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1.
目的:比较蛇床子素对不同钙通道亚型的作用差异方法:首先在tsA201细胞上瞬时转染Cav1.2,Cav1.3,Cav2.2e[37a],和Cav2.2e[37b]通道,然后采用全细胞膜片钳技术,记录tsA201细胞上的钙电流,并观察蛇床子素对各种钙通道亚型的影响结果:蛇床子素可以浓度依赖性抑制Cav1.2和Cav1.3电流,抑制的半有效浓度分别为162.1μmol·L-1和56.2μmol·L-1。此外,蛇床子素对Cav2.2通道也有一定的抑制作用,在300μmol·L-1的浓度下,抑制38%的Cav2.2e[37a]电流和61%的Cav2.2e[37b]电流蛇床子素对钙电流的抑制是快速可逆的蛇床子素在各个测试电位水平均能抑制上述四种钙通道电流,但不改变电流的激活阈值和最大峰值电流的激活电压。结论:蛇床子素以浓度依赖的方式抑制多种钙通道亚型并表现出不同的亲和力  相似文献   

2.
本研究利用fura-2-AM荧光成像和膜片钳技术,发现内皮素-1(Endothelin-1,ET-1)可显著提高大鼠分离心肌细胞内钙离子水平([Ca^2+]i),激活心肌细胞钙通道.ETA受体阻滞剂BQ123能够消除ET-1提高[Ca^2+]i的效应,而ETB受体阻滞剂BQ788对该效应无影响,用ryanodine受体阻断剂ryanodine(10μmol/L)预处理,可以使ET-1诱导的[Ca^2+]i的增加抑制46.7%,蛋白激酶A(PKA)的抑制剂、蛋白激酶C(PKC)的抑制剂和血管紧张素Ⅱ-型受体(ATI receptor)的抑制剂都能够抑制ET-1诱导的[Ca^2+]i的增加,本研究发现ET-1能够提高全细胞L-型钙通道电流的幅度,增加L-型钙通道单通道的开放概率.并且BQ123完全阻止了ET-1诱导的L-型钙通道开放概率增加的效应.本研究证明了ET-1通过一系列机制调节钙超载,包括L-型钙通道的激活,钙致钙释放(CICR),ETA受体,PKC,PKA和血管紧张素Ⅱ-型受体也参与到了这个途径中。  相似文献   

3.
本研究利用fura-2-AM荧光成像和膜片钳技术,发现内皮素-1(Endothelin-1,ET-1)可显著提高大鼠分离心肌细胞内钙离子水平([Ca2+]i),激活心肌细胞钙通道.ETA受体阻滞剂BQ123能够消除ET-1提高[Ca2+]i的效应,而ETB受体阻滞剂BQ788对该效应无影响.用ryanodine受体阻断剂ryanodine(10 μmol/L)预处理,可以使ET-1诱导的[Ca2+]i的增加抑制46.7%.蛋白激酶A(PKA)的抑制剂、蛋白激酶C(PKC)的抑制剂和血管紧张素Ⅱ一型受体(AT1 receptor)的抑制剂都能够抑制ET-1诱导的[Ca2+]i的增加.本研究发现ET-1能够提高全细胞L-型钙通道电流的幅度,增加L-型钙通道单通道的开放概率.并且BQ123完全阻止了ET-1诱导的L-型钙通道开放概率增加的效应.本研究证明了ET-1通过一系列机制调节钙超载,包括L-型钙通道的激活,钙致钙释放(CICR),ETA受体,PKC,PKA和血管紧张素Ⅱ一型受体也参与到了这个途径中.  相似文献   

