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Cummings, S. E.

Publications and source records attributed to Cummings, S. E..

2 recordsLinked to original sources

Effect of acute elevated magnesium on bursting activity and information-processing dynamics in cortical cultures

Magnesium (Mg2+) plays a significant role in hippocampal memory and learning and is implicated in a variety of neurological disorders, such as migraine. Despite this crucial role Mg2+ has on brain health, its effect on the dynamics of networks of neurons is still not fully understood. This study investigates the impact of several doses of elevated extracellular Mg2+ on cortical organotypic cultures. Cultures were recorded on a 512-microelectrode array and analyzed using the burstiness index (BI), the rate of network-wide bursts relative to other neuronal activity. We also use a suite of information theoretic measures to further establish the role Mg2+ plays in the brain. Elevated Mg2+ is found to have a dose-dependent increase on BI caused by a loss of network activity not contained within a burst or high firing rate activity. Information dynamics further show that the network experiences a loss of entropy and an increase in time-reversibility, connectivity, and transfer of redundant information. These factors indicate that Mg2+ causes a loss of complex activity and an increase in highly integrated, constant dynamics. This lays the groundwork for a deeper examination of the role Mg2+ plays in learning, memory and treating neurological disorders. AUTHOR SUMMARYMagnesium is crucial for neurological health. In pyramidal neurons, magnesium blocks NMDA receptors, thereby reducing synchronous neural activity in the brain. This has led to the canonical view of magnesium as a "burst quieter". Here, we take a closer look at magnesiums role in cortical slice cultures by examining network burstiness with normal and chronically elevated levels of magnesium. We show that magnesium can effectively increase burstiness, not reduce it. Magnesium is further shown to cause significant changes in how neurons process information. These findings may have impact how magnesium is used as a treatment for neurological disorders.

neuroscience↗

Multilevel proteomic profiling of colorectal adenocarcinoma cell differentiation to characterize an intestinal epithelial model

Emergent advancements on the intestinal microbiome for human health and disease treatment necessitates well-defined intestinal cellular models to study and rapidly assess host, microbiome, and drug interactions. This study characterized molecular alterations during Caco-2 cell differentiation, an epithelial intestinal model, using quantitative multi-omic approaches. We demonstrated that both spontaneous and medium-induced cellular differentiations displayed similar protein and pathway changes, including the down-regulation of proteins related to translation and proliferation, and up-regulation of proteins related to cell adhesion, molecule binding and metabolic pathways. Acetyl-proteomics revealed decreased histone acetylation and increased acetylation in proteins associated with mitochondria functions in differentiated cells. Butyrate-containing differentiation medium accelerates differentiation, with earlier up-regulation of proteins related to differentiation and host-microbiome interactions. These results emphasize the controlled progression of Caco-2 differentiation toward a specialized intestinal epithelial-like cell. This further enhances their characterization, establishing their suitability for facilitating the effective evaluation of risk and quality in microbiome-directed therapeutics.

systems biology↗