2.Functional roles of sodium-calcium exchange in autorhythmicity and action potential of murine fetal cardiomyocytes at early developmental stage.
Hong-Yan LUO ; Xin-Wu HU ; Liang-Pin ZHANG ; Ying ZENG ; Xiu-Wen GUAN
Acta Physiologica Sinica 2020;72(6):757-764
		                        		
		                        			
		                        			The aim of the present paper was to study the role of sodium calcium exchanger (NCX) in the generation of action potentials (APs) in cardiomyocytes during early developmental stage (EDS). The precisely dated embryonic hearts of C57 mice were dissected and enzymatically dissociated to single cells. The changes of APs were recorded by whole-cell patch-clamp technique before and after administration of NCX specific blockers KB-R7943 (5 μmol/L) and SEA0400 (1 μmol/L). The results showed that, both KB-R7943 and SEA0400 had potent negative chronotropic effects on APs of pacemaker-like cells, while such effects were only observed in some ventricular-like cardiomyocytes. The negative chronotropic effect of KB-R7943 on ventricular-like cardiomyocytes was accompanied by shortening of AP duration (APD), whereas such an effect of SEA0400 was paralleled by decrease in velocity of diastolic depolarization (Vdd). From embryonic day 9.5 (E9.5) to E10.5, the negative chronotropic effects of KB-R7943 and SEA0400 on ventricular-like APs of embryonic cardiomyocytes gradually disappeared. These results suggest that, in the short-term development of early embryo, the function of NCX may experience developmental changes as evidenced by different roles of NCX in autorhythmicity and APs generation, indicating that NCX function varies with different conditions of cardiomyocytes.
		                        		
		                        		
		                        		
		                        			Action Potentials
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Calcium/metabolism*
		                        			;
		                        		
		                        			Mice
		                        			;
		                        		
		                        			Myocytes, Cardiac/metabolism*
		                        			;
		                        		
		                        			Sodium/metabolism*
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger
		                        			;
		                        		
		                        			Thiourea/pharmacology*
		                        			
		                        		
		                        	
3.Facilitation of spinal α-motoneuron excitability by histamine and the underlying ionic mechanisms.
Guan-Yi WU ; Qian-Xing ZHUANG ; Xiao-Yang ZHANG ; Hong-Zhao LI ; Jian-Jun WANG ; Jing-Ning ZHU
Acta Physiologica Sinica 2019;71(6):809-823
		                        		
		                        			
		                        			Spinal α-motoneurons directly innervate skeletal muscles and function as the final common path for movement and behavior. The processes that determine the excitability of motoneurons are critical for the execution of motor behavior. In fact, it has been noted that spinal motoneurons receive various neuromodulatory inputs, especially monoaminergic one. However, the roles of histamine and hypothalamic histaminergic innervation on spinal motoneurons and the underlying ionic mechanisms are still largely unknown. In the present study, by using the method of intracellular recording on rat spinal slices, we found that activation of either H or H receptor potentiated repetitive firing behavior and increased the excitability of spinal α-motoneurons. Both of blockage of K channels and activation of Na-Ca exchangers were involved in the H receptor-mediated excitation on spinal motoneurons, whereas the hyperpolarization-activated cyclic nucleotide-gated (HCN) channels were responsible for the H receptor-mediated excitation. The results suggest that, through switching functional status of ion channels and exchangers coupled to histamine receptors, histamine effectively biases the excitability of the spinal α-motoneurons. In this way, the hypothalamospinal histaminergic innervation may directly modulate final motor outputs and actively regulate spinal motor reflexes and motor execution.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Histamine
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Motor Neurons
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Receptors, Histamine H2
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger
		                        			;
		                        		
		                        			metabolism
		                        			
		                        		
		                        	
