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Stuart A Nicklin

Publications and source records attributed to Stuart A Nicklin.

14 recordsLinked to original sources

Cell-selective viral gene delivery vectors for the vasculature.

Clinical gene therapy for cardiovascular disease remains achievable. To date, however, preclinical studies and clinical trials have highlighted shortfalls in viral gene delivery to vascular cells. These include poor efficiency, poor target tissue selectivity, the presence of pre-existing neutralizing antibodies and immunogenicity generated by the host to vectors such as adenovirus. These important issues require careful consideration when applying viral vectors for gene therapy. Each delivery vector requires precise optimization and tailoring for each disease application since parameters relating to vector : tissue exposure time, route of delivery and target cell type vary considerably. Optimization can be achieved through modification of the structure of the virus capsid proteins and expression cassette to generate vectors that are highly selective and efficient for target cell binding and entry as well as instilling transcriptional control and/or longevity on transgene expression. This ultimately will improve the efficacy and toxicity profiles of gene delivery vectors and has become a very important area in gene therapy. Here, we review recent advances in the targeting of viral gene delivery vectors to the vasculature.

Adenoviridae↗

Targeted gene delivery to vascular tissue in vivo by tropism-modified adeno-associated virus vectors.

BACKGROUND: Gene therapy offers an unprecedented opportunity to treat diverse pathologies. Adeno-associated virus (AAV) is a promising gene delivery vector for cardiovascular disease. However, AAV transduces the liver after systemic administration, reducing its usefulness for therapies targeted at other sites. Because vascular endothelial cells (ECs) are in contact with the bloodstream and are heterogeneous between organs, they represent an ideal target for site-specific delivery of biological agents. METHODS AND RESULTS: We isolated human venous EC-targeting peptides by phage display and genetically incorporated them into AAV capsids after amino acid 587. Peptide-modified AAVs transduced venous (but not arterial) ECs in vitro, whereas hepatocyte transduction was significantly lower than with native AAV. Intravenous infusion of engineered AAVs into mice produced reduced vector accumulation in liver measured 1 hour and 28 days after injection and delayed blood clearance rates compared with native AAV. Peptide-modified AAVs produced enhanced uptake of virions in the vena cava with selective transgene expression. Retargeting was dose dependent, and coinfusion of either heparin or free competing peptides indicated that uptake was principally independent of native AAV tropism and mediated via the peptide. CONCLUSIONS: AAV tropism can be genetically engineered by use of phage display-derived peptides to generate vectors that are selective for the vasculature.

Animals↗

In vitro and in vivo characterisation of endothelial cell selective adenoviral vectors.

BACKGROUND: Both viral and non-viral gene transfer vectors transduce vascular endothelial cells (EC) with low efficiency compared with other cell types such as hepatocytes. Generation of EC-selective vectors would enhance the clinical utility of gene therapy for diverse vascular-targeted applications. METHODS: 12mer peptides derived by in vitro phage display with EC binding specificity [MTPFPTSNEANL (MTP) and MSLTTPPAVARP (MSL)] were inserted at position T542 in the exposed HI loop of the adenovirus (Ad) serotype 5 fiber using overlapping oligonucleotides; in combination with a double point mutation (KO1) to ablate virus : cell binding via the coxsackie-adenovirus receptor (CAR). The resulting modified viruses were tested in vitro and in vivo for their ability to direct endothelial-specific gene transfer. RESULTS: Peptide insertion was not deleterious to fiber trimerisation or virion maturation. In vitro gene transfer studies using a panel of cell types demonstrated that both peptide-targeted Ad vectors mediated efficient CAR-independent gene transfer to vascular EC compared with non-modified Ads. Neither peptide supported gene delivery to non-EC. Upon systemic injection into mice and subsequent evaluation of transgene expression we failed to observe a reduction in hepatic Ad accumulation but observed a significant elevation in beta-galactosidase in blood vessels with the MSLTTPPAVARP-targeted Ad vector. CONCLUSIONS: We have genetically engineered two novel Ads that transduce human EC selectively in vitro, one of which leads to altered Ad biodistribution in vivo. The successful generation of genetically engineered tropism for EC has broad implications for cardiovascular gene therapy. Further modifications to the Ad capsid will be required to improve in vivo biodistribution profiles.

Adenoviridae↗

Development of efficient viral vectors selective for vascular smooth muscle cells.

The vascular smooth muscle cell (SMC) is integral to the pathogenesis of neointimal formation associated with late vein graft failure, in-stent restenosis, and transplant arteriopathy. Viral vectors transduce SMC with low efficiency and hence, there is a need for improvement. We aimed to enhance the efficiency and selectivity of gene delivery to human SMC. Targeting ligands were identified using phage display on primary human saphenous vein SMC with linear and cyclic libraries. Two linear peptides, EYHHYNK (EYH) and GETRAPL (GET), were incorporated into the HI loop of adenovirus (Ad) fibers and the capsid protein of adeno-associated virus-2 (AAV-2). Exposure of human venous SMC to EYH-modified (but not the GET-modified) Ad vector resulted in a significant increase in transgene expression levels at short, clinically relevant exposure times. Similarly, the EYH-modified AAV vector resulted in enhanced gene transfer to human venous SMC but not endothelial cells in a time- and dose-dependent manner. The EYH-modified AAV vector also enhanced (up to 70-fold) gene delivery to primary human arterial SMC. Hence, incorporation of EYH into Ad and AAV capsids resulted in a significant and selective enhancement in transduction of SMC and has implications for improving local gene delivery to the vasculature.

