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Neira, D.

Publications and source records attributed to Neira, D..

3 recordsLinked to original sources

Optimized AAV to express the unfolded protein response transcription factor XBP1s ameliorates Alzheimer's disease features in mouse models

Proteostasis impairment at the level of the endoplasmic reticulum (ER) is a salient feature of Alzheimers disease (AD). The unfolded protein response (UPR) is the main pathway to cope with ER stress, where the expression of the transcription factor X-Box binding protein 1 (XBP1) is central to establish repair programs. To artificially enforce the adaptive capacity of the UPR in the AD brain, we recently reported the protective effects of overexpressing active XBP1 in the brain using adeno-associated vectors (AAVs) of AD mice, in addition to aged animals. Here we have generated a next generation vector suitable for clinical testing by (i) expressing codon-optimized human XBP1s without artificial tags, (ii) the use of the synapsin promoter to restrict expression to neurons, and (iii) incorporating a novel variant of AAV2 (AAV-TT) with greater biodistribution (here termed Proteostaser-1). Treatment of 5xFAD mice with Proteostaser-1 improved spatial learning and synaptic plasticity, and reduced the deposition of amyloid plaques in the brain. Proteostaser-1 administration also improved cognition in a model of sporadic AD based on the intracerebral injection of amyloid {beta} oligomers. Our results further support the therapeutic potential of the UPR as a strategy to ameliorate AD features and sustain synaptic function.

cell biology↗

Cognitive Resilience in Aging Degus is Linked to CA3 Hippocampal GABAergic Integrity

The preservation of cognitive function during aging remains a key challenge in neuroscience. In this study, we applied an integrative approach, combining behavioral assays with neurophysiological recordings, to investigate hippocampal circuit integrity. We used Octodon degus, a rodent with exceptional longevity (up to 10 years in laboratory conditions), as a natural model of aging and neurodegenerative disease such as Alzheimer. To assess agerelated cognitive changes, we employed three behavioral tasks: Novel Object Recognition (NOR), Open Field (OF), and the Burrowing Test (BT). The BT reflects Activities of Daily Living (ADLs) and is based on species-typical spontaneous burrowing behavior, which has been linked to neurodegenerative markers in degus. We also performed multielectrode electro-physiological recordings to assess GABAergic function in the hippocampus. Aged degus with high BT performance (classified as good burrowers, or GB) showed robust hippocampal activity, especially in the CA3 region, a key hub for signal integration and memory encoding. In contrast, degus with poor BT performance (bad burrowers, or BB) exhibited reduced spontaneous hippocampal activity, suggesting potential compensation via GABA-independent synaptic mechanisms. Altogether, our findings suggest that preserved GABAergic function supports cognitive resilience in aging degus. These results offer new insights into the neural mechanisms underlying healthy cognitive aging and may inform future strategies for preventing or mitigating neurodegeneration.

neuroscience↗

XBP1s as a Therapeutic Target to Preserve Retinal Function During Aging and Neurodegeneration

Loss of physiological complexity, characterized by reduced adaptive multiscale coordination among system components, is increasingly recognized as a hallmark of aging and neurodegenerative disease. The retina, a window into the brain, offers a unique, accessible platform to monitor neurodegenerative disorders such as Alzheimers disease (AD). Here, we investigate the therapeutic potential of the unfolded protein response transcription factor XBP1s in preserving retinal function during aging and AD-related pathology in murine models. Using micro-electroretinography with multielectrode arrays, we recorded retinal responses to chirp and white noise stimuli in four mouse models: wild-type (WT), XBP1s-overexpressing (TgXBP1s), AD model (5xFAD), and their crossbreed (TgXBP1s/5xFAD) at approximately 3 and 7 months of age. We assessed retinal signals through entropy-based complexity measures and wavelet coherence between stimulus and response. While WT and 5xFAD mice exhibited age-related decline in retinal complexity, TgXBP1s and TgXBP1s/5xFAD mice maintained higher complexity levels and increased Wcoh in adulthood, indicating functional preservation. These results demonstrate that sus-tained XBP1s expression protects retinal electrophysiological integrity and highlight the retinas value as a scalable, noninvasive biomarker platform to evaluate therapeutic efficacy targeting neurodegenerative mechanisms.

neuroscience↗