4.
目的:研究微小RNA-1(microRNA-1,miR-1)在心肌细胞肥大中对L-型钙通道β2亚基(Cavβ2)的负性调控作用及机制。方法:应用异丙肾上腺素(ISO)诱导心肌细胞肥大;采用HJ2000通用图像分析系统测定心肌细胞表面积;应用数据库microCosm预测miR-1的靶基因;构建含Cavβ23’UTR报告基因质粒和miR-1瞬时共转染HEK293细胞,验证Cavβ2为miR-1靶基因;应用qRT-PCR或Western blot方法检测心房钠尿肽(ANP)、β-肌球蛋白重链(β-MHC)、miR-1和Cavβ2mRNA和蛋白表达水平;转染miR-1模拟物上调miR-1或应用Cavβ2RNAi干扰Cavβ2蛋白的表达,观察对心肌细胞肥大的影响。结果:①在ISO诱导的心肌细胞肥大中,miR-1表达显著下降;应用miR-1 mimic转染心肌细胞使miR-1表达上调,心肌细胞表面积、ANP和β-MHC mRNA表达均显著低于ISO组(P<0.05)。②网络数据库预测显示Cavβ2为miR-1的潜在靶点;将miR-1和含Cavβ23’UTR报告基因质粒共转染HEK293细胞,其萤光值显著降低(P<0.01)。转染miR-1 mimic使心肌细胞miR-1表达上调,可以明显抑制Cavβ2蛋白的表达。③在ISO诱导心肌细胞肥大中Cavβ2表达较对照组显著增加;应用RNAi技术下调Cavβ2表达可明显抑制心肌细胞表面积、ANP和β-MHC mRNA表达的增加。结论:预测并验证L-型钙通道β2亚基为miR-1的靶基因。miR-1可能通过抑制其靶基因Cavβ2蛋白的表达,降低细胞内钙离子浓度,抑制心肌细胞肥大。  相似文献   

5.
目的:探讨苦参碱拮抗哇巴因诱导的心律失常的作用机制。方法:应用全细胞膜片钳技术记录哇巴因对单个豚鼠心室肌细胞的Na+电流和动作电位时程作用后,观察苦参碱对哇巴因诱导Na+电流和动作电位时程改变的恢复作用。结果:1 5μmol·L-1哇巴因延长APD50从给药前476±40.7 ms增加到744±62.9 ms(n=6,P0.05),APD90从给药前499±84.9 ms增加到775±87.7 ms(n=6,P0.01),100μmol·L-1苦参碱恢复APD50至603±79.0 ms(n=6,P0.05),APD90至630±81.6 ms(n=6,P0.05);2 5μmol·L-1哇巴因可增加钠电流的峰值,在-20 m V电压条件下,5μmol·L-1哇巴因增加INa,由正常-40.9±2.32 p A/p F增加到-55.2±2.26 p A/p F(n=8,P0.05),100μmol·L-1苦参碱减少INa至-34.6±2.14 p A/p F(n=8,P0.05);5μmol·L-1哇巴因右移钠通道的激活曲线,并左移钠通道的失活曲线从而改变通道动力学特性;100μmol·L-1苦参碱可抑制哇巴因诱导的INa的增加,并恢复Na+通道动力学特性接近正常。结论:苦参碱拮抗哇巴因诱导的心律失常机制与其抑制哇巴因诱发细胞水平Na+电流的增加,缩短哇巴因诱发APD的延长有关。  相似文献   

6.
以蚕豆(Vicia fabaL.)为材料,采用表皮条生物学分析技术、远红外成像技术以及电生理膜片钳技术,研究逆境信号脱落酸(ABA)和蓝光信号对蚕豆叶片表皮气孔运动及质膜K+通道的影响,以探讨ABA调节蓝光诱导的气孔开放运动的生理机制.结果表明:(1)100μmol?m-2?s-1蓝光能显著诱导气孔开放,该效应可被ABA以浓度依赖的方式抑制,并以10μmol?L-1ABA抑制效应最为明显.(2)100μmol?m-2?s-1蓝光处理能明显促使蚕豆叶面温度下降,而10μmol?L-1ABA可显著阻止蓝光诱导的蚕豆叶面温度下降.(3)100μmol?m-2?s-1蓝光可明显激活保卫细胞质膜内向K+通道,处理5 min后内向K+电流增加58%;对于1和10μmol?L-1ABA预处理蚕豆保卫细胞原生质体,在蓝光处理5 min后其内向K+电流增加值分别被抑制25%和51%,但10μmol?L-1ABA并不明显抑制壳梭孢菌素(质膜H+-ATP酶永久性激活剂)诱导的保卫细胞内向K+电流上升.研究发现,逆境信号ABA可能主要通过抑制蓝光信号转导中质膜H+-ATP酶上游位点,阻断蓝光激活的保卫细胞质膜内向K+通道,抑制蓝光诱...  相似文献   

