共查询到20条相似文献,搜索用时 15 毫秒
1.
Sulman T Katsnelson LB Solovyova O Markhasin VS 《Bulletin of mathematical biology》2008,70(3):910-949
A mathematical model of the cardiomyocyte electromechanical function is used to study contribution of mechanical factors to
rhythm disturbances in the case of the cardiomyocyte calcium overload. Particular attention is paid to the overload caused
by diminished activity of the sodium-potassium pump. It is shown in the framework of the model, where mechano-calcium feedback
is accounted for that myocardium mechanics may significantly enhance arrhythmogenicity of the calcium overload. Specifically,
a role of cross-bridge attachment/detachment processes, a role of mechanical conditions of myocardium contractions (length,
load), and a role of myocardium viscosity in the case of simulated calcium overload have been revealed. Underlying mechanisms
are analyzed. Several approaches are designed in the model and compared to each other for recovery of the valid myocardium
electrical and mechanical performance in the case of the partially suppressed sodium-potassium pump. 相似文献
2.
Jia D 《Cell biochemistry and biophysics》2011,60(3):219-224
To study the protective effect of mitochondrial ATP-sensitive K+ channel (mitoKATP channel) opener, nicorandil, combined with Na+/Ca2+ exchange blocker KB-R7943 on myocardial ischemia–reperfusion injury in isolated rat hearts; the isolated rat heart was perfused
by modified Langendorff device, after 15-min balanced perfusion, 45-min ischemia (about left and right coronary perfusion
flow reduced to 5% of the original irrigation flow), and 2-h reperfusion were performed. Forty Wistar rats were randomly divided
into four groups: control group, nicorandil group, KB-R7943 group, and the combination of nicorandil and KB-R7943 group. After
45-min ischemia and then 2-h reperfusion, the myocardial infarct size was 34.31% in control group, 26.35% in nicorandil group,
28.74% in KB-R7943 group, and 19.23% in combination of nicorandil and KB-R7943 group. SOD activity in coronary perfusion fluid
was the highest in the combination of nicorandil and KB-R7943 group, and MDA content was the lowest. In the combination drug
group compared with the control group, myocardial ultrastructural injury was significantly reduced. The combination of nicorandil
and KB-R7943 significantly reduced myocardial infarct size, significantly reduced myocardial ultrastructural damage, could
increase coronary perfusion fluid SOD activity, and reduced MDA levels. 相似文献
3.
Interplay between the host and influenza virus has a pivotal role for the outcome of infection. The matrix proteins M2/BM2
from influenza (A and B) viruses are small type III integral membrane proteins with a single transmembrane domain, a short
amino-terminal ectodomain and a long carboxy-terminal cytoplasmic domain. They function as proton channels, mainly forming
a membrane-spanning pore through the transmembrane domain tetramer, and are essential for virus assembly and release of the
viral genetic materials in the endosomal fusion process. However, little is known about the host factors which interact with
M2/BM2 proteins and the functions of the long cytoplasmic domain are currently unknown. Starting with yeast two-hybrid screening
and applying a series of experiments we identified that the β1 subunit of the host Na+/K+-ATPase β1 subunit (ATP1B1) interacts with the cytoplasmic domain of both the M2 and BM2 proteins. A stable ATP1B1 knockdown
MDCK cell line was established and we showed that the ATP1B1 knockdown suppressed influenza virus A/WSN/33 replication, implying
that the interaction is crucial for influenza virus replication in the host cell. We propose that influenza virus M2/BM2 cytoplasmic
domain has an important role in the virus-host interplay and facilitates virus replication. 相似文献
4.
Kade IJ Paixão MW Rodrigues OE Barbosa NB Braga AL Avila DS Nogueira CW Rocha JB 《Neurochemical research》2008,33(1):167-178
The present study sought to evaluate the effect of a newly synthesized selenium compound, dicholesteroyl diselenide (DCDS)
and diphenyl diselenide (DPDS) on the activities of delta-aminolevulinate dehydratase and Na+/K+-ATPase in the rat brain. The glutathione peroxidase mimetic activity of the two compounds as well as their ability to oxidize
mono- and di- thiols were also evaluated. The antioxidant effects were tested by measuring the ability of the compounds to
inhibit the formation of thiobarbituric acid reactive species and also their ability to inhibit the formation of protein carbonyls.
