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Konig, A.

Publications and source records attributed to Konig, A..

2 recordsLinked to original sources

Glycation of alpha-synuclein enhances aggregation and neuroinflammatory responses

The risk of developing Parkinsons disease (PD) is elevated in people with type 2 diabetes, but the precise molecular pathways underlying this connection are still unclear. One hypothesis is that glycation, a non-enzymatic family of reactions between glycating agents, such as reducing sugars or reactive dicarbonyls, and specific amino acids, such as lysines and arginines, may alter proteostasis and trigger pathological alterations. Glycation of alpha-synuclein (aSyn), a central player in PD pathology, causes profound changes in the aggregation process of aSyn. Methylglyoxal (MGO), a strong glycating agent, induces the formation of pathological inclusions enriched in phosphorylated aSyn on serine 129 (pS129). In addition, we found that neuroinflammatory responses are enhanced by MGO-mediated aSyn glycation. Using novel polyclonal antibodies developed towards specific MGO-glycated aSyn residues, we confirmed the occurrence of glycated aSyn both in vitro as well as in animal and in human brain tissue. In total, our findings shed light into the interplay between glycation, PD, and type 2 diabetes, potentially paving the way for the development of novel therapeutic strategies targeting these intertwined conditions.

neuroscience↗

Alpha-synuclein oligomers activate nuclear factor of activated T-cells (NFAT) modulating apoptosis and synaptic homeostasis

Soluble oligomeric forms of alpha-synuclein (aSyn-O) are believed to be one of the main toxic species in Parkinsons disease (PD) leading to degeneration. aSyn-O can induce Ca2+ influx, over activating downstream pathways leading to PD phenotype. Calcineurin (CN), a phosphatase regulated by Ca2+ levels, activates NFAT transcription factors that are involved in the regulation of neuronal plasticity, growth and survival. Here, we investigate NFATs role in neuronal degeneration induced by aSyn-O. aSyn-O are toxic to neurons leading to cell death, loss of neuron ramification and reduction of synaptic proteins which are reversed by CN inhibition with ciclosporin-A or VIVIT, a NFAT specific inhibitor. aSyn-O induce NFAT nuclear translocation and transactivation. We found that aSyn-O modulates the gene involved in the maintenance of synapses, synapsin 1 (Syn 1). Syn1 mRNA and protein and synaptic puncta are drastically reduced in cells treated with aSyn-O which are reversed by NFAT inhibition. For the first time a direct role of NFAT in aSyn-O-induced toxicity and Syn1 gene regulation was demonstrated, enlarging our understanding of the pathways underpinnings synucleinopathies.

neuroscience↗