Adenoviridae↗

Overexpression of p53 increases lumen size and blocks neointima formation in porcine interposition vein grafts.

Patency rates for autologous saphenous vein (SV) conduits used in coronary artery bypass grafts remain poor. Patients with failed grafts are difficult to treat with subsequent interventions, necessitating the development of innovative therapies. Previous studies have suggested that induction of smooth muscle cell (SMC) apoptosis may reduce neointima formation. We overexpressed the proapoptotic gene p53 at the lumenal surface of SV grafts using adenoviral (Ad)-mediated gene transfer in porcine SVs prior to grafting in vivo and analyzed at 7 and 28 days (n = 6 and 7 per group, respectively). p53 overexpression induced a significant upregulation in apoptosis (4 +/- 0.6% for Adp53-infected grafts vs 0.6 +/- 0.1% for Adbeta-gal-infected grafts) and reduced neointimal proliferation by 28 +/- 1% at day 7 postinfection. Adp53-infected grafts had significantly greater lumenal areas than controls at both time points (4.8 +/- 0.6 mm2 vs 2.9 +/- 0.5 mm2 and 10.0 +/- 2.5 mm2 vs 4.2 +/- 1.2 mm2 at 7 and 28 days, respectively). Total graft areas were also increased at 28 days by p53, indicating positive vessel remodeling. Additionally, the thickening of the neointima was significantly reduced by 68 +/- 22% and 28 +/- 3% by p53 overexpression at day 7 and 28, respectively. Importantly, phenotypic changes were maintained at 3 months. Induction of SMC apoptosis by transient p53 overexpression positively influenced vein graft remodeling.

Adenoviridae↗

Effect of adenovirus serotype 5 fiber and penton modifications on in vivo tropism in rats.

Sequestration of adenovirus serotype 5 (Ad5) in liver restricts its use for gene delivery to other target sites in vivo. To date, no studies have systematically assessed the impact of genetic capsid modifications on in vivo tropism in rats, an important preclinical model for many disease types. We evaluated a panel of Ad5 vectors with capsid mutations or pseudotyped with the short fiber from serotype 41 (Ad41s) for infectivity in Wistar Kyoto rats in vitro and systemically in vivo. In vitro studies demonstrated that both coxsackie and adenovirus receptor (CAR) and heparan sulfate proteoglycan (HSPG) binding were predominant predictors of Ad5 tropism. In vivo, neither CAR nor integrin mutations alone affected liver transduction. The HSPG-binding mutation alone moderately reduced rat liver transgene levels by 2-fold (P < 0.05). This was further substantially decreased by additional mutation of CAR binding (95-fold). Combining CAR and integrin mutations reduced transgene levels by >99% (509-fold, P < 0.01), an effect not observed in parallel experiments in mice and highly variable when studied further in an additional two strains of rat. Ad41s mediated very low liver transduction (58-fold lower than AdCTL). Moreover, CAR-binding mutants (KO1-containing) or pseudotyping 41s eliminated hemagglutination of rat and human red blood cells in vitro. This highlights some important potential species and strain differences dictating Ad5 tropism in vivo and identifies vectors that are substantially detargeted from rat liver in vivo.

Adenoviridae↗

Adenoviral serotype 5 vectors pseudotyped with fibers from subgroup D show modified tropism in vitro and in vivo.

Adenovirus (Ad5) serotype 5 vectors are commonly used for gene transfer. Preclinical studies have shown that their application to systemic gene delivery, however, is limited by their highly efficient uptake in the liver, principally mediated by receptor-binding sites on the fiber shaft and knob domain. Using Ad to target other sites in vivo requires vectors that lack hepatic tropism. We therefore sought to exploit Ad family diversity to isolate vectors that possessed poor hepatic tropism. We pseudotyped the fibers from Ad16 (subgroup B; Ad5/16), Ad19p (subgroup D; Ad5/19p), and Ad37 (subgroup D; Ad5/37) onto Ad5 capsids and assessed infectivity profiles in vitro in multiple cell types and in vivo in rats. In rat, mouse, and human hepatocytes, Ad5/19p and Ad5/37 both possessed a striking lack of hepatic cell infectivity compared with Ad5. Both vectors were, however, able to transduce human vascular endothelial and smooth muscle cells with efficiencies equal to or greater than that of nonmodified Ad5. We evaluated liver uptake in 12-week-old male rats after intravenous injection. In contrast to a vector with the wild-type Ad5 fiber, Ad5, both Ad5/19p and Ad5/37 produced significantly less virion accumulation (measured at 1 hr and 5 days) and transgene expression in the liver. Thus, Ad5/19p and Ad5/37 may be useful platforms for the development of targeted Ad vectors.

