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标题: Ouabain modulation of endothelial calcium signaling in descending vasa recta [打印本页]

作者: 轻羽    时间: 2009-4-22 08:35     标题: Ouabain modulation of endothelial calcium signaling in descending vasa recta

作者:János Pittner, Kristie Rhinehart, and Thomas L. Pallone,作者单位:1 Division of Nephrology, Department of Medicine, and 2 Department of Physiology, University of Maryland School of Medicine, Baltimore, Maryland % B2 u  F0 Z( _# Z# U
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8 n% e- x# ]0 x2 ], X9 c) p          【摘要】- |- G$ o  }" g$ t- K* U
      Using fura 2-loaded vessels, we tested whether ouabain modulates endothelial cytoplasmic calcium concentration ([Ca 2  ] CYT ) in rat descending vasa recta (DVR). Over a broad range between 10 -10 and 10 -4 M, ouabain elicited biphasic peak and plateau [Ca 2  ] CYT elevations. Blockade of voltage-gated Ca 2  entry with nifedipine did not affect the response to ouabain mitigating against a role for myo-endothelial gap junctions. Reduction of extracellular Na   concentration ([Na   ] o ) or Na   /Ca 2  exchanger (NCX) inhibition with SEA-0400 (10 -6 M) elevated [Ca 2  ] CYT, supporting a role for NCX in the setting of basal [Ca 2  ] CYT. SEA-0400 abolished the [Ca 2  ] CYT response to ouabain implicating NCX as a mediator. The transient peak phase of [Ca 2  ] CYT elevation that followed either ouabain or reduction of [Na   ] o was abolished by 2-aminoethoxydiphenyl borate (5 x 10 -5 M). Cation channel blockade with La 3  (10 µM) or SKF-96365 (10 µM) also attenuated the ouabain-induced [Ca 2  ] CYT response. Ouabain pretreatment increased the [Ca 2  ] CYT elevation elicited by bradykinin (10 -7 M). We conclude that inhibition of ouabain-sensitive Na   -K   -ATPase enhances DVR endothelial Ca 2  store loading and modulates [Ca 2  ] CYT signaling through mechanisms that involve NCX, Ca 2  release, and cation channel activation. 2 S" K2 F8 `' T5 k0 m9 g
          【关键词】 kidney medulla fura SEA bradykinin aminoethoxydiphenyl borate
9 F( x, K" D- v- P: W6 Y                  OUABAIN IS A CARDIOTONIC STEROID that inhibits plasmalemmal Na   -K   -ATPase by binding to its -subunit. Ouabain, or a closely related analog [ouabain-like factor (OLF)], is endogenously produced by the adrenal glands and circulates systemically in low concentrations ( 8, 19, 21 ). The binding site for ouabain, the "ouabain receptor," is highly conserved in evolution implying an important functional role for OLF. The role of ouabain has been debated for decades. A hypothesis is that inhibition of Na   export from the cell by ouabain raises subplasmalemmal Na   concentration, secondarily inhibiting Ca 2  export by Na   /Ca 2  exchange (NCX). One important effect of the decrease in Ca 2  export may be to augment loading of Ca 2  into endoplasmic/sarcoplasmic reticulum (ER/SR) stores. Through that putative mechanism, ouabain has been shown to augment agonist-induced cytoplasmic Ca 2  concentration ([Ca 2  ] CYT ) transients and intensify vasoconstriction ( 2 ). In addition to such effects, mediated through NCX inhibition, elegant experiments by Xie and colleagues ( 50, 51 ) have shown that ouabain binding to Na   pumps leads to downstream signaling events that may include activation of phospholipase C (PLC) and inositol tris-phosphate (InsP 3 ) generation. In contrast to effects on smooth muscle and cardiac myocytes, the role of ouabain to modulate microvascular endothelial [Ca 2  ] CYT has not been as thoroughly explored.
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Descending vasa recta (DVR) are 15-µm-diameter branches of juxtamedullary efferent arterioles that carry blood flow to the renal medulla. They are lined by a continuous endothelium and surrounded by smooth muscle pericytes that impart contractile function ( 36, 38 ). Agonists such as acetylcholine and bradykinin (BK) elevate endothelial [Ca 2  ] CYT to release vasodilators and limit DVR vasoconstriction ( 12, 37, 38, 43 ). Freshly isolated DVR are an attractive model to study endothelial [Ca 2  ] CYT responses in an intact microvessel preparation because the Ca 2  -sensitive fluorophore fura-2 loads preferentially into the endothelium, sparing the pericytes ( 37 ). In this study, we exploited that feature to test the hypothesis that, as in smooth muscle and neurons, ouabain modulates DVR endothelial [Ca 2  ] CYT. Our results verify that ouabain, over a broad range of concentrations, increases basal [Ca 2  ] CYT in a biphasic manner. Na   /Ca 2  exchanger (NCX) and other pathways participate in the response. NCX blockade with SEA-0400, inositol trisphosphate receptor (InsP 3 R) blockade with 2-aminoethoxydiphenyl borate (2-APB), and nonselective cation channel blockade with La 3  or SKF-96365 interfere with the actions of ouabain. Finally, prolonged ouabain pretreatment increased the magnitude of [Ca 2  ] CYT elevation induced by BK suggesting enhancement of store loading of Ca 2  in DVR endothelium. These results imply that OLF may operate through complex signaling pathways to modulate vasoactivity in the renal medulla.6 g4 r+ R  h+ s& Y9 N% w
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METHODS
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! R' b. T: U( d" pIsolation of DVR. Investigations involving animal use described herein were performed according to protocols approved by the Institutional Animal Care and Use Committee of the University of Maryland. Kidneys were harvested from Sprague-Dawley rats (70-150 g; Harlan Sprague Dawley, Indianapolis, IN). Before nephrectomy, the rats were deeply anesthetized with ketamine (80 mg/kg) and xylazine (10 mg/kg) by intraperitoneal injection. Kidney slices were placed in dissection buffer and maintained at 4°C. The buffer used for dissection and superfusion of DVR contained (in mM) 140 NaCl, 10 Na-acetate, 5 KCl, 1.2 MgSO 4, 1.2 Na 2 HPO 4, 5 HEPES, 5 D -glucose, 5 L -alanine, 0.1 L -arginine, and 1 CaCl 2. The pH was adjusted to 7.55 at room temperature to yield a pH of 7.4 at 37°C. Horizontal kidney slices were digested for 15-18 min in DMEM media containing Liberase Blendzyme 1 (Roche Boehringer Mannheim, 0.56 U Collagenase   Dispase in 0.7 ml DMEM) at 37°C. Individual DVR were dissected from the outer medulla and transferred to a heated chamber fitted to the stage of a Nikon Diaphot inverted microscope. The vessels were immobilized on glass pipettes.
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Measurement of endothelial [Ca 2  ] CYT. DVR were loaded with fura 2-AM (5 µM) added to the bath at 37°C for 15 min. We previously showed that fura 2 preferentially loads into the endothelial cells, yielding little fluorescent signal from pericytes ( 37 ). The vessels were visualized with a Nikon Fluor x 40 (numerical aperture 1.3) oil immersion objective. For measurement of [Ca 2  ] CYT with fura 2, vessels were excited at 350 and 380 nm. Excitation frequencies were selected with a computer-controlled monochromator (PTI). A photon-counting photomultiplier assembly was fitted to the microscope and used to detect fluorescent emission from the probe. Fluorescent emissions were isolated using a 510WB40 (Omega optical) filter. Background-subtracted fluorescence emission ratios (R 350/380 ) were converted to [Ca 2  ] CYT assuming a dissociation constant for fura 2 of 224 nM. R min and R max were measured in vessels exposed to 10 -5 M ionomycin with 0 CaCl 2 and 5 x 10 -4 M EGTA, or 5 x 10 -3 M CaCl 2, respectively ( 37 ).
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Membrane potential measurement. To obtain electrical access for membrane potential recording, we used perforated patches formed on endothelia. The abluminal surface of DVR endothelia was exposed by collagenase treatment and removal of pericytes. The electrode solution was (in mmol/l): 120 kaspartate, 20 KCl, 10 NaCl, 10 HEPES, pH 7.2 and nystatin (100 µg/ml, 0.1% DMSO). The extracellular solution was physiological saline (PSS; in mmol/l): 155 NaCl, 5 KCl, 1 MgCl 2, 1 CaCl 2, 10 HEPES, and 10 glucose, pH 7.4. Membrane potential recordings were performed in current clamp mode ( I = 0) at a sampling rate of 10 Hz. The methods for endothelial exposure, patch-clamp recording, and junction potential correction have been extensively described ( 42 ).- U( J5 j6 J* u+ m8 C- \
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Reagents. Stock solutions of SEA-0400 (2-{4-[(2,5-difluorophenyl) methoxy]phenoxy}-5-ethoxyaniline; Calbiochem, 10 -4 M), nifedipine (Sigma, 10 -2 M), and 2-APB (Calbiochem, 10 -2 M) were prepared in DMSO. SKF-96365 (1-{ -[3-(4-methoxyphenyl)propoxy]-4-methoxyphenethyl}-1H-imidazole hydrochloride, 10 -2 M) and BK (Sigma, 10 -4 M) were dissolved in water and stored at -20°C. Ouabain (Sigma) was dissolved in dissection buffer at 10 -4 M and stored at -20°C. Fura 2-AM (Molecular Probes, Eugene, OR) was stored frozen in anhydrous DMSO. Aliquots of reagents were thawed for dilution daily, and excess reagents were discarded at the end of each day.0 c+ M# C( d8 f! f

