• <tr id="yyy80"></tr>
  • <sup id="yyy80"></sup>
  • <tfoot id="yyy80"><noscript id="yyy80"></noscript></tfoot>
  • 99热精品在线国产_美女午夜性视频免费_国产精品国产高清国产av_av欧美777_自拍偷自拍亚洲精品老妇_亚洲熟女精品中文字幕_www日本黄色视频网_国产精品野战在线观看 ?

    The Quercetin-modulated Activity-dependent Inhibition of Endocytosis at a Central Synapse*

    2023-06-20 04:42:12LIShunGAOYiMing2XUYueHUJiaQiTANGWenXuSUNXiaoQuanXUELei2WANGWanChun6

    LI Shun, GAO Yi-Ming2,, XU Yue, HU Jia-Qi, TANG Wen-Xu, SUN Xiao-Quan,XUE Lei2,, WANG Wan-Chun6)

    (1)Jiangxi University of Traditional Chinese Medicine, Nanchang330004,China;2)State Key Laboratory of Medical Neurobiology and MOE Frontiers Center for Brain Science, Fudan University, Shanghai200433,China;3)Department of Physiology and Neurobiology, School of Life Sciences, Fudan University, Shanghai200438,China;4)Research Institute of Intelligent Complex Systems, Fudan University, Shanghai200433,China;5)Center for Rehabilitation Medicine, Department of Pain Management, Zhejiang Provincial People's Hospital,Affiliated People's Hospital, Hangzhou Medical College, Hangzhou310014,China;6)Department of Traditional Chinese Medicine Surgery, Affiliated Hospital of Jiangxi University of Chinese Medicine, Nanchang330006,China)

    Abstract Objective Quercetin, a flavonol compound widely distributed in fruits, vegetables, and medicinal plants, has been suggested to act as a neuroprotective agent. In the present study, we investigated the presynaptic effect of quercetin on synaptic transmission and plasticity. Methods Using whole-cell patch clamp and capacitance measurement technique, we recorded miniature excitatory postsynaptic currents (mEPSC), presynaptic calcium influx, vesicle release and recycling, and the replenishment of readily releasable pool (RRP). Additionally, we stimulated the axon with 5-200 Hz and recorded short-term depression (STD) in the postsynaptic neuron. Results We found that 100 μmol/L quercetin in the extracellular solution did not affect the mEPSC amplitude and frequency, indicating a presynaptic mechanism modulating synaptic transmission. At the presynaptic nerve terminals,100 μmol/L quercetin did not induce notable changes in calcium influx or vesicle release, but significantly inhibited clathrindependent slow endocytosis following exocytosis. The inhibition of endocytosis led to a slowdown of vesicle mobilization during stimulation, a reduction in readily releasable pool replenishment after stimulation, and enhancement of short-term depression during high-frequency repetitive stimulation in the postsynaptic principal neurons. Conclusion These results provide new insights into quercetin-modulated neuronal signaling and suggest a protective effect that prevents excessive excitatory synaptic transmission in brain circuits.

    Key words quercetin, synaptic transmission, vesicle exocytosis, vesicle endocytosis, capacitance measurement

    Synapses are the essential building blocks of the central nervous system (CNS) and responsible for transmitting information between neurons[1]. The highly efficient process of presynaptic vesicle recycling plays a crucial role in maintaining precise synaptic transmission and plasma membrane homeostasis[2]. When the action potential (AP) arrives at the nerve terminal and activates the voltagedependent calcium channels, the calcium influx triggers the neurotransmitter-containing vesicles to fuse with the presynaptic membrane, leading to exocytosis[3]. In the mammalian CNS, neurons can fire in the range of 10 to several hundred Hertz.However, typical presynaptic terminals only contain several hundred synaptic vesicles per active zone(AZ)[4]. Therefore, efficient endocytosis following exocytosis is critical to prevent exhaustion of vesicles and to help maintain the efficiency of synaptic transmission[5].

    Quercetin is a flavonol compound present in traditional Chinese medicine but also widely found in various fruits, vegetables, and medicinal plants[6].Recently, cumulative evidence has shown that quercetin can penetrate the blood-brain barrier and has multiple physiological effects, such as in antioxidative stress, the anti-inflammatory response, and promotion of nerve regeneration[7-9]. Quercetin may also have therapeutic effects on ischemia and hypoxiainduced brain injury and Alzheimer’s disease,suggesting great potential in the treatment of neurodegenerative diseases[10-11].