4.Na (+) /Ca (2+) Exchanger 3 is Downregulated in the Hippocampus and Cerebrocortex of Rats with Hyperthermia-induced Convulsion.
Dan SUN ; Jun-Hua XIAO ; Yan BAI ; Mo-Si CHEN ; Jia-Sheng HU ; Ge-Fei WU ; Bing MAO ; Shu-Hua WU ; Yan HU
Chinese Medical Journal 2015;128(22):3083-3087
BACKGROUNDNa + /Ca 2+ exchanger (NCX) plays a crucial role in pentylenetetrazol-induced convulsion. However, it is unclear whether NCX is critically involved in hyperthermia-induced convulsion. In this study, we examined the potential changes in NCX3 in the hippocampus and cerebrocortex of rats with hyperthermia-induced convulsion.
METHODSTwenty-one Sprague Dawley rats were randomly assigned to control group, convulsion-prone group and convulsion-resistant group (n = 7 in each group). Whole-cell patch-clamp method was used to record NCX currents. Both the Western blotting analysis and immunofluorescence labeling techniques were used to examine the expression of NCX3.
RESULTSNCX currents were decreased in rats after febrile convulsion. Compared to the control group, NCX3 expression was decreased by about 40% and 50% in the hippocampus and cerebrocortex of convulsion-prone rats, respectively. Furthermore, the extent of reduction in NCX3 expression seemed to correlate with the number of seizures.
CONCLUSIONSThere is a significant reduction in NCX3 expression in rats with febrile convulsions. Our findings also indicate a potential link between NCX3 expression, febrile convulsion in early childhood, and adult onset of epilepsy.
Animals ; Cerebral Cortex ; metabolism ; Down-Regulation ; Female ; Fever ; complications ; Hippocampus ; metabolism ; Pregnancy ; Rats ; Rats, Sprague-Dawley ; Seizures ; etiology ; metabolism ; Sodium-Calcium Exchanger ; metabolism
5.Alterations of the Ca²⁺ signaling pathway in pancreatic beta-cells isolated from db/db mice.
Kuo LIANG ; Wen DU ; Jingze LU ; Fei LI ; Lu YANG ; Yanhong XUE ; Bertil HILLE ; Liangyi CHEN
Protein & Cell 2014;5(10):783-794
		                        		
		                        			
		                        			Upon glucose elevation, pancreatic beta-cells secrete insulin in a Ca(2+)-dependent manner. In diabetic animal models, different aspects of the calcium signaling pathway in beta-cells are altered, but there is no consensus regarding their relative contributions to the development of beta-cell dysfunction. In this study, we compared the increase in cytosolic Ca(2+) ([Ca(2+)]i) via Ca(2+) influx, Ca(2+) mobilization from endoplasmic reticulum (ER) calcium stores, and the removal of Ca(2+) via multiple mechanisms in beta-cells from both diabetic db/db mice and non-diabetic C57BL/6J mice. We refined our previous quantitative model to describe the slow [Ca(2+)]i recovery after depolarization in beta-cells from db/db mice. According to the model, the activity levels of the two subtypes of the sarco-endoplasmic reticulum Ca(2+)-ATPase (SERCA) pump, SERCA2 and SERCA3, were severely down-regulated in diabetic cells to 65% and 0% of the levels in normal cells. This down-regulation may lead to a reduction in the Ca(2+) concentration in the ER, a compensatory up-regulation of the plasma membrane Na(+)/Ca(2+) exchanger (NCX) and a reduction in depolarization-evoked Ca(2+) influx. As a result, the patterns of glucose-stimulated calcium oscillations were significantly different in db/db diabetic beta-cells compared with normal cells. Overall, quantifying the changes in the calcium signaling pathway in db/db diabetic beta-cells will aid in the development of a disease model that could provide insight into the adaptive transformations of beta-cell function during diabetes development.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Calcium
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Calcium Signaling
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Cell Membrane Permeability
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Cells, Cultured
		                        			;
		                        		
		                        			Down-Regulation
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Endoplasmic Reticulum
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Glucose
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Insulin-Secreting Cells
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Mice
		                        			;
		                        		
