Keyword search (4,163 papers available)

"mitochondria" Keyword-tagged Publications:

Title Authors PubMed ID
1 The effect of 14 days Actovegin administration with or without high intensity training on exercise capacity and skeletal muscle mitochondrial respiration Hassø RK; Lindtofte S; Kosik B; Bergdahl A; Larsen S; 41553522
HKAP
2 Cross-species evaluation of TANGO2 homologs, including HRG-9 and HRG-10 in em Caenorhabditis elegans, /em challenges a proposed role in heme trafficking Sandkuhler SE; Youngs KS; Gottipalli O; Owlett LD; Bandora MB; Naaz A; Kim E; Wang L; Wojtovich A; Gupta V; Sacher M; Mackenzie SJ; 41504601
BIOLOGY
3 Reduced 17β-estradiol following ovariectomy induces mitochondrial dysfunction and degradation of synaptic proteins in the entorhinal cortex Olajide OJ; Batallán Burrowes AA; da Silva IF; Bergdahl A; Chapman CA; 39617168
HKAP
4 A polyphenol-rich cranberry supplement improves muscle oxidative capacity in healthy adults Parenteau F; Denis A; Roberts M; Comtois AS; Bergdahl A; 38626462
HKAP
5 Actovegin improves skeletal muscle mitochondrial respiration and functional aerobic capacity in a type 1 diabetic male murine model Kosik B; Larsen S; Bergdahl A; 37913525
HKAP
6 Physiological levels of cardiolipin acutely affect mitochondrial respiration in vascular smooth muscle cells Galambo D; Bergdahl A; 36594049
HKAP
7 Inhibiting amyloid beta (1-42) peptide-induced mitochondrial dysfunction prevents the degradation of synaptic proteins in the entorhinal cortex Olajide OJ; La Rue C; Bergdahl A; Chapman CA; 36275011
HKAP
8 Characterization of Affective Behaviors and Motor Functions in Mice With a Striatal-Specific Deletion of Bmal1 and Per2 Schoettner K; Alonso M; Button M; Goldfarb C; Herrera J; Quteishat N; Meyer C; Bergdahl A; Amir S; 35755440
HKAP
9 The phenotype associated with variants in TANGO2 may be explained by a dual role of the protein in ER-to-Golgi transport and at the mitochondria. Milev MP, Saint-Dic D, Zardoui K, Klopstock T, Law C, Distelmaier F, Sacher M 32909282
BIOLOGY
10 Mechanisms by which PE21, an extract from the white willow Salix alba, delays chronological aging in budding yeast. Medkour Y, Mohammad K, Arlia-Ciommo A, Svistkova V, Dakik P, Mitrofanova D, Rodriguez MEL, Junio JAB, Taifour T, Escudero P, Goltsios FF, Soodbakhsh S, Maalaoui H, Simard É, Titorenko VI 31645900
BIOLOGY
11 Lithocholic bile acid accumulated in yeast mitochondria orchestrates a development of an anti-aging cellular pattern by causing age-related changes in cellular proteome. Beach A, Richard VR, Bourque S, Boukh-Viner T, Kyryakov P, Gomez-Perez A, Arlia-Ciommo A, Feldman R, Leonov A, Piano A, Svistkova V, Titorenko VI 25839782
MASSSPEC
12 Some Metabolites Act as Second Messengers in Yeast Chronological Aging. Mohammad K, Dakik P, Medkour Y, McAuley M, Mitrofanova D, Titorenko VI 29543708
BIOLOGY
13 Caloric restriction delays yeast chronological aging by remodeling carbohydrate and lipid metabolism, altering peroxisomal and mitochondrial functionalities, and postponing the onsets of apoptotic and liponecrotic modes of regulated cell death. Arlia-Ciommo A, Leonov A, Beach A, Richard VR, Bourque SD, Burstein MT, Kyryakov P, Gomez-Perez A, Koupaki O, Feldman R, Titorenko VI 29662634
BIOLOGY

 

Title:Lithocholic bile acid accumulated in yeast mitochondria orchestrates a development of an anti-aging cellular pattern by causing age-related changes in cellular proteome.
Authors:Beach ARichard VRBourque SBoukh-Viner TKyryakov PGomez-Perez AArlia-Ciommo AFeldman RLeonov APiano ASvistkova VTitorenko VI
Link:https://www.ncbi.nlm.nih.gov/pubmed/25839782?dopt=Abstract
DOI:10.1080/15384101.2015.1026493
Publication:Cell cycle (Georgetown, Tex.)
Keywords:D, diauxic growth phaseDMSO, dimethyl sulfoxideER, endoplasmic reticulumETC, electron transport chainISC, iron-sulfur clustersLCA, lithocholic acidMAM, mitochondria-associated membraneOS, oxidative stressPD, post-diauxic growth phasePMD, partial mitochondrial dysfunctionROS, reactive oxygen speciesST, stationary growth phaseTCA, tricarboxylic acidWT, wild typeanti-aging compoundscell metabolismcellular aginglithocholic bile acidlongevitymitochondriamitochondrial proteomemitochondrial signalingsignal transductionyeast
PMID:25839782 Category:Cell Cycle Date Added:2019-06-20
Dept Affiliation: MASSSPEC
1 a Department of Biology; Concordia University ; Montreal , QC , Canada.

Description:

Lithocholic bile acid accumulated in yeast mitochondria orchestrates a development of an anti-aging cellular pattern by causing age-related changes in cellular proteome.

Cell Cycle. 2015;14(11):1643-56

Authors: Beach A, Richard VR, Bourque S, Boukh-Viner T, Kyryakov P, Gomez-Perez A, Arlia-Ciommo A, Feldman R, Leonov A, Piano A, Svistkova V, Titorenko VI

Abstract

We have previously revealed that exogenously added lithocholic bile acid (LCA) extends the chronological lifespan of the yeast Saccharomyces cerevisiae, accumulates in mitochondria and alters mitochondrial membrane lipidome. Here, we use quantitative mass spectrometry to show that LCA alters the age-related dynamics of changes in levels of many mitochondrial proteins, as well as numerous proteins in cellular locations outside of mitochondria. These proteins belong to 2 regulons, each modulated by a different mitochondrial dysfunction; we call them a partial mitochondrial dysfunction regulon and an oxidative stress regulon. We found that proteins constituting these regulons (1) can be divided into several "clusters", each of which denotes a distinct type of partial mitochondrial dysfunction that elicits a different signaling pathway mediated by a discrete set of transcription factors; (2) exhibit 3 different patterns of the age-related dynamics of changes in their cellular levels; and (3) are encoded by genes whose expression is regulated by the transcription factors Rtg1p/Rtg2p/Rtg3p, Sfp1p, Aft1p, Yap1p, Msn2p/Msn4p, Skn7p and Hog1p, each of which is essential for longevity extension by LCA. Our findings suggest that LCA-driven changes in mitochondrial lipidome alter mitochondrial proteome and functionality, thereby enabling mitochondria to operate as signaling organelles that orchestrate an establishment of an anti-aging transcriptional program for many longevity-defining nuclear genes. Based on these findings, we propose a model for how such LCA-driven changes early and late in life of chronologically aging yeast cause a stepwise development of an anti-aging cellular pattern and its maintenance throughout lifespan.

PMID: 25839782 [PubMed - indexed for MEDLINE]





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