    Previous studies have reported that quercetin can modulate neuronal excitability. Renet al.[12]showed that quercetin can reduce the firing rate of pyramidal neurons in the prefrontal cortex. Toyotaet al.[13]observed similar phenomena in which acute administration of quercetin inhibited the firing rate in trigeminal ganglion cells. In rat retinal ganglion cells,quercetin can reduce the frequency of miniature excitatory postsynaptic currents (mEPSCs) and increase the frequency of miniature inhibitory postsynaptic currents (mIPSCs) in both ON and OFF type cells to suppress the excitotoxicity caused by glaucoma[14]. In addition, quercetin has been shown to enhance the paired-pulse ratio (PPR) and long-term potentiation (LTP) in the rat hippocampus, relieving chronic lead exposure-induced impairment of synaptic plasticity[15]. On the other hand, the quercetinmodulated presynaptic mechanisms remain largely unclear. Luet al.[16]showed that quercetin inhibits Ntype and P/Q-type calcium channels and reduces excessive glutamate release in the synaptic boutons of the cerebral cortex, exerting a neuroprotective effect.Another study reported an opposite conclusion in the rat hippocampal CA1 neurons that quercetin promoted presynaptic glutamate release by reducing the postsynaptic PPR, leading to a dose-dependent increase in the excitatory postsynaptic current (EPSC)amplitude[17]. The uncertainty surrounding quercetinmodulated presynaptic mechanisms requires direct electrophysiological recordings at the presynaptic nerve terminals.

    In the present study, we examined how quercetin modulates synaptic transmission at a giant glutamatergic synapse, the calyx of Held, located at the medial nucleus of the trapezoid body (MNTB) in the brainstem[18]. The large presynaptic nerve terminal allows for direct recordings of presynaptic calcium current (ICa) and calcium-triggered vesicle exoendocytosisviacapacitance measurements at a high temporal resolution[19-20]. Our findings show that quercetin inhibits vesicle endocytosis in a calciumindependent manner, which leads to slowdown of vesicle mobilization and the readily releasable pool(RRP) replenishment. Furthermore, quercetin enhances short-term depression (STD) in a frequencydependent manner and dramatically reduces the EPSC amplitude upon high-frequency stimulation. Our results provide new insights into quercetin-modulated neuronal signaling and short-term plasticityviainhibition of presynaptic vesicle endocytosis, which leads the reduced synaptic transmission and enhanced STD.

    1 Materials and methods

    1.1 Slice preparation

    Sprague-Dawley rats (8-10 d old, p8-p10) of either sex were decapitated and tissue blocks containing the MNTB placed in a low-Ca2+artificial cerebrospinal fluid (ACSF) solution (125 mmol/L NaCl, 25 mmol/L NaHCO3, 3 mmol/L myo-inositol,2 mmol/L Na-pyruvate, 2.5 mmol/L KCl, 1.25 mmol/L NaH2PO4, 0.4 mmol/L ascorbic acid, 25 mmol/L glucose, 3 mmol/L MgCl2, and 0.05 mmol/L CaCl2).Brain slices (~200 μm thick) were sectioned using a vibratome (VT 1200s, Leica, Germany) and incubated in normal ACSF with 2 mmol/L CaCl2at 37°C for 30-40 min before experiments. Quercetin was diluted in dimethylsulfoxide (DMSO) at a concentration of 10 mmol/L and stored frozen (-20°C). For use, the stock solution was vortexed to ensure complete mixing of components and diluted into the extracellular solution to a final working concentration of 10-250 μmol/L,with a DMSO concentration of 0.1% maintained in all solutions. All electrophysiological recordings were made at room temperature (22-24°C).

    All of the methods were carried out in accordance with approved guidelines, and all animal experimental protocols were approved by the Animal Care and Use Committee of Fudan University and Jiangxi University of Chinese Medicine.