7.
丛红群  岳旺 《生物磁学》2009,(3):444-447
目的:观察不同浓度的琥珀酸对大鼠海马CA1区神经元电压依赖性钙通道(voltage—dependent calcium channels,VDCC)电流的作用,初步探讨琥珀酸对神经元保护的电生理学基础。方法:采用传统全细胞膜片钳技术和制霉菌素(nystatin)穿孔膜片钳技术观察琥珀酸对海马CA1区神经元VDCC电流的影响。结果:不同浓度的琥珀酸(10^-6、10^-5、10^-4、10^-3、10^-2和10^-1mol·L^-1)在海马CA1区对低电压激活(low—voltage activated,LVA)钙通道电流未见任何影响,而对高电压激活(high—voltage activated,HVA)钙通道电流的抑制呈浓度依赖性。对照组HVA钙电流为580.05±17.32pA,分别给予10^-6、10^-5、10^-4、10^-3、10^-2和10^-1mol·L^-1。的琥珀酸后,HVA钙电流依次为563.74±16.65,517.99±15.24,444.66±13.26,405.32±19.11,269.03±9.96和86.41±3.25pA,同对照组相比差异有统计学意义(n=8,P〈0.01)。结论:琥珀酸能浓度依赖性地抑制HVA钙电流,而对LVA钙电流无影响。由此推测琥珀酸可能通过抑制HVA钙电流减少Ca^2+内流而影响海马CA1区神经元的兴奋性,从而抑制癫痫的形成,其脑保护作用可能与此有关。  相似文献   

8.
目的:观察不同浓度的琥珀酸对大鼠海马CAI区神经元电压依赖性钙通道(voltage-dependent calcium channels,VDCC)流的作用,初步探讨琥珀酸对神经元保护的电生理学基础.方法:采用传统全细胞膜片钳技术和制霉菌素(nystatin)穿孔膜片钳技术观察琥珀酸对海马CAI区神经元VDCC电流的影响.结果:不同浓度的琉角酸(10-6、10-5、10-4、10-3、10-2和10-1mol·L-1)在海马CAI区对低电压激活(low-voltage activated,LVA)钙通道电流未见任何影响,而对高电压激活(high-voltage activated,HVA)钙通道电流的抑制呈浓度依赖性.对照组HVA钙电流为580.051±7.32pA,分别给予10-6、10-5、10-4、10-3、10-2和10-1 mol·L-1的琥珀酸后HVA钙电流依次为563.74±16.65,517.99±15.24,444.66±13.26,405.32±19.11,269.03±9.96和86.41±3.25pA,同对照组相比差异有统计学意义(n=8,P<0.01).结论:琥珀酸能浓度依赖性地抑制HVA钙电流,而对LVA钙电流无影响.由此推测琥珀酸可能通过抑制HVA钙电流减少Ca2+内流而影响海马CAI区神经元的兴奋性,从而抑制癫痫的形成,其脑保护作用可能与此有关.  相似文献   

9.
目的:二苯乙烯苷(2,3,5,4′-tetrahydroxystilbene-2-O-β-D-glucoside,TSG)具有抗炎、抗氧化、抗动脉粥样硬化(atherosclerosis,As)等作用。课题组前期研究表明TSG对过氧化氢(H2O2)诱导损伤的内皮细胞具有保护作用,并抑制内皮细胞的凋亡,但机制尚未完全明确。本研究目的在于探讨TSG是否通过影响X连锁凋亡抑制蛋白(X-linked inhibitor of apoptosis protein,XIAP)、Caspase-9的表达来抑制细胞凋亡。方法:体外培养人脐静脉内皮细胞,实验分为正常对照组、模型组(300μmol·L-1H2O2)、TSG预处理组(10μmol·L-1TSG+300μmol·L-1H2O2)、Embelin与TSG联合处理组(30μmol·L-1Embelin+10μmol·L-1TSG+300μmol·L-1H2O2)、TSG单独处理组(10μmol·L-1TSG)、Embelin组(30μmol·L-1Embelin)。采用MTT法检测细胞增殖率,Hoechst 33258染色观察凋亡细胞核形态,RT-PCR和Western blot检测XIAP、Caspase-9的表达。结果:与空白对照组相比,H2O2组内皮细胞增殖率降低,核损伤明显,XIAP表达显著性下降,Caspase-9表达显著增加(P0.01);与H2O2组比较,经TSG预处理后,细胞增殖率增加,核损伤减轻,XIAP的表达上升,Caspase-9表达减少,差异均有显著性(P0.01)。与TSG预处理组比较,用XIAP阻断剂Embelin与TSG联合处理后,内皮细胞活力下降,XIAP表达显著降低,Caspase-9表达增加(P0.01)。结论:TSG具有抑制H2O2诱导的人脐静脉内皮细胞凋亡作用,其机制与增加XIAP的表达,抑制Caspase-9的表达有关。  相似文献   

