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Dive into the research topics where Rebeca Acín-Pérez is active.

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Featured researches published by Rebeca Acín-Pérez.


Science | 2013

Supercomplex Assembly Determines Electron Flux in the Mitochondrial Electron Transport Chain

Esther Lapuente-Brun; Raquel Moreno-Loshuertos; Rebeca Acín-Pérez; Ana Latorre-Pellicer; Carmen Colás; Eduardo Balsa; Ester Perales-Clemente; Pedro M. Quirós; Enrique Calvo; M. A. C. Rodríguez-Hernández; Plácido Navas; Raquel Cruz; Angel Carracedo; Carlos López-Otín; Acisclo Pérez-Martos; Patricio Fernández-Silva; Erika Fernandez-Vizarra; José Antonio Enríquez

Respiration Refined Cells derive energy from redox reactions mediated by mitochondrial enzymes that form the electron transport chain. The enzymes can form large complexes, known as supercomplexes, whose function has been controversial. Lapuente-Brun et al. (p. 1567) discovered that a mouse protein, supercomplex assembly factor I (SCAFI), specifically modulates assembly of respiratory complexes into supercomplexes. Formation of the supercomplexes appears to cause electrons to be processed differently, depending on the substrate from which they are derived. Ordered formation of supercomplexes of respiratory enzymes influences metabolic efficiency in response to food supply. The textbook description of mitochondrial respiratory complexes (RCs) views them as free-moving entities linked by the mobile carriers coenzyme Q (CoQ) and cytochrome c (cyt c). This model (known as the fluid model) is challenged by the proposal that all RCs except complex II can associate in supercomplexes (SCs). The proposed SCs are the respirasome (complexes I, III, and IV), complexes I and III, and complexes III and IV. The role of SCs is unclear, and their existence is debated. By genetic modulation of interactions between complexes I and III and III and IV, we show that these associations define dedicated CoQ and cyt c pools and that SC assembly is dynamic and organizes electron flux to optimize the use of available substrates.


Molecular Cell | 2008

Respiratory active mitochondrial supercomplexes.

Rebeca Acín-Pérez; Patricio Fernández-Silva; Maria Luisa Peleato; Acisclo Pérez-Martos; José Antonio Enríquez

The structural organization of the mitochondrial respiratory complexes as four big independently moving entities connected by the mobile carriers CoQ and cytochrome c has been challenged recently. Blue native gel electrophoresis reveals the presence of high-molecular-weight bands containing several respiratory complexes and suggesting an in vivo assembly status of these structures (respirasomes). However, no functional evidence of the activity of supercomplexes as true respirasomes has been provided yet. We have observed that (1) supercomplexes are not formed when one of their component complexes is absent; (2) there is a temporal gap between the formation of the individual complexes and that of the supercomplexes; (3) some putative respirasomes contain CoQ and cytochrome c; (4) isolated respirasomes can transfer electrons from NADH to O(2), that is, they respire. Therefore, we have demonstrated the existence of a functional respirasome and propose a structural organization model that accommodates these findings.


Cell Metabolism | 2009

Cyclic AMP produced inside mitochondria regulates oxidative phosphorylation.

Rebeca Acín-Pérez; Eric Salazar; Margarita Kamenetsky; Jochen Buck; Lonny R. Levin; Giovanni Manfredi

Mitochondria constantly respond to changes in substrate availability and energy utilization to maintain cellular ATP supplies, and at the same time control reactive oxygen radical (ROS) production. Reversible phosphorylation of mitochondrial proteins has been proposed to play a fundamental role in metabolic homeostasis, but very little is known about the signaling pathways involved. We show here that protein kinase A (PKA) regulates ATP production by phosphorylation of mitochondrial proteins, including subunits of cytochrome c oxidase. The cyclic AMP (cAMP), which activates mitochondrial PKA, does not originate from cytoplasmic sources but is generated within mitochondria by the carbon dioxide/bicarbonate-regulated soluble adenylyl cyclase (sAC) in response to metabolically generated carbon dioxide. We demonstrate for the first time the existence of a CO(2)-HCO(3)(-)-sAC-cAMP-PKA (mito-sAC) signaling cascade wholly contained within mitochondria, which serves as a metabolic sensor modulating ATP generation and ROS production in response to nutrient availability.


