Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 50
Filtrar
Más filtros













Base de datos
Intervalo de año de publicación
1.
Arch Biochem Biophys ; 712: 109027, 2021 11 15.
Artículo en Inglés | MEDLINE | ID: mdl-34520732

RESUMEN

The dithiol reagents phenylarsine oxide (PAO) and dibromobimane (DBrB) have opposite effects on the F1FO-ATPase activity. PAO 20% increases ATP hydrolysis at 50 µM when the enzyme activity is activated by the natural cofactor Mg2+ and at 150 µM when it is activated by Ca2+. The PAO-driven F1FO-ATPase activation is reverted to the basal activity by 50 µM dithiothreitol (DTE). Conversely, 300 µM DBrB decreases the F1FO-ATPase activity by 25% when activated by Mg2+ and by 50% when activated by Ca2+. In both cases, the F1FO-ATPase inhibition by DBrB is insensitive to DTE. The mitochondrial permeability transition pore (mPTP) formation, related to the Ca2+-dependent F1FO-ATPase activity, is stimulated by PAO and desensitized by DBrB. Since PAO and DBrB apparently form adducts with different cysteine couples, the results highlight the crucial role of cross-linking of vicinal dithiols on the F1FO-ATPase, with (ir)reversible redox states, in the mPTP modulation.


Asunto(s)
Cisteína/química , Poro de Transición de la Permeabilidad Mitocondrial/metabolismo , ATPasas de Translocación de Protón/metabolismo , Animales , Arsenicales/farmacología , Compuestos Bicíclicos con Puentes/farmacología , Calcio/metabolismo , Ditioeritritol/farmacología , Activadores de Enzimas/farmacología , Inhibidores Enzimáticos/farmacología , Magnesio/metabolismo , Mitocondrias/efectos de los fármacos , Oxidación-Reducción/efectos de los fármacos , Estrés Oxidativo/efectos de los fármacos , ATPasas de Translocación de Protón/antagonistas & inhibidores , ATPasas de Translocación de Protón/química , Porcinos
2.
Int J Biol Macromol ; 184: 250-258, 2021 Aug 01.
Artículo en Inglés | MEDLINE | ID: mdl-34126146

RESUMEN

The mitochondrial permeability transition pore (PTP), which drives regulated cell death when Ca2+ concentration suddenly increases in mitochondria, was related to changes in the Ca2+-activated F1FO-ATPase. The effects of the gadolinium cation (Gd3+), widely used for diagnosis and therapy, and reported as PTP blocker, were evaluated on the F1FO-ATPase activated by Mg2+ or Ca2+ and on the PTP. Gd3+ more effectively inhibits the Ca2+-activated F1FO-ATPase than the Mg2+-activated F1FO-ATPase by a mixed-type inhibition on the former and by uncompetitive mechanism on the latter. Most likely Gd3+ binding to F1, is favoured by Ca2+ insertion. The maximal inactivation rates (kinact) of pseudo-first order inactivation are similar either when the F1FO-ATPase is activated by Ca2+ or by Mg2+. The half-maximal inactivator concentrations (KI) are 2.35 ± 0.35 mM and 0.72 ± 0.11 mM, respectively. The potency of a mechanism-based inhibitor (kinact/KI) also highlights a higher inhibition efficiency of Gd3+ on the Ca2+-activated F1FO-ATPase (0.59 ± 0.09 mM-1∙s-1) than on the Mg2+-activated F1FO-ATPase (0.13 ± 0.02 mM-1∙s-1). Consistently, the PTP is desensitized in presence of Gd3+. The Gd3+ inhibition on both the mitochondrial Ca2+-activated F1FO-ATPase and the PTP strengthens the link between the PTP and the F1FO-ATPase when activated by Ca2+ and provides insights on the biological effects of Gd3+.


Asunto(s)
Inhibidores Enzimáticos/farmacología , Gadolinio/farmacología , Mitocondrias/metabolismo , Poro de Transición de la Permeabilidad Mitocondrial/farmacología , ATPasas de Translocación de Protón Mitocondriales/metabolismo , Animales , Calcio/metabolismo , Cationes , Activación Enzimática/efectos de los fármacos , Cinética , Magnesio/metabolismo , Mitocondrias/efectos de los fármacos , ATPasas de Translocación de Protón Mitocondriales/química , Modelos Moleculares , Conformación Proteica , Sus scrofa
3.
Front Mol Biosci ; 8: 682191, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-34109217