    1.2 Electrophysiology

    The voltage-clamp recordings of AMPA receptormediated mEPSCs and EPSCs were obtained using an EPC-10 amplifier (HEKA, Lambrecht, Germany).The pipette (2-3 MΩ) solution contained 125 mmol/L K-gluconate, 20 mmol/L KCl, 4 mmol/L Mg-ATP,10 mmol/L Na2-phosphocreatine, 0.3 mmol/L GTP,10 mmol/L HEPES, and 0.5 mmol/L EGTA (pH 7.2,adjusted with KOH). The extracellular solution was similar to the ACSF except with 2 mmol/L CaCl2.The series resistance (<10 MΩ) was compensated by 95%(lag 10 μs) throughout the experiment. The mEPSCs were recorded at a holding membrane potential of-80 mV with 0.5 μmol/L tetrodotoxin (TTX).Bicuculline (10 μmol/L), D-APV (10 μmol/L), and strychnine (10 μmol/L) were included in the extracellular solution to inhibit the GABAA receptor,NMDA receptor, and glycine receptor-mediated currents. For EPSC recordings, a bipolar electrode was placed near the midline of the MNTB.Stimulation pulses (0.1 ms, 2-20 V with AM2100,A-M systems, USA) at 5-200 Hz were delivered to evoke APs at the presynaptic nerve terminal, which induced an AMPA receptor-mediated EPSC at the principal neuron of the MNTB.

    The presynaptic membrane capacitance measurements were obtained using an EPC-10 amplifier with lock-in software. The presynaptic pipette (3.5-5 MΩ) solution contained 125 mmol/L Cs-gluconate, 20 mmol/L CsCl, 4 mmol/L Mg-ATP,10 mmol/L Na2-phosphocreatine, 0.3 mmol/L GTP,10 mmol/L HEPES, and 0.05 mmol/L BAPTA(pH 7.2, adjusted with CsOH). The series resistance(<10 MΩ) was compensated by 65% (lag 10 μs). Slow endocytosis was induced by a 20-ms depolarization pulse from -80 mV to +10 mV (depol20ms), and rapid endocytosis was induced by 10 depol20msat 10 Hz(depol20ms×10). To measure the vesicle mobilization during stimulation, 10 pulses of depol20msat 1 Hz were applied.

    1.3 Data analysis

    The Mini Analysis Program (version 6.07,Synaptosoft, USA) was used to analyze the mEPSCs.Capacitance jumps were measured 250 ms after depolarization to avoid artifacts. The initial rate of endocytosis (Rateendo) was measured within 2 s after depolarization with depol20msor depol20ms×10. The residual capacitance 15 s after depol20ms(ΔCm15s) or 30 s after depol20ms×10(ΔCm30s) was measured to represent endocytosis recovery. All data were expressed as mean±SE.Pvalues were determined by Student’st-test, one-way ANOVA with Bonferroni’s multiple comparisons test, or Kruskal-Wallis test, andP<0.05 was considered significant.

    2 Results

    2.1 Quercetin does not affect the sensitivity of postsynaptic AMPA receptors

    To investigate how quercetin affects synaptic transmission in the CNS, we examined the mEPSCs of the principal neurons at the rat calyx of Held synapses in the brain stem. The postsynaptic neurons were held at a resting potential of -80 mV in the whole-cell configuration with 0.5 μmol/L TTX in the extracellular solution. Bicuculline (10 μmol/L),D-APV (10 μmol/L), and strychnine (10 μmol/L)were also included. In control p8-p10 rats, the mean mEPSC amplitude and frequency were (30.7±2.6) pA and (0.8±0.2) Hz (722 events,n=5; Figure 1a-c). The mean 10%-90% rise time and 20%-80% decay time were (0.34±0.02) ms and (1.58±0.05) ms, respectively(Figure 1d). These results were similar to our previous studies at calyx-type synapses[21-22]. In the quercetintreated groups, we applied 10 μmol/L quercetin to the extracellular solution at least 30 min before recordings were made. The mEPSC amplitude and frequency were not significantly different from the control group (amplitude: (33.2±2.3) pA,P=0.84;frequency: (0.8±0.3) Hz,P=0.99; 884 events,n=6;Figure 1a-c). We also found no significant differences in the 10%-90% rise time and 20%-80% decay time(rise time: (0.36±0.03) ms,P=0.53; decay time: (1.65±0.10) ms,P=0.24;n=6; Figure 1d). Previous studies have tested quercetin concentrations up to 200-300 μmol/L[16,23]. Therefore, we also investigated 100 and 250 μmol/L extracellular quercetin. However,neither mEPSC amplitude and frequency nor 10%-90% rise time and 20%-80% decay time showed significant differences among the control and two high-concentration quercetin-treated groups (Figure 1c-d). We also plotted the cumulative probability curve of the mEPSCs in the control and quercetintreated groups and found no significant differences among all four groups (Kruskal-Wallis test,P=0.31;Figure 1e). Therefore, we conclude that quercetin does not affect the spontaneous mEPSCs, suggesting that quercetin does not alter the sensitivity of the postsynaptic AMPA receptors of principal neurons at calyces.