+ m5 T4 R9 v$ u5 rStatistical analysis. Data in the text and figures are reported as means ± SE. The significance of differences was evaluated with SigmaStat 3.11 (Systat Software, Point Richmond, CA) using parametric or nonparametric tests as appropriate for the data. Comparisons between two groups were performed with Student's t -test (paired or unpaired, as appropriate). Comparisons between multiple groups employed ANOVA or repeated-measures ANOVA. Post hoc comparisons were performed using Tukey's or Holm-Sidak tests. P
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RESULTS5 _  K! V9 k$ h3 S) u1 R

/ c& t; R2 K1 ]0 e. l! {Modulation of DVR endothelial [Ca 2  ] CYT by ouabain. We first tested whether inhibition of ouabain-sensitive Na   -K   -ATPase affects basal endothelial [Ca 2  ] CYT. Baseline DVR endothelial [Ca 2  ] CYT was typically 50-100 nM ( Fig. 1 ) as previously reported ( 37, 41, 46 ). Exposure to incremental concentrations of ouabain between 0.1 nM and 1 µM led to increases in [Ca 2  ] CYT characterized by a transient peak and sustained plateau. [Ca 2  ] CYT changes were reversible when ouabain was removed from the bath. The magnitudes of the increases in peak and plateau phases of the response were similar from 10 -10 to 10 -6 M ouabain ( Fig. 1, A and B ). Sham exchange of the bath with vehicle did not elicit such responses.. l" `7 b3 H$ g( d! B
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Fig. 1. Descending vasa recta (DVR) endothelial cytosolic Ca 2  concentration ([Ca 2  ] CYT ) changes evoked by ouabain. Vessels were exposed to log molar increasing concentrations of ouabain from 10 -10 to 10 -6 M ( n = 9). At each concentration, ouabain was introduced for 5 min and then removed for 5 min before introduction of the next ouabain concentration. A : representative recording of a single experiment shows background-subtracted fluorescent ratios. B : peak (filled bars) and plateau (open bars, at 5 min) [Ca 2  ] CYT expressed as % elevations from baseline. C : representative recording from a separate series during exposure to ouabain at 10 -6, 10 -5, and 10 -4 M ( n = 7). D : peak (filled bars) and plateau (open bars, at 5 min) [Ca 2  ] CYT expressed as % elevations from baseline, means ± SE (* P . I$ ]7 Z' S, G, K  m