RESUMEN

The fat-soluble vitamin K (VK) has long been known as a requirement for blood coagulation, but like other vitamins, has been recently recognized to play further physiological roles, particularly in cell development and homeostasis. Vertebrates cannot de novo synthesize VK, which is essential, and it can only be obtained from the diet or by the activity of the gut microbiota. The IPEC-J2 cell line, obtained from porcine small intestine, which shows strong similarities to the human one, represents an excellent functional model to in vitro study the effect of compounds at the intestinal level. The acute VK treatments on the bioenergetic features of IPEC-J2 cells were evaluated by Seahorse XP Agilent technology. VK exists in different structurally related forms (vitamers), all featured by a naphtoquinone moiety, but with distinct effects on IPEC-J2 energy metabolism. The VK1, which has a long hydrocarbon chain, at both concentrations (5 and 10 µM), increases the cellular ATP production due to oxidative phosphorylation (OXPHOS) by 5% and by 30% through glycolysis. The VK2 at 5 µM only stimulates ATP production by OXPHOS. Conversely, 10 µM VK3, which lacks the long side chain, inhibits OXPHOS by 30% and glycolysis by 45%. However, even if IPEC-J2 cells mainly prefer OXPHOS to glycolysis to produce ATP, the OXPHOS/glycolysis ratio significantly decreases in VK1-treated cells, is unaffected by VK2, and only significantly increased by 10 µM VK3. VK1, at the two concentrations tested, does not affect the mitochondrial bioenergetic parameters, while 5 µM VK2 increases and 5 µM VK3 reduces the mitochondrial respiration (i.e., maximal respiration and spare respiratory capacity). Moreover, 10 µM VK3 impairs OXPHOS, as shown by the increase in the proton leak, namely the proton backward entry to the matrix space, thus pointing out mitochondrial toxicity. Furthermore, in the presence of both VK1 and VK2 concentrations, the glycolytic parameters, namely the glycolytic capacity and the glycolytic reserve, are unaltered. In contrast, the inhibition of glycoATP production by VK3 is linked to the 80% inhibition of glycolysis, resulting in a reduced glycolytic capacity and reserve. These data, which demonstrate the VK ability to differently modulate IPEC-J2 cell energy metabolism according to the different structural features of the vitamers, can mirror VK modulatory effects on the cell membrane features and, as a cascade, on the epithelial cell properties and gut functions: balance of salt and water, macromolecule cleavage, detoxification of harmful compounds, and nitrogen recycling.

4.
Life (Basel) ; 11(3)2021 Mar 15.
Artículo en Inglés | MEDLINE | ID: mdl-33804034

RESUMEN

Under aerobic conditions, mitochondrial oxidative phosphorylation (OXPHOS) converts the energy released by nutrient oxidation into ATP, the currency of living organisms. The whole biochemical machinery is hosted by the inner mitochondrial membrane (mtIM) where the protonmotive force built by respiratory complexes, dynamically assembled as super-complexes, allows the F1FO-ATP synthase to make ATP from ADP + Pi. Recently mitochondria emerged not only as cell powerhouses, but also as signaling hubs by way of reactive oxygen species (ROS) production. However, when ROS removal systems and/or OXPHOS constituents are defective, the physiological ROS generation can cause ROS imbalance and oxidative stress, which in turn damages cell components. Moreover, the morphology of mitochondria rules cell fate and the formation of the mitochondrial permeability transition pore in the mtIM, which, most likely with the F1FO-ATP synthase contribution, permeabilizes mitochondria and leads to cell death. As the multiple mitochondrial functions are mutually interconnected, changes in protein composition by mutations or in supercomplex assembly and/or in membrane structures often generate a dysfunctional cascade and lead to life-incompatible diseases or severe syndromes. The known structural/functional changes in mitochondrial proteins and structures, which impact mitochondrial bioenergetics because of an impaired or defective energy transduction system, here reviewed, constitute the main biochemical damage in a variety of genetic and age-related diseases.