The results show that DPDS exhibited a higher glutathione peroxidase mimetic activity as well as increased ability to oxidize
di-thiols than DCDS. In addition, while DPDS inhibited the formation of thiobarbituric acid reactive species and protein carbonyls,
DCDS exhibited a prooxidant effect in all the concentration range (20–167 μM) tested. Also the activities of cerebral delta-aminolevulinate dehydratase and Na+/K+ ATPase were significantly inhibited by DPDS but not by DCDS. In addition, the present results suggested that the inhibition
of Na+/K+ ATPase by organodiselenides, possibly involves the modification of the thiol group at the ATP binding site of the enzyme.
In conclusion, the results of the present investigation indicated that the non-selenium moiety of the organochalcogens can
have a profound effect on their antioxidant activity and also in their reactivity towards SH groups from low-molecular weight
molecules and from brain proteins. 相似文献
5.
V. E. Yurinskaya T. S. Goryachaya A. A. Rubashkin A. V. Shirokova A. A. Vereninov 《Cell and Tissue Biology》2010,4(5):457-463
The K+, Na+, and Cl− balance and K+ (Rb+) and 36Cl− fluxes in U937 cells induced to apoptosis by 0.2 or 1 μM staurosporine were studied using flame emission and radioisotope techniques. It is found that two-thirds of the total decrease in the amount of intracellular osmolytes in apoptotic cells is accounted for by monovalent ions and one-third consists of other intracellular osmolytes. A decrease in the amount of monovalent ions results from a decrease in the amount of K+ and Cl− and an increase in the Na+ content. The rate of 36Cl−, Rb+ (K+), and 22Na+ equilibration between cells and the medium was found to significantly exceed the rate of apoptotic change in the cellular ion content, which indicates that unidirectional influxes and effluxes during apoptosis may be considered as being in near balance. The drift of the ion flux balance in apoptosis caused by 0.2 μM staurosporine was found to be associated with the increased ouabain-resistant Rb+ (K+) channel influx and insignificantly altered the ouabain-sensitive pump influx. Severe apoptosis induced by 1 μM staurosporine is associated with reduced pump fluxes and slightly changed channel Rb+ (K+) fluxes. In apoptotic cells, the 1.4–1.8-fold decreased Cl− level is accompanied by a 1.2–1.6-fold decreased flux. 相似文献
6.
The effect of K+ ion interaction with monolayers of phosphatidylcholine (lecithin, PC) or cholesterol (Ch) was investigated at the air/water interface. We present surface tension measurements of lipid monolayers obtained using a Langmuir method as a function of K+ ion concentration. Measurements were carried out at 22°C using a Teflon trough and a Nima 9000 tensiometer. Interactions between lecithin and K+ ions or Ch and K+ ions result in significant deviations from the additivity rule. An equilibrium theory to describe the behavior of monolayer components at the air/water interface was developed in order to obtain the stability constants and area occupied by one molecule of lipid–K+ ion complex (LK+). The stability constants for lecithin–K+ ion (PCK+) complex, \( K_{{{\text{PCK}}^{ + } }} = { 3}. 2 6\times 10^{ 2} {\text{dm}}^{ 3} \,{\text{mol}}^{ - 1} \), and for cholesterol–K+ ion (ChK+) complex, \( K_{{{\text{ChK}}^{ + } }} = { 1}.00 \times 10^{ 3} {\text{dm}}^{ 3} \,{\text{mol}}^{ - 1} \), were calculated by inserting the experimental data. The value of area occupied by one PCK+ complex is 60 Å2 molecule?1, while the area occupied by one ChK+ complex is 40.9 Å2 molecule?1. The complex formation energy (Gibbs free energy) values for the PCK+ and ChK+ complexes are ?14.18 ± 0.71 and ?16.92 ± 0.85 kJ mol?1, respectively. 相似文献
7.
