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"Cardiolipins - metabolism"
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Mitochondrial Capacity in Skeletal Muscle Is Not Stimulated by Weight Loss Despite Increases in Insulin Action and Decreases in Intramyocellular Lipid Content
by
Zofia Radiková
,
Frederico G.S. Toledo
,
Elizabeth V. Menshikova
in
Biological and medical sciences
,
Cardiolipins - metabolism
,
Diabetes. Impaired glucose tolerance
2008
Mitochondrial Capacity in Skeletal Muscle Is Not Stimulated by Weight Loss Despite Increases in Insulin Action and Decreases
in Intramyocellular Lipid Content
Frederico G.S. Toledo ,
Elizabeth V. Menshikova ,
Koichiro Azuma ,
Zofia Radiková ,
Carol A. Kelley ,
Vladimir B. Ritov and
David E. Kelley
From the Division of Endocrinology and Metabolism, Department of Medicine, University of Pittsburgh School of Medicine, Pittsburgh,
Pennsylvania
Address correspondence and reprint requests to Frederico G.S. Toledo, 3459 Fifth Ave., Montefiore Hospital 807N, Pittsburgh,
PA 15213. E-mail: toledofs{at}upmc.edu
Abstract
OBJECTIVE— In obesity and type 2 diabetes, exercise combined with weight loss increases skeletal muscle mitochondrial capacity. It remains
unclear whether mitochondrial capacity increases because of weight loss, improvements in insulin resistance, or physical training.
In this study, we examined the effects of an intervention of weight loss induced by diet and compared these with those of
a similar intervention of weight loss by diet with exercise. Both are known to improve insulin resistance, and we tested the
hypothesis that physical activity, rather than improved insulin resistance, is required to increase mitochondrial capacity
of muscle.
RESEARCH DESIGN AND METHODS— Sixteen sedentary overweight/obese volunteers were randomized to a 16-week intervention of diet ( n = 7) or diet plus exercise ( n = 9). Insulin sensitivity was measured using euglycemic clamps. Mitochondria were examined in muscle biopsies before and
after intervention. We measured mitochondrial content and size by electron microscopy, electron transport chain (ETC) activity,
cardiolipin content, and mitochondrial DNA content. Intramyocellular content of lipid (IMCL) and fiber-type distribution were
determined by histology.
RESULTS— The diet-only and diet plus exercise groups achieved similar weight loss (10.8 and 9.2%, respectively); only the diet plus
exercise group improved aerobic capacity. Insulin sensitivity improved similarly in both groups. Mitochondrial content and
ETC activity increased following the diet plus exercise intervention but remained unchanged following the diet-only intervention,
and mitochondrial size decreased with weight loss despite improvement in insulin resistance. IMCL decreased in the diet-only
but not in the diet plus exercise intervention.
CONCLUSIONS— Despite similar effects to improve insulin resistance, these interventions had differential effects on mitochondria. Clinically
significant weight loss in the absence of increased physical activity ameliorates insulin resistance and IMCL but does not
increase muscle mitochondrial capacity in obesity.
ETC, electron transport chain
IMCL, intramyocellular content of lipid
mtDNA, mitochondrial DNA
Footnotes
Published ahead of print at http://diabetes.diabetesjournals.org on 5 February 2008. DOI: 10.2337/db07-1429. Clinical trial reg. no. NCT00222924, clinicaltrials.gov.
The costs of publication of this article were defrayed in part by the payment of page charges. This article must therefore
be hereby marked “advertisement” in accordance with 18 U.S.C. Section 1734 solely to indicate this fact.
Accepted January 12, 2008.
Received October 5, 2007.
