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Monni, L.

Publications and source records attributed to Monni, L..

2 recordsLinked to original sources

The polyamine naphthyl-acetyl spermine trihydrochloride (NASPM) lacks specificity for Ca2+-permeable AMPA receptors and suppresses seizure like activity in human brain tissue by inhibition of NMDA receptors.

For decades, naphthyl-acetyl spermine trihydrochloride (NASPM) has been used as a selective inhibitor of calcium-permeable AMPA receptors (CP-AMPAR). In rodents, NASPM is known to suppress seizures in vivo and seizure-like events (SLE) in vitro, suggesting possible involvement of CP-AMPAR in ictogenesis and epileptogenesis. To address whether these findings can be translated to human brain, we investigated the involvement of glutamatergic receptor subclasses in SLE in human cortex ex vivo, demonstrating that glutamatergic receptor antagonists can block (NASPM and APV) or reduce (UBP302, GYKI52466, GYKI53655) SLE. Using a multimethodological approach we were able to demonstrate that both NASPM and APV inhibit human SLE by inhibition of NMDA receptors. Our results further show that the inhibitory effect of NASPM on NMDA receptors is sufficient to explain its inhibition of seizure like activity, rather than its action on CP-AMPA receptors. Thus, our findings challenge previous knowledge on the use of NASPM as a specific CP-AMPAR inhibitor. Some phenomena previously attributed to CP-AMPAR, may need to be re-examined more closely. Overall, our study raises awareness about potential pitfalls in the use of existing pharmacological agents and sets a new paradigm for the use of NASPM in neuroscience research while questioning its therapeutic potential in a clinical context.

neuroscience↗

The functional impact of LGI1 autoantibodies on human CA3 pyramidal neurons

Autoantibodies against leucine-rich glioma inactivated 1 protein (LGI1 mAb) lead to limbic encephalitis characterized by seizures and memory deficits. While animal models provide insights into mechanisms of LGI1 mAb action, species-specific confirmation is lacking. In this study, we investigated the effects of patient-derived LGI1 mAb on human CA3 neurons using cultured ex vivo slices. Analysis of intrinsic properties and morphology indicated functional integrity of these neurons under incubation conditions. Human CA3 neurons received spontaneous excitatory currents with large amplitudes and frequencies, suggestive of "giant" AMPA currents. In slices exposed to LGI1 mAb, human CA3 neurons displayed increased neuronal spike frequency, mirroring effects observed with the Kv1.1 channel blocker DTX-K. This increase likely resulted from decreased Kv1.1 channel activity at the axonal initial segment, as indicated by alterations in action potential properties. A detailed analysis revealed differences between LGI1 mAb and DTX-K effects on action potential properties, suggesting distinct mechanisms of action and emphasizing the need for further exploration of downstream pathways. Our findings underscore the importance of species-specific confirmatory studies of disease mechanisms and highlight the potential of human hippocampal slice cultures as a translational model for investigation of disease mechanisms beyond epilepsy, including the effects of pharmacological compounds and autoantibodies. SignificanceThis study advances our understanding of how autoantibodies against the LGI1 protein, known to cause limbic encephalitis, impact human neurons. By using cultured slices of human hippocampus derived from epilepsys surgical resections, we were able to observe the direct effects of these autoantibodies on neurons, specifically CA3 pyramidal cells. Our findings reveal that the autoantibodies increase neuronal activity, similar to what is seen with potassium channel blockers and in animal models. This work emphasizes the importance of studying living tissue from the human brain to confirm disease mechanisms, and demonstrates the potential of using human brain slices as a model for exploring not only epilepsy but also other neurological diseases and drug effects.

neuroscience↗