Nutrigenomics of inward rectifier potassium channels. 2023

Gonzalo Ferreira, and Axel Santander, and Romina Cardozo, and Luisina Chavarría, and Lucía Domínguez, and Nicolás Mujica, and Milagros Benítez, and Santiago Sastre, and Luis Sobrevia, and Garth L Nicolson
Laboratory of Ion Channels, Biological Membranes and Cell Signaling, Dept. of Biophysics, Facultad de Medicina, CP 11800, Universidad de la Republica, Montevideo, Uruguay. Electronic address: ferreira@fmed.edu.uy.

Inwardly rectifying potassium (Kir) channels play a key role in maintaining the resting membrane potential and supporting potassium homeostasis. There are many variants of Kir channels, which are usually tetramers in which the main subunit has two trans-membrane helices attached to two N- and C-terminal cytoplasmic tails with a pore-forming loop in between that contains the selectivity filter. These channels have domains that are strongly modulated by molecules present in nutrients found in different diets, such as phosphoinositols, polyamines and Mg2+. These molecules can impact these channels directly or indirectly, either allosterically by modulation of enzymes or via the regulation of channel expression. A particular type of these channels is coupled to cell metabolism and inhibited by ATP (KATP channels, essential for insulin release and for the pathogenesis of metabolic diseases like diabetes mellitus). Genomic changes in Kir channels have a significant impact on metabolism, such as conditioning the nutrients and electrolytes that an individual can take. Thus, the nutrigenomics of ion channels is an important emerging field in which we are attempting to understand how nutrients and diets can affect the activity and expression of ion channels and how genomic changes in such channels may be the basis for pathological conditions that limit nutrition and electrolyte intake. In this contribution we briefly review Kir channels, discuss their nutrigenomics, characterize how different components in the diet affect their function and expression, and suggest how their genomic changes lead to pathological phenotypes that affect diet and electrolyte intake.

UI MeSH Term Description Entries
D008564 Membrane Potentials The voltage differences across a membrane. For cellular membranes they are computed by subtracting the voltage measured outside the membrane from the voltage measured inside the membrane. They result from differences of inside versus outside concentration of potassium, sodium, chloride, and other ions across cells' or ORGANELLES membranes. For excitable cells, the resting membrane potentials range between -30 and -100 millivolts. Physical, chemical, or electrical stimuli can make a membrane potential more negative (hyperpolarization), or less negative (depolarization). Resting Potentials,Transmembrane Potentials,Delta Psi,Resting Membrane Potential,Transmembrane Electrical Potential Difference,Transmembrane Potential Difference,Difference, Transmembrane Potential,Differences, Transmembrane Potential,Membrane Potential,Membrane Potential, Resting,Membrane Potentials, Resting,Potential Difference, Transmembrane,Potential Differences, Transmembrane,Potential, Membrane,Potential, Resting,Potential, Transmembrane,Potentials, Membrane,Potentials, Resting,Potentials, Transmembrane,Resting Membrane Potentials,Resting Potential,Transmembrane Potential,Transmembrane Potential Differences
D011188 Potassium An element in the alkali group of metals with an atomic symbol K, atomic number 19, and atomic weight 39.10. It is the chief cation in the intracellular fluid of muscle and other cells. Potassium ion is a strong electrolyte that plays a significant role in the regulation of fluid volume and maintenance of the WATER-ELECTROLYTE BALANCE.
D054086 KATP Channels Heteromultimers of Kir6 channels (the pore portion) and sulfonylurea receptor (the regulatory portion) which affect function of the HEART; PANCREATIC BETA CELLS; and KIDNEY COLLECTING DUCTS. KATP channel blockers include GLIBENCLAMIDE and mitiglinide whereas openers include CROMAKALIM and minoxidil sulfate. ATP-Sensitive Potassium Channel,ATP-Sensitive Potassium Channels,KATP Channel,ATP Sensitive Potassium Channel,ATP Sensitive Potassium Channels,Channel, ATP-Sensitive Potassium,Channel, KATP,Channels, ATP-Sensitive Potassium,Channels, KATP,Potassium Channel, ATP-Sensitive,Potassium Channels, ATP-Sensitive
D054647 Nutrigenomics The study of the relationship between NUTRITIONAL PHYSIOLOGY and genetic makeup. It includes the effect of different food components on GENE EXPRESSION and how variations in GENES effect responses to food components. Nutrigenetics,Nutritional Genetics,Nutritional Genomics,Genetics, Nutritional,Genomics, Nutritional,Nutrigenomic
D024661 Potassium Channels, Inwardly Rectifying Potassium channels where the flow of K+ ions into the cell is greater than the outward flow. Inward Rectifier Potassium Channels,IRK1 Channel,Inward Rectifier K+ Channel,Inward Rectifier K+ Channels,Inward Rectifier Potassium Channel,Inwardly Rectifying Potassium Channel,Inwardly Rectifying Potassium Channels,K+ Channels, Inwardly Rectifying,Potassium Channel, Inwardly Rectifying,Channel, IRK1

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