		                        			Mice, Inbred C57BL
		                        			;
		                        		
		                        			Mice, Obese
		                        			;
		                        		
		                        			Potassium Chloride
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Sarcoplasmic Reticulum Calcium-Transporting ATPases
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Thapsigargin
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Up-Regulation
		                        			;
		                        		
		                        			drug effects
		                        			
		                        		
		                        	
6.An Angiotensin Receptor Blocker Prevents Arrhythmogenic Left Atrial Remodeling in a Rat Post Myocardial Infarction Induced Heart Failure Model.
Hyun Su KIM ; Chi Wan NO ; Sang Ho GOO ; Tae Joon CHA
Journal of Korean Medical Science 2013;28(5):700-708
		                        		
		                        			
		                        			This study investigated the role of angiotensin II receptor blocker in atrial remodeling in rats with atrial fibrillation (AF) induced by a myocardial infarction (MI). MIs were induced by a ligation of the left anterior descending coronary artery. Two days after, the rats in the losartan group were given losartan (10 mg/kg/day for 10 weeks). Ten weeks later, echocardiography and AF induction studies were conducted. Ejection fraction was significantly lower in the MI rats. Fibrosis analysis revealed much increased left atrial fibrosis in the MI group than sham (2.22 +/- 0.66% vs 0.25 +/- 0.08%, P = 0.001) and suppression in the losartan group (0.90 +/- 0.27%, P 0.001) compared with the MI group. AF inducibility was higher in the MI group than sham (39.4 +/- 43.0% vs 2.0 +/- 6.3%, P = 0.005) and significantly lower in losartan group (12.0 +/- 31.6%, P = 0.029) compared with the MI. The left atrial endothelial nitric oxide synthase (NOS) and sarco/endoplasmic reticulum Ca(2+)-ATPase levels were lower in the MI group and higher in the losartan group significantly. The atrial inducible NOS and sodium-calcium exchanger levels were higher in the MI and lower in the losartan group significantly. Losartan disrupts collagen fiber formation and prevents the alteration of the tissue eNOS and iNOS levels, which prevent subsequent AF induction.
		                        		
		                        		
		                        		
		                        			Angiotensin Receptor Antagonists/*therapeutic use
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Atrial Fibrillation/*prevention & control
		                        			;
		                        		
		                        			Atrial Remodeling
		                        			;
		                        		
		                        			Disease Models, Animal
		                        			;
		                        		
		                        			Fibrosis
		                        			;
		                        		
		                        			Heart Failure/*etiology/ultrasonography
		                        			;
		                        		
		                        			Immunohistochemistry
		                        			;
		                        		
		                        			Losartan/*therapeutic use
		                        			;
		                        		
		                        			Male
		                        			;
		                        		
		                        			Myocardial Infarction/*complications/ultrasonography
		                        			;
		                        		
		                        			Nitric Oxide Synthase Type II/metabolism
		                        			;
		                        		
		                        			Nitric Oxide Synthase Type III/metabolism
		                        			;
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Rats, Sprague-Dawley
		                        			;
		                        		
		                        			Receptors, Angiotensin/chemistry/metabolism
		                        			;
		                        		
		                        			Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger/metabolism
		                        			
		                        		
		                        	
7.Involvement of veratridine-induced increase of reverse Na(+)/Ca(2+) exchange current in intracellular Ca(2+) overload and extension of action potential duration in rabbit ventricular myocytes.
Ling-Hao KONG ; Ji-Hua MA ; Pei-Hua ZHANG ; An-Tao LUO ; Shuo ZHANG ; Zhi-Qiang REN ; Juan FENG ; Jiu-Ling CHEN
Acta Physiologica Sinica 2012;64(4):433-443
		                        		