DIABETES
Journal Article
Comprehensive Characterization of Toxoplasma Acyl Coenzyme A-Binding Protein TgACBP2 and Its Critical Role in Parasite Cardiolipin Metabolism
by
Zhang, Xiao
,
Liu, Jing
,
Liu, Qun
in
ACBP protein
,
Acyl Coenzyme A - metabolism
,
acyl-CoA-binding protein
2018
Toxoplasma gondii is one of the most successful human parasites, infecting nearly one-third of the total world population. T. gondii tachyzoites residing within parasitophorous vacuoles (PVs) can acquire fatty acids both via salvage from host cells and via de novo synthesis pathways for membrane biogenesis. However, although fatty acid fluxes are known to exist in this parasite, how fatty acids flow through Toxoplasma lipid metabolic organelles, especially mitochondria, remains unknown. In this study, we demonstrated that Toxoplasma expresses an active ankyrin repeat containing protein TgACBP2 to coordinate cardiolipin metabolism. Specifically, HMA acquisition resulting from heterologous functional expression of MAF1 rescued growth and lipid metabolism defects in ACBP2-deficient type II parasites, manifesting the complementary role of host mitochondria in parasite cardiolipin metabolism. This work highlights the importance of TgACBP2 in parasite cardiolipin metabolism and provides evidence for metabolic association of host mitochondria with T. gondii . Acyl coenzyme A (CoA)-binding protein (ACBP) can bind acyl-CoAs with high specificity and affinity, thus playing multiple roles in cellular functions. Mitochondria of the apicomplexan parasite Toxoplasma gondii have emerged as key organelles for lipid metabolism and signaling transduction. However, the rationale for how this parasite utilizes acyl-CoA-binding protein to regulate mitochondrial lipid metabolism remains unclear. Here, we show that an ankyrin repeat-containing protein, TgACBP2, is localized to mitochondria and displays active acyl-CoA-binding activities. Dephosphorylation of TgACBP2 is associated with relocation from the plasma membrane to the mitochondria under conditions of regulation of environmental [K + ]. Under high [K + ] conditions, loss of ACBP2 induced mitochondrial dysfunction and apoptosis-like cell death. Disruption of ACBP2 caused growth and virulence defects in the type II strain but not in type I parasites. Interestingly, mitochondrial association factor-1 (MAF1)-mediated host mitochondrial association (HMA) restored the growth ability of ACBP2-deficient type II parasites. Lipidomics analysis indicated that ACBP2 plays key roles in the cardiolipin metabolism of type II parasites and that MAF1 expression complemented the lipid metabolism defects of ACBP2-deficient type II parasites. In addition, disruption of ACBP2 caused attenuated virulence of Prugniuad (Pru) parasites for mice. Taking the results collectively, these data indicate that ACBP2 is critical for the growth and virulence of type II parasites and for the growth of type I parasites under high [K + ] conditions. IMPORTANCE Toxoplasma gondii is one of the most successful human parasites, infecting nearly one-third of the total world population. T. gondii tachyzoites residing within parasitophorous vacuoles (PVs) can acquire fatty acids both via salvage from host cells and via de novo synthesis pathways for membrane biogenesis. However, although fatty acid fluxes are known to exist in this parasite, how fatty acids flow through Toxoplasma lipid metabolic organelles, especially mitochondria, remains unknown. In this study, we demonstrated that Toxoplasma expresses an active ankyrin repeat containing protein TgACBP2 to coordinate cardiolipin metabolism. Specifically, HMA acquisition resulting from heterologous functional expression of MAF1 rescued growth and lipid metabolism defects in ACBP2-deficient type II parasites, manifesting the complementary role of host mitochondria in parasite cardiolipin metabolism. This work highlights the importance of TgACBP2 in parasite cardiolipin metabolism and provides evidence for metabolic association of host mitochondria with T. gondii .
Journal Article
ATP-binding cassette A1 deficiency causes cardiolipin-driven mitochondrial dysfunction in podocytes
2019
Fibroblasts from patients with Tangier disease carrying ATP-binding cassette A1 (ABCA1) loss-of-function mutations are characterized by cardiolipin accumulation, a mitochondrial-specific phospholipid. Suppression of ABCA1 expression occurs in glomeruli from patients with diabetic kidney disease (DKD) and in human podocytes exposed to DKD sera collected prior to the development of DKD. We demonstrated that siRNA ABCA1 knockdown in podocytes led to reduced oxygen consumption capabilities associated with alterations in the oxidative phosphorylation (OXPHOS) complexes and with cardiolipin accumulation. Podocyte-specific deletion of Abca1 (Abca1fl/fl) rendered mice susceptible to DKD, and pharmacological induction of ABCA1 improved established DKD. This was not mediated by free cholesterol, as genetic deletion of sterol-o-acyltransferase-1 (SOAT1) in Abca1fl/fl mice was sufficient to cause free cholesterol accumulation but did not cause glomerular injury. Instead, cardiolipin mediates ABCA1-dependent susceptibility to podocyte injury, as inhibition of cardiolipin peroxidation with elamipretide improved DKD in vivo and prevented ABCA1-dependent podocyte injury in vitro and in vivo. Collectively, we describe a pathway definitively linking ABCA1 deficiency to cardiolipin-driven mitochondrial dysfunction. We demonstrated that this pathway is relevant to DKD and that ABCA1 inducers or inhibitors of cardiolipin peroxidation may each represent therapeutic strategies for the treatment of established DKD.