5.
PLoS One ; 16(3): e0247567, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-33661930

RESUMEN

Despite the increasing demand of cellular therapies for dogs, little is known on the differences between adult and fetal adnexa canine mesenchymal stem cells (MSCs), and data on their metabolic features are lacking. The present study aimed at comparing the characteristics of canine adipose tissue (AT) and umbilical cord matrix (UC) MSCs. Moreover, for the first time in the dog, the cellular bioenergetics were investigated by evaluating the two main metabolic pathways (oxidative phosphorylation and glycolysis) of ATP production. Frozen-thawed samples were used for this study. No differences in mean cell proliferation were found (P>0.05). However, while AT-MSCs showed a progressive increase in doubling time over passages, UC-MSCs showed an initial post freezing-thawing latency. No differences in migration, spheroid formation ability, and differentiation potential were found (P>0.05). RT-PCR analysis confirmed the expression of CD90 and CD44, the lack of CD14 and weak expression of CD34, mostly by AT-MSCs. DLA-DRA1 and DLA-DQA1 were weakly expressed only at passage 0 by UC-MSCs, while they were expressed at different passages for AT-MSCs. There was no difference (P>0.05) in total ATP production between cell cultures, but the ratio between the "mitochondrial ATP Production Rate" and the "glycolytic ATP Production Rate" was higher (P<0.05) in AT- than in UC-MSCs. However, in both MSCs types the mitochondrial respiration was the main pathway of ATP production. Mitochondrial respiration and ATP turnover in UC-MSCs were higher (P<0.05) than in AT-MSCs, but both had a 100% coupling efficiency. These features and the possibility of increasing the oxygen consumption by a spare respiratory capacity of four (AT-MSCSs) and two (UC-MSCs) order of magnitude greater than basal respiration, can be taken as indicative of the cell propensity to differentiate. The findings may efficiently contribute to select the most appropriate MSCs, culture and experimental conditions for transplantation experiments in mesenchymal stem cell therapy for companion animals.


Asunto(s)
Tejido Adiposo/citología , Separación Celular/métodos , Células Madre Mesenquimatosas/metabolismo , Metabolómica/métodos , Cordón Umbilical/citología , Adenosina Trifosfato/metabolismo , Animales , Antígenos CD34/genética , Diferenciación Celular/genética , Diferenciación Celular/fisiología , Movimiento Celular/genética , Movimiento Celular/fisiología , Proliferación Celular/genética , Proliferación Celular/fisiología , Células Cultivadas , Perros , Expresión Génica , Receptores de Hialuranos/genética , Complejo Mayor de Histocompatibilidad/genética , Células Madre Mesenquimatosas/citología , Reacción en Cadena de la Polimerasa de Transcriptasa Inversa , Antígenos Thy-1/genética
6.
Histochem Cell Biol ; 156(1): 59-67, 2021 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-33725198

RESUMEN

The foetal bovine serum (FBS) concentration could influence functional parameters of IPEC-J2 cells. IPEC-J2 is a non-transformed continuous epithelial cell line that represents an established in vitro model to study porcine gut inflammation and alterations of intestinal integrity. This cell line also represents a good translational model thanks to the high similitudes between pig and human gastrointestinal tract. With the aim to assess if the FBS-dependent functional variations are linked to the bioenergetic aspects, the addition of 5% and 10% FBS in the IPEC-J2 culture medium were tested. Doubling time and TEER measurement indicated that cells cultured at higher FBS dose grow faster and as a more compact monolayer. 10% FBS increases ATP production and mitochondrial oxidative phosphorylation (OxPhos) and does not affect glycolysis. Both at 5% and 10% FBS ATP production mainly comes from OxPhos and FBS concentration does not affect the cell respiration bioenergetic parameters. Noteworthy, IPEC-J2 treated with 5% and 10% FBS have a metabolic potential since both OxPhos and glycolysis increase by > 100% and < 50%, respectively in comparison with baseline metabolism. Moreover, glucose, fatty acids and glutamine constitute the preferred metabolic fuel for mitochondrial respiration at both FBS conditions tested. Accordingly, the cells flexibility to oxidize these substrates shows that IPEC-J2 mitochondria cannot maintain the basal ATP production without oxidizing all the substrates available irrespective of FBS concentration. To sum up, in IPEC-J2 cells OxPhos increases with the FBS-stimulated functional physiological parameters to fulfil ATP requirements.


Asunto(s)
Adenosina Trifosfato/biosíntesis , Sangre Fetal/metabolismo , Adenosina Trifosfato/sangre , Animales , Bovinos , Células Cultivadas , Porcinos
7.
Pharmacol Res ; 166: 105495, 2021 04.
Artículo en Inglés | MEDLINE | ID: mdl-33600941

RESUMEN

In mammalian cells enzymatic and non-enzymatic pathways produce H2S, a gaseous transmitter which recently emerged as promising therapeutic agent and modulator of mitochondrial bioenergetics. To explore this topic, the H2S donor NaHS, at micromolar concentrations, was tested on swine heart mitochondria. NaHS did not affect the F1FO-ATPase activated by the natural cofactor Mg2, but, when Mg2+ was replaced by Ca2+, a slight 15% enzyme inhibition at 100 µM NaHS was shown. Conversely, both the NADH-O2 and succinate-O2 oxidoreductase activities were totally inhibited by 200 µM NaHS with IC50 values of 61.6 ± 4.1 and 16.5 ± 4.6 µM NaHS, respectively. Since the mitochondrial respiration was equally inhibited by NaHS at both first or second respiratory substrates sites, the H2S generation may prevent the electron transfer from complexes I and II to downhill respiratory chain complexes, probably because H2S competes with O2 in complex IV, thus reducing membrane potential as a consequence of the cytochrome c oxidase activity inhibition. The Complex IV blockage by H2S was consistent with the linear concentration-dependent NADH-O2 oxidoreductase inhibition and exponential succinate-O2 oxidoreductase inhibition by NaHS, whereas the coupling between substrate oxidation and phosphorylation was unaffected by NaHS. Even if H2S is known to cause sulfhydration of cysteine residues, thiol oxidizing (GSSG) or reducing (DTE) agents, did not affect the F1FO-ATPase activities and mitochondrial respiration, thus ruling out any involvement of post-translational modifications of thiols. The permeability transition pore, the lethal channel which forms when the F1FO-ATPase is stimulated by Ca2+, did not open in the presence of NaHS, which showed a similar effect to ruthenium red, thus suggesting a putative Ca2+ transport cycle inhibition.