' J- S3 U4 J+ ~: G2 S' {" ]7 LThe ouabain affinity of 2 / 3 isoforms of Na   -K   -ATPase in the rat has been reported to lie near or below 1 nM. In contrast, the more predominant 1 isoform has a lower affinity, near 100 µM ( 6, 16, 33 ). To test whether higher ouabain concentrations that inhibit all Na   -K   -ATPase isoforms have a more pronounced effect on [Ca 2  ] CYT, a separate series of experiments was performed comparing ouabain at 10 -6 -10 -4 M. As shown in Fig. 1, C - E, a larger [Ca 2  ] CYT elevation occurred at 10 -4 and 10 -5 than at 10 -6 M (plateau phase; 75.3 ± 8.2 vs. 155.9 ± 24.3 and 149.3 ± 32.9 nM, area under curve; 6,447 ± 1,021 vs. 12,864 ± 1,801 and 12,664 ± 2,603 nM x s, n = 7, P
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" \) x6 A+ f  S% N, p: L! POuabain can depolarize cells by inhibiting the electrogenic exchange of 2K   for 3Na   by Na   -K   -ATPase. Thus secondary stimulation of Ca 2  influx via voltage-operated Ca 2  channels (VOCa) might occur into adjacent DVR pericytes upon ouabain application. Myo-endothelial gap junctions are preserved in this preparation and we have shown that DVR pericytes express nifedipine-sensitive VOCa ( 52 ). In view of that, we considered that ouabain might elevate endothelial [Ca 2  ] CYT by increasing the influx of Ca 2  into pericytes followed by secondary transport of Ca 2  to the endothelium via gap junctions. To test that possibility, DVR were pretreated with nifedipine (10 -5 M) and then exposed to ouabain (10 nM). Nifedipine did not inhibit ouabain-evoked [Ca 2  ] CYT transients ( Fig. 2 A ).1 f8 N" \+ F9 w+ P9 l6 _$ c2 h

5 V" P) V# ^, s- q+ v& yFig. 2. Effect of inhibition of voltage-operated Ca 2  channels (VOCa) on ouabain-evoked DVR endothelial [Ca 2  ] CYT transients. Ouabain was added 5 min after the introduction of nifedipine (10 -5 M) or sham exchange of the bath. A : mean background-subtracted fluorescent ratios are shown as a function of time during ouabain (10 nM) exposure in the presence or absence of nifedipine (10 µM). B : membrane potential of DVR endothelial cells before, during, and after exposure to ouabain (10 nM).3 |; s& n  P. b! ?# Y, R, D, c

( O' J0 U1 q, e9 A1 O) C7 [  xIt is generally accepted that endothelial cells do not express VOCa ( 32 ); however, for completeness, we tested whether nanomolar ouabain depolarizes DVR endothelia. Endothelial membrane potential averaged -53 ± 5 mV at baseline and was not affected by exposure to 10 nM ouabain ( Fig. 2 B ). Thus the depolarization that would be required for putative VOCa activation in endothelium did not occur. From these data, we infer that neither flux of Ca 2  across myoendothelial gap junctions nor voltage-gated Ca 2  entry into endothelial cells could account for ouabain-induced endothelial [Ca 2  ] CYT transients.( ?# s4 X  K. a0 n; |6 h

5 f6 D6 p; @7 A' M2 A8 j' F! [Role of NCX in the ouabain-induced endotheliol calcium transients. We hypothesized that, as in other cell types, ouabain inhibition of the 2 -, 3 -subunit sodium pumps might elevate [Na   ] in the vicinity of the NCX thereby reducing clearance of Ca 2  from the endothelium. We first tested whether NCX activity can modulate [Ca 2  ] CYT of DVR endothelia by lowering extracellular sodium ([Na   ] o ) or calcium concentration ([Ca 2  ] o ). As shown in Fig. 3, removal of Ca 2  from the bath rapidly reduced [Ca 2  ] CYT and eliminated ouabain (10 -8 M)-induced [Ca 2  ] CYT transients. Given that other effects such as ER/SR store depletion and alteration of Ca 2  export via Ca 2  -ATPase might accompany incubation of cells in 0 Ca 2  bath, we also tested the effect of lowering [Na   ] o. Stepwise reduction of [Na   ] o elicited incremental elevations of [Ca 2  ] CYT ( Fig. 4 ), the magnitude of which was similar to that previously observed in aortic myocytes ( 3 ). Interestingly, similar to the effects of ouabain, reduction of [Na   ] o yielded biphasic [Ca 2  ] CYT transients with peaks followed by persistent plateau elevations. These data favor a role for participation of NCX in the setting of basal [Ca 2  ] CYT., F( L/ g4 i" c; v
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Fig. 3. Effect of removal of Ca 2  from the bath on ouabain-evoked DVR endothelial [Ca 2  ] CYT transients. Ouabain was introduced or sham exchange was performed 1 min after elimination of Ca 2  from the bath. A : representative recording of a single experiment shows background-subtracted fluorescent ratios. Arrows indicate time points corresponding to comparisons in B. B : bars show [Ca 2  ] CYT measurements immediately before removal of Ca 2  (0 min in 1 mM Ca 2 , arrow 1 ), 1 min after removal of Ca 2  (1 min in 0 mM Ca 2 , arrow 2 ), and 1 min after ouabain or vehicle exposure (2 min in 0 mM Ca 2 , arrow 3 ). Control, filled bars; ouabain, open bars; n = 4 each. Data are means ± SE.7 `7 i- _; V/ d' E
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Fig. 4. Effect of lowering of [Na   ] o on DVR endothelial [Ca 2  ] CYT. [Na   ] o was sequentially lowered, at 5-min intervals, from 150 to 138, 125, 100, 50, and 0 mM by isosmolar substitution with NMDG  , and finally restored to 150 mM ( n = 6), [Na   ] o reductions yielded initial "peaks," followed by higher steady-state "plateau" levels of [Ca 2  ] CYT. 350/380 nm fura-2 fluorescent ratios were obtained at 0.2 Hz by averaging for 2.5 s at each wavelength. Data are means ± SE. Most error bars have been suppressed for clarity.
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To further establish a role for NCX, we examined baseline [Ca 2  ] CYT and ouabain-induced [Ca 2  ] CYT responses during NCX blockade with SEA-0400 (10 -6 M), an inhibitor that is respected for its specificity to block NCX1 isoforms ( 24, 29, 47 ). Like reduction of [Na   ] o, pharmacological inhibition of NCX increased baseline [Ca 2  ] CYT (control, 71.7 ± 5.1 nM, vs. SEA-0400, 179 ± 40.9 nM, n = 6 each, after 5 min at arrow 1, Fig. 5 A ). Furthermore, 5-min pretreatment with SEA-0400 almost completely abolished ouabain-induced [Ca 2  ] CYT elevations (control; from 72 ± 5.1 to 424 ± 69.8 nM, vs. SEA-0400; from 179 ± 40.9 to 215 ± 28.2 nM, P
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Fig. 5. Effect of SEA-0400 pretreatment on ouabain-induced [Ca 2  ] CYT transients in DVR endothelium. A : SEA-0400 or vehicle was added to the bath 5 min before introduction of ouabain. Na   /Ca 2  exchanger (NCX) inhibition with SEA-0400 elevated baseline [Ca 2  ] CYT. Ouabain exposure was continued for 5 min. [Ca 2  ] CYT responses to ouabain following SEA-0400 pretreatment were suppressed. B : peak [Ca 2  ] CYT changes induced by ouabain are compared. Data are means ± SE, * P 1 M. p$ v# w, d, o+ m/ r