10.
目的:观察genistein(GEN)对离体豚鼠右心室肌收缩功能的影响,并探讨其作用机理。方法:将离体豚鼠右心室肌置于装有K-H液的灌流肌槽中,待平衡后,加入各种药物观察心室肌收缩活动的变化。结果:GEN和异丙肾上腺素相似,可增强右心室肌的收缩活动,GEN(1~100μmol·L-1)的作用还具有明显的剂量依赖性。心得安(1μmol·L-1)和异搏定(0.5μmol·L-1)虽可明显阻断异丙肾上腺素(1μmol·L-1)的正性肌力作用,但对GEN(50μmol·L-1)的心肌收缩增强效应无明显改变;同时发现GEN(1,10μmol·L-1)温育后,对细胞外液Ca2 浓度升高而诱发的心肌收缩力增强也无明显影响。另外,它莫西芬(1μmol·L-1)及SQ22536(1μmol·L-1)可减弱GEN的正性肌力作用,bpV(1μmol·L-1)也可部分阻断GEN的这种作用。结论:GEN可增强右心室肌的收缩活动,其作用与心肌细胞膜上的β肾上腺素能受体、钙通道的激活无关,可能与cAMP的胞内信号转导以及酪氨酸激酶途径有一定关系。  相似文献   

11.
Calcium-activated potassium channels of the KCa1.1 class are known to regulate repolarization of action potential discharge through a molecular association with high voltage-activated calcium channels. The current study examined the potential for low voltage-activated Cav3 (T-type) calcium channels to interact with KCa1.1 when expressed in tsA-201 cells and in rat medial vestibular neurons (MVN) in vitro. Expression of the channel α-subunits alone in tsA-201 cells was sufficient to enable Cav3 activation of KCa1.1 current. Cav3 calcium influx induced a 50 mV negative shift in KCa1.1 voltage for activation, an interaction that was blocked by Cav3 or KCa1.1 channel blockers, or high internal EGTA. Cav3 and KCa1.1 channels coimmunoprecipitated from lysates of either tsA-201 cells or rat brain, with Cav3 channels associating with the transmembrane S0 segment of the KCa1.1 N-terminus. KCa1.1 channel activation was closely aligned with Cav3 calcium conductance in that KCa1.1 current shared the same low voltage dependence of Cav3 activation, and was blocked by voltage-dependent inactivation of Cav3 channels or by coexpressing a non calcium-conducting Cav3 channel pore mutant. The Cav3-KCa1.1 interaction was found to function highly effectively in a subset of MVN neurons by activating near –50 mV to contribute to spike repolarization and gain of firing. Modelling data indicate that multiple neighboring Cav3-KCa1.1 complexes must act cooperatively to raise calcium to sufficiently high levels to permit KCa1.1 activation. Together the results identify a novel Cav3-KCa1.1 signaling complex where Cav3-mediated calcium entry enables KCa1.1 activation over a wide range of membrane potentials according to the unique voltage profile of Cav3 calcium channels, greatly extending the roles for KCa1.1 potassium channels in controlling membrane excitability.  相似文献   

12.
Surface expression of voltage-gated Ca2+ (Cav) channels is important for their function in calcium homeostasis in the physiology of excitable cells, but whether or not and how the α1 pore-forming subunits of Cav channels are trafficked to plasma membrane in the absence of the known Cav auxiliary subunits, β and α2δ, remains mysterious. Here we showed that 14-3-3 proteins promoted functional surface expression of the Cav2.2 α1B channel in transfected tsA-201 cells in the absence of any known Cav auxiliary subunit. Both the surface to total ratio of the expressed α1B protein and the current density of voltage step-evoked Ba2+ current were markedly suppressed by the coexpression of a 14-3-3 antagonist construct, pSCM138, but not its inactive control, pSCM174, as determined by immunofluorescence assay and whole cell voltage clamp recording, respectively. By contrast, coexpression with 14-3-3τ significantly enhanced the surface expression and current density of the Cav2.2 α1B channel. Importantly, we found that between the two previously identified 14-3-3 binding regions at the α1B C terminus, only the proximal region (amino acids 1706–1940), closer to the end of the last transmembrane domain, was retained by the endoplasmic reticulum and facilitated by 14-3-3 to traffic to plasma membrane. Additionally, we showed that the 14-3-3/Cav β subunit coregulated the surface expression of Cav2.2 channels in transfected tsA-201 cells and neurons. Altogether, our findings reveal a previously unidentified regulatory function of 14-3-3 proteins in promoting the surface expression of Cav2.2 α1B channels.  相似文献   