The Na+/Mg2+ exchanger represents the main Mg2+ extrusion mechanism operating in mammalian cells including hepatocytes. We have previously reported that this exchanger, located in the basolateral domain of the hepatocyte, promotes the extrusion of intravesicular trapped Mg2+ for extravesicular Na+ with ratio 1. This electrogenic exchange is supported by the accumulation of tetraphenyl-phosphonium within the vesicles at the time when Mg2+ efflux occurs. In this present study, the role of extra- and intra-vesicular Cl? on the Na+/Mg2+ exchange ratio was investigated. The results reported here suggest that Cl? ions are not required for the Na+ to Mg2+ exchange to occur, but the stoichiometry ratio of the exchanger switches from electrogenic (1Na in + :1 Mg out 2+ ) in the presence of intravesicular Cl? to electroneutral (2Na in + :1 Mg out 2+ ) in their absence. In basolateral liver plasma membrane vesicles loaded with MgCl2 labeled with 36Cl?, a small but significant Cl? efflux (~30 nmol Cl?/mg protein/1 min) is observed following addition of NaCl or Na-isethionate to the extravesicular medium. Both Cl? and Mg2+ effluxes are inhibited by imipramine but not by amiloride, DIDS, niflumic acid, bumetanide, or furosemide. In vesicles loaded with Mg-gluconate and stimulated by Na-isethionate, an electroneutral Mg2+ extrusion is observed. Taken together, these results suggest that the Na+/Mg2+ exchanger can operate irrespective of the absence or the presence of Cl? in the extracellular or intracellular environment. Changes in trans-cellular Cl? content, however, can affect the modus operandi of the Na+/Mg2+ exchanger, and consequently impact cellular Na+ and Mg2+ homeostasis as well as the hepatocyte membrane potential. 相似文献
8.
Eguchi H Morii M Takahashi Y Sakai H Nakano M Ochiai H Shirahata A Hara Y Kawamura M Takeda K 《The Journal of membrane biology》2008,221(3):133-140
Leucines were mutated within the sequence L311ILGYTWLE319 of the extracellular loop flanking the third (M3) and fourth (M4) transmembrane segments (M3/M4 loop) of the Torpedo Na+,K+-ATPase α-subunit. Replacement of Leu311 with Glu resulted in a considerable loss of Na+,K+-ATPase activity. Replacement of Leu313 with Glu shifted the equilibrium of E1P and E2P toward E1P and reduced the rate of the E1P to E2P transition. The reduction of the transition rate and stronger inhibition of Na+,K+-ATPase activity by Na+ at higher concentrations together suggest that there is interference of Na+ release on the extracellular side in the Leu313 mutant. Thus, Leu313 could be in the pathway of Na+ exit. Replacement of Leu318 with Glu yielded an enzyme with significantly reduced apparent affinity for both vanadate and K+, with an equilibrium shifted toward E2P and no alteration in the transition rate. The reduced vanadate affinity is due to the lower rate of production of vanadate-reactive
[K+
2]E2 caused by inhibition of dephosphorylation through reduction of the K+ affinity of E2P. Thus, Leu318 may be a critical position in guiding external K+ to its binding site. 相似文献
9.
Tomoya Kitayama 《Neurochemical research》2018,43(1):101-106
The pain sensory system normally functions under a fine balance between excitation and inhibition. When this balance is perturbed for some reason, it leads to neuropathic pain. There is accumulating evidence that attributes this pain generation to specific dysfunctions of the inhibitory system in the spinal cord. One possible mechanism leading to the induction of these dysfunctions is the down-regulation of K+-Cl?-cotransporter-2 (KCC2) expression. In fact, various neuropathic pain models indicate a decrease of KCC2 expression in the spinal cord. The alteration of KCC2 expression affects GABAergic and glycinergic neurotransmissions, because KCC2 is a potassium-chloride exporter and serves to maintain intracellular chloride concentration. When there is a low level of KCC2 expression, GABAergic and glycinergic neurotransmissions transform from inhibitory signals to excitatory signals. In this review, the hypothesis that an alteration of KCC2 expression has a crucial influence on the initiation/development or maintenance of neuropathic pain is discussed. In addition, it is suggested that the alteration of inhibitory signals is dependent on the time after peripheral nerve injury. 相似文献
10.