Molecular Cell | 2004

Respiratory Complex III Is Required to Maintain Complex I in Mammalian Mitochondria

Rebeca Acín-Pérez; María Pilar Bayona-Bafaluy; Patricio Fernández-Silva; Raquel Moreno-Loshuertos; Acisclo Pérez-Martos; Claudio Bruno; Carlos T. Moraes; José Antonio Enríquez

A puzzling observation in patients with oxidative phosphorylation (OXPHOS) deficiencies is the presence of combined enzyme complex defects associated with a genetic alteration in only one protein-coding gene. In particular, mutations in the mtDNA encoded cytochrome b gene are associated either with combined complex I+III deficiency or with only complex III deficiency. We have reproduced the combined complex I+III defect in mouse and human cultured cell models harboring cytochrome b mutations. In both, complex III assembly is impeded and causes a severe reduction in the amount of complex I, not observed when complex III activity was pharmacologically inhibited. Metabolic labeling in mouse cells revealed that complex I was assembled, although its stability was severely hampered. Conversely, complex III stability was not influenced by the absence of complex I. This structural dependence among complexes I and III was confirmed in a muscle biopsy of a patient harboring a nonsense cytochrome b mutation.


Nature Genetics | 2006

Differences in reactive oxygen species production explain the phenotypes associated with common mouse mitochondrial DNA variants

Raquel Moreno-Loshuertos; Rebeca Acín-Pérez; Patricio Fernández-Silva; Nieves Movilla; Acisclo Pérez-Martos; Santiago Rodríguez de Córdoba; M. Esther Gallardo; José Antonio Enríquez

Common mitochondrial DNA (mtDNA) haplotypes in humans and mice have been associated with various phenotypes, including learning performance and disease penetrance. Notably, no influence of mtDNA haplotype in cell respiration has been demonstrated. Here, using cell lines carrying four different common mouse mtDNA haplotypes in an identical nuclear background, we show that the similar level of respiration among the cell lines is only apparent and is a consequence of compensatory mechanisms triggered by different production of reactive oxygen species. We observe that the respiration capacity per molecule of mtDNA in cells with the NIH3T3 or NZB mtDNA is lower than in those with the C57BL/6J, CBA/J or BALB/cJ mtDNA. In addition, we have determined the genetic element underlying these differences. Our data provide insight into the molecular basis of the complex phenotypes associated with common mtDNA variants and anticipate a relevant contribution of mtDNA single nucleotide polymorphisms to phenotypic variability in humans.


Cell Metabolism | 2011

Protein Phosphorylation and Prevention of Cytochrome Oxidase Inhibition by ATP: Coupled Mechanisms of Energy Metabolism Regulation

Rebeca Acín-Pérez; Domenico L. Gatti; Yidong Bai; Giovanni Manfredi

Rapid regulation of oxidative phosphorylation is crucial for mitochondrial adaptation to swift changes in fuels availability and energy demands. An intramitochondrial signaling pathway regulates cytochrome oxidase (COX), the terminal enzyme of the respiratory chain, through reversible phosphorylation. We find that PKA-mediated phosphorylation of a COX subunit dictates mammalian mitochondrial energy fluxes and identify the specific residue (S58) of COX subunit IV-1 (COXIV-1) that is involved in this mechanism of metabolic regulation. Using protein mutagenesis, molecular dynamics simulations, and induced fit docking, we show that mitochondrial energy metabolism regulation by phosphorylation of COXIV-1 is coupled with prevention of COX allosteric inhibition by ATP. This regulatory mechanism is essential for efficient oxidative metabolism and cell survival. We propose that S58 COXIV-1 phosphorylation has evolved as a metabolic switch that allows mammalian mitochondria to rapidly toggle between energy utilization and energy storage.


Biochimica et Biophysica Acta | 2014

The function of the respiratory supercomplexes: the plasticity model.

Rebeca Acín-Pérez; José Antonio Enríquez

Mitochondria are important organelles not only as efficient ATP generators but also in controlling and regulating many cellular processes. Mitochondria are dynamic compartments that rearrange under stress response and changes in food availability or oxygen concentrations. The mitochondrial electron transport chain parallels these rearrangements to achieve an optimum performance and therefore requires a plastic organization within the inner mitochondrial membrane. This consists in a balanced distribution between free respiratory complexes and supercomplexes. The mechanisms by which the distribution and organization of supercomplexes can be adjusted to the needs of the cells are still poorly understood. The aim of this review is to focus on the functional role of the respiratory supercomplexes and its relevance in physiology. This article is part of a Special Issue entitled: Dynamic and ultrastructure of bioenergetic membranes and their components.


