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Constantino, N. J.

Publications and source records attributed to Constantino, N. J..

2 recordsLinked to original sources

Acute hyper- and hypoglycemia uncouples the metabolic cooperation between glucose and lactate to disrupt sleep

The sleep-wake cycle is a master regulator of metabolic and neuronal activity and when altered, can have profound effects on metabolic health and disease. Although consideration is given to how fluctuations in blood glucose affect peripheral physiology and metabolism, less is known about how glucose dysregulation impacts the intrinsic cooperation between brain metabolism and neuronal activity to regulate sleep. To understand the effect of peripheral hyper- and hypoglycemia on these relationships, we paired biosensors measuring hippocampal interstitial fluid (ISF) levels of glucose and lactate with cortical EEG/EMG recordings to produce simultaneous subsecond recordings of ISF glucose, lactate, and sleep-wake states. First, we describe a conserved temporal relationships between ISF glucose and lactate based on their intrinsic oscillations, diurnal rhythms, and sleep/wake cycles. ISF glucose and lactate oscillations are largely anti-correlated but the frequency of their oscillations dictate their power, coherence, and phase. While ISF glucose and lactate both have diurnal fluctuations, only ISF lactate is consistently elevated during wake. During wake, fluctuations in ISF lactate are associated with changes in the EEG power spectrum, suggesting wake-related activity is more closely associated with ISF lactate. Modulation of glucose availability via both hyper- or hypoglycemia disrupts the relationship between peripheral metabolism, brain metabolism, and sleep. Hyper- and hypo-glycemia increase ISF lactate, decrease NREM, and alter EEG spectral activity, again demonstrating ISF lactate drives wake-associated behaviors and disrupts sleep. Taken together, these studies demonstrate that peripheral glucose homeostasis is necessary for maintaining the relationships between brain metabolism, neuronal activity, and sleep-wake patterns and deviations in blood glucose levels are sufficient to disrupt the metabolic signature of sleep-wake states, putting the brain at risk in diseases like type-2-diabetes and Alzheimers disease. Graphical Abstract. Peripheral glucose homeostasis directly modifies sleep/wake patterns O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=193 SRC="FIGDIR/small/507967v1_ufig1.gif" ALT="Figure 1"> View larger version (40K): org.highwire.dtl.DTLVardef@9102eborg.highwire.dtl.DTLVardef@5699c5org.highwire.dtl.DTLVardef@1897ebeorg.highwire.dtl.DTLVardef@1e00661_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Kir6.2-containing KATP channels are necessary for glucose dependent increases in amyloid-beta and Alzheimer's-related pathology

Increased neuronal excitability contributes to amyloid-{beta} (A{beta}) production and aggregation in the Alzheimers disease (AD) brain. Previous work from our lab demonstrated that hyperglycemia, or elevated blood glucose levels, increased brain excitability and A{beta} release potentially through inward rectifying, ATP-sensitive potassium (KATP) channels. KATP channels are present on several different cell types and help to maintain excitatory thresholds throughout the brain. KATP channels are sensitive to changes in the metabolic environment, which are coupled to changes in cellular excitability. Therefore, we hypothesized that neuronal KATP channels are necessary for the hyperglycemic-dependent increases in extracellular A{beta} and eliminating KATP channel activity will uncouple the relationship between metabolism, excitability, and A{beta} pathology. First, we demonstrate that Kir6.2/KCNJ11, the pore forming subunits, and SUR1/ABCC8, the sulfonylurea receptors, are predominantly expressed on excitatory and inhibitory neurons in the human brain and that cortical expression of KCNJ11 and ABCC8 change with AD pathology in humans and rodent models. Next, we crossed APP/PS1 mice with Kir6.2 -/- mice, which lack neuronal KATP channel activity, to define the relationship between KATP channels, A{beta}, and hyperglycemia. Using in vivo microdialysis and hyperglycemic clamps, we explored how acute elevations in peripheral blood glucose levels impacted hippocampal interstitial fluid (ISF) glucose, lactate, and A{beta} levels in APP/PS1 mice with or without KATP channels. Kir6.2+/+, APP/PS1 mice and Kir6.2-/-, APP/PS1 mice were exposed to a high sucrose diet for 6 months to determine the effects of chronic hyperglycemia on A{beta} deposition. We found that elevations in blood glucose levels correlate with increased ISF A{beta}, amyloidogenic processing of amyloid precursor protein (APP), and amyloid plaque pathology in APP/PS mice with intact KATP channels. However, neither acute hyperglycemia nor chronic sucrose overconsumption raised ISF A{beta} or increased A{beta} plaque burden in APP/PS1 mice lacking Kir6.2-KATP channel activity. Mechanistic studies demonstrate ISF glucose not only correlates with ISF A{beta} but also ISF lactate. Without KATP channel activity, ISF lactate does not increase during hyperglycemia, which correlates with decreased monocarboxylate transporter 4 (MCT4) expression, a lactate transporter responsible for astrocytic lactate release. This suggests that KATP channel activity regulates ISF lactate during hyperglycemia, which is important for A{beta} release and aggregation. These studies identify a new role for Kir6.2-KATP channels in Alzheimers disease pathology and suggest that pharmacological antagonism of Kir6.2-KATP channels holds therapeutic promise in reducing A{beta} pathology, especially in diabetic and prediabetic patients.

neuroscience↗