Mitochondrial pyruvate transport regulates presynaptic metabolism and neurotransmission

被引:0
|
作者
Tiwari, Anupama [1 ]
Myeong, Jongyun [1 ]
Hashemiaghdam, Arsalan [1 ,4 ]
Stunault, Marion I. [1 ]
Zhang, Hao [2 ]
Niu, Xiangfeng [2 ]
Laramie, Marissa A. [1 ,5 ]
Sponagel, Jasmin [1 ]
Shriver, Leah P. [2 ]
Patti, Gary J. [2 ]
Klyachko, Vitaly A. [1 ]
Ashrafi, Ghazaleh [1 ,3 ]
机构
[1] Washington Univ, Dept Cell Biol & Physiol, Sch Med, St Louis, MO 63110 USA
[2] Washington Univ, Ctr Mass Spectrometry & Metab Tracing, Dept Chem, Dept Med, St Louis, MO USA
[3] Washington Univ, Needleman Ctr Neurometab & Axonal Therapeut, Sch Med, St Louis, MO 63110 USA
[4] Tufts Med Ctr, Boston, MA USA
[5] Washington State Univ, Pullman, WA USA
来源
SCIENCE ADVANCES | 2024年 / 10卷 / 46期
关键词
GLUCOSE-CONCENTRATION; SIRT3; ATP; NEURONS; CARRIER; MOBILIZATION; ACETYLATION; SPECIFICITY; DEMAND; BRAIN;
D O I
10.1126/sciadv.adp7423
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Glucose has long been considered the primary fuel source for the brain. However, glucose levels fluctuate in the brain during sleep or circuit activity, posing major metabolic stress. Here, we demonstrate that the mammalian brain uses pyruvate as a fuel source, and pyruvate can support neuronal viability in the absence of glucose. Nerve terminals are sites of metabolic vulnerability, and we show that mitochondrial pyruvate uptake is a critical step in oxidative ATP production in hippocampal terminals. We find that the mitochondrial pyruvate carrier is post-translationally modified by lysine acetylation, which, in turn, modulates mitochondrial pyruvate uptake. Our data reveal that the mitochondrial pyruvate carrier regulates distinct steps in neurotransmission, namely, the spatiotemporal pattern of synaptic vesicle release and the efficiency of vesicle retrieval-functions that have profound implications for synaptic plasticity. In summary, we identify pyruvate as a potent neuronal fuel and mitochondrial pyruvate uptake as a critical node for the metabolic control of neurotransmission in hippocampal terminals.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Inhibition of Mitochondrial Pyruvate Transport by Zaprinast Causes Massive Accumulation of Aspartate at the Expense of Glutamate in the Retina
    Du, Jianhai
    Cleghorn, Whitney M.
    Contreras, Laura
    Lindsay, Ken
    Rountree, Austin M.
    Chertov, Andrei O.
    Turner, Sally J.
    Sahaboglu, Ayse
    Linton, Jonathan
    Sadilek, Martin
    Satrustegui, Jorgina
    Sweet, Ian R.
    Paquet-Durand, Franois
    Hurley, James B.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2013, 288 (50) : 36129 - 36140
  • [22] CERKL, a Retinal Dystrophy Gene, Regulates Mitochondrial Transport and Dynamics in Hippocampal Neurons
    Garcia-Arroyo, Rocio
    Marfany, Gemma
    Mirra, Serena
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (19)
  • [23] Presynaptic adenosine receptor heteromers as key modulators of glutamatergic and dopaminergic neurotransmission in the striatum
    Ferre, Sergi
    Sarasola, Laura I.
    Quiroz, Cesar
    Ciruela, Francisco
    NEUROPHARMACOLOGY, 2023, 223
  • [24] Glutamate Transport Decreases Mitochondrial pH and Modulates Oxidative Metabolism in Astrocytes
    Azarias, Guillaume
    Perreten, Helene
    Lengacher, Sylvain
    Poburko, Damon
    Demaurex, Nicolas
    Magistretti, Pierre J.
    Chatton, Jean-Yves
    JOURNAL OF NEUROSCIENCE, 2011, 31 (10): : 3550 - 3559
  • [25] MPC2 variants disrupt mitochondrial pyruvate metabolism and cause an early-onset mitochondriopathy
    Pujol, Claire
    Lebigot, Elise
    Gaignard, Pauline
    Galai, Said
    Kraoua, Ichraf
    Bault, Jean-Philippe
    Dard, Rodolphe
    Youssef-Turki, Ilhem Ben
    Omar, Souheil
    Boutron, Audrey
    Wai, Timothy
    Slama, Abdelhamid
    BRAIN, 2023, 146 (03) : 858 - 864
  • [26] Re-routing Metabolism by the Mitochondrial Pyruvate Carrier Inhibitor MSDC-0160 Attenuates Neurodegeneration in a Rat Model of Parkinson's Disease
    Mallet, David
    Goutaudier, Raphael
    Barbier, Emmanuel L.
    Carnicella, Sebastien
    Colca, Jerry R.
    Fauvelle, Florence
    Boulet, Sabrina
    MOLECULAR NEUROBIOLOGY, 2022, 59 (10) : 6170 - 6182
  • [27] A Mitochondrial Expatriate: Nuclear Pyruvate Dehydrogenase
    de Boer, Vincent C. J.
    Houten, Sander M.
    CELL, 2014, 158 (01) : 9 - 10
  • [28] The Glutamine Transporter Slc38a1 Regulates GABAergic Neurotransmission and Synaptic Plasticity
    Qureshi, Tayyaba
    Sorensen, Christina
    Berghuis, Paul
    Jensen, Vidar
    Dobszay, Marton B.
    Farkas, Tamas
    Dalen, Knut Tomas
    Guo, Caiying
    Hassel, Bjornar
    Utheim, Tor Paaske
    Hvalby, Oivind
    Hafting, Torkel
    Harkany, Tibor
    Fyhn, Marianne
    Chaudhry, Farrukh Abbas
    CEREBRAL CORTEX, 2019, 29 (12) : 5166 - 5179
  • [29] The alpha-1A adrenergic receptor regulates mitochondrial oxidative metabolism in the mouse heart
    Sandroni, Peyton B.
    Schroder, Melissa A.
    Hawkins, Hunter T.
    Bailon, Julian D.
    Huang, Wei
    Hagen, James T.
    Montgomery, McLane
    Hong, Seok J.
    Chin, Andrew L.
    Zhang, Jiandong
    Rodrigo, Manoj C.
    Kim, Boa
    Simpson, Paul C.
    Schisler, Jonathan C.
    Ellis, Jessica M.
    Fisher-Wellman, Kelsey H.
    Jensen, Brian C.
    JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2024, 187 : 101 - 117
  • [30] Paradoxical neuronal hyperexcitability in a mouse model of mitochondrial pyruvate import deficiency
    De la Rossa, Andres
    Laporte, Marine H.
    Astori, Simone
    Marissal, Thomas
    Montessuit, Sylvie
    Sheshadri, Preethi
    Ramos-Fernandez, Eva
    Mendez, Pablo
    Khani, Abbas
    Quairiaux, Charles
    Taylor, Eric B.
    Rutter, Jared
    Nunes, Jose Manuel
    Carleton, Alan
    Duchen, Michael R.
    Sandi, Carmen
    Martinou, Jean-Claude
    ELIFE, 2022, 11