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Biology subjects

Barrientos, R. M.

Publications and source records attributed to Barrientos, R. M..

2 recordsLinked to original sources

Disruption of hippocampal mitochondrial function underlies opioid-induced postoperative cognitive dysfunction in aged rats

Postoperative cognitive dysfunction (POCD) is a common and persistent complication in aging individuals following surgery, particularly when opioids are used for perioperative pain management. Although opioids are widely administered in the perioperative setting, the mechanisms by which they contribute to long-term cognitive impairment remain poorly understood. Here, we investigated how synaptic, neuroaxonal, and mitochondrial abnormalities contribute to long-lasting memory deficits induced by surgery and morphine, and evaluated therapeutic strategies targeting neuroinflammation and mitochondrial dysfunction. Using an aged rat model of surgery with perioperative morphine administration, we found that persistent hippocampal-dependent memory impairments were not attributable to systemic illness or gross dendritic degeneration. Instead, morphine-treated animals exhibited selective reductions in dendritic spine subtypes associated with synaptic stability, impaired late-phase long-term potentiation, and blunted experience-dependent upregulation of the AMPA receptor subunit GluA1. These synaptic alterations were accompanied by elevated circulating neurofilament light chain (Nf-L), indicating sustained neuroaxonal perturbation. Morphine treatment also produced persistent hippocampal mitochondrial dysfunction, characterized by impaired oxidative phosphorylation, reduced respiratory reserve capacity, and increased oxidative DNA damage, including mitochondrial DNA oxidation. These effects were restricted to the hippocampus and not observed in peripheral tissue. Pharmacological inhibition of TLR4 signaling at the time of surgery, which rescued the memory deficit, attenuated oxidative stress and partially restored mitochondrial function, implicating early neuroinflammatory signaling in the development of long-term mitochondrial impairment. Finally, targeted mitochondrial rejuvenation with SS-31 four weeks post-surgery robustly rescued hippocampal-dependent memory and normalized mitochondrial respiratory function despite persistently elevated DNA oxidation and Nf-L. Together these findings identify sustained hippocampal mitochondrial dysfunction as a key mechanistic substrate underlying long-term cognitive deficits following surgery and morphine exposure in aged rats, and highlight mitochondrial bioenergetics as a promising therapeutic target for POCD.

animal behavior and cognition↗

AI-based decoding of long covid cognitive impairments in mice using automated behavioral system and comparative transcriptomic analysis

Long COVID (LC) following SARS-CoV-2 infection affects millions of individuals world-wide and manifests with a variety of symptoms including cognitive dysfunction also known as "brain fog". This is characterized by difficulties in executive functions, planning, decision-making, working memory, impairments in complex attention, loss of ability to learn new skills and perform sophisticated brain tasks. No effective treatment options currently exist for LC-related cognitive dysfunction. Here, we use the IntelliCage, which is an automated tracking system of cognitive functions, following SARS-CoV-2 infection in mice, measuring the ability of each mouse within a group to perform tasks that mimic complex human behaviors, such as planning, decision-making, cognitive flexibility, and working memory. Artificial intelligence and machine learning analyses of the tracking data classified LC mice into distinct behavioral categories from non-infected control mice, permitting precise identification and quantification of complex cognitive dysfunction in a controlled, replicable manner. Importantly, we find that brains from LC mice with cognitive dysfunction exhibit transcriptomic alterations similar to those observed in humans suffering from LC-related cognitive impairments, including altered expression of genes involved in learning, executive functions, synaptic functions, neurotransmitters and memory. Together, our findings establish a validated murine model and an automated unbiased approach to study LC-related cognitive dysfunction for the first time, and providing a valuable tool for screening potential treatments and therapeutic interventions.

neuroscience↗