bioRxiv ScienceSearch

Biology subjects

Nichols, R.

Publications and source records attributed to Nichols, R..

2 recordsLinked to original sources

The Neuroprotective Beta Amyloid Hexapeptide Core Reverses Deficits in Synaptic Plasticity in the 5xFAD APP/PS1 Mouse Model

Alzheimers disease (AD) is the most common cause of dementia in the aging population. Evidence implicates elevated soluble oligomeric A{beta} as one of the primary triggers during the prodromic phase leading to AD, effected largely via hyperphosphorylation of the microtubule-associated protein tau. At low, physiological levels (pM-nM), however, oligomeric A{beta} has been found to regulate synaptic plasticity as a neuromodulator. Through mutational analysis, we found a core hexapeptide sequence within the N-terminal domain of A{beta} (N-A{beta}core) accounting for its physiological activity, and subsequently found that the N-A{beta}core peptide is neuroprotective. Here, we characterized the neuroprotective potential of the N-A{beta}core against dysfunction of synaptic plasticity assessed in ex vivo hippocampal slices from 5xFAD APP/PS1 mice, specifically hippocampal long-term potentiation (LTP) and long-term depression (LTD). The N-A{beta}core was shown to reverse impairment in synaptic plasticity in hippocampal slices from 5xFAD APP/PS1 model mice, both for LTP and LTD. The reversal by the N-A{beta}core correlated with alleviation of downregulation of hippocampal AMPA-type glutamate receptors in preparations from 5xFAD mice. The action of the N-A{beta}core depended upon a critical di-histidine sequence and involved the PI3 kinase pathway via mTOR. Together, the present findings indicate that the non-toxic N-A{beta}core hexapeptide is not only neuroprotective at the cellular level but is able to reverse synaptic dysfunction in AD-like models, specifically alterations in synaptic plasticity.

neuroscience

Genomic architecture and evolutionary conflict drive allele-specific expression in the social supergene of the red fire ant

Supergenes are genomic regions of suppressed recombination that underlie complex polymorphisms. Despite the importance of such regions, our empirical understanding of their early evolution is limited. The young "social" supergene of the fire ant Solenopsis invicta provides a powerful system for disentangling the roles of evolutionary conflict and the implications of suppressed recombination. We used population genomics to identify genetic differences between supergene variants and gene expression analyses across different populations, castes and body parts to characterize allelic expression differences for the hundreds of genes in the supergene. We find that the expression of most genes is independent of social form or supergene variant, in line with the young age of this system. Many of the genes with allelic expression differences, however, show a pattern consistent with gene degeneration due to suppressed recombination. In contrast, a small portion of the genes has the signature of evolutionary conflict between social forms.

molecular biology