		                        			
		                        			The objectives of this study were to investigate the effects of veratridine (VER) on persistent sodium current (I(Na.P)), Na(+)/Ca(2+) exchange current (I(NCX)), calcium transients and the action potential (AP) in rabbit ventricular myocytes, and to explore the mechanism in intracellular calcium overload and myocardial contraction enhancement by using whole-cell patch clamp recording technique, visual motion edge detection system, intracellular calcium measurement system and multi-channel physiological signal acquisition and processing system. The results showed that I(Na.P) and reverse I(NCX) in ventricular myocytes were obviously increased after giving 10, 20 μmol/L VER, with the current density of I(Na.P) increasing from (-0.22 ± 0.12) to (-0.61 ± 0.13) and (-2.15 ± 0.14) pA/pF (P < 0.01, n = 10) at -20 mV, and that of reverse I(NCX) increasing from (1.62 ± 0.12) to (2.19 ± 0.09) and (2.58 ± 0.11) pA/pF (P < 0.05, n = 10) at +50 mV. After adding 4 μmol/L tetrodotoxin (TTX), current density of I(Na.P) and reverse I(NCX) returned to (-0.07 ± 0.14) and (1.69 ± 0.15) pA/pF (P < 0.05, n = 10). Another specific blocker of I(Na.P), ranolazine (RAN), could obviously inhibit VER-increased I(Na.P) and reverse I(NCX). After giving 2.5 μmol/L VER, the maximal contraction rate of ventricular myocytes increased from (-0.91 ± 0.29) to (-1.53 ± 0.29) μm/s (P < 0.01, n = 7), the amplitude of contraction increased from (0.10 ± 0.04) to (0.16 ± 0.04) μm (P < 0.05, n = 7), and the baseline of calcium transients (diastolic calcium concentration) increased from (1.21 ± 0.08) to (1.37 ± 0.12) (P < 0.05, n = 7). After adding 2 μmol/L TTX, the maximal contraction rate and amplitude of ventricular myocytes decreased to (-0.86 ± 0.24) μm/s and (0.09 ± 0.03) μm (P < 0.01, n = 7) respectively. And the baseline of calcium transients reduced to (1.17 ± 0.09) (P < 0.05, n = 7). VER (20 μmol/L) could extend action potential duration at 50% repolarization (APD(50)) and at 90% repolarization (APD(90)) in ventricular myocytes from (123.18 ± 23.70) to (271.90 ± 32.81) and from (146.94 ± 24.15) to (429.79 ± 32.04) ms (P < 0.01, n = 6) respectively. Early afterdepolarizations (EADs) appeared in 3 out of the 6 cases. After adding 4 μmol/L TTX, APD(50) and APD(90) were reduced to (99.07 ± 22.81) and (163.84 ± 26.06) ms (P < 0.01, n = 6) respectively, and EADs disappeared accordingly in 3 cases. It could be suggested that: (1) As a specific agonist of the I(Na.P), VER could result in I(Na.P) increase and intracellular Na(+) overload, and subsequently intracellular Ca(2+) overload with the increase of reverse I(NCX). (2) The VER-increased I(Na.P) could further extend the action potential duration (APD) and induce EADs. (3) TTX could restrain the abnormal VER-induced changes of the above-mentioned indexes, indicating that these abnormal changes were caused by the increase of I(Na.P). Based on this study, it is concluded that as the I(Na.P) agonist, VER can enhance reverse I(NCX) by increasing I(Na.P), leading to intracellular Ca(2+) overload and APD abnormal extension.
		                        		
		                        		
		                        		
		                        			Acetanilides
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Action Potentials
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Calcium
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Myocardial Contraction
		                        			;
		                        		
		                        			Myocytes, Cardiac
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Patch-Clamp Techniques
		                        			;
		                        		
		                        			Piperazines
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Rabbits
		                        			;
		                        		
		                        			Ranolazine
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Tetrodotoxin
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Veratridine
		                        			;
		                        		
		                        			pharmacology
		                        			
		                        		
		                        	
8.Progress in calcium regulation in myocardial and vascular ischemia-reperfusion injury.
Xi HE ; Xue-Yuan BI ; Hao WANG ; Xiao-Jiang YU ; Wei-Jin ZANG
Acta Physiologica Sinica 2012;64(3):321-326
		                        		