    Fig. 1 Quercetin does not affect the sensitivity of postsynaptic AMPA receptors

    Fig. 2 Quercetin inhibits presynaptic vesicle endocytosis at the calyx-type synapses

    Fig. 3 Quercetin slows down vesicle mobilization and RRP replenishment

    Fig. 4 Quercetin enhances short-term depression under intense stimulation

    2.2 Quercetin inhibits presynaptic vesicle endocytosis at the calyx of Held synapses

    Having shown that quercetin has no effect on the postsynaptic mEPSCs, we further investigated whether quercetin affects synaptic transmission from the presynaptic site. At the calyx-type synapse, the giant presynaptic nerve terminal provides a unique opportunity to study the presynaptic key parameters modulating synaptic transmission, including the calcium influx, vesicle exocytosis, and endocytosis[20].

    At the presynaptic nerve terminal, APs depolarize the presynaptic membrane and induce calcium influx to trigger neurotransmitter release[2].Endocytosis, which retrieves the membrane released by its immediately preceding exocytosis, is also of vital importance in maintaining the efficiency of synaptic transmission[24]. Here, we measured theICa and vesicle exo-endocytosis at the presynaptic nerve terminal of the calyx-type synapse with direct capacitance recordings. As we have already shown that quercetin does not affect the mEPSCs in a concentration range of 10-250 μmol/L (Figure 1), we chose 100 μmol/L extracellular quercetin, a relatively high concentration, for all of the studies in the presynaptic nerve terminal.

    Our previous studies showed that the kinetics of vesicle exo-endocytosis critically depend on stimulation intensities[25-26]. Specifically, depol20mscan deplete the RRP and induce clathrin-dependent,dynamin-dependent slow endocytosis[2], whereas depol20ms×10can induce exocytosis to a greater extent and a rapid dynamin-dependent, but clathrinindependent, form of endocytosis[27]. In control rats,depol20msinduced aICa and capacitance jump reflecting exocytosis (ΔCm) of (2.1±0.1) nA and(511±27) fF (n=6; Figure 2a-c), respectively, which were similar to our recent study[20]. The immediately subsequent capacitance decay could be fitted monoexponentially with a time constant (τ) of (16.5±0.1) s (n=6), showing slow endocytosis. The Rateendomeasured 1-2 s after depol20mswas (42±4) fF/s (n=6;Figure 2d). In the quercetin-treated group, depol20msinduced anICa and exocytosis of (2.0±0.2) nA and(573±37) fF (n=6), respectively, which were not significantly different from controls (ICa:P=0.75;ΔCm:P=0.24; Figure 2a-c). However, endocytosis was inhibited in the quercetin-treated group. Rateendowas slightly but not significantly reduced ((37±5) fF/s,P=0.56;n=6), and the capacitance decay did not return to baseline within 30 s, which is difficult to fit monoexponentially (Figure 2a, e). The remaining capacitance jump 15 s after depol20mswas (56±4)%(ΔCm15s%;n=6; Figure 2e) of the maximum ΔCm induced by depol20ms, which was significantly higher than in controls ((40±2)%,n=6;P=0.01), indicating that quercetin inhibits slow endocytosis.

    Next, we applied intensive stimulation of depol20ms×10to induce the clathrin-independent but dynamin-dependent rapid endocytosis at calyces. In controls, depol20ms×10induced a much larger calcium influx (measured by calcium charge, QICa; (316±19) pC;n=9), leading to a higher capacitance jump((1 461±97) fF,n=9; Figure 2f-h). The capacitance decay reflecting endocytosis could be fit biexponentially with rapid and slow time constants of(2.0±0.1) s and (20.6±0.1) s, respectively. The Rateendorepresenting rapid endocytosis was (238±24) fF/s(n=9). In the presence of 100 μmol/L quercetin in the extracellular solution, depol20ms×10induced a similar calcium influx and capacitance jump as in controls(QICa: (326±27) pC,P=0.78; ΔCm: (1 526±101) fF,P=0.66;n=9; Figure 2f-h). The rapid endocytosis was also slightly but not significantly reduced (Rateendo:(222±13) fF/s,P=0.61;n=9; Figure 2i). However, the residual capacitance jump measured 30 s after depol20ms×10(ΔCm30s%) was significantly higher than in controls (Control: (16±3)%; Quercetin: (32±3)%;P=0.002;n=9; Figure 2j), indicating inhibition of slow endocytosis. A previous study demonstrated that calcium initiates all forms of endocytosis[28]. In our study, we found that quercetin inhibited slow endocytosis while not affecting theICa and exocytosis. Therefore, our results may indicate that quercetin inhibits presynaptic vesicle endocytosis,especially slow endocytosis, in a calcium-independent manner.

