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Biology subjects

Negro, D.

Publications and source records attributed to Negro, D..

2 recordsLinked to original sources

Opposing roles of physiological and pathological amyloid-β on synapses in live human brain slice cultures

In Alzheimers disease, it is theorised that amyloid beta (A{beta}) and tau pathology contribute to synapse loss. However, there is limited information on how endogenous levels of tau and A{beta} protein relate to patient characteristics, or how manipulating physiological levels of A{beta} impacts synapses, in living adult, human brain. Here, we employed live human brain slice cultures as a translational tool to assess endogenous tau and A{beta} release, pathology, and response to experimental manipulation. We found that the levels of A{beta}1-40 and tau detected in the culture medium depend on donor age, and brain region, respectively. Pharmacologically raising physiological A{beta} concentration enhanced levels of synaptic transcripts. Treatment of slices with A{beta}-containing Alzheimers disease brain extract resulted in postsynaptic A{beta} uptake and loss of presynaptic puncta. These data indicate that physiological and pathological A{beta} can have opposing effects on synapses in living human brain tissue.

neuroscience↗

Loss of PAX6 alters the excitatory/inhibitory neuronal ratio in human cerebral organoids

The transcription factor PAX6 is a crucial regulator of multiple aspects of embryonic forebrain development. It has well-established roles in the regulation of excitatory and inhibitory neuron development in the embryonic cortex in mice but PAX6s roles during human forebrain development are less well understood. Using human cerebral organoids, we investigated PAX6s roles in human neurodevelopment. Homozygous PAX6 mutant (PAX6-/-) organoids were larger than controls and contained increased inhibitory cell types. Excitatory neurons were still generated in PAX6-/- organoids but they were less mature, and a subset showed dysregulated expression of inhibitory identity genes compared to PAX6+/+ controls. The inhibitory cells found in PAX6-/- organoids physically segregated from excitatory neurons and presented a distinct transcriptomic profile when compared to in vivo cortical inhibitory neurons. PAX6-/- organoids showed a dysregulated cellular response to PTN-PTPRZ1 signalling, which contributed to the observed increase in inhibitory neurons and the consequent altered excitatory to inhibitory neuronal ratio. Summary StatementHuman cerebral organoids lacking PAX6 expression show an altered excitatory to inhibitory neuronal ratio, concomitant with altered responses to intercellular PTN-PTPRZ1 signalling.

developmental biology↗