Journal Article
Mitochondrial-derived damage-associated molecular patterns amplify neuroinflammation in neurodegenerative diseases
by
Lin, Miao-miao
,
Liu, Na
,
Qin, Zheng-hong
in
Adenosine triphosphate
,
Adenosine Triphosphate - metabolism
,
Alarmins - metabolism
2022
Both mitochondrial dysfunction and neuroinflammation are implicated in neurodegeneration and neurodegenerative diseases. Accumulating evidence shows multiple links between mitochondrial dysfunction and neuroinflammation. Mitochondrial-derived damage-associated molecular patterns (DAMPs) are recognized by immune receptors of microglia and aggravate neuroinflammation. On the other hand, inflammatory factors released by activated glial cells trigger an intracellular cascade, which regulates mitochondrial metabolism and function. The crosstalk between mitochondrial dysfunction and neuroinflammatory activation is a complex and dynamic process. There is strong evidence that mitochondrial dysfunction precedes neuroinflammation during the progression of diseases. Thus, an in-depth understanding of the specific molecular mechanisms associated with mitochondrial dysfunction and the progression of neuroinflammation in neurodegenerative diseases may contribute to the identification of new targets for the treatment of diseases. In this review, we describe in detail the DAMPs that induce or aggravate neuroinflammation in neurodegenerative diseases including mtDNA, mitochondrial unfolded protein response (mtUPR), mitochondrial reactive oxygen species (mtROS), adenosine triphosphate (ATP), transcription factor A mitochondria (TFAM), cardiolipin, cytochrome
c
, mitochondrial Ca
2+
and iron.
Journal Article
Structural mechanism of mitochondrial membrane remodelling by human OPA1
2023
Distinct morphologies of the mitochondrial network support divergent metabolic and regulatory processes that determine cell function and fate
1
–
3
. The mechanochemical GTPase optic atrophy 1 (OPA1) influences the architecture of cristae and catalyses the fusion of the mitochondrial inner membrane
4
,
5
. Despite its fundamental importance, the molecular mechanisms by which OPA1 modulates mitochondrial morphology are unclear. Here, using a combination of cellular and structural analyses, we illuminate the molecular mechanisms that are key to OPA1-dependent membrane remodelling and fusion. Human OPA1 embeds itself into cardiolipin-containing membranes through a lipid-binding paddle domain. A conserved loop within the paddle domain inserts deeply into the bilayer, further stabilizing the interactions with cardiolipin-enriched membranes. OPA1 dimerization through the paddle domain promotes the helical assembly of a flexible OPA1 lattice on the membrane, which drives mitochondrial fusion in cells. Moreover, the membrane-bending OPA1 oligomer undergoes conformational changes that pull the membrane-inserting loop out of the outer leaflet and contribute to the mechanics of membrane remodelling. Our findings provide a structural framework for understanding how human OPA1 shapes mitochondrial morphology and show us how human disease mutations compromise OPA1 functions.
Human OPA1 embeds itself into cardiolipin-containing membranes through a lipid-binding paddle domain, and OPA1 oligomerization through multiple assembly interfaces promotes the helical assembly of a flexible OPA1 lattice on the membrane, driving mitochondrial fusion in cells.
Journal Article
Membrane proteins bind lipids selectively to modulate their structure and function
by
Ulmschneider, Martin B.
,
Baldwin, Andrew J.
,
Reading, Eamonn
in
101/58
,
631/45/287
,
631/45/535/1266
2014
A new mass-spectrometry method has been developed to obtain high-resolution spectra of folded proteins bound to lipids; using this technique as well as X-ray crystallography provides evidence for membrane protein conformational change as a result of lipid–protein interaction.
Lipid bound to influence protein structure
Many of the high-resolution membrane protein structures published recently are notable for the presence of lipids closely associated with the protein, prompting the question, how are these lipids influencing membrane complex structure? Carol Robinson and colleagues have developed a new ion mobility mass spectrometry (IM-MS) method that enabled them to obtain mass spectra of folded protein conformations bound to lipids. Using this method they identified lipids that altered the stability of MscL (mechanosensitive channel of large conductance), aquaporin Z and the ammonia channel. They then determined the X-ray crystal structure of the ammonia channel bound to one of these lipids (phosphatidylglycerol), which revealed how a conformational change in a specific loop led to the formation of a phosphatidylglycerol-binding site. The major conclusion from this work is that an individual lipid-binding event can change the stability of a membrane complex. On the cover, IM-MS captures a native membrane protein complex emerging from an ion mobility cell. Shown is the ammonia channel in apo, one- and two-lipid bound states.