9 R  {0 b/ y9 x3 b. ~2 T% a: ~2-APB and cation channel blockade inhibits ouabain-evoked calcium transients. Hypothetically, inhibition of NCX could explain the ability of ouabain to elevate [Ca 2  ] CYT without invoking a need for participation of other Ca 2  transport pathways. The biphasic "peak and plateau" [Ca 2  ] CYT responses shown in Figs. 1 - 5, however, raise the question of release of Ca 2  from internal stores and influx of Ca 2  from the extracellular space via store-operated nonselective cation channels. Given that ouabain enhances storage of Ca 2  in some cells ( 18 ) and has recently been shown to signal through PLC and InsP 3 in renal epithelial (LLC-PK 1 ) cells ( 50, 51 ), we tested other pathways. A selective blocker of InsP 3 R-mediated Ca 2  release from stores does not exist; however, 2-APB (5 x 10 -5 M) blocks InsP 3 R along with store-operated Ca 2  channels ( 10, 11 ). As shown in Fig. 6, 2 -APB decreased baseline endothelial [Ca 2  ] CYT (control; 106 ± 13.9, n = 7 vs. 2-APB; 62.4 ± 7.5 nM, n = 8). Exposure to ouabain in the presence of 2-APB led to a subdued [Ca 2  ] CYT response with a minimal, transient elevation (compare Figs. 1 and 6; control; from 106 ± 13.9 to 285 ± 28.3, vs. 2-APB; from 62.4 ± 7.5 to 86.7 ± 9.3 nM).
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, ]7 u6 q' y0 N$ wFig. 6. Effect of 2-aminoethoxydiphenyl borate (2-APB) on ouabain-induced [Ca 2  ] CYT transients. Fura-2-loaded DVR were pretreated with 2-APB (5 x 10 -5 M) or vehicle before ouabain exposure. Baseline [Ca 2  ] CYT was lower in 2-APB and ouabain-evoked peak [Ca 2  ] CYT elevations were suppressed. Data are means ± SE.8 g5 F' I( z; e

