plasmid DNA in skeletal muscle. Gene Ther 2002;9:372–80.PubMedCrossRef Taniyama Y, Tachibana K, Hiraoka K, et al. Development of safe and efficient novel nonviral gene transfer using ultrasound: enhancement of transfection efficiency of naked plasmid DNA in skeletal muscle. Gene Ther 2002;9:372–80.PubMedCrossRef
29.
go back to reference Hartikka J, Sukhu L, Buchner C, et al. Electroporation-facilitated delivery of plasmid DNA in skeletal muscle: plasmid dependence of muscle damage and effect of poloxamer 188. Mol Ther 2001;4:407–15.PubMedCrossRef Hartikka J, Sukhu L, Buchner C, et al. Electroporation-facilitated delivery of plasmid DNA in skeletal muscle: plasmid dependence of muscle damage and effect of poloxamer 188. Mol Ther 2001;4:407–15.PubMedCrossRef
30.
go back to reference Gardlik R, Palffy R, Hodosy J, Lukacs J, Turna J, Celec P. Vectors and delivery systems in gene therapy. Med Sci Monit 2005;11:RA110–21.PubMed Gardlik R, Palffy R, Hodosy J, Lukacs J, Turna J, Celec P. Vectors and delivery systems in gene therapy. Med Sci Monit 2005;11:RA110–21.PubMed
31.
go back to reference Avril N, Bengel FM. Defining the success of cardiac gene therapy: how can nuclear imaging contribute? Eur J Nucl Med Mol Imaging 2003;30:757–71.PubMedCrossRef Avril N, Bengel FM. Defining the success of cardiac gene therapy: how can nuclear imaging contribute? Eur J Nucl Med Mol Imaging 2003;30:757–71.PubMedCrossRef
32.
go back to reference Wu JC, Tseng JR, Gambhir SS. Molecular imaging of cardiovascular gene products. J Nucl Cardiol 2004;11:491–505.PubMedCrossRef Wu JC, Tseng JR, Gambhir SS. Molecular imaging of cardiovascular gene products. J Nucl Cardiol 2004;11:491–505.PubMedCrossRef
33.
go back to reference Serganova I, Blasberg R. Reporter gene imaging: potential impact on therapy. Nucl Med Biol 2005;32:763–80.PubMedCrossRef Serganova I, Blasberg R. Reporter gene imaging: potential impact on therapy. Nucl Med Biol 2005;32:763–80.PubMedCrossRef
34.
go back to reference Inubushi M, Wu JC, Gambhir SS, et al. Positron-emission tomography reporter gene expression imaging in rat myocardium. Circulation 2003;107:326–32.PubMedCrossRef Inubushi M, Wu JC, Gambhir SS, et al. Positron-emission tomography reporter gene expression imaging in rat myocardium. Circulation 2003;107:326–32.PubMedCrossRef
35.
go back to reference Tjuvajev JG, Doubrovin M, Akhurst T, et al. Comparison of radiolabeled nucleoside probes (FIAU, FHBG, and FHPG) for PET imaging of HSV1-tk gene expression. J Nucl Med 2002;43:1072–83.PubMed Tjuvajev JG, Doubrovin M, Akhurst T, et al. Comparison of radiolabeled nucleoside probes (FIAU, FHBG, and FHPG) for PET imaging of HSV1-tk gene expression. J Nucl Med 2002;43:1072–83.PubMed
36.
go back to reference Min JJ, Iyer M, Gambhir SS. Comparison of [18F]FHBG and [14C]FIAU for imaging of HSV1-tk reporter gene expression: adenoviral infection vs stable transfection. Eur J Nucl Med Mol Imaging 2003;30:1547–60.PubMedCrossRef Min JJ, Iyer M, Gambhir SS. Comparison of [18F]FHBG and [14C]FIAU for imaging of HSV1-tk reporter gene expression: adenoviral infection vs stable transfection. Eur J Nucl Med Mol Imaging 2003;30:1547–60.PubMedCrossRef
37.
go back to reference Miyagawa M, Beyer M, Wagner B, et al. Cardiac reporter gene imaging using the human sodium/iodide symporter gene. Cardiovasc Res 2005;65:195–202.PubMedCrossRef Miyagawa M, Beyer M, Wagner B, et al. Cardiac reporter gene imaging using the human sodium/iodide symporter gene. Cardiovasc Res 2005;65:195–202.PubMedCrossRef
38.
go back to reference Yau TM, Kim C, Li G, Zhang Y, Weisel RD, Li RK. Maximizing ventricular function with multimodal cell-based gene therapy. Circulation 2005;112:I123–8.PubMedCrossRef Yau TM, Kim C, Li G, Zhang Y, Weisel RD, Li RK. Maximizing ventricular function with multimodal cell-based gene therapy. Circulation 2005;112:I123–8.PubMedCrossRef
39.
go back to reference Iwaguro H, Asahara T. Endothelial progenitor cell culture and gene transfer. Methods Mol Med 2005;112:239–47.PubMed Iwaguro H, Asahara T. Endothelial progenitor cell culture and gene transfer. Methods Mol Med 2005;112:239–47.PubMed
40.
go back to reference Iwaguro H, Yamaguchi J, Kalka C, et al. Endothelial progenitor cell vascular endothelial growth factor gene transfer for vascular regeneration. Circulation 2002;105:732–8.PubMedCrossRef Iwaguro H, Yamaguchi J, Kalka C, et al. Endothelial progenitor cell vascular endothelial growth factor gene transfer for vascular regeneration. Circulation 2002;105:732–8.PubMedCrossRef
Metadata
Title
Radionuclide reporter gene imaging for cardiac gene therapy
Authors
Masayuki Inubushi
Nagara Tamaki
Publication date
01-06-2007
Publisher
Springer-Verlag
Published in
European Journal of Nuclear Medicine and Molecular Imaging / Issue Special Issue 1/2007
Print ISSN: 1619-7070
Electronic ISSN: 1619-7089
DOI
https://doi.org/10.1007/s00259-007-0438-x

Other articles of this Special Issue 1/2007

European Journal of Nuclear Medicine and Molecular Imaging 1/2007 Go to the issue