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Trotti, D.

Publications and source records attributed to Trotti, D..

4 recordsLinked to original sources

C9orf72 poly(PR) mediated neurodegeneration is associated with nucleolar stress

The ALS/FTD-linked intronic hexanucleotide repeat expansion in the C9orf72 gene is translated into dipeptide repeat proteins, among which poly-proline-arginine (PR) displays the most aggressive neurotoxicity in-vitro and in-vivo. PR partitions to the nucleus when expressed in neurons and other cell types. Using drosophila and primary rat cortical neurons as model systems, we show that by lessening the nuclear accumulation of PR, we can drastically reduce its neurotoxicity. PR accumulates in the nucleolus, a site of ribosome biogenesis that regulates the cell stress response. We examined the effect of nucleolar PR accumulation and its impact on nucleolar function and determined that PR caused nucleolar stress and increased levels of the transcription factor p53. Downregulating p53 levels, either genetically or by increasing its degradation, also prevented PR-mediated neurotoxic phenotypes both in in-vitro and in-vivo models. We also investigated whether PR could cause the senescence phenotype in neurons but observed none. Instead, we found induction of apoptosis via caspase-3 activation. In summary, we uncovered the central role of nucleolar dysfunction upon PR expression in the context of C9-ALS/FTD.

neuroscience↗

JUN upregulation drives aberrant transposable element mobilization, associated innate immune response, and impaired neurogenesis in Alzheimer disease

Adult neurogenic decline, inflammation, and neurodegeneration are phenotypic hallmarks of Alzheimers disease (AD). Mobilization of transposable elements (TEs) in heterochromatic regions was recently reported in AD, but the underlying mechanisms are still underappreciated. Combining functional genomics with differentiation of familial and sporadic AD patient derived-iPSCs into hippocampal progenitors, CA3 neurons, and cerebral organoids, we found that upregulation of the AP-1 subunit c-JUN triggers decondensation of genomic regions containing TEs. This leads to cytoplasmic accumulation of TE-derived RNA-DNA hybrids, activation of the cGAS-STING cascade, and increased cleaved caspase-3 levels, suggesting initiation of programmed cell death in progenitor cells and neurons. Notably, inhibiting c-JUN effectively blocks all the downstream molecular processes and rescues neuronal death and impaired neurogenesis in the AD progenitors. Our findings open new avenues for identifying therapeutic strategies and biomarkers to counteract disease progression and diagnose AD in the early, pre-symptomatic stages.

genomics↗

KapBeta2 is a modifier of the C9orf72-linked glycine-arginine dipeptide neurotoxicity

SummaryExpanded intronic G4C2 repeats in the C9orf72 gene cause several cases of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). These repeats are translated through a non-AUG-dependent mechanism into five different dipeptides (DPRs), including poly-glycine-arginine (GR), which is aggregation-prone and eventually neurotoxic. Here, we report that Kap{beta}2 and GR interact, co-aggregating in primary neurons in-vitro and CNS tissue in-vivo. Importantly, this interaction improves the overall survival of neurons expressing GR. Downregulation of Kap {beta}2 is detrimental to the survival of neurons only if GR is expressed, whereas increased Kap {beta}2 levels mitigate GR-mediated neurotoxicity. notably, we did not find any changes in TDP-43 localization nor in the dynamic properties of the GR aggregates when Kap{beta}2 was over-expressed. These findings support the design of therapeutic strategies aimed at modulating Kap {beta}2 levels as a potential new avenue for contrasting neurodegeneration in C9orf72-ALS/FTD.

neuroscience↗

Astrocytic expression of ALS-causative mutant FUS leads to TNFa-dependent neurodegeneration in vivo

Genetic mutations that cause Amyotrophic Lateral Sclerosis (ALS), a progressively lethal motor neuron disease, are commonly found in ubiquitously expressed genes. In addition to direct defects within motor neurons, growing evidence suggests that dysfunction of non-neuronal cells is also an important driver of disease. Previously, we demonstrated that mutations in DNA/RNA binding protein Fused in Sarcoma (FUS) induce neurotoxic phenotypes in astrocytes in vitro, via activation of the NF-{kappa}B pathway and release of pro-inflammatory cytokine TNF. Here, we developed an intraspinal cord injection model to test whether astrocyte-specific expression of ALS-causative FUSR521G variant (mtFUS) causes neuronal damage in vivo. We show that mtFUS expression causes TNF upregulation, motor function deficits, and spinal motor neuron loss. We further demonstrate a lack of phenotype in TNF knockout animals expressing mtFUS, and prevention of neurodegeneration in mtFUS-transduced animals through administration of TNF neutralizing antibodies. Together, these studies strengthen evidence that astrocytes contribute to disease in ALS, establish that FUS-ALS astrocytes induce pathogenic changes to motor neurons in vivo, and provide insights identifying FUS-ALS specific potential therapeutic targets.

neuroscience↗