Lentiviral and Retroviral Vector Systems
Renata Stripecke, Noriyuki Kasahara
Abstract
Renata Stripecke, Noriyuki Kasahara
Abstract
Retroviruses have been widely used as gene transfer vectors, and in fact represent the vector system used in the majority of clinical gene therapy trials for cancer to date. In an ex vivo setting, conventional replication-defective oncoretrovirus vectors can reliably and efficiently achieve permanent gene transfer which is selective for dividing cells; however, successful application of these vectors in vivo has been difficult because of their relatively low-transduction efficiency. Recently, however, the field has been revitalized by the advent of significant improvements in basic retrovirus vector technology, including the development of lentivirus-based vectors which are capable of efficient gene transfer even to quiescent nondividing cells, and tumor-selective replication-competent retrovirus vectors which progressively transduce cancer cells as the virus spreads through the tumor. This chapter reviews these important recent developments and their potential utility for gene therapy of cancer.
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Retroviruses have been widely used as gene transfer vectors, and in fact represent the vector system used in the majority of clinical gene therapy trials for cancer to date. In an ex vivo setting, conventional replication-defective oncoretrovirus vectors can reliably and efficiently achieve permanent gene transfer which is selective for dividing cells; however, successful application of these vectors in vivo has been difficult because of their relatively low-transduction efficiency. Recently, however, the field has been revitalized by the advent of significant improvements in basic retrovirus vector technology, including the development of lentivirus-based vectors which are capable of efficient gene transfer even to quiescent nondividing cells, and tumor-selective replication-competent retrovirus vectors which progressively transduce cancer cells as the virus spreads through the tumor. This chapter reviews these important recent developments and their potential utility for gene therapy of cancer.
Key concepts: Retrovirus, Transduction (biophysics), Vector (molecular biology), Genetic enhancement, Biology, Gene transfer, Viral vector, Virology