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Palmieri, L.

Publications and source records attributed to Palmieri, L..

2 recordsLinked to original sources

Fibroblasts-dependent maturation and phenotype exacerbation of dystrophic hiPSC-derived MYOtissues enables muscle strength evaluation for gene therapy screening

Current gene therapy approaches for Duchenne muscular dystrophy (DMD) using AAV-mediated delivery of microdystrophin ({micro}Dys) have shown limited efficacy in patients, contrasting with the favorable outcomes observed in animal models. This discrepancy is partly due to the lack of models that replicate key pathogenic features associated with the severity of the human disease, such as fibrosis and muscle dysfunction. To tackle the translational gap, we develop a human disease model that recapitulates these critical hallmarks of DMD for a more predictive therapeutic investigation. Using a muscle engineering approach, we generate MYOrganoids from iPSC-derived muscle cells co-cultured with fibroblasts that enable functional maturation for muscle force analysis upon contractions. Incorporation of DMD fibroblasts within DMD iPSC-derived muscle cells allows phenotypic exacerbation by unraveling of fibrotic signature and fatiguability through cell-contact-dependent communication. Although {micro}Dys gene transfer partially restores muscle resistance, it fails to fully restore membrane stability and reduce profibrotic signaling. These findings highlight the persistence of fibrotic activity post-gene therapy in our human DMD system, an unparalleled aspect in existing DMD models, and provide the opportunity to explore the underlying mechanisms of dysregulated cellular communication to identify anti-fibrotic strategies empowering gene therapy efficacy.

bioengineering↗

Persistence of cultivar alleles in wild carrot (Daucus carota L.) populations in the United States

Cultivated species and their wild relatives often hybridize in the wild and crop-wild hybrids can survive and reproduce in some environments. However, it is unclear whether crop alleles are permanently incorporated into the wild genomes in the long run or whether they are purged by natural selection. This question is key to accurately assessing the risk of escape and spread of cultivar genes into wild populations. Here, we use genomic data and population genomic methods to study hybridization and introgression between cultivated and wild carrots (Daucus carota L.) in the United States. We used single nucleotide polymorphisms (SNPs) obtained via genotyping by sequencing for 450 wild individuals from 29 wild georeferenced populations in seven states and 144 cultivars from the United States, Europe, and Asia. Cultivated and wild carrots formed two well differentiated groups, and evidence of crop-wild admixture was detected in several but not all the wild populations in the United States. Two regions were identified where cultivar alleles were introgressed into wild carrots: California and the Nantucket Island, in Massachusetts. In these areas, we found no support for adaptive (or maladaptive) introgression, instead, most crop alleles seemed to be neutral. Surprisingly, there was no evidence of introgression in some populations with a long-known history of sympatry with the crop, suggesting that post-hybridization barriers might prevent introgression in some areas. Further studies are needed to better delineate the geographic patterns of introgression, but our results support the introgression and persistence of cultivar genes in wild carrot populations.

evolutionary biology↗