    2.3 Quercetin slows vesicle mobilization and RRP replenishment

    Recruiting vesicles to the RRP after exocytosis is critical for RRP replenishment. Inhibition of endocytosis may slow replenishment down. To test this possibility, we applied 10 pulses of depol20msat 1 Hz at the presynaptic nerve terminal of calyces and examined the RRP recovery during the stimulation.The 1 s between pulses, which was much longer than for 10 Hz stimulation, could help us measure the endocytosis rate more accurately during stimulation.The first depol20msdepleted the RRP[29], and the capacitance jump evoked by the 2ndto the 10thdepolarizing pulse would reflect vesicle mobilization to the RRP. In the presence of 100 μmol/L quercetin in the extracellular solution, we found that the RRP replenishment rate was significantly reduced starting from the 2nddepol20ms(Figure 3a, b). A previous study showed that calcium/calmodulin sped up both the endocytosis rate and vesicle recruitment to the RRP[28,30]. However, our results demonstrated that the reduced capacitance jump in the presence of quercetin was not caused by changes in calcium influx,suggesting that quercetin may directly inhibit RRP replenishment by inhibiting endocytosis.

    To further consolidate our conclusion, we measured the RRP replenishment at various times (Δt=0.1-30 s) after depol20msand plotted the RRP replenishment curve. In controls, the RRP replenishment could be fitted double exponentially with a rapid time constant of 0.2 s and slow time constant of 7.1 s, consistent with previous reports(Figure 3c, upper; Figure 3d)[25,30]. In the presence of 100 μmol/L quercetin in the extracellular solution, the RRP recovery was much slower than in controls, with a rapid time constant of 0.2 s and a slow time constant of 13.1 s (Figure 3c, lower; Figure 3d). The slowing of RRP replenishment further confirmed that quercetin reduces RRP replenishment by inhibiting endocytosis.

    2.4 Quercetin enhances short-term depression

    The quercetin-induced inhibition of endocytosis and replenishment of RRP may lead to reduced postsynaptic responses. We investigated this possibility with fiber stimulation at the midline of the trapezoid body to evoke APs at the calyx-type synapses and recorded the EPSCs from the postsynaptic principal neuron[31-32]. At calyces, basal neuronal firing can be increased to 600-800 Hz upon stimulation[18,33]. Thus, we evoked 40 APs at a range of physiological stimulation frequencies at calyces, 5 to 200 Hz[34]. During the stimulation, the EPSC amplitude rapidly declined to a steady-state level(Figure 4a-d). We calculated the steady-state depression ratio (EPSCss/EPSC1) by averaging the EPSCs from the 31stto the 40thEPSC. As shown in Figure 4e, the steady-state depression ratio decreased as the stimulation frequency increased. In the presence of 100 μmol/L quercetin in the extracellular solution, the depression ratio was not significantly different from that of the control group at a low stimulation frequency of 5 Hz (Figure 4a, e).However, at higher stimulation frequencies (50-200 Hz), quercetin significantly enhanced synaptic depression (50 Hz: ctrl (4.5±1.1)% (n=7) and quercetin (1.4±0.5)% (n=6),P=0.03; 100 Hz: ctrl(3.4±0.5)% (n=6) and quercetin (1.4±0.5)% (n=6),P=0.02; 200 Hz: ctrl (3.0±0.6)% (n=6) and quercetin(1.0±0.4)% (n=4),P=0.049; Figure 4e). These results demonstrate that inhibition of vesicle endocytosis and RRP replenishment led to reduced EPSCs during highfrequency stimulation, with the steady-state depression being more pronounced at higher stimulation frequencies. In addition, we also calculated the PPR from the first two EPSC events of STD recordings both in the control and quercetintreated groups. We found PPR changed after quercetin treatment, further confirming that quercetin was involved in the presynaptic modulation of synaptic transmission.