The extent of anoxic depolarization (AD), the initial electrophysiological event during ischemia, determines the degree of brain region–specific neuronal damage. Neurons in higher brain regions exhibiting nonreversible, strong AD are more susceptible to ischemic injury as compared to cells in lower brain regions that exhibit reversible, weak AD. While the contrasting ADs in different brain regions in response to oxygen–glucose deprivation (OGD) is well established, the mechanism leading to such differences is not clear. Here we use computational modeling to elucidate the mechanism behind the brain region–specific recovery from AD. Our extended Hodgkin–Huxley (HH) framework consisting of neural spiking dynamics, processes of ion accumulation, and ion homeostatic mechanisms unveils that glial–vascular K+ clearance and Na+/K+–exchange pumps are key to the cell’s recovery from AD. Our phase space analysis reveals that the large extracellular space in the upper brain regions leads to impaired Na+/K+–exchange pumps so that they function at lower than normal capacity and are unable to bring the cell out of AD after oxygen and glucose is restored. 相似文献
11.
M. A. Breygina N. P. Matveyeva D. S. Andreyuk I. P. Yermakov 《Russian Journal of Developmental Biology》2012,43(2):85-93
We studied the possibility of K+ and Cl− efflux from tobacco pollen grains during their activation in vitro or on the stigma of a pistil. For this purpose the X-ray
microanalysis and spectrofluorometry were applied. We found that the relative content of potassium and chlorine in the microvolume
of pollen grain decreases during its hydration and activation on stigma. Efflux of these ions was found both in vivo and in
vitro. In model in vitro experiments anion channel inhibitor NPPB ((5-nitro-2-(3-phenylpropylamino) benzoic acid) in the concentration
that was blocking pollen germination, reduced Cl− efflux; potassium channel inhibitor TEA (tetraethylammonium chloride) partially reduced K+ efflux and lowered the percent of activated cells. Another blocker of potassium channels Ba2+ caused severe decrease in cell volume and blocked the activation. In general, the obtained data demonstrates that the initiation
of pollen germination both in vivo and in vitro involves the activation of K+ and Cl− release. An important role in these processes is played by NPPB-, TEA- and Ba2+-sensitive plasmalemma ion channels. 相似文献
12.
13.
The molecular weight and subunit composition of Cl-,HCO3(-)- and picrotoxin-stimulated Mg2+-ATPase from rat brain plasma membrane solubilized in sodium deoxycholate were studied by gel filtration chromatography. The enzyme activity eluted from a Sephacryl S-300 column in a single peak associated with a protein of molecular weight approximately 300 kD and a Stokes radius of 5.4 nm. The enzyme-enriched fraction, concentrated and denatured by SDS, migrated through a Sephacryl S-200 column as three peaks with molecular weights of approximately 57, 53, and 45 kD. SDS-PAGE also showed three major protein bands with molecular weights of about 57, 53, and 48 kD. The molecular weight and subunit composition of the Cl- and HCO3(-)-stimulated Mg2+-ATPase from neuronal membrane of rat brain are similar with the molecular properties of GABA(A)-benzodiazepine receptor complex from mammalian brain but are different from those of P-type transport ATPases. 相似文献
14.
15.
Min-Hwang Chang Consuelo Plata Kambiz Zandi-Nejad Aleksandra Sinđić Caroline R. Sussman Adriana Mercado Vadjista Broumand Viswanathan Raghuram David B. Mount Michael F. Romero 《The Journal of membrane biology》2009,228(3):125-140
The SLC26 gene family encodes anion transporters with diverse functional attributes: (a) anion exchanger, (b) anion sensor,
and (c) anion conductance (likely channel). We have cloned and studied Slc26a9, a paralogue expressed mostly in lung and stomach.
Immunohistochemistry shows that Slc26a9 is present at apical and intracellular membranes of lung and stomach epithelia. Using
expression in Xenopus laevis oocytes and ion-sensitive microelectrodes, we discovered that Slc26a9 has a novel function not found in any other Slc26 proteins:
cation coupling. Intracellular pH and voltage measurements show that Slc26a9 is a nCl−-HCO3− exchanger, suggesting roles in gastric HCl secretion or pulmonary HCO3− secretion; Na+ electrodes and uptakes reveal that Slc26a9 has a cation dependence. Single-channel measurements indicate that Slc26a9 displays
discrete open and closed states. These experiments show that Slc26a9 has three discrete physiological modes: nCl−-HCO3− exchanger, Cl− channel, and Na+-anion cotransporter. Thus, the Slc26a9 transporter channel is uniquely suited for dynamic and tissue-specific physiology
or regulation in epithelial tissues.
