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Poletti, V.

Publications and source records attributed to Poletti, V..

2 recordsLinked to original sources

Novel lentiviral vectors for gene therapy of sickle cell disease combining gene addition and gene silencing strategies

Sickle cell disease (SCD) is due to a mutation in the {beta}-globin (HBB) gene causing the production of the toxic sickle hemoglobin (HbS, a2{beta}S2). Transplantation of autologous hematopoietic stem/progenitor cells (HSPCs) transduced with lentiviral vectors (LVs) expressing an anti-sickling {beta}-globin ({beta}AS) is a promising treatment; however, it is only partially effective and patients still present elevated HbS levels. Here, we developed a bifunctional LV expressing {beta}AS3-globin and an artificial microRNA (amiR) specifically downregulating {beta}S-globin expression with the aim of reducing HbS levels and favoring {beta}AS3 incorporation into Hb tetramers. Efficient transduction of SCD HSPC by the bifunctional LV led to a substantial decrease of {beta}S-globin transcripts in HSPC-derived erythroid cells, a significant reduction of HbS+ red cells and effective correction of the sickling phenotype, outperforming {beta}AS gene addition and BCL11A gene silencing strategies. The bifunctional LV showed a standard integration profile and neither the HSPC viability, engraftment and multi-lineage differentiation nor the erythroid transcriptome and miRNAome were affected by the treatment, confirming the safety of this therapeutic strategy. In conclusion, the combination of gene addition and gene silencing strategies can improve the efficacy of current LV-based therapeutic approaches without increasing the mutagenic vector load, thus representing a novel treatment for SCD.

genetics↗

An innovative hematopoietic stem cell gene therapy approach benefits CLN1 disease in the mouse model

Hematopoietic stem and progenitor cells (HSPCs) can lead to the establishment of a long-lasting microglia-like progeny in the brain of properly myeloablated hosts. We exploited this approach to treat the severe CLN1 neurodegenerative disorder, which is the most aggressive form of neuronal ceroid lipofuscinoses, due to deficiency of palmitoyl-protein thioesterase 1 (hPPT1). We here provide first evidence that: i) transplantation of wild type HSPCs exerts a partial but long-lasting mitigation of the symptoms; ii) transplantation of HSPCs over-expressing hPPT1 by lentiviral gene transfer enhances therapeutic benefit as compared to wild type cell transplant, with first demonstration of such a dose-effect benefit for a purely neurodegenerative condition like CLN1 disease; iii) transplantation of hPPT1 over-expressing HSPCs by a novel intracerebroventricular (ICV) approach is sufficient to transiently ameliorate CLN1 disease symptomatology in the absence of hematopoietic tissue engraftment of the transduced cells; and iv) the combinatorial transplantation of transduced HSPCs intravenously and ICV results in the most robust therapeutic benefit among the tested approaches on both pre-symptomatic as well as symptomatic animals. Overall, these findings provide first evidence of the efficacy and feasibility of this novel approach to treat CLN1 disease and possibly other neurodegenerative conditions, paving the way for its future clinical application.

neuroscience↗