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De Marco, S.

Publications and source records attributed to De Marco, S..

3 recordsLinked to original sources

rAAV-Delivered Bicistronic Artificial microRNAs for Allele-Specific Silencing Improve Motor and Molecular Outcomes in Spinocerebellar Ataxia Type 3

Spinocerebellar ataxia type 3 (SCA3), also known as Machado-Joseph disease, is an autosomal dominant neurodegenerative disorder caused by the expansion of CAG trinucleotide repeats in the ATXN3 gene. This mutation induces a toxic gain-of-function of the ATXN3 protein, leading to neurodegeneration, particularly in the cerebellum and brainstem. Despite extensive research, no disease-modifying treatments are available for SCA3 patients. In this study, we developed and tested a novel therapeutic strategy using recombinant adeno-associated virus (rAAV) to deliver bicistronic artificial microRNAs designed to selectively silence the mutant ATXN3 allele. Through in vitro screening, we identified a lead construct (miATXN3-10x2) that effectively and specifically silenced the mutant allele by targeting of a single nucleotide polymorphism (SNP) associated with the repeat expansion. This construct was packaged into rAAV9 and delivered via intra-cerebellar administration into two mouse models of SCA3, resulting in robust suppression of mutant ATXN3 in the cerebellum. To assess long-term efficacy, we performed intra-cisterna magna (ICM) injections of rAAV9-miATXN3-10x2 in a severe SCA3 transgenic mouse model. Widespread distribution of viral vectors and miATXN3 copies was observed in disease-relevant brain regions. Treated animals exhibited significant and sustained improvements in motor function at 5, 8, and 11 weeks post-injection. Histological analyses showed a reduction in mutant ATXN3 aggregates and a trend toward preventing shrinkage of cerebellar molecular layer. These findings were supported by dose-dependent reductions in mutant ATXN3 mRNA levels and decreased expression of neuroinflammatory markers in the cerebellum. Additionally, a significant increase of the neuronal marker NeuN was also observed in treated animals. Finally, transcriptomic profiling of the cerebellum demonstrated that treated transgenic animals exhibited an improved transcriptomic signature, shifting toward a wild-type profile. In conclusion, our findings highlight the therapeutic potential of a single administration of rAAVs encoding bicistronic artificial microRNAs for allele-specific gene silencing in SCA3. This study provides compelling preclinical evidence supporting the translation of this approach into clinical applications for SCA3 patients.

molecular biology↗

AAV-mediated allele-specific silencing alleviates neuropathology in a novel non-human primate model of Spinocerebellar ataxia type 3

Spinocerebellar ataxia type 3 (SCA3), also known as Machado-Joseph disease (MJD), is an autosomal dominant neurodegenerative disorder caused by an abnormal expansion of the cytosine-adenine-guanine (CAG) repeats in the ATXN3 gene. This mutation results in the production of an Ataxin-3 protein with an extended polyglutamine sequence, contributing to the diseases neuropathology. Currently, no treatment is available that can slow or halt the progression of SCA3. Gene-targeted therapies have gained significant attention for their potential to address the root cause of SCA3. Preliminary studies in transgenic mice using adeno-associated viral vector serotype 9 (AAV9) encoding artificial microRNAs targeting the mutant ATXN3 allele (AAV9-miR-ATXN3) have shown promising results. However, to advance this therapeutic approach toward clinical application, further studies in an animal model that more closely resembles human biology are essential. In this exploratory study, we assessed the biodistribution and target engagement of AAV9-miR-ATXN3 delivered via intracisterna magna (ICM) injection in non-human primates (NHPs). Using a lentiviral vector (LV) to introduce a mutant Ataxin-3 cDNA with 72 glutamines (LV-mutATXN3-Q72) into the NHP cerebellum, we successfully overexpressed SCA3 in the NHP brain. SCA3 NHP exhibited Ataxin-3 aggregation in the cerebellum, recruitment of inflammatory cells and reduced cerebellar volume. ICM administration of AAV9-miR-ATXN3 effectively directed transgene expression to key brain regions impacted by SCA3 pathology and enabled specific, dose-dependent silencing of mutant Ataxin-3. Furthermore, the therapeutic dose prevented the cerebellar morphological and biochemical alterations induced by the overexpression of mutant ATXN3. These proof-of-concept experiments are crucial, not only for advancing AAV9-miR-ATXN3 toward clinical use but also for establishing a valuable platform for validating future therapeutic interventions.

molecular biology↗

Hemogenic endothelium of the vitelline and umbilical arteries is the major contributor to mouse fetal lympho-myelopoiesis

Embryonic hematopoiesis consists of distinct waves originating in rapid succession from different anatomical locations. Hematopoietic progenitors appearing earlier than definitive hematopoietic stem cells (HSCs) play key roles in fetal and postnatal life. However, their precise origin, identity and the extent of their contribution need further clarification. To this aim, we took advantage of a genetic fate-mapping strategy in mice that allows labeling and tracking of distinct subsets of hemogenic endothelium (HE). Time-course labeling of hematopoietic progenitors emerging from HE between E8.5 and E9.5, before intra-embryonic definitive HSC generation, revealed a major fetal lympho-myeloid contribution which declined in the adult. Lineage tracing coupled with whole-mount imaging and single-cell RNA sequencing located its source within hematopoietic clusters of vitelline and umbilical arteries. Functional assays confirmed the transient nature of these progenitors. We therefore unveiled a hitherto unidentified early wave of fetal-restricted hematopoietic stem/progenitor cells poised for differentiation that provide a major contribution to pre-natal hematopoiesis.

developmental biology↗