Asunto(s)
Calcio/metabolismo , Mitocondrias Cardíacas/efectos de los fármacos , Poro de Transición de la Permeabilidad Mitocondrial/metabolismo , ATPasas de Translocación de Protón/metabolismo , Sulfuros/farmacología , Animales , Respiración de la Célula/efectos de los fármacos , Metabolismo Energético/efectos de los fármacos , Gasotransmisores/metabolismo , Sulfuro de Hidrógeno/metabolismo , Magnesio/metabolismo , Mitocondrias Cardíacas/metabolismo , Sulfuros/metabolismo , Porcinos
8.
BBA Adv ; 1: 100001, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-37115635

RESUMEN

•Recent findings of cryo-EM structures of mammalian F1FO-ATPase.•The membrane-embedded domain of the F1FO-ATPase and the permeability transition pore.•The Ca2+-activated 1FO-ATPase role in the mPTP is consistent with recent cryo-EM findings.•The membrane-embedded FO participates in mPTP formation in mammalian mitochondria.•Conformational changes within FO modify the inner mitochondrial membrane shape.

9.
Ann N Y Acad Sci ; 1485(1): 43-55, 2021 02.
Artículo en Inglés | MEDLINE | ID: mdl-32959908

RESUMEN

The mitochondrial permeability transition pore (mPTP), a high-conductance channel triggered by a sudden Ca2+ concentration increase, is composed of the F1 FO -ATPase. Since mPTP opening leads to mitochondrial dysfunction, which is a feature of many diseases, a great pharmacological challenge is to find mPTP modulators. In our study, the effects of two 1,5-disubstituted 1,2,3-triazole derivatives, five-membered heterocycles with three nitrogen atoms in the ring and capable of forming secondary interactions with proteins, were investigated. Compounds 3a and 3b were selected among a wide range of structurally related compounds because of their chemical properties and effectiveness in preliminary studies. In swine heart mitochondria, both compounds inhibit Ca2+ -activated F1 FO -ATPase without affecting F-ATPase activity sustained by the natural cofactor Mg2+ . The inhibition is mutually exclusive, probably because of their shared enzyme site, and uncompetitive with respect to the ATP substrate, since they only bind to the enzyme-ATP complex. Both compounds show the same inhibition constant (K'i ), but compound 3a has a doubled inactivation rate constant compared with compound 3b. Moreover, both compounds desensitize mPTP opening without altering mitochondrial respiration. The results strengthen the link between Ca2+ -activated F1 FO -ATPase and mPTP and suggest that these inhibitors can be pharmacologically exploited to counteract mPTP-related diseases.


Asunto(s)
Calcio/metabolismo , Potencial de la Membrana Mitocondrial/efectos de los fármacos , Mitocondrias Cardíacas/metabolismo , Poro de Transición de la Permeabilidad Mitocondrial/metabolismo , ATPasas de Translocación de Protón Mitocondriales/metabolismo , Triazoles/farmacología , Animales , Mitocondrias Cardíacas/efectos de los fármacos , Porcinos
10.
Biochimie ; 180: 222-228, 2021 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-33212166

