Essential Role of Mitochondrial Ca2+ Uniporter in the Generation of Mitochondrial pH Gradient and Metabolism-Secretion Coupling in Insulin-releasing Cells |
| |
Authors: | Xianglan Quan Tuyet Thi Nguyen Seong-Kyung Choi Shanhua Xu Ranjan Das Seung-Kuy Cha Nari Kim Jin Han Andreas Wiederkehr Claes B. Wollheim Kyu-Sang Park |
| |
Affiliation: | From the ‡Department of Physiology, Yonsei University Wonju College of Medicine, Wonju, Gangwon-Do 220-701, Korea.;§Department of Physiology, College of Medicine, Inje University, Busan 614-735, Korea.;¶Nestlé Institute of Health Sciences, 1015 Lausanne, and ;‖Department of Cell Physiology and Metabolism, University of Geneva, 1211 Geneva 4, Switzerland |
| |
Abstract: | In pancreatic β-cells, ATP acts as a signaling molecule initiating plasma membrane electrical activity linked to Ca2+ influx, which triggers insulin exocytosis. The mitochondrial Ca2+ uniporter (MCU) mediates Ca2+ uptake into the organelle, where energy metabolism is further stimulated for sustained second phase insulin secretion. Here, we have studied the contribution of the MCU to the regulation of oxidative phosphorylation and metabolism-secretion coupling in intact and permeabilized clonal β-cells as well as rat pancreatic islets. Knockdown of MCU with siRNA transfection blunted matrix Ca2+ rises, decreased nutrient-stimulated ATP production as well as insulin secretion. Furthermore, MCU knockdown lowered the expression of respiratory chain complexes, mitochondrial metabolic activity, and oxygen consumption. The pH gradient formed across the inner mitochondrial membrane following nutrient stimulation was markedly lowered in MCU-silenced cells. In contrast, nutrient-induced hyperpolarization of the electrical gradient was not altered. In permeabilized cells, knockdown of MCU ablated matrix acidification in response to extramitochondrial Ca2+. Suppression of the putative Ca2+/H+ antiporter leucine zipper-EF hand-containing transmembrane protein 1 (LETM1) also abolished Ca2+-induced matrix acidification. These results demonstrate that MCU-mediated Ca2+ uptake is essential to establish a nutrient-induced mitochondrial pH gradient which is critical for sustained ATP synthesis and metabolism-secretion coupling in insulin-releasing cells. |
| |
Keywords: | insulin secretion mitochondrial membrane potential mitochondrial metabolism mitochondrial respiratory chain complex mitochondrial transport pancreatic islet INS-1E cells Leucine zipper-EF hand-containing transmembrane protein 1 Mitochondrial Ca2+ uniporter Mitochondrial pH gradient |
|
|