13.
Here we report the first assessment of the expression and modulation of an invertebrate alpha1 subunit homolog of mammalian presynaptic Cav2 calcium channels (N-type and P/Q-type) in mammalian cells. Our data show that molluscan channel (LCav2a) isolated from Lymnaea stagnalis is effectively membrane-targeted and electrophysiologically recordable in tsA-201 cells only when the first 44 amino acids of LCav2a are substituted for the corresponding region of rat Cav2.1. When coexpressed with rat accessory subunits, the biophysical properties of LCav2a-5'rbA resemble those of mammalian N-type calcium channels with respect to activation and inactivation, lack of pronounced calcium dependent inactivation, preferential permeation of barium ions, and cadmium block. Consistent with reports of native Lymnaea calcium currents, the LCav2a-5'rbA channel is insensitive to micromolar concentrations of omega-conotoxin GVIA and is not affected by nifedipine, thus confirming that it is not of the L-type. Interestingly, the LCav2a-5'rbA channel is almost completely and irreversibly inhibited by guanosine 5'-3-O-(thio)triphosphate but not regulated by syntaxin1, suggesting that invertebrate presynaptic calcium channels are differently modulated from their vertebrate counterparts.  相似文献   

14.
Rem2 belongs to the RGK family of small GTPases whose members are known to interact with the voltage gated calcium channel β subunit, and to inhibit or abolish calcium currents. To identify the underlying functional domains of Rem2, we created several N- or C-terminally truncated Rem2 proteins and examined their abilities to interact with the Cav β subunit and to regulate the activities of Cav2.2 N-type calcium channels. Confocal imaging of Rem2 in tsA-201 cells revealed that it contains a membrane-targeting signal in its C-terminus, consistent with previous studies. Co-precipitation assays showed that Cav β3 interaction depends on Rem2 residues 1-123. Only Rem2 proteins that targeted the cell membrane as well as bound the β subunit were able to reduce whole cell calcium currents.  相似文献   

15.
Formation of complexes between ion channels is important for signal processing in the brain. Here we investigate the biochemical and biophysical interactions between HCN1 channels and Cav3.2 T-type channels. We found that HCN1 co-immunoprecipitated with Cav3.2 from lysates of either mouse brain or tsA-201 cells, with the HCN1 N-terminus associating with the Cav3.2 N-terminus. Cav3.2 channel activity appeared to be functionally regulated by HCN1. The expression of HCN1 induced a decrease in Cav3.2 Ba2+ influx (IBa2+) along with altered channel kinetics and a depolarizing shift in activation gating. However, a reciprocal regulation of HCN1 by Cav3.2 was not observed. This study highlights a regulatory role of HCN1 on Cav3.2 voltage-dependent properties, which are expected to affect physiologic functions such as synaptic transmission and cellular excitability.  相似文献   

16.
High voltage-activated (HVA) Cav channels form complexes with KCa1.1 channels, allowing reliable activation of KCa1.1 current through a nanodomain interaction. We recently found that low voltage-activated Cav3 calcium channels also create KCa1.1-Cav3 complexes. While coimmunoprecipitation studies again supported a nanodomain interaction, the sensitivity to calcium chelating agents was instead consistent with a microdomain interaction. A computational model of the KCa1.1-Cav3 complex suggested that multiple Cav3 channels were necessary to activate KCa1.1 channels, potentially causing the KCa1.1-Cav3 complex to be more susceptible to calcium chelators. Here, we expanded the model and compared it to a KCa1.1-Cav2.2 model to examine the role of Cav channel conductance and kinetics on KCa1.1 activation. As found for direct recordings, the voltage-dependent and kinetic properties of Cav3 channels were reflected in the activation of KCa1.1 current, including transient activation from lower voltages than other KCa1.1-Cav complexes. Substantial activation of KCa1.1 channels required the concerted activity of several Cav3.2 channels. Combined with the effect of EGTA, these results suggest that the Ca2+ domains of several KCa1.1-Cav3 complexes need to cooperate to generate sufficient [Ca2+]i, despite the physical association between KCa1.1 and Cav3 channels. By comparison, Cav2.2 channels were twice as effective at activating KCa1.1 channels and a single KCa1.1-Cav2.2 complex would be self-sufficient. However, even though Cav3 channels generate small, transient currents, the regulation of KCa1.1 activity by Cav3 channels is possible if multiple complexes cooperate through microdomain interactions.  相似文献   