RESUMEN

The molecular mechanisms which rule the formation and opening of the mitochondrial permeability transition pore (mPTP), the lethal mechanism which permeabilizes mitochondria to water and solutes and drives the cell to death, are still unclear and particularly little investigated in invertebrates. Since Ca2+ increase in mitochondria is accompanied by mPTP opening and the participation of the mitochondrial F1FO-ATPase in the mPTP is increasingly sustained, the substitution of the natural cofactor Mg2+ by Ca2+ in the F1FO-ATPase activation has been involved in the mPTP mechanism. In mussel midgut gland mitochondria the similar kinetic properties of the Mg2+- or Ca2+-dependent F1FO-ATPase activities, namely the same affinity for ATP and bi-site activation kinetics by the ATP substrate, in spite of the higher enzyme activity and coupling efficiency of the Mg2+-dependent F1FO-ATPase, suggest that both enzyme activities are involved in the bioenergetic machinery. Other than being a mitochondrial poison and environmental contaminant, sulfide at low concentrations acts as gaseous mediator and can induce post-translational modifications of proteins. The sulfide donor NaHS, at micromolar concentrations, does not alter the two F1FO-ATPase activities, but desensitizes the mPTP to Ca2+ input. Unexpectedly, NaHS, under the conditions tested, points out a chemical refractoriness of both F1FO-ATPase activities and a failed relationship between the Ca2+-dependent F1FO-ATPase and the mPTP in mussels. The findings suggest that mPTP role and regulation may be different in different taxa and that the F1FO-ATPase insensitivity to NaHS may allow mussels to cope with environmental sulfide.


Asunto(s)
Mucosa Intestinal/fisiología , Mitocondrias/fisiología , Membranas Mitocondriales/enzimología , Poro de Transición de la Permeabilidad Mitocondrial/metabolismo , Mytilus/enzimología , ATPasas de Translocación de Protón/fisiología , Animales , Calcio/farmacología , Cationes/química , Cinética , Magnesio/farmacología , Mitocondrias/efectos de los fármacos , ATPasas de Translocación de Protón/efectos de los fármacos , Sulfuros/farmacología
11.
Proteins ; 89(5): 477-482, 2021 05.
Artículo en Inglés | MEDLINE | ID: mdl-33378096

RESUMEN

The mitochondrial F1 FO -ATPase in the presence of the natural cofactor Mg2+ acts as the enzyme of life by synthesizing ATP, but it can also hydrolyze ATP to pump H+ . Interestingly, Mg2+ can be replaced by Ca2+ , but only to sustain ATP hydrolysis and not ATP synthesis. When Ca2+ inserts in F1 , the torque generation built by the chemomechanical coupling between F1 and the rotating central stalk was reported as unable to drive the transmembrane H+ flux within FO . However, the failed H+ translocation is not consistent with the oligomycin-sensitivity of the Ca2+ -dependent F1 FO -ATP(hydrol)ase. New enzyme roles in mitochondrial energy transduction are suggested by recent advances. Accordingly, the structural F1 FO -ATPase distortion driven by ATP hydrolysis sustained by Ca2+ is consistent with the permeability transition pore signal propagation pathway. The Ca2+ -activated F1 FO -ATPase, by forming the pore, may contribute to dissipate the transmembrane H+ gradient created by the same enzyme complex.


Asunto(s)
Adenosina Trifosfato/química , Calcio/química , Coenzimas/química , Magnesio/química , Mitocondrias Cardíacas/química , ATPasas de Translocación de Protón Mitocondriales/química , Adenosina Trifosfato/metabolismo , Animales , Sitios de Unión , Calcio/metabolismo , Cationes Bivalentes , Coenzimas/metabolismo , Hidrólisis/efectos de los fármacos , Cinética , Magnesio/metabolismo , Mitocondrias Cardíacas/enzimología , Poro de Transición de la Permeabilidad Mitocondrial/química , Poro de Transición de la Permeabilidad Mitocondrial/metabolismo , ATPasas de Translocación de Protón Mitocondriales/aislamiento & purificación , ATPasas de Translocación de Protón Mitocondriales/metabolismo , Modelos Moleculares , Miocardio/química , Miocardio/enzimología , Oligomicinas/farmacología , Unión Proteica , Conformación Proteica en Hélice alfa , Conformación Proteica en Lámina beta , Dominios y Motivos de Interacción de Proteínas , Subunidades de Proteína/química , Subunidades de Proteína/aislamiento & purificación , Subunidades de Proteína/metabolismo , Especificidad por Sustrato , Porcinos , Termodinámica
12.
Int J Mol Sci ; 21(15)2020 Jul 24.
Artículo en Inglés | MEDLINE | ID: mdl-32722269

RESUMEN

Hydrogen sulfide (H2S) is now considered not only for its toxicity, but also as an endogenously produced gas transmitter with multiple physiological roles, also in maintaining and regulating stem cell physiology. In the present work, we evaluated the effect of a common H2S donor, NaHS, on porcine vascular wall-mesenchymal stem cells (pVW-MSCs). pVW-MSCs were treated for 24 h with increasing doses of NaHS, and the cell viability, cell cycle, and reactive oxygen species (ROS) production were evaluated. Moreover, the long-term effects of NaHS administration on the noteworthy characteristics of pVW-MSCs were analyzed. The MTT test revealed no alteration in cell viability, however, the cell cycle analysis demonstrated that the highest NaHS dose tested (300 µM) determined a block in S phase, which did not depend on the ROS production. Moreover, NaHS (10 µM), continuously administered in culture for 21 days, was able to significantly reduce NG2, Nestin and PDGFR-ß expression. The pro-angiogenic attitude of pVW-MSCs was partially reduced by NaHS: the cells maintained the ability to grow in spheroid and sprouting from that, but endothelial markers (Factor VIII and CD31) were reduced. In conclusion, NaHS can be toxic for pVW-MSCs in high doses, while in low doses, it influences cellular physiology, by affecting the gene expression with a slowing down of the endothelial lineage.