Adenoviridae↗

Transductional and transcriptional targeting of cancer cells using genetically engineered viral vectors.

Gene delivery vectors, including adenovirus (Ad) and adeno-associated virus (AAV), are inefficient and non-selective for cancer due to low levels of viral receptors with high levels on other tissues, including liver. We tested Ads and AAVs with the SIGYPLP-targeting peptide inserted into virus capsids for transduction in a panel of cancer cells. Six of twelve lines (C8161, PC-3, G-CCM, MKN-45, LnCAP and A549) were transduced, independently of native viral tropism. Furthermore the candidate cancer gene therapy promoter FLT-1 was active in three of these six cell lines. This offers the potential for dual targeting of selected cancer cells.

Adenoviridae↗

Targeting gene therapy vectors to the vascular endothelium.

The ability to deliver genes, and hence therapeutic gene over-expression site-specifically in vivo remains the major challenge for research in the field. The obligate need to target transgene expression safely, efficiently, and selectively has become increasingly evident as a result of recent events in the clinical setting. The endothelium represents an important target for gene delivery given its fundamental role in the physiology and pathophysiology of many diseases. Recently, studies demonstrating the ability to target viral vectors to the endothelium have been reported. In this review, we discuss progress to date and highlight those areas still requiring further investigation and validation.

Arteriosclerosis↗

Third-generation lentivirus vectors efficiently transduce and phenotypically modify vascular cells: implications for gene therapy.

Grafting of saphenous vein (SV) conduits into the arterial circulation triggers a number of adaptive pathological changes characterized by progressive medial thickening, neointima formation and accelerated atheroma. Previous studies have shown that modification of vein graft biology is possible by adenovirus (Ad)-mediated gene transfer, although gene expression is transient. Advancement of vascular gene therapy to the clinic is compromised by the lack of safe and efficient vector systems that provide sustained therapeutic gene delivery to the vasculature. Due to inadequacies of both Ad and adeno-associated virus (AAV) serotype-2 (AAV-2) systems, we have evaluated gene delivery to endothelial cells (ECs) and smooth muscle cells (SMCs) using alternate AAV serotypes and a third-generation vesicular stomatis virus glycoprotein-pseudotyped lentiviral system. Transduction of both primary human SV EC and SMC was lower using all alternate AAV serotypes compared to AAV-2. However, transduction of both cell types by lentivirus was efficient even at clinically relevant exposure times (15 min), was without toxicity and was promoter sensitive. Transduction levels at lower doses were further enhanced with the addition of the surfactant Poloxamer-407 (P-407). Direct comparison with Ad and AAV-2 confirmed the unique potential for this system. Moreover, we constructed and overexpressed the therapeutic gene tissue inhibitor of metalloproteinase-3 (TIMP-3) using lentivirus and demonstrated transgene production comparable to Ad with concomitant blockade of SMC migration and induction of cell death. We have demonstrated for the first time the potential for third-generation lentiviral vectors, but not alternate AAV serotypes, as efficient vascular gene delivery vectors.

Cardiovascular System↗

AAV-based gene transfer.

Gene therapy remains an attractive form of treatment for a variety of diseases, both inherited and acquired. Recent experience in clinical gene therapy has highlighted important safety issues pertaining to gene delivery in humans. As such, the choice of gene delivery system for individual applications is fundamentally important and must afford efficiency and safety. Adeno-associated viral (AAV) vectors have unique potential among the repertoire of vector systems currently available. Here, we highlight recent developments to suggest that AAV vectors will play a key role in the future deployment of genetic medicine in humans.

Animals↗

Use of phage display to identify novel peptides for targeted gene therapy.

The field of gene therapy has developed at an astonishing pace over the past decade, perhaps too quickly. Clinical studies have highlighted major flaws in the ability of current vectors to deliver genes safely and effectively to patients; hence the further development of vectors is a prerequisite for future success. In this chapter we have discussed advances in development of targeted vectors through isolation of targeting moieties using phage display. The field of gene therapy will benefit considerably by the isolation and use of peptides that are effective for targeting in vivo, particularly for diseases affecting individual organs. Only when truly selective and highly efficient vectors are constructed will the tremendous potential of gene therapy be realized.

Amino Acid Sequence↗

Tropism-modified adenoviral and adeno-associated viral vectors for gene therapy.

One of the most rapidly advancing areas of gene therapy is vector development. For the majority of gene therapy procedures, efficient and selective transduction would provide safe and more effective treatments at optimal vector doses. Advances in vector targeting strategies have been rapid within the field of DNA-based viruses, particularly adenovirus (Ad) and more recently adeno-associated virus (AAV) based vectors. Vector targeting at the level of virus: cell interaction can be achieved using both non-genetic and genetic methodology. Non-genetic approaches typically utilise bispecific antibodies that both neutralise wild-type virus tropism and provide a new cell binding capacity. For genetic targeting strategies, the virus capsid can be engineered to express foreign ligands that target selected receptors in the absence or presence of additional modification to ablate the virus' natural tropism. This review covers technological advances that have led to targeting of Ad and AAV and highlights the potential for these 'designer' viruses for future gene-based therapeutics.

Adenoviridae↗