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Biomedical subjects

Katie Binley

Publications and source records attributed to Katie Binley.

4 recordsLinked to original sources

Gene therapy for neurodegenerative and ocular diseases using lentiviral vectors.

Gene therapy holds great promise for the treatment of a wide range of inherited and acquired disorders. The development of viral vector systems to mediate safe and long-lasting expression of therapeutic transgenes in specific target cell populations is continually advancing. Gene therapy for the nervous system is particularly challenging due to the post-mitotic nature of neuronal cells and the restricted accessibility of the brain itself. Viral vectors based on lentiviruses provide particularly attractive vehicles for delivery of therapeutic genes to treat neurological and ocular diseases, since they efficiently transduce non-dividing cells and mediate sustained transgene expression. Furthermore, novel routes of vector delivery to the nervous system have recently been elucidated and these have increased further the scope of lentiviruses for gene therapy application. Several studies have demonstrated convincing therapeutic efficacy of lentiviral-based gene therapies in animal models of severe neurological disorders and the push for progressing such vectors to the clinic is ongoing. This review describes the key features of lentiviral vectors that make them such useful tools for gene therapy to the nervous system and outlines the major breakthroughs in the potential use of such vectors for treating neurodegenerative and ocular diseases.

Animals↗

Genetic amplification of the transcriptional response to hypoxia as a novel means of identifying regulators of angiogenesis.

The cellular response to hypoxia involves the promotion of angiogenesis, leading to increased blood flow and oxygenation. The macrophage has been identified as an orchestrator of this response in several pathologies, through the release of angiogenic factors in response to hypoxia. We have produced the first comprehensive transcriptome analysis of hypoxic primary human macrophages with respect to the regulation of angiogenesis. There is a marked induction of genes encoding factors known to stimulate angiogenesis, rather than factors that inhibit this process. We show that overexpression of the transcription factor EPAS1 using a recombinant adenoviral vector amplifies the induction of genes encoding angiogenic proteins in response to hypoxia. This defines a new strategy for enhancing transcriptome and proteome analyses by overexpressing disease-implicated genes using viral gene transfer methodologies.

Adenoviridae↗

Exploiting the hypoxia response.

Hypoxia (low oxygen) is a defining physiological feature of a number of diseases, including cancer, cardiovascular disease and retinopathy. Hypoxia plays an active role in the pathology of these diseases through its impact on gene expression, thereby making the hypoxia-signaling pathway a key target for the development of novel molecular therapies. This review focuses on how the elucidation of this pathway has led to the development of novel therapeutic strategies, including physiologically targeted gene therapy and the identification of novel therapeutic targets within the hypoxia-signaling pathway.

Gene Expression Profiling↗

Long-term reversal of chronic anemia using a hypoxia-regulated erythropoietin gene therapy.

Anemia is a common clinical problem, and there is much interest in its role in promoting left ventricular hypertrophy through increasing cardiac workload. Normally, red blood cell production is adjusted through the regulation of erythropoietin (Epo) production by the kidney. One important cause of anemia is relative deficiency of Epo, which occurs in most types of renal disease. Clinically, this can be corrected by supplementation with recombinant Epo. Here we describe an oxygen-regulated gene therapy approach to treating homozygous erythropoietin-SV40 T antigen (Epo-TAg(h)) mice with relative erythropoietin deficiency. We used vectors in which murine Epo expression was directed by an Oxford Biomedica hypoxia response element (OBHRE) or a constitutive cytomegalovirus (CMV) promoter. Both corrected anemia, but CMV-Epo-treated mice acquired fatal polycythemia. In contrast, OBHRE-Epo corrected the hematocrit level in anemic mice to a normal physiologic level that stabilized without resulting in polycythemia. Importantly, the OBHRE-Epo vector had no significant effect on the hematocrit of control mice. Homozygous Epo-TAg(h) mice display cardiac hypertrophy, a common adaptive response in patients with chronic anemia. In the OBHRE-Epo-treated Epo-TAg(h) mice, we observed a significant reversal of cardiac hypertrophy. We conclude that the OBHRE promoter gives rise to physiologically regulated Epo secretion such that the hematocrit level is corrected to healthy in anemic Epo-TAg(h) mice. This establishes that a hypoxia regulatory mechanism similar to the natural mechanism can be achieved, and it makes EPO gene therapy more attractive and safer in clinical settings. We envisage that this control system will allow regulated delivery of therapeutic gene products in other ischemic settings.

Anemia↗