+ p" E, I# {- p5 W4 B1 V+ y% `If InsP 3 generation occurs in DVR endothelia exposed to ouabain, secondary activation of Ca 2  influx via nonselective cation channels might also result from cellular store depletion. We tested for participation of such pathways by examining ouabain responses in the presence of SKF-96365 (10 µM) and La 3  (10 µM), agents that are known to block mechanosensitive [Ca 2  ] CYT transients in these cells ( 53 ). La 3  ion, at a concentration of 10 µM, spares inhibition of NCX and Ca 2  extrusion pumps ( 9, 44 ). As shown in Fig. 7, both agents attenuated the [Ca 2  ] CYT response to ouabain.
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Fig. 7. Effect of cation channel blockade on ouabain-induced [Ca 2  ] CYT transients. Fura-2-loaded DVR endothelia were exposed to ouabain (10 nM) in the presence of nonselective cation channel blockade with SKF-96365 (10 µM; A ) or La 3  (10 µM; B ). Both agents attenuated the [Ca 2  ] CYT response to ouabain (compare with Figs. 1, 5, 6 ).
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As with the response to ouabain ( Fig. 1 ), transient peak [Ca 2  ] CYT elevation accompanies inhibition of NCX through [Na   ] o reduction ( Fig. 4 ). It has been hypothesized that localized [Ca 2  ] CYT elevations near NCX might stimulate store Ca 2  release through stimulation of PLC generation of InsP 3 or by direct actions on InsP 3 R (Ca 2  -induced Ca 2  release). In view of this, we tested the ability of 2-APB to block the [Ca 2  ] CYT response to [Na   ] o reduction. The protocol used in Fig. 4 was repeated, but with 2-APB present in the bath ( Fig. 8 ). As in Fig. 6, 2 -APB lowered baseline [Ca 2  ] CYT. The transients (arrows, Fig. 8 ) associated with putative store release were suppressed (control, n = 6 vs. 2-APB, n = 8; 150 mM [Na   ] o : 61.7 ± 9.5 vs. 41.5 ± 4.2, 138 mM: 118 ± 15.3 vs. 85.2 ± 13.3, 125 mM: 160 ± 22.6 vs. 124 ± 19.2, 100 mM: 250 ± 36.7 vs. 208 ± 36.0, 50 mM: 342 ± 41.5 vs. 331 ± 47, 0 mM: 380 ± 37.0 vs. 381 ± 83.8 nM). Attenuation of the [Ca 2  ] CYT response by 2-APB implies participation of Ca 2  release or entry pathways but the persistence of the stepwise increase in plateau [Ca 2  ] CYT in 2-APB suggests that it does not inhibit NCX.' a5 B, h2 o; O0 @0 ^% j2 ~# f
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Fig. 8. Effect of 2-APB and La 3  on DVR endothelial [Ca 2  ] CYT response to [Na   ] o reduction. A : protocol illustrated in Fig. 4 was repeated in the presence of 2-APB (5 x 10 -5 M). [Na   ] o reduction induced a progressive elevation of [Ca 2  ] CYT in the presence or absence of 2-APB. Baseline [Ca 2  ] CYT was lower in 2-APB than vehicle and [Ca 2  ] CYT peaks, indicated by arrows, were diminished. B : example of an experiment in which the ability of nonselective cation channel blockade with La 3  (10 µM) to prevent [Ca 2  ] CYT responses to [Na   ] o reduction was tested. C : summary of n = 7 experiments similar to B., Individual experiments., Means ± SE.
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Nonselective cation channels conduct both Na   and Ca 2  into the cytoplasm. Reduction of extracellular Na   might affect Ca 2  entry, independent of NCX, by reducing competition between those cations for ion channel selectivity filter(s) ( 35, 39 ). Alternately, cation channels might be activated during [Na   ] o reduction through NCX inhibition that leads to Ca 2  -induced Ca 2  release (CICR) and store depletion. To test those possibilities, we performed experiments in which [Na   ] o was reduced from 150 to 125 mM in the presence of La 3  (10 µM). DVR endothelial [Ca 2  ] CYT increased from 45 ± 9 to 221 ± 34 nM ( Fig. 8, B and C ) showing that block of La 3  -sensitive cation channels does not have significant effect on the response (compare with Fig. 8 A ).
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3 e$ N0 |8 Y5 g, [" S" X; R! HOuabain enhancement of BK-evoked endothelial calcium transients. It has been proposed that ouabain-induced inhibition of Ca 2  export leads to ER/SR store loading that favors enhancement of [Ca 2  ] CYT release by agonists ( 1, 2, 7 ). BK induces large peak-phase DVR endothelial [Ca 2  ] CYT transients attributable to ER/SR store release ( 37, 46 ). We therefore tested whether [Ca 2  ] CYT responses to BK are enhanced by ouabain. BK (10 -7 M)-evoked [Ca 2  ] CYT elevation was augmented by prolonged (10 min) pretreatment with ouabain at a concentration (5 x 10 -5 M) that should affect all Na   -K   -ATPase isoforms ( Fig. 9, A and B, area under the curve, 40,001 ± 8,765, n = 7 vs. 100,159 ± 21,263 nM x s, n = 7, P / ~0 f: v* ^3 _+ P. S" e
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Fig. 9. Effect of ouabain on DVR endothelial [Ca 2  ] CYT elevation evoked by bradykinin (BK). A : DVR were exposed to BK for 5 min to elicit a baseline response. Subsquently, vehicle ( n = 6) or ouabain (500 nM, n = 9) was introduced into the bath for 5 min and vessels were exposed to BK a second time. Vessels exposed to ouabain had significant elevation of [Ca 2  ] CYT (* P
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DISCUSSION
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Four isoforms of the Na   -K   -ATPase catalytic subunit ( 1 - 4 ) are expressed in mammalian cells. The 1 catalytic subunit with low ouabain affinity is the dominant isoform that maintains transcellular Na   and K   concentration gradients and mediates salt reabsorption in the kidney. Circulating OLF is present in concentrations that are too low to affect the 1 -isoform in rodents. One hypothesis proposes that the effect of ouabain to modulate [Ca 2  ] CYT signaling results from its inhibition of high-affinity 2 -, 3 -, or 4 -isoforms ( 22, 30 ). Reduction of Na   export then leads to an increase in localized [Na   ] CYT (in the vicinity of NCX) that reduces or reverses the direction of NCX favoring reduction of Ca 2  export and augmentation of cellular ER/SR Ca 2  store loading ( 7, 8, 26 ). NCX and 2 / 3 -isoforms may be localized to discrete functional units within cells. Recent investigations in astrocytes and mesenteric arteriolar myocytes found the ouabain-sensitive 2 / 3 -isoforms and NCX in specialized "junctional" regions that coincide with ER/SR ( 6, 8, 16, 18, 25 ). Similar colocalization of 2 / 3 and NCX in DVR endothelium is unexplored; however, the ability of [Na   ] o reduction to increase [Ca 2  ] CYT in DVR endothelia ( Fig. 4 ) favors a role for NCX in the setting of basal [Ca 2  ] CYT and reproduces the findings of others ( 27 ). A role for NCX is also favored by the ability of SEA-0400 to increase basal [Ca 2  ] CYT ( Fig. 5 ). SEA-0400 is a potent blocker of predominant NCX1 isoforms and is generally respected for its specificity to block NCX without affecting cytoplasmic Ca 2  extrusion pumps ( 24, 29, 47 ). Nonetheless, some interpretational caution is in order because SEA-0400 has been shown to alter [Ca 2  ] CYT signaling in cells that lack NCX ( 40 ).; a7 |2 i! [7 I% r# y$ J% Q) m7 \% W
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Ouabain elicits calcium transients in the DVR endothelium. Using fura 2-loaded DVR, we found that ouabain, at 0.1 nM-0.1 mM, affects basal DVR endothelial [Ca 2  ] CYT ( Fig. 1 ). The lower end of that concentration range is similar to that of OLF in plasma ( 20 ) and is sufficient to affect 2 / 3 Na   -K   -ATPase in the rat. Several findings in Fig. 1 are of interest. First, ouabain modulates basal [Ca 2  ] CYT in this microvascular endothelium, an effect that is not uniformly present in all preparations ( 27, 28, 49 ). Because these studies were performed with fura-2, a probe that distributes diffusely into the cytoplasm, we conclude that ouabain-induced [Ca 2  ] CYT elevation occurs globally throughout the cells. It is possible that much greater effects on [Ca 2  ] CYT occur in the "junctional region" near the plasma membrane and NCX. Such a compartmental effect would not be delineated by fura 2 for two reasons. First, the affinity of fura 2 for Ca 2  is low; i.e., near-membrane Ca 2  binding to fura 2 might be saturated if junctional Ca 2  ([Ca 2  ] JNT ) concentrations are very high. Second, fura 2 fluorescence from the bulk cytoplasm probably overwhelms any emanations from the junctional cytoplasm. A second, interesting feature of the response in Fig. 1 is that ouabain gives a biphasic [Ca 2  ] CYT change comprised of an early peak followed by a sustained plateau. Observation times in Fig. 1 were brief; however, plateau [Ca 2  ] CYT elevations are sustained for at least 10 min (data not shown). Finally, the response to ouabain is remarkably similar over a broad range of concentrations from 0.1 nM to 1 µM ( Fig. 1, A and B ). When ouabain concentration is increased further, a greater elevation of [Ca 2  ] CYT is observed ( Fig. 1, C - E ). We interpret those findings as evidence that both high-ouabain affinity ( 2 / 3 ) and low-affinity ( 1 ) Na   pump isoforms participate in the modulation of [Ca 2  ] CYT.0 Z! _, l" c2 u6 d. V& l