Previous studies have established that the folding, structure and function of membrane proteins are influenced by their lipid environments
1
,
2
,
3
,
4
,
5
,
6
,
7
and that lipids can bind to specific sites, for example, in potassium channels
8
. Fundamental questions remain however regarding the extent of membrane protein selectivity towards lipids. Here we report a mass spectrometry approach designed to determine the selectivity of lipid binding to membrane protein complexes. We investigate the mechanosensitive channel of large conductance (MscL) from
Mycobacterium tuberculosis
and aquaporin Z (AqpZ) and the ammonia channel (AmtB) from
Escherichia coli
, using ion mobility mass spectrometry (IM-MS), which reports gas-phase collision cross-sections. We demonstrate that folded conformations of membrane protein complexes can exist in the gas phase. By resolving lipid-bound states, we then rank bound lipids on the basis of their ability to resist gas phase unfolding and thereby stabilize membrane protein structure. Lipids bind non-selectively and with high avidity to MscL, all imparting comparable stability; however, the highest-ranking lipid is phosphatidylinositol phosphate, in line with its proposed functional role in mechanosensation
9
. AqpZ is also stabilized by many lipids, with cardiolipin imparting the most significant resistance to unfolding. Subsequently, through functional assays we show that cardiolipin modulates AqpZ function. Similar experiments identify AmtB as being highly selective for phosphatidylglycerol, prompting us to obtain an X-ray structure in this lipid membrane-like environment. The 2.3 Å resolution structure, when compared with others obtained without lipid bound, reveals distinct conformational changes that re-position AmtB residues to interact with the lipid bilayer. Our results demonstrate that resistance to unfolding correlates with specific lipid-binding events, enabling a distinction to be made between lipids that merely bind from those that modulate membrane protein structure and/or function. We anticipate that these findings will be important not only for defining the selectivity of membrane proteins towards lipids, but also for understanding the role of lipids in modulating protein function or drug binding.
Journal Article
Pathological structural conversion of α-synuclein at the mitochondria induces neuronal toxicity
by
Horrocks, Mathew H.
,
Maclachlan, Catherine
,
Virdi, Gurvir S.
in
631/378/1689/1718
,
631/57
,
631/80/642/333
2022
Aggregation of alpha-synuclein (α-Syn) drives Parkinson’s disease (PD), although the initial stages of self-assembly and structural conversion have not been directly observed inside neurons. In this study, we tracked the intracellular conformational states of α-Syn using a single-molecule Förster resonance energy transfer (smFRET) biosensor, and we show here that α-Syn converts from a monomeric state into two distinct oligomeric states in neurons in a concentration-dependent and sequence-specific manner. Three-dimensional FRET-correlative light and electron microscopy (FRET-CLEM) revealed that intracellular seeding events occur preferentially on membrane surfaces, especially at mitochondrial membranes. The mitochondrial lipid cardiolipin triggers rapid oligomerization of A53T α-Syn, and cardiolipin is sequestered within aggregating lipid–protein complexes. Mitochondrial aggregates impair complex I activity and increase mitochondrial reactive oxygen species (ROS) generation, which accelerates the oligomerization of A53T α-Syn and causes permeabilization of mitochondrial membranes and cell death. These processes were also observed in induced pluripotent stem cell (iPSC)–derived neurons harboring A53T mutations from patients with PD. Our study highlights a mechanism of de novo α-Syn oligomerization at mitochondrial membranes and subsequent neuronal toxicity.
This study tracked the initial self-assembly, oligomerization and structural conversion of α-synuclein inside neurons. Early seeding events occur on mitochondrial membranes, where oligomerization induces mitochondrial dysfunction and neuronal loss.
Journal Article
The role of interfacial lipids in stabilizing membrane protein oligomers
by
Baldwin, Andrew J.
,
Donlan, Joseph A. C.
,
Hopper, Jonathan T. S.
in
631/1647/296
,
631/535
,
631/57/2270
2017
Membrane lipids such as cardiolipin act as molecular glue to preserve the oligomeric states of membrane proteins with low oligomeric stability.
Membrane-protein stabilization by lipid binding
It is well established that lipid binding leads to the oligomerization of membrane proteins, and hence the activation of many signalling pathways, but it is not clear how the lipid bilayer affects the structure and function of membrane–protein complexes. Carol Robinson and colleagues have developed a mass-spectroscopy-based technique that allows the observation of oligomeric membrane–protein complexes with sufficient resolution to characterize their bound lipids. Using this technique, they evaluate the strength of oligomer formation for some 125 α-helical membrane proteins, including G-protein-coupled receptors. They find that lipid binding modulates protein interfaces, perturbing their monomer–oligomer equilibria, and show that manipulation of lipid binding can modify oligomer stability. And they use modelling to investigate possible binding sites for lipid molecules at the interfaces involved in oligomerization. These findings could aid the optimization of membrane–protein complexes for structural analysis.