Asunto(s)
Antígenos de Diferenciación/metabolismo , Vasos Sanguíneos/metabolismo , Células Endoteliales/metabolismo , Células Madre Mesenquimatosas/metabolismo , Neovascularización Fisiológica/efectos de los fármacos , Sulfuros/farmacología , Animales , Vasos Sanguíneos/citología , Células Endoteliales/citología , Células Madre Mesenquimatosas/citología , Especies Reactivas de Oxígeno/metabolismo , Porcinos
13.
Crit Rev Biochem Mol Biol ; 55(4): 309-321, 2020 08.
Artículo en Inglés | MEDLINE | ID: mdl-32580582

RESUMEN

Of the two main sectors of the F-type ATP synthase, the membrane-intrinsic FO domain is the one which, during evolution, has undergone the highest structural variations and changes in subunit composition. The FO complexity in mitochondria is apparently related to additional enzyme functions that lack in bacterial and thylakoid complexes. Indeed, the F-type ATP synthase has the main bioenergetic role to synthesize ATP by exploiting the electrochemical gradient built by respiratory complexes. The FO membrane domain, essential in the enzyme machinery, also participates in the bioenergetic cost of synthesizing ATP and in the formation of the cristae, thus contributing to mitochondrial morphology. The recent enzyme involvement in a high-conductance channel, which forms in the inner mitochondrial membrane and promotes the mitochondrial permeability transition, highlights a new F-type ATP synthase role. Point mutations which cause amino acid substitutions in FO subunits produce mitochondrial dysfunctions and lead to severe pathologies. The FO variability in different species, pointed out by cryo-EM analysis, mirrors the multiple enzyme functions and opens a new scenario in mitochondrial biology.


Asunto(s)
Adenosina Trifosfato , Mitocondrias/enzimología , Membranas Mitocondriales/enzimología , ATPasas de Translocación de Protón Mitocondriales , Adenosina Trifosfato/química , Adenosina Trifosfato/metabolismo , Animales , Humanos , ATPasas de Translocación de Protón Mitocondriales/química , ATPasas de Translocación de Protón Mitocondriales/metabolismo
14.
Theriogenology ; 144: 82-88, 2020 Mar 01.
Artículo en Inglés | MEDLINE | ID: mdl-31927418

RESUMEN

In this study boar sperm mitochondrial activity was studied and deepened in order to delineate the main metabolic strategies used by boar sperm to obtain energy and to link them to sperm function. Boar spermatozoa were collected, diluted at 30 × 106 spz/mL and incubated for 1 h with: Rotenone (ROT), complex I inhibitor, Dimethyl-malonate (DMM), complex II inhibitor, antimycin A (ANTI), complex III inhibitor, oligomycin (OLIGO), ATP synthase inhibitor, Carbonyl cyanide m-chlorophenyl hydrazone (CCCP), uncoupling agent, 2-deoxy-glucose (2DG), glucose agonist, and Dimethyl sulphoxide (DMSO) as control vehicle. Viability and mitochondrial membrane potential (Sybr14/PI/JC1 staining) and sperm motility (using CASA system) were assayed after incubation. ROT, ANTI, OLIGO and CCCP significantly reduced total and progressive motility as well as cell velocities; ANTI and CCCP depressed mitochondrial membrane potential but did not affect cell viability. Cluster analysis of kinematic parameters showed some interesting features of sperm subpopulations: ANTI and CCCP caused a shift in sperm subpopulation towards "slow non progressive" cells, OLIGO and ROT caused a shift towards "average" and "slow non progressive" cells, while DMM and 2DG increased the "fast progressive" cells subpopulation. Sperm mitochondrial respiration and substrate oxidation, assayed polographically and spectrofluorimetrically, respectively pointed out a high ATP turnover and a low spare respiratory capacity, mainly linked to the NADH-O2 oxidase activity. Therefore, boar spermatozoa heavily rely on mitochondrial oxidative phosphorylation, and especially on Complex I activity, to produce ATP and fuel motility.