    3 Discussion

    Efficient synaptic transmission in the CNS critically relies on presynaptic vesicle exo- and endocytosis. In the present study, we report that quercetin, a flavonol compound commonly found in fruits, vegetables, and medicinal plants, can inhibit vesicle endocytosis at rat calyx-type synapses located in the brainstem. Inhibition of endocytosis leads to slowed vesicle mobilization during stimulation, a reduction in RRP replenishment after stimulation, and enhancement of STD during high-frequency repetitive stimulation, a form of short-term plasticity in the postsynaptic principal neurons.

    Accumulated studies have demonstrated that quercetin can modulate neuronal excitabilityviadifferent underlying mechanisms in the CNS. In acutely isolated rat hippocampal neurons, quercetin has been reported to reduce voltage-dependent sodium currents and delay depolarization to exert neuroprotective effects[35]. Recently, TWIK-related potassium channel-1 (TREK-1) was shown to be a new target of quercetin action, which can control neuronal excitability by keeping the membrane potential below the depolarization threshold[36]. Renet al.[12]showed that quercetin increased TREK-1 current by activating PKC and reduced the excitability of pyramidal neurons in the prefrontal cortex, thereby alleviating manic behavior in mice. In addition,quercetin has been observed to modulate other channel activities in the CNS, including calcium channels[16], BK channels (large-conductance Ca2+-regulated potassium channels)[37], and TRPV1 channels[38]. The quercetin-modulated neuronal activities may further lead to modulation of the efficiency of synaptic transmission and plasticity in different brain regions. However, many studies of quercetin-modulated synaptic transmission are still controversial[16-17]due to a lack of direct evidence from the presynaptic side. The possible mechanisms for presynaptic function mainly come from the mEPSC/mIPSC frequency recordings or PPR evaluations.

    APs depolarize the presynaptic membrane,inducing calcium influx, which triggers neurotransmitter release[39-40]. Endocytosis is crucial to maintaining the efficiency of synaptic transmission by retrieving the membrane released by its immediately preceding exocytosis[41-42]. Our previous studies have shown that the kinetics of vesicle exoendocytosis critically depend on stimulation intensities[26,28]. Two major forms of vesicle endocytosis were investigated in the present study.Depol20mscan deplete the RRP and induce clathrindependent, dynamin-dependent slow endocytosis[2,43-44], whereas depol20ms×10can induce a rapid dynamin-dependent, but clathrin-independent, form of endocytosis[27-28,43,45]. We found that administration of quercetin in the extracellular solution did not affect theICa and exocytosis, but slightly reduced the rapid endocytosis and significantly inhibited the slow endocytosis (Figure 2). The slowdown of endocytosis further inhibited vesicle mobilization and RRP replenishment, which may provide a protective effect that prevents excessive excitatory synaptic transmission.

    We found that quercetin enhanced the synaptic depression during high-frequency repetitive stimulation because of slowed endocytosis (Figure 4).A previous study reported that, in synapsin I/II double knock-out (DKO) mice, the kinetics of vesicle exoendocytosis are not altered. However, the STD was dramatically enhanced in DKO mice during highfrequency stimulation[31]. Synapsin proteins may help boost the release probability during repetitive stimulation. Whether quercetin can also inhibit the synapsin function and contribute to the enhanced STD remains unclear.

    Our previous study showed that calmodulin is the calcium sensor of endocytosis, and calcium/calmodulin facilitates RRP replenishment, which is critical in maintaining release during repetitive firing[28]. However, in the present study, we found that quercetin inhibits vesicle endocytosis and RRP replenishment while not affecting the calcium influx and exocytosis. This observation is somewhat surprising because it is not consistent with the calcium/calmodulin-dependent mechanism.Interestingly, a previous study also reported that the RRP replenishment time course was slowed by more intense stimulation, which presumably should induce more calcium influx and activate calmodulin to a higher level[25]. We also confirmed this phenomenon with similar protocols[30]. In addition, calcineurin,which is activated by calcium/calmodulin, has been shown to control the speed of both rapid and slow endocytosis by dephosphorylating endocytic proteins[46]. Whether calcineurin is also involved in the calcium/calmodulin-independent mechanism needs to be further clarified. Thus, it would be of great interest to explore a possible mechanism other than the calcium/calmodulin-dependent mechanism in future studies, which may help elucidate the generation of postsynaptic short-term plasticity upon intense stimulation.