) l6 x8 E( D) g$ s2 e$ Y( OThe biphasic pattern of [Ca 2  ] CYT in Fig. 1 is atypical of pure NCX inhibition. That observation stimulated us to examine whether other pathways participate in acute ouabain [Ca 2  ] CYT elevation. Much work by Xie and colleagues ( 40, 50 ) highlighted the ability of ouabain binding to Na   pumps to trigger multiple signaling cascades that occur along with NCX inhibition. Of particular interest in the current context is that ouabain may stimulate phosphorylation of PLC leading to InsP 3 generation and biphasic [Ca 2  ] CYT signaling in LLC-PK 1 cells ( 51 ). Cross talk between these signaling pathways has been proposed. NCX inhibition by Na   elevation in the junctional region between plasmalemma and ER/SR ([Na   ] JNT ) might enhance InsP 3 -mediated signaling if resultant junctional [Ca 2  ] JNT elevation provides positive feedback to further stimulate PLC ( 23 ). [Ca 2  ] JNT elevation might also induce CICR through InsP 3 R stimulation ( Fig. 10 ). Our observations support the participation of multiple pathways in ouabain signaling. SEA-0400 prevented ouabain responses, implicating an important role for NCX1 isoforms ( Fig. 5 ). A role for InsP 3 R stimulation is favored by the successful blockade of ouabain responses with 2-APB ( Fig. 6 ). Finally, the ability of low [Ca 2  ] o ( Fig. 3 ) as well as cation channel blockade with La 3  and SKF-96365 ( Fig. 7 ) to attenuate ouabain responses points to a possible role for modulation of Ca 2  entry.
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Fig. 10. Mechanisms of ouabain-induced [Ca 2  ] CYT signaling in DVR endothelium. Possible scheme involving participation of NCX, inositol tris-phosphate receptor (InsP 3 R), and cation channels in DVR endothelial ouabain signaling. Nanomolar ouabain selectively inhibits those Na   -K   -ATPase comprised of 2 -catalytic subunits. That inhibition raises [Na   ] JNT in the vicinity of NCX of cytoplasmic "junctional" microdomains that overlie endoplasmic/sarcoplasmic reticulum (ER/SR) Ca 2  stores ( 2, 6 ). Inhibition of Ca 2  export by NCX leads to increase in junctional [Ca 2  ] JNT favoring enhanced uptake into ER/SR stores via Ca 2  pumps. The greater load of Ca 2  in ER/SR stores favors higher "bulk" [Ca 2  ] CYT and greater agonist-induced Ca 2  release via InsP 3 R. Parallel signaling processes occur through stimulation of PLC, which may be phosphorylated (Y-p) ( 51 ) and stimulated by the increase in [Ca 2  ] JNT ( 23 ). InsP 3 generated by PLC combined with the increase in [Ca 2  ] JNT due to NCX inhibition stimulates further Ca 2  release by InsP 3 R leading to secondary opening of store-operated nonselective cation channels that transport Na   and Ca 2  ions.
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" A' Z0 v$ s, F. a# iNCX modulates DVR endothelial [Ca 2  ] CYT. Participation of NCX in the setting of basal [Ca 2  ] CYT of DVR endothelia has not been previously explored. In this study, a role for NCX was supported by two experiments. First, a progressive rise of endothelial [Ca 2  ] CYT occurs in response to step decreases of [Na   ] o, even when the [Na   ] o reduction is small ( Fig. 4 ). Second, NCX blockade with SEA-0400 raises [Ca 2  ] CYT ( Fig. 5 ). In one study, conducted in aortic endothelial cells, lowering [Na   ] o caused a transient [Ca 2  ] CYT elevation that did not persist ( 49 ). In other studies, progressive [Ca 2  ] CYT elevation was observed during [Na   ] o reduction that mirrors our results ( 14, 26, 27 ). Such variation may reflect regional differences in the role of NCX at sites along the vasculature. Taken together, we propose that NCX may participate, along with plasmalemmal ATP-dependent Ca 2  extrusion pumps, to maintain DVR endothelial [Ca 2  ] CYT at low levels in the basal state.0 ^$ h# Z# C$ d+ l

6 J- t( A) w# c: }Ouabain potentiates BK-induced calcium transients. In addition to inhibition of NCX, elevations of [Ca 2  ] CYT by ouabain probably involve release of Ca 2  from cellular stores. The tendency of ouabain and NCX inhibition (low [Na   ] o or SEA-0400) to yield nonsustained "peak" [Ca 2  ] CYT transients hints at that possibility ( Figs. 1, 4, 5 A ). The finding that 2-APB prevents both ouabain-induced [Ca 2  ] CYT transients ( Fig. 6 ) and NCX-mediated transients ( Fig. 8 ) is also supportive. Unfortunately, a perfect blocker of ER/SR store release via InsP 3 R does not exist. Heparin, xestospongin C, and 2-APB are commonly used to block InsP 3 R but neither is perfectly selective ( 10, 11 ). 2-APB, used in the present study, has dual actions to inhibit InsP 3 R and block Ca 2  entry from the extracellular space through store-operated cation channels. Participation of Ca 2  entry in the ouabain response is supported by the finding that La 3  and SKF-96365 attenuate it. Given the imperfect specificity of 2-APB, we recognize that evidence for participation of InsP 3 R participation in the ouabain response is incomplete. Nonetheless, the clear demonstration by Yuan and colleagues ( 51 ) that InsP 3 generation can be stimulated through ouabain binding to Na   pump -subunits reinforces the possibility.% t4 n& G3 O% B$ B/ _

: S2 B+ A0 e0 I- H, b: |To further examine the role of cellular Ca 2  stores in ouabain responses, we tested its effects on BK signaling. BK is an agonist that releases Ca 2  from the ER/SR by InsP 3 R-dependent signaling ( 4 ) and is an optimal agonist in the current context because it consistently generates rapid and large transient elevations of DVR endothelial [Ca 2  ] CYT ( 37, 41, 46 ). Augmentation of the peak phase of store release by ouabain was readily demonstrated at both high and low ouabain concentrations ( Fig. 8 ). That observation parallels the recent finding that ouabain enhances [Ca 2  ] CYT transients in BK-stimulated rat aortic endothelial cells ( 14 ). A similar ability of ouabain to enhance [Ca 2  ] CYT transients in smooth muscle has also been described ( 1, 2 ).6 y/ t2 K4 i* b7 G