Proceedings of the National Academy of Sciences of the United States of America | 2011

Pink1 regulates the oxidative phosphorylation machinery via mitochondrial fission

Wencheng Liu; Rebeca Acín-Pérez; Kindiya Geghman; Giovanni Manfredi; Bingwei Lu; Chenjian Li

Mutations in PTEN-induced kinase 1 (PINK1), a mitochondrial Ser/Thr kinase, cause an autosomal recessive form of Parkinsons disease (PD), PARK6. To investigate the mechanism of PINK1 pathogenesis, we used the Drosophila Pink1 knockout (KO) model. In mitochondria isolated from Pink1-KO flies, mitochondrial respiration driven by the electron transport chain (ETC) is significantly reduced. This reduction is the result of a decrease in ETC complex I and IV enzymatic activity. As a consequence, Pink1-KO flies also display a reduced mitochondrial ATP synthesis. Because mitochondrial dynamics is important for mitochondrial function and Pink1-KO flies have defects in mitochondrial fission, we explored whether fission machinery deficits underlie the bioenergetic defect in Pink1-KO flies. We found that the bioenergetic defects in the Pink1-KO can be ameliorated by expression of Drp1, a key molecule in mitochondrial fission. Further investigation of the ETC complex integrity in wild type, Pink1-KO, PInk1-KO/Drp1 transgenic, or Drp1 transgenic flies indicates that the reduced ETC complex activity is likely derived from a defect in the ETC complex assembly, which can be partially rescued by increasing mitochondrial fission. Taken together, these results suggest a unique pathogenic mechanism of PINK1 PD: The loss of PINK1 impairs mitochondrial fission, which causes defective assembly of the ETC complexes, leading to abnormal bioenergetics.


PLOS ONE | 2009

PINK1 Defect Causes Mitochondrial Dysfunction, Proteasomal Deficit and α-Synuclein Aggregation in Cell Culture Models of Parkinson's Disease

Wencheng Liu; Cristofol Vives-Bauza; Rebeca Acín-Pérez; Ai Yamamoto; Ying-Cai Tan; Yanping Li; Jordi Magrané; Mihaela Stavarache; Sebastian Shaffer; Simon Chang; Michael G. Kaplitt; Xin-Yun Huang; M. Flint Beal; Giovanni Manfredi; Chenjian Li

Mutations in PTEN induced kinase 1 (PINK1), a mitochondrial Ser/Thr kinase, cause an autosomal recessive form of Parkinsons disease (PD), PARK6. Here, we report that PINK1 exists as a dimer in mitochondrial protein complexes that co-migrate with respiratory chain complexes in sucrose gradients. PARK6 related mutations do not affect this dimerization and its associated complexes. Using in vitro cell culture systems, we found that mutant PINK1 or PINK1 knock-down caused deficits in mitochondrial respiration and ATP synthesis. Furthermore, proteasome function is impaired with a loss of PINK1. Importantly, these deficits are accompanied by increased α-synclein aggregation. Our results indicate that it will be important to delineate the relationship between mitochondrial functional deficits, proteasome dysfunction and α-synclein aggregation.


Nature | 2016

Mitochondrial and nuclear DNA matching shapes metabolism and healthy ageing

Ana Latorre-Pellicer; Raquel Moreno-Loshuertos; Ana Victoria Lechuga-Vieco; Fátima Sánchez-Cabo; Carlos Torroja; Rebeca Acín-Pérez; Enrique Calvo; Esther Aix; Andrés González-Guerra; Angela Logan; María Luisa Bernad-Miana; Eduardo Romanos; Raquel Cruz; Sara Cogliati; Beatriz Sobrino; Angel Carracedo; Acisclo Pérez-Martos; Patricio Fernández-Silva; Jesús Ruiz-Cabello; Michael P. Murphy; Ignacio Flores; Jesús Vázquez; José Antonio Enríquez

Human mitochondrial DNA (mtDNA) shows extensive within-population sequence variability. Many studies suggest that mtDNA variants may be associated with ageing or diseases, although mechanistic evidence at the molecular level is lacking. Mitochondrial replacement has the potential to prevent transmission of disease-causing oocyte mtDNA. However, extension of this technology requires a comprehensive understanding of the physiological relevance of mtDNA sequence variability and its match with the nuclear-encoded mitochondrial genes. Studies in conplastic animals allow comparison of individuals with the same nuclear genome but different mtDNA variants, and have provided both supporting and refuting evidence that mtDNA variation influences organismal physiology. However, most of these studies did not confirm the conplastic status, focused on younger animals, and did not investigate the full range of physiological and phenotypic variability likely to be influenced by mitochondria. Here we systematically characterized conplastic mice throughout their lifespan using transcriptomic, proteomic, metabolomic, biochemical, physiological and phenotyping studies. We show that mtDNA haplotype profoundly influences mitochondrial proteostasis and reactive oxygen species generation, insulin signalling, obesity, and ageing parameters including telomere shortening and mitochondrial dysfunction, resulting in profound differences in health longevity between conplastic strains.

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Jesús Vázquez

Centro Nacional de Investigaciones Cardiovasculares

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Ana Latorre-Pellicer

Centro Nacional de Investigaciones Cardiovasculares

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Enrique Calvo

Centro Nacional de Investigaciones Cardiovasculares

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Ester Perales-Clemente

Centro Nacional de Investigaciones Cardiovasculares

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