    4 Conclusion

    In conclusion, we investigated the quercetinmodulated presynaptic mechanisms at a glutamatergic central synapse. By uncovering the precise kinetics in synaptic transmission and plasticity, our research may provide new insights for clinical application of quercetin.

    1024手机看黄色片| 黑人操中国人逼视频| 麻豆成人av在线观看| av天堂在线播放| 国产精品二区激情视频| 久久性视频一级片| 级片在线观看| 999久久久精品免费观看国产| 亚洲第一av免费看| 大型av网站在线播放| 欧美黄色淫秽网站| 无限看片的www在线观看| 女人高潮潮喷娇喘18禁视频| av在线天堂中文字幕| 中文字幕人妻熟女乱码| 波多野结衣巨乳人妻| 黄色 视频免费看| 日韩欧美三级三区| 嫁个100分男人电影在线观看| 午夜成年电影在线免费观看| 黄色成人免费大全| 国产91精品成人一区二区三区| 大型av网站在线播放| 亚洲欧美精品综合久久99| 亚洲专区字幕在线| 中文字幕人成人乱码亚洲影| a级毛片在线看网站| 中出人妻视频一区二区| 国语自产精品视频在线第100页| 亚洲国产精品999在线| 成人免费观看视频高清| 欧美色欧美亚洲另类二区| 看片在线看免费视频| 黄色 视频免费看| 亚洲精品色激情综合| 精品久久久久久久末码| 九色国产91popny在线| 亚洲人成网站在线播放欧美日韩| 深夜精品福利| 99久久国产精品久久久| 在线观看舔阴道视频| 男人舔女人的私密视频| 色综合站精品国产| 国产单亲对白刺激| 成人国产综合亚洲| 男人舔女人下体高潮全视频| 欧美成人一区二区免费高清观看 | 女性生殖器流出的白浆| 精品乱码久久久久久99久播| 国产精品日韩av在线免费观看| 黄片大片在线免费观看| 欧美久久黑人一区二区| 久久久久久人人人人人| or卡值多少钱| aaaaa片日本免费| 亚洲av片天天在线观看| 波多野结衣av一区二区av| 丝袜美腿诱惑在线| 欧美另类亚洲清纯唯美| 国产亚洲av高清不卡| 日韩欧美一区视频在线观看| 桃红色精品国产亚洲av| 夜夜躁狠狠躁天天躁| 999久久久精品免费观看国产| 在线免费观看的www视频| 国产精品久久视频播放| 国产精品一区二区免费欧美| 12—13女人毛片做爰片一| 哪里可以看免费的av片| 两人在一起打扑克的视频| 欧美日本视频| 日韩 欧美 亚洲 中文字幕| 久久久久久久精品吃奶| 午夜视频精品福利| 国产不卡一卡二| 欧美日韩乱码在线| 久久伊人香网站| 曰老女人黄片| 久久精品aⅴ一区二区三区四区| 亚洲精华国产精华精| 国产精品 欧美亚洲| 国产精品一区二区精品视频观看| 久久久久久久久久黄片| 三级毛片av免费| 精品国产国语对白av| 日本五十路高清| 99国产综合亚洲精品| 久久久国产成人精品二区| 无限看片的www在线观看| 国产又爽黄色视频| 成人手机av| 精品一区二区三区av网在线观看| 男人舔女人的私密视频| 国产成人精品无人区| www.精华液| 日本成人三级电影网站| 99精品欧美一区二区三区四区| 欧美人与性动交α欧美精品济南到| 国产激情偷乱视频一区二区| 91成人精品电影| 国产黄色小视频在线观看| 亚洲欧美精品综合久久99| 欧美日韩精品网址| 亚洲男人天堂网一区| 好男人在线观看高清免费视频 | 精品久久久久久久毛片微露脸| 国产日本99.免费观看| 亚洲专区字幕在线| 国产精品,欧美在线| 国产色视频综合| 日韩大尺度精品在线看网址| 神马国产精品三级电影在线观看 | 精品久久蜜臀av无| 精品国产亚洲在线| 俄罗斯特黄特色一大片| 欧美中文综合在线视频| 日韩欧美 国产精品| videosex国产| 熟女少妇亚洲综合色aaa.