Asunto(s)
Mitocondrias/fisiología , Espermatozoides/fisiología , Porcinos , Animales , Supervivencia Celular , Masculino , Potencial de la Membrana Mitocondrial/fisiología , Oxidación-Reducción , Consumo de Oxígeno , Análisis de Componente Principal , Motilidad Espermática/fisiología
15.
Arch Biochem Biophys ; 681: 108258, 2020 03 15.
Artículo en Inglés | MEDLINE | ID: mdl-31917961

RESUMEN

Phenylglyoxal (PGO), known to cause post-translational modifications of Arg residues, was used to highlight the role of arginine residues of the F1FO-ATPase, which may be crucial to yield the mitochondrial permeability transition pore (mPTP). In swine heart mitochondria PGO inhibits ATP hydrolysis by the F1FO-ATPase either sustained by the natural cofactor Mg2+ or by Ca2+ by a similar uncompetitive inhibition mechanism, namely the tertiary complex (ESI) only forms when the ATP substrate is already bound to the enzyme, and with similar strength, as shown by the similar K'i values (0.82 ± 0.07 mM in presence of Mg2+ and 0.64 ± 0.05 mM in the presence of Ca2+). Multiple inhibitor analysis indicates that features of the F1 catalytic sites and/or the FO proton binding sites are apparently unaffected by PGO. However, PGO and F1 or FO inhibitors can bind the enzyme combine simultaneously. However they mutually hinder to bind the Mg2+-activated F1FO-ATPase, whereas they do not mutually exclude to bind the Ca2+-activated F1FO-ATPase. The putative formation of PGO-arginine adducts, and the consequent spatial rearrangement in the enzyme structure, inhibits the F1FO-ATPase activity but, as shown by the calcium retention capacity evaluation in intact mitochondria, apparently favours the mPTP formation.


Asunto(s)
Glioxilatos/metabolismo , Ácidos Mandélicos/metabolismo , Mitocondrias Cardíacas/metabolismo , Proteínas de Transporte de Membrana Mitocondrial/metabolismo , ATPasas de Translocación de Protón/metabolismo , Animales , Calcio/metabolismo , Magnesio/metabolismo , Poro de Transición de la Permeabilidad Mitocondrial , Porcinos
16.
Trends Cell Biol ; 30(1): 1-3, 2020 01.
Artículo en Inglés | MEDLINE | ID: mdl-31753532

RESUMEN

The enzyme nicotinamide nucleotide transhydrogenase (NNT) transfers hydride from NADH to NADP+ coupled to H+ translocation across the inner mitochondrial membrane. In a recent study, Kampjut and Sazanov reveal that the bifunctional NNT mechanism rules the NAD(P)+/NAD(P)H interconversion ratio, which in turn regulates antioxidant defense and sirtuin actions.


Asunto(s)
Mitocondrias/metabolismo , Animales , Humanos , Mamíferos/metabolismo , NAD/metabolismo , NADP Transhidrogenasas/química , NADP Transhidrogenasas/metabolismo , Oxidación-Reducción , Sirtuinas/metabolismo
17.
Ann N Y Acad Sci ; 1457(1): 142-157, 2019 12.
Artículo en Inglés | MEDLINE | ID: mdl-31441951

RESUMEN

The properties of the mitochondrial F1 FO -ATPase catalytic site, which can bind Mg2+ , Mn2+ , or Ca2+ and hydrolyze ATP, were explored by inhibition kinetic analyses to cast light on the Ca2+ -activated F1 FO -ATPase connection with the permeability transition pore (PTP) that initiates cascade events leading to cell death. While the natural cofactor Mg2+ activates the F1 FO -ATPase in competition with Mn2+ , Ca2+ is a noncompetitive inhibitor in the presence of Mg2+ . Selective F1 inhibitors (Is-F1 ), namely NBD-Cl, piceatannol, resveratrol, and quercetin, exerted different mechanisms (mixed and uncompetitive inhibition) on either Ca2+ - or Mg2+ -activated F1 FO -ATPase, consistent with the conclusion that the catalytic mechanism changes when Mg2+ is replaced by Ca2+ . In a partially purified F1 domain preparation, Ca2+ -activated F1 -ATPase maintained Is-F1 sensitivity, and enzyme inhibition was accompanied by the maintenance of the mitochondrial calcium retention capacity and membrane potential. The data strengthen the structural relationship between Ca2+ -activated F1 FO -ATPase and the PTP, and, in turn, on consequences, such as physiopathological cellular changes.