Min-Hwang Chang, Consuelo Plata, and Kambiz Zandi-Nejad have contributed equally to this work. 相似文献
16.
Torres ML Ortega F Cuaranta I González J Sanchez-Armass S 《Neurochemical research》2008,33(8):1574-1581
The Na+/H+ exchanger has been the only unequivocally demonstrated H+-transport mechanism in the synaptosomal preparation. We had previously suggested that a Cl−–H+ symporter (in its acidifying mode) is involved in cytosolic pH regulation in the synaptosomal preparation. Supporting this
suggestion, we now show that: (1) when synaptosomes are transferred from PSS to either gluconate or sulfate solutions, the
Fura-2 ratio remains stable instead of increasing as it does in 50 mM K solution. This indicates that these anions do not
promote a plasma membrane depolarization. (2) Based in the recovery rate from the cytosolic alkalinization, the anionic selectivity
of the Cl−–H+ symporter is NO3− > Br− > Cl− >> I− = isethionate = sulfate = methanesulfonate = gluconate. (3) PCMB 10 μM inhibits the gluconate-dependent alkalinization by
30 ± 6%. (4) Neither Niflumic acid, 9AC, Bumetanide nor CCCP inhibits the recovery from the cytosolic alkalinization.
Special issue article in honor of Dr. Ricardo Tapia. 相似文献
17.
A model of the HK2a subunit of the rabbit colonic H+, K+
ATPase has been generated using the crystal structure of the Ca+2 ATPase as a template. A pairwise sequence alignment of the deduced primary sequences of the two proteins demonstrated that they share 29% amino acid sequence identity and 47% similarity. Using O (version 7) the model of HK2a was constructed by interactively mutating, deleting, and inserting the amino acids that differed between the pairwise sequence alignment of the Ca+2 ATPase and HK2a. Insertions and deletions in the HK2a sequence occur in apparent extra-membraneous loop regions. The HK2a model was energy minimized and globally refined to a level comparable to that of the Ca+2 ATPase structure using CNS. The charge distribution over the surface of HK2a was evaluated in GRASP and possible secondary structure elements of HK2a were visualized in BOBSCRIPT. Conservation and placement of residues that may be involved in ouabain binding by the H+, K+
ATPase were considered and a putative location for the subunit was postulated within the structure.Figure Possible architecture of the HK2a subunit. The residue in green is the lysine (position 517, Fig. 1) that lies in the nucleotide binding pocket and the residue in red is the aspartic acid at the phosphorylation site (position 385). Based on an alignment with the Ca+2 ATPase, ten transmembrane helices were modeled into HK2a. The ten transmembrane helices are drawn as rods and shown in different colors for clarity. From left to right, the transmembrane helix designations are M10 (blue), M7 (gray), M8 (purple), M9 (orange), M5 (pink), M6 (green), M3 (brown), M4 (cyan), M2 (teal), and M1 (almond). 相似文献
18.
Rüdiger Ettrich Milan Melichercik Jan Teisinger Olga Ettrichova Rita Krumscheid Katerina Hofbauerova Peter Kvasnicka Wilhelm Schoner Evzen Amler 《Journal of molecular modeling》2001,7(6):184-192
Homology modeling of the complete structure of the large cytoplasmic loop between the fourth and fifth transmembrane segments (H4–H5 loop) of the subunit of Na+/K+-ATPase is reported. The deduced amino acid sequence shows high sequence identity and homology to the Ca2+-ATPase (32.8% identity and 53.3% similarity in our alignment), whose tertiary structure has been solved recently at 2.6-Å resolution by X-ray crystallography. This high homology allowed the construction of a model structure using the MODELLER program. Refinement was achieved through interactive visual and algorithmic analysis and minimization with the TRIPOS force field included in the SYBYL/MAXIMIN2 module. The docking of ATP as a substrate into the active site of the model was explored with the AUTODOCK program followed by molecular mechanics optimization of the most interesting complexes. Thus, the docking of ATP into the resulting model of the H4–H5 loop gave evidence for the existence of one ATP binding site only. We were able to specify Cys549, Phe548, Glu505, Lys501, Gln482, Lys480, Ser477, Phe475 and Glu446 as parts of the ATP binding site with Lys501 located in the depth of the positively charged binding pocket.Electronic Supplementary Material available. 相似文献
19.