		                        			
		                        			Ischemia-reperfusion injury (IRI) has been recognized as a serious problem for therapy of cardiovascular diseases. Calcium regulation appears to be an important issue in the study of IRI. This article reviews calcium regulation in myocardial and vascular IRI, including the calcium overload and calcium sensitivity in IRI. This review is focused on the key players in Ca(2+) handling in IRI, including membrane damage resulting in increase in Ca(2+) influx, reverse-mode of Na(+)-Ca(2+) exchangers leading to increased Ca(2+) entry, the decreased activity of sarcoplasmic reticulum (SR) Ca(2+)-ATPase causing SR Ca(2+) uptake dysfunction, and increased activity of Rho kinase. These key players in Ca(2+) homeostasis will provide promising strategies and potential targets for therapy of cardiovascular IRI.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Calcium
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Heart
		                        			;
		                        		
		                        			physiopathology
		                        			;
		                        		
		                        			Homeostasis
		                        			;
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Myocardial Reperfusion Injury
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Myocardium
		                        			;
		                        		
		                        			Sarcoplasmic Reticulum
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Sarcoplasmic Reticulum Calcium-Transporting ATPases
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger
		                        			;
		                        		
		                        			metabolism
		                        			
		                        		
		                        	
9.Inhibitory effects of purified antibody against α-1 repeat (117-137) on Na(+)-Ca(2+) exchange and L-type Ca(2+) currents in rat cardiomyocytes.
Qi-Long FENG ; Dong-Mei WU ; Xiang-Li CUI ; Hua-Chen ZHAO ; Yuan-Yuan LIN ; Lu-Ying ZHAO ; Bo-Wei WU
Acta Physiologica Sinica 2010;62(5):407-414
		                        		
		                        			
		                        			Considering that α-1 repeat region may be involved in the ion binding and translocation of Na(+)-Ca(2+) exchanger (NCX), it is possible that the antibodies against NCX α-1 repeat may have a crucial action on NCX activity. The aim of the present study is to investigate the effect of antibody against α-1 repeat (117-137), designated as α-1(117-137), on NCX activity. The antibody against the synthesized α-1(117-137) was prepared and affinity-purified. Whole-cell patch clamp technique was used to study the change of Na(+)-Ca(2+) exchange current (I(Na/Ca)) in adult rat cardiomyocytes. To evaluate the functional specificity of this antibody, its effects on L-type Ca(2+) current (I(Ca,L)), voltage-gated Na(+) current (I(Na)) and delayed rectifier K(+) current (I(K)) were also observed. The amino acid sequences of α-1(117-137) in NCX and residues 1 076-1 096 within L-type Ca(2+) channel were compared using EMBOSS Pairwise Alignment Algorithms. The results showed that outward and inward I(Na/Ca) were decreased by the antibody against α-1(117-137) dose-dependently in the concentration range from 10 to 160 nmol/L, with IC(50) values of 18.9 nmol/L and 22.4 nmol/L, respectively. Meanwhile, the antibody also decreased I(Ca,L) in a concentration-dependent manner with IC(50) of 22.7 nmol/L. No obvious effects of the antibody on I(Na) and I(K) were observed. Moreover, comparison of the amino acid sequences showed there was 23.8% sequence similarity between NCX α-1(117-137) and residues 1 076-1 096 within L-type Ca(2+) channel. These results suggest that antibody against α-1(117-137) is a blocking antibody to NCX and can also decrease I(Ca,L) in a concentration-dependent manner, while it does not have obvious effects on I(Na) and I(K).
		                        		