Oligomerization of membrane proteins in response to lipid binding has a critical role in many cell-signalling pathways
1
but is often difficult to define
2
or predict
3
. Here we report the development of a mass spectrometry platform to determine simultaneously the presence of interfacial lipids and oligomeric stability and to uncover how lipids act as key regulators of membrane-protein association. Evaluation of oligomeric strength for a dataset of 125 α-helical oligomeric membrane proteins reveals an absence of interfacial lipids in the mass spectra of 12 membrane proteins with high oligomeric stability. For the bacterial homologue of the eukaryotic biogenic transporters (LeuT
4
, one of the proteins with the lowest oligomeric stability), we found a precise cohort of lipids within the dimer interface. Delipidation, mutation of lipid-binding sites or expression in cardiolipin-deficient
Escherichia coli
abrogated dimer formation. Molecular dynamics simulation revealed that cardiolipin acts as a bidentate ligand, bridging across subunits. Subsequently, we show that for the
Vibrio splendidus
sugar transporter SemiSWEET
5
, another protein with low oligomeric stability, cardiolipin shifts the equilibrium from monomer to functional dimer. We hypothesized that lipids are essential for dimerization of the Na
+
/H
+
antiporter NhaA from
E. coli
, which has the lowest oligomeric strength, but not for the substantially more stable homologous
Thermus thermophilus
protein NapA. We found that lipid binding is obligatory for dimerization of NhaA, whereas NapA has adapted to form an interface that is stable without lipids. Overall, by correlating interfacial strength with the presence of interfacial lipids, we provide a rationale for understanding the role of lipids in both transient and stable interactions within a range of α-helical membrane proteins, including G-protein-coupled receptors.
Journal Article
Role of Cardiolipin in Mitochondrial Function and Dynamics in Health and Disease: Molecular and Pharmacological Aspects
by
Paradies, Valeria
,
Ruggiero, Francesca M.
,
Paradies, Giuseppe
in
Animals
,
Antioxidants - pharmacology
,
Apoptosis
2019
In eukaryotic cells, mitochondria are involved in a large array of metabolic and bioenergetic processes that are vital for cell survival. Phospholipids are the main building blocks of mitochondrial membranes. Cardiolipin (CL) is a unique phospholipid which is localized and synthesized in the inner mitochondrial membrane (IMM). It is now widely accepted that CL plays a central role in many reactions and processes involved in mitochondrial function and dynamics. Cardiolipin interacts with and is required for optimal activity of several IMM proteins, including the enzyme complexes of the electron transport chain (ETC) and ATP production and for their organization into supercomplexes. Moreover, CL plays an important role in mitochondrial membrane morphology, stability and dynamics, in mitochondrial biogenesis and protein import, in mitophagy, and in different mitochondrial steps of the apoptotic process. It is conceivable that abnormalities in CL content, composition and level of oxidation may negatively impact mitochondrial function and dynamics, with important implications in a variety of pathophysiological situations and diseases. In this review, we focus on the role played by CL in mitochondrial function and dynamics in health and diseases and on the potential of pharmacological modulation of CL through several agents in attenuating mitochondrial dysfunction.
Journal Article
Inactivation of the ferroptosis regulator Gpx4 triggers acute renal failure in mice
2014
Ferroptosis is a non-apoptotic form of cell death induced by small molecules in specific tumour types, and in engineered cells overexpressing oncogenic RAS. Yet, its relevance in non-transformed cells and tissues is unexplored and remains enigmatic. Here, we provide direct genetic evidence that the knockout of glutathione peroxidase 4 (
Gpx4
) causes cell death in a pathologically relevant form of ferroptosis. Using inducible
Gpx4
−/−
mice, we elucidate an essential role for the glutathione/Gpx4 axis in preventing lipid-oxidation-induced acute renal failure and associated death. We furthermore systematically evaluated a library of small molecules for possible ferroptosis inhibitors, leading to the discovery of a potent spiroquinoxalinamine derivative called Liproxstatin-1, which is able to suppress ferroptosis in cells, in
Gpx4
−/−
mice, and in a pre-clinical model of ischaemia/reperfusion-induced hepatic damage. In sum, we demonstrate that ferroptosis is a pervasive and dynamic form of cell death, which, when impeded, promises substantial cytoprotection.
Ferroptosis is a form of non-apoptotic cell death with unclear physiological relevance. Conrad and colleagues now report that unrestrained ferroptosis can lead to renal failure. They also identify a small molecule that limits ferroptosis
in vivo
.
Journal Article