, U& \( C: ?( e1 b7 `A hypothesis that accounts for the effects of ouabain in DVR endothelium must explain its modulation of global [Ca 2  ] CYT (as measured by fura-2) and its dependence on NCX, cation channels, and InsP 3 R activity. A possible scheme is illustrated in Fig. 10. It has been proposed that ouabain-induced subplasmalemmal [Ca 2  ] JNT elevation, resulting from reduction of NCX Ca 2  export, enhances Ca 2  loading into ER/SR stores via SERCA pumps ( 17 ). In support of this, a steep dependence of agonist-induced, InsP 3 -mediated Ca 2  release on the Ca 2  load of the stores has been reported in myocytes ( 45 ). Another mechanism, possibly contributing to ouabain-induced global [Ca 2  ] CYT elevations, is CICR. It is known that Ca 2  elevations associated with the reverse mode operation of NCX evoke CICR that amplifies [Ca 2  ] CYT responses in cardiac myocytes ( 4, 5, 48 ). In pancreatic -cells, CICR induced by SERCA pump inhibition was found to be dependent on InsP 3 R ( 15 ). CICR is less well explored in endothelia but does exist ( 13, 31, 34 ). Comparison of the effect of low [Na   ] o on [Ca 2  ] CYT in the presence or absence of 2-APB ( Fig. 8 ) reveals that step decreases in [Na   ] o evoke [Ca 2  ] CYT transients. These may be triggered by NCX inhibition through the CICR mechanism. In addition to possible InsP 3 generation ( 51 ), the same mechanism might partially account for the observed transient peaks of [Ca 2  ] CYT elicited by ouabain ( Fig. 1 ). Based on these observations, we conclude that circulating OLF might affect DVR endothelial Ca 2  signaling through actions on NCX and InsP 3 R. Within the renal medulla, the potential for ouabain to modulate release of vasodilators by DVR endothelia can be inferred. Given that vasoactivity and NO release in the renal medulla affect Na   balance and blood pressure ( 12 ), the current observations may point to an important role for circulating OLF in renal function.' t7 Y" o, M; N
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This work was supported by National Institutes of Health Grants DK-42495, DK-68492, DK-67621, and HL-78870.* r/ m" V$ ^) X) J" j
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Reuter H, Henderson SA, Han T, Matsuda T, Baba A, Ross RS, Goldhaber JI, and Philipson KD. Knockout mice for pharmacological screening: testing the specificity of Na   -Ca 2  exchange inhibitors. Circ Res 91: 90-92, 2002.3 C% J' C/ w, d3 ?* Q
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Rhinehart K, Handelsman CA, Silldorff EP, and Pallone TL. ANG II AT2 receptor modulates AT1 receptor-mediated descending vasa recta endothelial Ca 2  signaling. Am J Physiol Heart Circ Physiol 284: H779-H789, 2003.* O; H# g( v  U6 S* s! o
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) w2 W/ B  o& F) n9 L; Z; l$ YRhinehart K, Zhang Z, and Pallone TL. Ca 2  signaling and membrane potential in descending vasa recta pericytes and endothelia. Am J Physiol Renal Physiol 283: F852-F860, 2002.& O" [! @5 C  v- L, x  ~8 z) k; D

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# ?0 P# y6 z7 z; L9 `Shimizu H, Borin ML, and Blaustein MP. Use of La 3  to distinguish activity of the plasmalemmal Ca 2  pump from Na   /Ca 2  exchange in arterial myocytes. Cell Calcium 21: 31-41, 1997.
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作者: tuanzi    时间: 2015-5-29 10:54