		                        		
		                        		
		                        			Amino Acid Sequence
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Antibodies, Blocking
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Calcium Channel Blockers
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Calcium Channels, L-Type
		                        			;
		                        		
		                        			genetics
		                        			;
		                        		
		                        			immunology
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Guinea Pigs
		                        			;
		                        		
		                        			Membrane Potentials
		                        			;
		                        		
		                        			Molecular Sequence Data
		                        			;
		                        		
		                        			Myocytes, Cardiac
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Patch-Clamp Techniques
		                        			;
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Rats, Wistar
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger
		                        			;
		                        		
		                        			antagonists & inhibitors
		                        			;
		                        		
		                        			genetics
		                        			;
		                        		
		                        			immunology
		                        			
		                        		
		                        	
10.Effects of strophanthidin on intracellular calcium concentration in ventricular myocytes of guinea pig.
Su-Wen SU ; Yan-Fang XU ; He-Shan MEI ; Ya-Juan QI ; Jing-Xiang YIN ; Chuan WANG ; Yong-Jian ZHANG ; Yong-Li WANG
Acta Pharmaceutica Sinica 2008;43(3):259-266
		                        		
		                        			
		                        			Effect of strophanthidin (Str) on intracellular calcium concentration ([Ca2+]i) was investigated on isolated ventricular myocytes of guinea pig. Single ventricular myocytes were obtained by enzymatic dissociation technique. Fluorescent signal of [Ca2+]i was detected with confocal microscopy after incubation of cardiomycytes in Tyrode' s solution with Fluo3-AM. The result showed that Str increased [Ca2+]i in a concentration-dependent manner. The ventricular myocytes began to round-up into a contracture state once the peak level of [Ca2+]i was achieved in the presence of Str (10 micromol L(- 1)), but remained no change in the presence of Str (1 and 100 nmol L(-1)). Tetrodotoxin (TTX), nisodipine, and high concentration of extracellular Ca2+ changed the response of cardiomycytes to Str (1 and 100 nmol L(-1)) , but had no obvious effects on the action of Str (10 micromol L(-1)). The elevation of [Ca2+]i caused by Str at all of the detected concentrations was partially antagonized by rynodine (10 micromol L(-1)) or the removal of Ca2+ from Tyrode's solution. In Na+, K+ -free Tyrode' s solution, the response of cardiomycytes in [Ca2+]i elevation to Str (10 micromol L(-1)) was attenuated, while remained no change to Str (1 and 100 nmol L(-1)). TTX, nisodipine, and high concentration of extracellular Ca2+ changed the response of cardiomycytes to Str at all of the detected concentrations in Na+, K+ -free Tyrode's solution. The study suggests that the elevation of [Ca2+]i by Str at the low (nomomolar) concentrations is partially mediated by the extracellular calcium influx through Ca2+ channel or a "slip mode conductance" of TTX sensitive Na+ channel. While the effect of Str at high (micromolar) concentrations was mainly due to the inhibition of Na+, K+ -ATPase. Directly triggering the release of intracellular Ca2+ from sarcoplasmic reticulum (SR) by Str may be also involved in the mechanism of [Ca2+]i elevation.
		                        		
		                        		
		                        		
		                        			3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethyl-5-nitro-4-(2-(trifluoromethyl)phenyl)-, Methyl ester
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Aequorin
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Calcium
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Calcium Channel Blockers
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Calcium Channels
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Fura-2
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			supply & distribution
		                        			;
		                        		
		                        			Guinea Pigs
		                        			;
		                        		
		                        			Myocardium
		                        			;
		                        		
		                        			pathology
		                        			;
		                        		
		                        			Nifedipine
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Ryanodine
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Sarcolemma
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			pathology
		                        			;
		                        		
		                        			Sarcoplasmic Reticulum
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Sodium-Calcium Exchanger
		                        			;
		                        		
		                        			Sodium-Potassium-Exchanging ATPase
		                        			;
		                        		
		                        			antagonists & inhibitors
		                        			;
		                        		
		                        			Strophanthidin
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Tetrodotoxin
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Thapsigargin
		                        			;
		                        		
		                        			pharmacology
		                        			
		                        		
		                        	
            
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