H2020Individual fellowship2019–2021

Alpha-Synuclein · Blocking the prion-like disease propagation in Parkinson’s disease and related disorders – model development and identification of cell-autonomous and cell non-autonomous factors.

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-09-01 → 2021-08-31
EU contribution
€200,195
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

Blocking the prion-like disease propagation in Parkinson’s disease and related disorders – model development and identification of cell-autonomous and cell non-autonomous factors.

PROBLEM STATEMENT Parkinson disease (PD) is the second most common neurodegenerative disease in populations aged 60 years or above. Current estimates indicate that the clinically diagnosed PD affects more than 6 million people worldwide, and presents a significant socio-economic burden. While the underlying cause of PD remains a matter of rigorous scientific inquiry, examination of (post-mortem, deceased) patient brains shows that there is a profound loss of dopamine producing neurons in several brain regions, particularly affecting a region in midbrain called the substantia nigra (pars compacta). Based on these observations, the clinical interventions are aimed at symptomatic relief, with dopamine replacement (through L-dopa treatment) as the gold-standard approach. However, the disease is progressive and eventually current clinical therapies lose efficacy in majority of the patients after 5-10 years. Hence, there is a dire need for disease modifying treatments that address the underlying factors initiating and contributing to the loss of neurons in PD brain. In this regard, genetic findings in rare inherited forms of PD and histopathological observations incriminate abnormal behavior of a neuronal protein called alpha-synuclein (aSyn). The physiological function(s) of this protein remains elusive; however, under disease states, this protein forms clumps (technically: misfolded aggregates) which deposit in the nervous system and impact the normal function of neurons. Moreover, once misfolded, the putative pathogenic forms of aSyn propagate within the affected network of neurons, further compromising their function and progressive involvement of additional brain regions. Hence, modulating the factors that may promote pathological aSyn misfolding, blocking the propagation of misfolded aSyn in neuronal networks and augmenting cytoprotective response towards mitigating neuronal toxicity represent promising targets in PD therapy, and are actively being pursued in preclinical research and in clinical trials. Hence, as part of the research project , the studies described below were carried out as a contribution to discovery of disease mechanisms, and translational scientific inquiry into the potential utility of viral mediated gene delivery/gene modification in PD. SOCIETAL IMPACT Research into mechanisms of neuronal dysfunction caused by aSyn and establishing preclinical research paradigms to modulate aSyn neurotoxicity are needed for better understanding PD and related diseases. OVERALL OBJECTIVES Therefore, the overall objectives of the project were to: i) modulate the expression levels of neuronal aSyn to prevent its misfolding, ii) study the mechanisms that render neurons vulnerable to the toxicity by misfolded aSyn, and iii) provide proof-of-concept (PoC) preclinical evidence regarding the utility of gene modulation using viral vectors.

Data: CORDIS, © European Union

Project objective

A prion-like behavior of α-synuclein (AS) protein has been hypothesized in the pathogenesis of Parkinson disease (PD). According to this hypothesis, pathogenic forms “seeds” of AS propagate from periphery into the neurons of central nervous system (CNS), where they recruit endogenous AS in the first receiving neurons, exit the cell and enter connected neurons. The ongoing AS aggregation and cell-cell propagation is considered to induce oxidative stress, neuronal dysfunction and neuronal loss in CNS. Therefore, blocking the neuronal propagation of AS will prevent AS neurotoxicity and neurodegeneration. I propose to develop and validate a novel in vivo model of prion-like AS propagation, in which I will selectively modify the genetic makeup of first receiving neurons, and use this model for mechanistic investigations. I will use a transgenic M83 mouse model overexpressing mutant A53T human AS in which prion-like spreading is initiated by injecting preformed AS aggregates into the hindlimb musculus femoris. These AS aggregates are taken up by sensory and/or motor nerve endings in the muscle, are retrogradely transported through the sciatic nerve into spinal cord, and rostrally into the brainstem and higher brain areas over time. I will refine this model by transducing the sciatic nerve endings with intramuscular delivery of rAAV viral vectors- containing novel CRISPR/Cas9 genome editing tools targeting genes of interest- to prevent in vivo prion-like AS spreading and/or toxicity. As proof of concept, I will silence AS in the receiving neurons to demonstrate this slows the disease development in the model. Once validated, I will use the model for hypothesis-driven mechanistic investigations of candidate genes, which initially include: 1) ubiquitin specific peptidase 19 (USP19)- since it has been implicated in cellular excretion of misfolded AS in vitro, and 2) eukaryotic elongation factor-2 kinase (eEF2K)- since it is abnormally activated in postmortem PD brain tissue.

Original text from CORDIS.

Participants

  • AARHUS UNIVERSITET · Aarhus CCoordinatorDenmark

Links

Data: CORDIS, © European Union