17.
Nitric oxide (NO) is involved in a variety of physiological processes, such as vasoregulation and neurotransmission, and has a complex role in the regulation of pain transduction and synaptic transmission. We have shown previously that NO inhibits high voltage-activated Ca2+ channels in primary sensory neurons and excitatory synaptic transmission in the spinal dorsal horn. However, the molecular mechanism involved in this inhibitory action remains unclear. In this study, we investigated the role of S-nitrosylation in the NO regulation of high voltage-activated Ca2+ channels. The NO donor S-nitroso-N-acetyl-dl-penicillamine (SNAP) rapidly reduced N-type currents when Cav2.2 was coexpressed with the Cavβ1 or Cavβ3 subunits in HEK293 cells. In contrast, SNAP only slightly inhibited P/Q-type and L-type currents reconstituted with various Cavβ subunits. SNAP caused a depolarizing shift in voltage-dependent N-type channel activation, but it had no effect on Cav2.2 protein levels on the membrane surface. The inhibitory effect of SNAP on N-type currents was blocked by the sulfhydryl-specific modifying reagent methanethiosulfonate ethylammonium. Furthermore, the consensus motifs of S-nitrosylation were much more abundant in Cav2.2 than in Cav1.2 and Cav2.1. Site-directed mutagenesis studies showed that Cys-805, Cys-930, and Cys-1045 in the II-III intracellular loop, Cys-1835 and Cys-2145 in the C terminus of Cav2.2, and Cys-346 in the Cavβ3 subunit were nitrosylation sites mediating NO sensitivity of N-type channels. Our findings demonstrate that the consensus motifs of S-nitrosylation in cytoplasmically accessible sites are critically involved in post-translational regulation of N-type Ca2+ channels by NO. S-Nitrosylation mediates the feedback regulation of N-type channels by NO.  相似文献   

18.
以水稻( Oryza sativa Linn.)高 Cd 积累品种‘T 优705’(‘T You 705’)和低 Cd 积累品种‘湘早籼24’(‘Xiangzaoxian 24’)为实验材料,采用水培法对不同浓度Cd(0.0和2.7μmol·L-1 Cd)和K(0、30和60 mmol·L-1 K)处理条件下2个品种幼苗的相对生长量、根系和地上部的Cd含量及其亚细胞分布特征进行了比较,并分析了添加离子通道活性抑制剂TEA和LaCl3后幼苗根系和地上部的Cd和K含量;在此基础上,比较了NSCCs(非选择性阳离子通道)和K专性通道对2个品种幼苗根系和地上部Cd和K吸收贡献率的影响。结果表明:与Cd单一处理组(2.7μmol·L-1 Cd)相比, Cd-K双重处理组(2.7μmol·L-1 Cd-30 mmol·L-1 K和2.7μmol·L-1 Cd-60 mmol·L-1 K)2个品种幼苗的相对生长量显著提高,而幼苗根系和地上部的Cd含量显著下降;随K浓度的提高,2个品种幼苗根系细胞壁和细胞液中的Cd含量显著下降,但细胞壁中Cd含量的分配比例增大而细胞液中Cd含量的分配比例则减小。在含2.7μmol·L-1 Cd和30 mmol·L-1 K的培养液中分别添加5 mmol·L-1 TEA或0.2 mmol·L-1 LaCl3后,2个品种幼苗根系和地上部的Cd和K含量均显著下降,其中,LaCl3处理组的根系Cd含量降幅高于TEA处理组,但LaCl3处理组的根系K含量降幅则低于TEA组。 NSCCs对品种‘T优705’幼苗根系和地上部Cd吸收的贡献率显著低于品种‘湘早籼24’幼苗,而K专性通道对品种‘T优705’幼苗根系K吸收和地上部Cd吸收的贡献率则显著低于品种‘湘早籼24’幼苗。研究结果显示:添加外源K可缓解Cd对水稻幼苗生长的抑制作用,并通过提高细胞壁与Cd的结合能力来降低细胞液中Cd的积累,以此减弱幼苗对Cd的吸收和转运能力;幼苗体内的K和Cd均可通过K专性通道和NSCCs转运,其中,K吸收和转运主要通过K专性通道完成,而Cd吸收和转运主要通过NSCCs完成。此外,品种‘T优705’可能具有多种离子通道参与Cd的吸收和转运,而品种‘湘早籼24’主要依赖NSCCs参与Cd的吸收和转运,且后者对K的吸收和积累强于前者。  相似文献   

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