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Dive into the research topics where Acisclo Pérez-Martos is active.

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Featured researches published by Acisclo Pérez-Martos.


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.


American Journal of Human Genetics | 2000

Human mtDNA Haplogroups Associated with High or Reduced Spermatozoa Motility

Eduardo Ruiz-Pesini; Ana-Cristina Lapeña; Carmen Díez-Sánchez; Acisclo Pérez-Martos; Julio Montoya; Enrique Alvarez; Miguel Díaz; Antonio Urriés; Luis Montoro; Manuel J. López-Pérez; José Antonio Enríquez

A variety of mtDNA mutations responsible for human diseases have been associated with molecular defects in the OXPHOS system. It has been proposed that mtDNA genetic alterations can also be responsible for sperm dysfunction. In addition, it was suggested that if sperm dysfunction is the main phenotypic consequence, these mutations could be fixed as stable mtDNA variants, because mtDNA is maternally inherited. To test this possibility, we have performed an extensive analysis of the distribution of mtDNA haplogroups in white men having fertility problems. We have found that asthenozoospermia, but not oligozoospermia, is associated with mtDNA haplogroups in whites. Thus, haplogroups H and T are significantly more abundant in nonasthenozoospermic and asthenozoospermic populations, respectively, and show significant differences in their OXPHOS performance.


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.


Molecular and Cellular Biology | 1999

Direct Regulation of Mitochondrial RNA Synthesis by Thyroid Hormone

José Antonio Enríquez; Patricio Fernández-Silva; Nuria Garrido-Pérez; Manuel J. López-Pérez; Acisclo Pérez-Martos; Julio Montoya

ABSTRACT We have analyzed the influence of in vivo treatment and in vitro addition of thyroid hormone on in organello mitochondrial DNA (mtDNA) transcription and, in parallel, on the in organello footprinting patterns at the mtDNA regions involved in the regulation of transcription. We found that thyroid hormone modulates mitochondrial RNA levels and the mRNA/rRNA ratio by influencing the transcriptional rate. In addition, we found conspicuous differences between the mtDNA dimethyl sulfate footprinting patterns of mitochondria derived from euthyroid and hypothyroid rats at the transcription initiation sites but not at the mitochondrial transcription termination factor (mTERF) binding region. Furthermore, direct addition of thyroid hormone to the incubation medium of mitochondria isolated from hypothyroid rats restored the mRNA/rRNA ratio found in euthyroid rats as well as the mtDNA footprinting patterns at the transcription initiation area. Therefore, we conclude that the regulatory effect of thyroid hormone on mitochondrial transcription is partially exerted by a direct influence of the hormone on the mitochondrial transcription machinery. Particularly, the influence on the mRNA/rRNA ratio is achieved by selective modulation of the alternative H-strand transcription initiation sites and does not require the previous activation of nuclear genes. These results provide the first functional demonstration that regulatory signals, such as thyroid hormone, that modify the expression of nuclear genes can also act as primary signals for the transcriptional apparatus of mitochondria.


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.


Biology of Reproduction | 2003

Mitochondrial DNA Content of Human Spermatozoa

Carmen Díez-Sánchez; Eduardo Ruiz-Pesini; Ana Cristina Lapeña; Julio Montoya; Acisclo Pérez-Martos; José Antonio Enríquez; Manuel J. López-Pérez

Abstract Sperm mitochondria play an important role in spermatozoa because of the high ATP demand of these cells. Different mitochondrial DNA (mtDNA) mutations and haplogroups influence sperm function. The mtDNA dose also contributes to genetic variability and pathology in different tissues and organs, but nothing is known about its relevance in the performance of spermatozoa. We estimated the variability in mtDNA content within a population of men. Different mtDNA:nuclear DNA ratios were characteristic of progressive and nonprogressive spermatozoa, confirming the influence of mtDNA content on sperm functionality. We also estimated that the absolute content of mtDNA was 700 and 1200 mtDNA copies per cell in progressive and nonprogressive human spermatozoa, respectively. These results suggest that a marked increase of mtDNA copy number per cell volume takes place during spermatogenesis.


Mitochondrion | 2010

Isolation of mitochondria for biogenetical studies: An update

Erika Fernandez-Vizarra; Gustavo Ferrín; Acisclo Pérez-Martos; Patricio Fernández-Silva; Massimo Zeviani; José Antonio Enríquez

The use of good quality preparations of isolated mitochondria is necessary when studying the mitochondrial biogenetical activities. This article explains a fast and simple method for the purification of mammalian mitochondria from different tissues and cultured cells, that is suitable for the analysis of many aspects of the organelles biogenesis. The mitochondria isolated following the protocol described here, are highly active and capable of DNA, RNA and protein synthesis. Mitochondrial tRNA aminoacylation, mtDNA-protein interactions and specific import of added proteins into the organelles, can also be studied using this kind of preparations.


Molecular and Cellular Biochemistry | 1997

Regulation of mitochondrial transcription by mitochondrial transcription factor A

Julio Montoya; Acisclo Pérez-Martos; Heike L. Garstka; Rudolf J. Wiesner

In order to test the hypothesis that mitochondrial transcription factor A (mtTFA) regulates mitochondrial transcription in vivo, mtTFA was overexpressed in HeLa cells and imported into isolated rat liver mitochondria. Five hours after transfection with an eukaryotic expression vector, mitochondrial transcripts for cytochrome-c-oxidase subunit I and 12 S rRNA were increased over controls. In the presence of rat liver mitochondria, the 29 kDa mtTFA, generated by in vitro translation, was processed to a 24 kDa protein which was protected from protease digestion. This demonstrates that mtTFA was imported into the matrix. Incorporation of 32P-UTP into mitochondrial transcripts was stimulated following import of mtTFA. We conclude that the intracellular and intramitochondrial concentration of mtTFA, respectively, indeed regulates mitochondrial transcription. (Mol Cell Biochem 174: 227–230, 1997)

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Rebeca Acín-Pérez

Centro Nacional de Investigaciones Cardiovasculares

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Erika Fernandez-Vizarra

MRC Mitochondrial Biology Unit

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Ester Perales-Clemente

Centro Nacional de Investigaciones Cardiovasculares

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