Search bioRxivSearch

Biology subjects

Norris, K. A.

Publications and source records attributed to Norris, K. A..

2 recordsLinked to original sources

Familial Danish dementia young Knock-in rats expressing humanized APP and human Aβ show impaired pre and postsynaptic glutamatergic transmission

Familial British and Danish dementia (FBD and FDD) are two neurodegenerative disorders caused by mutations in the Integral membrane protein 2B (ITM2b). BRI2, the protein encoded by ITM2b, tunes excitatory synaptic transmission at both pre- and post-synaptic terminus. Too, BRI2 interacts with and modulates proteolytic processing of Amyloid-{beta} precursor Protein (APP), whose mutations cause familial forms of Alzheimer disease (FAD). To study pathogenic mechanism triggered by the Danish mutation we generated rats carrying the Danish mutation into the rat Itm2b gene (Itm2bD rats). Given the BRI2/APP interaction and the widely accepted relevance of human A{beta}, a proteolytic product of APP, to AD, Itm2bD rats were engineered to express two humanized App alleles, to produce human A{beta}. Here, we studied young Itm2bD rats to investigate early pathogenic changes. We found that peri-adolescent Itm2bD rats present subtle changes in human A{beta} levels along with decreased spontaneous glutamate release and AMPAR-mediated responses but increased short-term synaptic facilitation in the hippocampal Schaeffer-collateral pathway. These changes are like those observed in adult mice producing rodent A{beta} and carrying either the Danish or British mutations into the mouse Itm2b gene. Collectively, the data show that the pathogenic Danish mutation alters the physiological function of BRI2 at glutamatergic synapses; these functional alterations are detected across species and occur early in life. Future studies will be needed to determine whether this phenomenon represents an early pathogenic event in human dementia.

neuroscience

TNFα reduces inhibitory transmission in young Trem2R47H Sporadic Alzheimer rats before observable Aβ and brain pathology

Trem2R47H rats, which carry the Alzheimers disease (AD) risk factor p.R47H variant of the microglia gene TREM2 and produce human A{beta}. Previously, we demonstrated that supraphysiological TNF- boost glutamatergic transmission and suppresses Long-term-Potentiation (LTP), a surrogate of learning and memory, in peri-adolescent Trem2R47H rats (Ren et al., 2020). Here we tested the effect of the p.R47H TREM2 variant on GABA transmission. We report that GABAergic transmission is decreased in Trem2R47H/R47H rats. This decrease is due to the acute and reversable action of TNF- and is not associated whit changes in human A{beta} levels and pathological brain lesions. Thus, the p.R47H TREM2 variant changes the excitatory/inhibitory balance between glutamate and GABA transmission, favoring excitation. This unbalance could potentiate glutamate excitotoxicity and, over time, contribute to neuronal dysfunction, enhanced neuronal cells death and neurodegeneration. Future studies will determine whether this unbalance represents an early, A{beta}-independent pathway leading to dementia.

neuroscience