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Schalich, K.

Publications and source records attributed to Schalich, K..

2 recordsLinked to original sources

Whey Protein Phospholipid Concentrate Supplementation Prevents High-Fat Diet Induced Cognitive Impairment in Wistar Rats by Promoting Brain Neuronal Connectivity and Sphingolipid Clearance

Whey protein phospholipid concentrate (WPPC), a byproduct of whey protein processing, is high in phospholipids and glycoconjugates which serve as substrates for fatty acids and sugar monomers (e.g. sialic acid) critical to neuronal myelin synthesis in the brain. This led us to hypothesize that WPPC will improve cognitive impairment induced by a high fat (HF) diet by promoting myelin turnover and improving myelin-dependent processes associated with encoding and storing memory. Male Wistar rats were randomized to one of four diets starting at weaning to [~]6.5 months on age: a low-fat (LF) diet containing 10% fat by weight, a HF diet containing 45% fat by weight to induce cognitive impairment, and a HF diet containing either 1.6% or 10% WPPC by weight (n=12 per diet). Rats were subjected to cognitive testing after 2 and 4 months of dietary intervention and then implanted with chronic bipolar electrodes to measure axonal evoked responses within the entorhinal cortex-hippocampal circuitry. Phospholipid and sphingolipid components of myelin were quantified in the hippocampus. There were no significant differences in cognition measured by novel object recognition after 2 months of supplementation. At 4 months, rats on the HF diet performed significantly worse than rats on the LF, HF1.6 and HF10 diets. The beneficial effects of WPPC on cognition were due to a partial reversal in evoked response impairments in hippocampal memory storage. Additionally, hippocampus sphingolipids were higher in rats on the HF diet compared to the LF, HF1.6 and HF10 groups. These findings demonstrate that WPPC prevented cognitive impairment induced by a HF diet by regulating entorhinal cortex-hippocampal circuitries associated with memory storage, though modulating myelin turnover.

neuroscience↗

A Milk Fat Globule Membrane-enriched dairy co-product modulates gut Faecalibaculum rodentium metabolism in association with the prevention of cognitive impairment in aging male Wistar rats

Consumption of the milk fat globule membrane (MFGM) by infants is linked to enhanced neurodevelopment and sustained cognitive improvements later in life. Aging, by contrast, is often marked by neurodegeneration and cognitive decline-a growing concern in the U.S. as 6.9 million Americans live with Alzheimers disease (AD). As such, identifying interventions to prevent cognitive impairment are imperative. The whey protein phospholipid concentrate (WPPC), a dairy co-product, is enriched in MFGM glycoconjugates. Given the cognitive health benefits conferred by MFGM consumption in early life, we previously found that high-fat (HF) diet induced cognitive impairment in aging male Wistar rats was prevented by supplementating with a 1.6% or 10% WPPC in the diet, compared to control rats fed a low-fat (LF) diet. We hypothesized that WPPC exerts protective effects against cognitive impairment through the gut-brain axis by modulating gut microbial composition and metabolism. To test this, we analyzed 16S rRNA sequencing data from fecal samples of aged male Wistar rat (4 months old) fed a LF, HF, HF + 1.6% WPPC, or HF + 10% WPPC diet (n=9-10/group). Compared to LF, the HF diet reduced the abundance of the Erysipelotrichaceae family, particularly the species Faecalibaculum rodentium, which increased numerically with the 10% WPPC diet. Interestingly, Erysipelotrichaceae relative abundance correlated with hippocampal memory storage (spearman correlation=0.4, p=0.034). In vitro growth assays confirmed that F. rodentium grew robustly in isolation on WPPC glycoconjugates and on constituent WPPC components (p<0.05). RNA sequencing of F. rodentium grown on the WPPC MFGM glycoconjugates versus glucose (n=3/group) revealed significant upregulation of genes involved in in amino acid metabolism and fatty acid oxidation (FDR<0.05). Collectively this data suggests a potential role for F. rodentium in preventing cognitive impairment through the gut-brain axis by metabolizing the WPPC that may act on the host.

microbiology↗