要不我崇拜你?行吗?  
作者: 龙水生    时间: 2015-6-2 20:27

观看中  
作者: 榴榴莲    时间: 2015-6-26 19:59

初来乍到,请多多关照。。。  
作者: 泡泡鱼    时间: 2015-6-27 09:35

支持一下吧  
作者: dypnr    时间: 2015-7-24 17:27

做对的事情比把事情做对重要。  
作者: awen    时间: 2015-8-19 13:01

我回不回呢 考虑再三 还是不回了吧 ^_^  
作者: nauticus    时间: 2015-8-29 14:09

说嘛1~~~想说什么就说什么嘛~~  
作者: 龙水生    时间: 2015-9-30 00:35

干细胞之家是不错的网站
作者: 红旗    时间: 2015-10-22 20:35

今天的干细胞研究资料更新很多呀
作者: laoli1999    时间: 2015-11-12 13:09

嘿...反了反了,,,,  
作者: 命运的宠儿    时间: 2015-11-20 20:33

ips是诱导多能干细胞induced pluripotent stem cells iPS
作者: tempo    时间: 2015-11-26 07:54

回帖是种美德.  
作者: 命运的宠儿    时间: 2015-12-7 09:18

不错,支持下  
作者: 泡泡鱼    时间: 2015-12-11 19:35

真是天底下好事多多  
作者: nauticus    时间: 2016-1-2 13:14

偶啥时才能熬出头啊.  
作者: 陈晴    时间: 2016-1-6 09:53

楼上的话等于没说~~~  
作者: nauticus    时间: 2016-1-9 11:43

说的真有道理啊!
作者: 多来咪    时间: 2016-2-24 20:27

几头雾水…  
作者: 杏花    时间: 2016-2-25 11:27

这样的贴子,不顶说不过去啊  
作者: 化药所    时间: 2016-4-5 16:28

今天没事来逛逛  
作者: dd赤焰    时间: 2016-5-5 16:56

我是来收集资料滴...  
作者: 天蓝色    时间: 2016-5-16 10:54

不错!  
作者: renee    时间: 2016-5-24 09:54

想都不想,就支持一下  
作者: 水木清华    时间: 2016-6-20 15:35

嘿嘿......哈哈......呵呵.....哟~呼  
作者: 大小年    时间: 2016-6-21 10:54

我喜欢这个贴子  
作者: 咕咚123    时间: 2016-7-13 17:27

先顶后看  
作者: 修复者    时间: 2016-7-25 14:10

原来这样也可以  
作者: 锦锦乐道    时间: 2016-8-1 07:10

免疫细胞治疗  
作者: 刘先生    时间: 2016-8-10 23:35

宁愿选择放弃,不要放弃选择。  
作者: dr_ji    时间: 2016-8-12 11:43

风物长宜放眼量  
作者: 咕咚123    时间: 2016-8-29 13:54

干细胞之家 我永远支持
作者: dglove    时间: 2016-9-9 15:10

孜孜不倦, 吾等楷模 …………  
作者: 安安    时间: 2016-9-29 19:10

看完了这么强的文章,我想说点什么,但是又不知道说什么好,想来想去只想  
作者: chinagalaxy    时间: 2016-10-12 12:26

干细胞从业人员  
作者: 小丑的哭泣    时间: 2016-11-18 15:42

回复一下  
作者: bioprotein    时间: 2016-11-27 12:25

进行溜达一下  
作者: Greatjob    时间: 2016-12-8 12:44

爷爷都是从孙子走过来的。  
作者: ladybird    时间: 2016-12-9 09:01

哦...............  
作者: htc728    时间: 2016-12-12 08:35

哎 怎么说那~~  
作者: Greatjob    时间: 2017-1-1 22:55

这样的贴子,不顶说不过去啊  
作者: xm19    时间: 2017-1-16 13:18

神经干细胞
作者: awen    时间: 2017-1-19 14:10

继续查找干细胞研究资料
作者: 坛中酒    时间: 2017-2-20 04:18

顶你一下,好贴要顶!  
作者: 刘先生    时间: 2017-3-3 23:53

宁愿选择放弃,不要放弃选择。  
作者: Whole    时间: 2017-3-4 23:39

说嘛1~~~想说什么就说什么嘛~~  
作者: bluesuns    时间: 2017-3-20 19:52

谢谢分享了!   
作者: 三星    时间: 2017-3-25 07:01

我的啦嘿嘿  
作者: 泡泡鱼    时间: 2017-4-17 14:18

干细胞库  
作者: 罗马星空    时间: 2017-5-18 12:42

干细胞抗衰老  
作者: tian2006    时间: 2017-5-25 14:49

干细胞之家
作者: heart10    时间: 2017-6-18 13:43

不错的东西  持续关注  
作者: wq90    时间: 2017-6-30 10:27

帮顶  
作者: 榴榴莲    时间: 2017-7-26 09:10

谁能送我几分啊  
作者: laoli1999    时间: 2017-7-27 11:54

彪悍的人生不需要解释。  
作者: doc2005    时间: 2017-8-3 18:00

不知道说些什么  
作者: 再来一天    时间: 2017-8-8 12:00

观看中  
作者: 昕昕    时间: 2017-8-20 06:39

干细胞抗衰老  
作者: DAIMAND    时间: 2017-9-20 03:07

干细胞之家 我永远支持
作者: 蝶澈    时间: 2017-9-26 08:01

不是吧  
作者: foxok    时间: 2017-9-27 04:32

留个脚印```````  
作者: 坛中酒    时间: 2017-10-5 06:45

呵呵,等着就等着....  
作者: dmof    时间: 2017-10-18 03:45

说的不错  
作者: 初夏洒脱    时间: 2017-10-19 11:09

应该加分  
作者: 再来一天    时间: 2017-10-24 13:26

我卷了~~~~~~~  
作者: ikiss    时间: 2017-11-2 17:54

看看..  
作者: laoli1999    时间: 2017-11-7 06:42

风物长宜放眼量  
作者: 三星    时间: 2017-11-16 02:47

琴棋书画不会,洗衣做饭嫌累。  
作者: 咕咚123    时间: 2017-11-26 18:17

干细胞研究重在基础
作者: 安生    时间: 2017-12-2 02:35

看看..  
作者: MIYAGI    时间: 2017-12-20 16:54

希望大家帮我把这个帖发给你身边的人,谢谢!  
作者: Whole    时间: 2017-12-22 12:35

今天临床的资料更新很多呀
作者: 若天涯    时间: 2018-1-15 19:51

文笔流畅,修辞得体,深得魏晋诸朝遗风,更将唐风宋骨发扬得入木三分,能在有生之年看见楼主的这个帖子。实在是我三生之幸啊。  
作者: 甘泉    时间: 2018-1-20 15:49

dc-cik nk  
作者: 安安    时间: 2018-2-13 01:46

快毕业了 希望有个好工作 干细胞还是不错的方向
作者: 舒思    时间: 2018-2-14 07:26

来几句吧  
作者: ines    时间: 2018-2-17 22:25

好啊,谢楼主
作者: 再来一天    时间: 2018-3-5 23:32

问渠哪得清如许,为有源头活水来。  
作者: 小敏    时间: 2018-3-10 15:43

我想要`~  
作者: xiaomage    时间: 2018-3-20 19:47

回复一下  
作者: 365wy    时间: 2018-3-26 10:10

我在顶贴~!~  
作者: 若天涯    时间: 2018-4-13 01:43

干细胞研究非常有前途
作者: 分子工程师    时间: 2018-4-18 17:01

说的不错  
作者: feixue66    时间: 2018-4-20 12:26

感觉好像在哪里看过了,汗~  
作者: 求索迷茫    时间: 2018-5-3 06:11

生殖干细胞
作者: 王者之道    时间: 2018-5-16 03:04

自己知道了  
作者: ringsing    时间: 2018-5-27 13:54

做对的事情比把事情做对重要。  
作者: sshang    时间: 2018-5-28 07:22

今天没事来逛逛,看了一下,感觉相当的不错。  
作者: frogsays    时间: 2018-6-7 23:22

想都不想,就支持一下  
作者: 分子工程师    时间: 2018-6-19 10:43

给我一个女人,我可以创造一个民族;给我一瓶酒,我可以带领他们征服全世界 。。。。。。。。。  
作者: 昕昕    时间: 2018-6-20 09:09

我卷了~~~~~~~  
作者: 分子工程师    时间: 2018-7-1 11:18

既然来了,就留个脚印  
作者: 命运的宠儿    时间: 2018-7-8 04:31

皮肤干细胞
作者: 我心飞翔    时间: 2018-8-14 05:10

呵呵,支持一下哈  
作者: 狂奔的蜗牛    时间: 2018-8-25 10:27

天啊. 很好的资源
作者: SCISCI    时间: 2018-9-15 19:00

dddddddddddddd  
作者: 陈晴    时间: 2018-9-24 08:10

好帖子,要顶!
作者: 983abc    时间: 2018-10-6 10:54

顶顶更健康,越顶吃的越香。  
作者: 考拉    时间: 2018-10-15 05:31

进行溜达一下  
作者: netlover    时间: 2018-10-23 10:27

干细胞之家




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