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1.
JCI Insight ; 6(3)2021 02 08.
Article in English | MEDLINE | ID: mdl-33400689

ABSTRACT

The role of insulin receptor (IR) activated by hyperinsulinemia in obesity-induced kidney injury is not well understood. We hypothesized that activation of kidney proximal tubule epithelial IR contributes to obesity-induced kidney injury. We administered normal-fat diet (NFD) or high-fat diet (HFD) to control and kidney proximal tubule IR-knockout (KPTIRKO) mice for 4 months. Renal cortical IR expression was decreased by 60% in male and female KPTIRKO mice. Baseline serum glucose, serum creatinine, and the ratio of urinary albumin to creatinine (ACR) were similar in KPTIRKO mice compared to those of controls. On HFD, weight gain and increase in serum cholesterol were similar in control and KPTIRKO mice; blood glucose did not change. HFD increased the following parameters in the male control mice: renal cortical contents of phosphorylated IR and Akt, matrix proteins, urinary ACR, urinary kidney injury molecule-1-to-creatinine ratio, and systolic blood pressure. Renal cortical generation of hydrogen sulfide was reduced in HFD-fed male control mice. All of these parameters were ameliorated in male KPTIRKO mice. Interestingly, female mice were resistant to HFD-induced kidney injury in both genotypes. We conclude that HFD-induced kidney injury requires renal proximal tubule IR activation in male mice.


Subject(s)
Diet, High-Fat/adverse effects , Kidney Tubules, Proximal/metabolism , Receptor, Insulin/metabolism , Renal Insufficiency, Chronic/etiology , Renal Insufficiency, Chronic/metabolism , Animals , Epithelium/metabolism , Female , Hydrogen Sulfide/metabolism , Insulin Resistance , Kidney Cortex/metabolism , Male , Mice , Mice, Knockout , Obesity/complications , Obesity/metabolism , Receptor, Insulin/deficiency , Receptor, Insulin/genetics , Sex Factors , Signal Transduction
2.
Cell ; 183(2): 474-489.e17, 2020 10 15.
Article in English | MEDLINE | ID: mdl-33035451

ABSTRACT

Mg2+ is the most abundant divalent cation in metazoans and an essential cofactor for ATP, nucleic acids, and countless metabolic enzymes. To understand how the spatio-temporal dynamics of intracellular Mg2+ (iMg2+) are integrated into cellular signaling, we implemented a comprehensive screen to discover regulators of iMg2+ dynamics. Lactate emerged as an activator of rapid release of Mg2+ from endoplasmic reticulum (ER) stores, which facilitates mitochondrial Mg2+ (mMg2+) uptake in multiple cell types. We demonstrate that this process is remarkably temperature sensitive and mediated through intracellular but not extracellular signals. The ER-mitochondrial Mg2+ dynamics is selectively stimulated by L-lactate. Further, we show that lactate-mediated mMg2+ entry is facilitated by Mrs2, and point mutations in the intermembrane space loop limits mMg2+ uptake. Intriguingly, suppression of mMg2+ surge alleviates inflammation-induced multi-organ failure. Together, these findings reveal that lactate mobilizes iMg2+ and links the mMg2+ transport machinery with major metabolic feedback circuits and mitochondrial bioenergetics.


Subject(s)
Endoplasmic Reticulum/metabolism , Lactic Acid/metabolism , Magnesium/metabolism , Animals , COS Cells , Calcium/metabolism , Calcium Signaling/physiology , Chlorocebus aethiops , Endoplasmic Reticulum/physiology , Female , HeLa Cells , Hep G2 Cells , Humans , Male , Mice, Inbred C57BL , Mice, Knockout , Mitochondria/metabolism
3.
Sci Signal ; 13(628)2020 04 21.
Article in English | MEDLINE | ID: mdl-32317369

ABSTRACT

The tricarboxylic acid (TCA) cycle converts the end products of glycolysis and fatty acid ß-oxidation into the reducing equivalents NADH and FADH2 Although mitochondrial matrix uptake of Ca2+ enhances ATP production, it remains unclear whether deprivation of mitochondrial TCA substrates alters mitochondrial Ca2+ flux. We investigated the effect of TCA cycle substrates on MCU-mediated mitochondrial matrix uptake of Ca2+, mitochondrial bioenergetics, and autophagic flux. Inhibition of glycolysis, mitochondrial pyruvate transport, or mitochondrial fatty acid transport triggered expression of the MCU gatekeeper MICU1 but not the MCU core subunit. Knockdown of mitochondrial pyruvate carrier (MPC) isoforms or expression of the dominant negative mutant MPC1R97W resulted in increased MICU1 protein abundance and inhibition of MCU-mediated mitochondrial matrix uptake of Ca2+ We also found that genetic ablation of MPC1 in hepatocytes and mouse embryonic fibroblasts resulted in reduced resting matrix Ca2+, likely because of increased MICU1 expression, but resulted in changes in mitochondrial morphology. TCA cycle substrate-dependent MICU1 expression was mediated by the transcription factor early growth response 1 (EGR1). Blocking mitochondrial pyruvate or fatty acid flux was linked to increased autophagy marker abundance. These studies reveal a mechanism that controls the MCU-mediated Ca2+ flux machinery and that depends on TCA cycle substrate availability. This mechanism generates a metabolic homeostatic circuit that protects cells from bioenergetic crisis and mitochondrial Ca2+ overload during periods of nutrient stress.


Subject(s)
Calcium Channels/metabolism , Calcium-Binding Proteins/metabolism , Cation Transport Proteins/metabolism , Fatty Acids/metabolism , Mitochondria, Liver/metabolism , Mitochondrial Membrane Transport Proteins/metabolism , Mitochondrial Proteins/metabolism , Pyruvic Acid/metabolism , Animals , Biological Transport, Active/genetics , Calcium Channels/genetics , Calcium-Binding Proteins/genetics , Cation Transport Proteins/genetics , HEK293 Cells , HeLa Cells , Hep G2 Cells , Humans , Mice, Knockout , Mitochondria, Liver/genetics , Mitochondrial Membrane Transport Proteins/genetics , Mitochondrial Proteins/genetics
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