Asunto(s)
Adenosina Trifosfato/metabolismo , Calcio/metabolismo , Mitocondrias Cardíacas/metabolismo , ATPasas de Translocación de Protón/metabolismo , Quercetina/farmacología , Resveratrol/farmacología , Estilbenos/farmacología , Animales , Catálisis , Muerte Celular/efectos de los fármacos , Hidrólisis , Concentración 50 Inhibidora , Cinética , Magnesio/metabolismo , Potencial de la Membrana Mitocondrial , Permeabilidad , Dominios Proteicos , Ácido Succínico/farmacología , Porcinos
18.
Trends Biochem Sci ; 44(10): 821-823, 2019 10.
Artículo en Inglés | MEDLINE | ID: mdl-31402189

RESUMEN

As pointed out by Gu et al. (Science 2019) in mammalian mitochondria, the H-shaped tetrameric structure of the ATP synthase, the cell powerhouse, consists of two V-shaped dimers linked by two IF1 in antiparallel arrangement. This supramolecular structure reveals new functional/structural roles of the enzyme complex in mitochondria.


Asunto(s)
Mitocondrias , ATPasas de Translocación de Protón Mitocondriales , Adenosina Trifosfato , Animales , Microscopía por Crioelectrón , Proteínas
19.
SLAS Discov ; 24(9): 893-903, 2019 10.
Artículo en Inglés | MEDLINE | ID: mdl-31266411

RESUMEN

Recently, the F1FO-ATP synthase, due to its dual role of life enzyme as main adenosine triphosphate (ATP) maker and of death enzyme, as ATP dissipator and putative structural component of the mitochondrial permeability transition pore (mPTP), which triggers cell death, has been increasingly considered as a drug target. Accordingly, the enzyme offers new strategies to counteract the increased antibiotic resistance. The challenge is to find or synthesize compounds able to discriminate between prokaryotic and mitochondrial F1FO-ATP synthase, exploiting subtle structural differences to kill pathogens without affecting the host. From this perspective, the eukaryotic enzyme could also be made refractory to macrolide antibiotics by chemically produced posttranslational modifications. Moreover, because the mitochondrial F1FO-ATPase activity stimulated by Ca2+ instead of by the natural modulator Mg2+ is most likely involved in mPTP formation, effectors preferentially targeting the Ca2+-activated enzyme may modulate the mPTP. If the enzyme involvement in the mPTP is confirmed, Ca2+-ATPase inhibitors may counteract conditions featured by an increased mPTP activity, such as neurodegenerative and cardiovascular diseases and physiological aging. Conversely, mPTP opening could be pharmacologically stimulated to selectively kill unwanted cells. On the basis of recent literature and promising lab findings, the action mechanism of F1 and FO inhibitors is considered. These molecules may act as enzyme modifiers and constitute new drugs to kill pathogens, improve compromised enzyme functions, and limit the deathly enzyme role in pathologies. The enzyme offers a wide spectrum of therapeutic strategies to fight at the molecular level diseases whose treatment is still insufficient or merely symptomatic.


Asunto(s)
ATPasas de Translocación de Protón Mitocondriales/metabolismo , Adenosina Trifosfato/metabolismo , Animales , Calcio/metabolismo , Humanos , Mitocondrias/metabolismo , Proteínas de Transporte de Membrana Mitocondrial/metabolismo , Membranas Mitocondriales/metabolismo , Poro de Transición de la Permeabilidad Mitocondrial , Procesamiento Proteico-Postraduccional/fisiología
20.
J Cell Physiol ; 234(10): 16685-16691, 2019 08.
Artículo en Inglés | MEDLINE | ID: mdl-30825197

RESUMEN

The link between metabolic remodeling and stem cell fate is still unclear. To explore this topic, the metabolic profile of porcine vascular wall mesenchymal stem cells (pVW-MSCs) was investigated. At the first and second cell passages, pVW-MSCs exploit both glycolysis and cellular respiration to synthesize adenosine triphosphate (ATP), but in the subsequent (third to eighth) passages they do not show any mitochondrial ATP turnover. Interestingly, when the first passage pVW-MSCs are exposed to 0.1 or 10 µg/ml lipopolysaccharides (LPSs) for 4 hr, even if ATP synthesis is prevented, the spare respiratory capacity is retained and the glycolytic capacity is unaffected. In contrast, the exposure of pVW-MSCs at the fifth passage to 10 µg/ml LPS stimulates mitochondrial ATP synthesis. Flow cytometry rules out any reactive oxygen species (ROS) involvement in the LPS effects, thus suggesting that the pVW-MSC metabolic pattern is modulated by culture conditions via ROS-independent mechanisms.


Asunto(s)
Lipopolisacáridos/farmacología , Células Madre Mesenquimatosas/efectos de los fármacos , Células Madre Mesenquimatosas/metabolismo , Animales , Aorta/citología , Células Cultivadas , Estrés Oxidativo/efectos de los fármacos , Especies Reactivas de Oxígeno , Porcinos
SELECCIÓN DE REFERENCIAS
DETALLE DE LA BÚSQUEDA