Non-viral gene transfer using sleeping beauty transposition for long-term gene expression in the CNS of neonatal mice

2006 ◽  
Vol 198 (2) ◽  
pp. 565-566
Author(s):  
Z.L. Demorest ◽  
J. Ohlfest ◽  
W.C. Low ◽  
A. Freese
2021 ◽  
Vol 12 ◽  
Author(s):  
Alexandra McCarron ◽  
Nigel Farrow ◽  
Patricia Cmielewski ◽  
Emma Knight ◽  
Martin Donnelley ◽  
...  

The lungs have evolved complex physical, biological and immunological defences to prevent foreign material from entering the airway epithelial cells. These mechanisms can also affect both viral and non-viral gene transfer agents, and significantly diminish the effectiveness of airway gene-addition therapies. One strategy to overcome the physical barrier properties of the airway is to transiently disturb the integrity of the epithelium prior to delivery of the gene transfer vector. In this study, chemical (lysophosphatidylcholine, LPC) and physical epithelium disruption using wire abrasion were compared for their ability to improve airway-based lentiviral (LV) vector mediated transduction and reporter gene expression in rats. When luciferase expression was assessed at 1-week post LV delivery, LPC airway conditioning significantly enhanced gene expression levels in rat lungs, while a long-term assessment in a separate cohort of rats at 12 months revealed that LPC conditioning did not improve gene expression longevity. In rats receiving physical perturbation to the trachea prior to gene delivery, significantly higher LacZ gene expression levels were found when compared to LPC-conditioned or LV-only control rats when evaluated 1-week post gene transfer. This proof-of-principle study has shown that airway epithelial disruption strategies based on physical perturbation substantially enhanced LV-mediated airway gene transfer in the trachea.


2005 ◽  
Vol 125 (1) ◽  
pp. 23-33 ◽  
Author(s):  
Shongshan Fan ◽  
Casey A. Maguire ◽  
Servio H. Ramirez ◽  
Birgit Bradel-Tretheway ◽  
Ramil Sapinoro ◽  
...  

Blood ◽  
2005 ◽  
Vol 106 (11) ◽  
pp. 5539-5539
Author(s):  
Xianzheng Zhou ◽  
Xin Huang ◽  
Andrew C. Wilber ◽  
Lei Bao ◽  
Dong Tuong ◽  
...  

Abstract The Sleeping Beauty (SB) transposon system is a non-viral DNA delivery system in which a transposase directs integration of an SB transposon into TA-dinucleotide sites in the genome. To determine whether the SB transposon system can mediate integration and long-term transgene expression in human primary T-cells, freshly isolated peripheral blood lymphocytes (PBLs) without prior activation were nucleofected with SB vectors carrying a DsRed reporter gene. Plasmids containing the SB transposase on the same (cis) (n=10) or separate molecule (trans) (n=8) as the SB transposon mediated long-term and stable reporter gene expression in human primary T-cells. We observed that delivery of SB transposase-encoding plasmid in trans effectively mediated stable gene expression in primary T-cells, exhibiting about a 3-fold increase (11% vs. 3% with 10 microgram plasmid on day 21) in potency in comparison with the cis vector (p<0.0001). In addition, a transposase mutant construct was incapable of mediating stable gene expression in human PBLs (n=6, p<0.0001), confirming that catalytic DDE domain is necessary for transposition in human primary T-cells. Immunophenotyping analysis in transposed T-cells showed that both CD4 and CD8 T-cells were transgene positive. SB-mediated high level of transgene expression in human T-cells was maintained in culture for at least 4 months without losing observable expression. Southern hybridization analysis showed a variety of transposon integrants among the 6 DsRed positive T-cell clones and no transposon sequences identifiable in the 2 DsRed negative clones. Sequencing of transposon:chromosome junctions in 5 out of 6 transposed T-cell clones confirmed that stable gene expression was due to SB-mediated transposition. In other studies, PBLs were successfully transfected using the SB transposon system and shown to stably and functionally express a fusion protein consisting of a surface receptor useful for positive T-cell selection and a “suicide” gene useful for elimination of transfected T-cells after chemotherapy. This study is the first report demonstrating that the SB transposon system can mediate stable gene transfer in human primary PBLs, which may be more advantageous for T-cell based gene therapies over widely used virus-based or conventional mammalian DNA vectors in terms of simplicity, stability, efficiency and safety.


Blood ◽  
2004 ◽  
Vol 104 (11) ◽  
pp. 2099-2099
Author(s):  
Jakub Tolar ◽  
Mark Osborn ◽  
Scott Bell ◽  
Lily Xia ◽  
Megan Riddle ◽  
...  

Abstract MAPC are non-hematopoietic stem cells with the capacity to form most, if not all, cell types of the body. To date, the observations of homing of the MAPC have been limited to post mortem analyses. As MAPC may be useful in cellular therapies, our goal was to map their biodistribution in live organisms. To determine the real-time organ-specific homing pattern of donor MAPC, MAPC (from BM of C57BL/6J-rosa26 mice) were co-nucleofected with cDNAs encoding the red fluorescent protein DsRed2 and luciferase, using the Sleeping Beauty (SB) transposon system. Non-viral gene transfer mediated by SB is potentially advantageous to viral gene transfer because transposons may be less immunogenic since no viral proteins are present, and they are relatively easy to produce. DsRed2 and luciferase genes were cloned into plasmid vectors containing the transposase recognition sequences flanking the reporter genes (pT/CAGGS-DsRed2; pT/CAGGS-Luciferase). MAPC (106) were co-nucleofected (Amaxa, setting T-20, buffer T) with 5mcg of each marker plasmid and the SB transposase plasmid (p/CMV-HSB2) at a 1:50 ratio. 19% of MAPC expressed DsRed2 7 days after nucleofection. The MAPC were FACS sorted (1 cell per well) for cells with the highest DsRed2 expression. All MAPC tested expressed both DsRed2 and luciferase, suggesting that co-nucleofection is an efficient means of delivery of two plasmids. Two transgenic MAPC clones selected for further analysis were confirmed to be euploid by cytogenetic analysis, and maintained differentiation potential into the three germ layers. To verify transgene integration by transposition, the genomic sites of transposon integration were determined using splinkerette PCR. In the genome of MAPC clone 1, DsRed2 transposed in two sites on chromosome 5. One integration site (5qA3) was in the 3′ untranslated region of activin receptor interacting protein 1 (Acvrinp1). In clone 2 DsRed2 transposed into a single site on chromosome 10, in an intron of a gene termed SHPRH, which encodes a putative protein with SNF2/helicase and PHD-finger domains. To investigate the real time kinetics of MAPC population after infusion, 5 x 106 DsRed2 and luciferase positive MAPC (clone 2) were infused via tail vein into 8-week-old Rag2/IL-2Rgc−/− mice (T-, B- and NK-immunodeficient mice were used as a recipient to minimize the likelihood that the host would reject donor MAPC). Using whole body imaging (Xenogen) we were able to follow the distribution of the luciferase-marked MAPC over a period of 10 weeks. In addition, using DsRed2 expression the donor MAPC-derived cells in whole lung and in lung cryosections were identified. In summary, we show for the first time stable gene expression in adult stem cells using Sleeping Beauty transposon mediated non-viral gene transfer. These results show that MAPC-based cellular therapies can be monitored in vivo and suggest that transposon-based technology may be an attractive alternative to viral based gene delivery and therapy.


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