| 一级黄色大片毛片| 国产精品日韩av在线免费观看| 97超级碰碰碰精品色视频在线观看| 亚洲国产日韩欧美精品在线观看 | 最新美女视频免费是黄的| 久久久久久免费高清国产稀缺| 欧美激情极品国产一区二区三区| 欧美成人免费av一区二区三区| 国产精品乱码一区二三区的特点| 18禁国产床啪视频网站| 非洲黑人性xxxx精品又粗又长| 中文字幕精品免费在线观看视频| 亚洲av美国av| 亚洲免费av在线视频| 女性被躁到高潮视频| 丰满的人妻完整版| 国产真实乱freesex| 在线国产一区二区在线| 草草在线视频免费看| 亚洲五月婷婷丁香| 午夜日韩欧美国产| 久久精品国产清高在天天线| 在线观看日韩欧美| 亚洲av五月六月丁香网| 美女高潮喷水抽搐中文字幕| 十分钟在线观看高清视频www| 国产精品国产高清国产av| 1024香蕉在线观看| 给我免费播放毛片高清在线观看| 成人永久免费在线观看视频| 88av欧美| 亚洲免费av在线视频| 欧美精品亚洲一区二区| 欧美黑人欧美精品刺激| 亚洲欧美精品综合久久99| 黑人巨大精品欧美一区二区mp4| 天堂√8在线中文| 两人在一起打扑克的视频| 老司机在亚洲福利影院| 女性生殖器流出的白浆| 国产高清videossex| 欧美亚洲日本最大视频资源| 日日干狠狠操夜夜爽| 亚洲天堂国产精品一区在线| 午夜福利18| 精品久久久久久久末码| 国产亚洲精品一区二区www| 久久狼人影院| 日本一区二区免费在线视频| 两性午夜刺激爽爽歪歪视频在线观看 | 亚洲精品久久成人aⅴ小说| 久久性视频一级片| 久久久久国产精品人妻aⅴ院| 免费电影在线观看免费观看| 亚洲成人久久爱视频| 日韩国内少妇激情av| 免费av毛片视频| av福利片在线| 少妇 在线观看| 国产精品日韩av在线免费观看| 欧美成人免费av一区二区三区| 亚洲精品在线美女| а√天堂www在线а√下载| 中文在线观看免费www的网站 | 国产亚洲欧美在线一区二区| 色尼玛亚洲综合影院| 亚洲专区中文字幕在线| 极品教师在线免费播放| 欧美黄色淫秽网站| 国产视频内射| 丰满人妻熟妇乱又伦精品不卡| 亚洲最大成人中文| 欧美av亚洲av综合av国产av| or卡值多少钱| 午夜激情福利司机影院| 国产激情欧美一区二区| 999精品在线视频| 免费在线观看完整版高清| a级毛片在线看网站| 国产成人啪精品午夜网站| 亚洲最大成人中文| 国产精品久久久av美女十八| 香蕉丝袜av| 午夜久久久在线观看| 久久久久久九九精品二区国产 | 中出人妻视频一区二区| 日韩精品青青久久久久久| 人成视频在线观看免费观看| 精品高清国产在线一区| 美女高潮喷水抽搐中文字幕| 国产精品久久电影中文字幕| 午夜福利高清视频| 99久久无色码亚洲精品果冻| 亚洲精品av麻豆狂野| 婷婷亚洲欧美| 最好的美女福利视频网| 久久久久久大精品| av福利片在线| 免费一级毛片在线播放高清视频| 18禁观看日本| 女性生殖器流出的白浆| 一进一出抽搐动态| 国产成人精品久久二区二区免费| 少妇粗大呻吟视频| 久久香蕉国产精品| 国产国语露脸激情在线看| 国产精品电影一区二区三区| 老司机靠b影院| 中文字幕人妻丝袜一区二区| 青草久久国产| 亚洲 欧美一区二区三区| 久久久久久九九精品二区国产 | 欧美在线一区亚洲| 搡老熟女国产l中国老女人| 欧美激情 高清一区二区三区| 两人在一起打扑克的视频| 久久香蕉精品热| 国内毛片毛片毛片毛片毛片| 中文字幕av电影在线播放| 久久精品夜夜夜夜夜久久蜜豆 | √禁漫天堂资源中文www| 午夜视频精品福利| 桃红色精品国产亚洲av| 色婷婷久久久亚洲欧美| 成在线人永久免费视频| 一级毛片精品| 免费在线观看完整版高清| 少妇的丰满在线观看| 999精品在线视频| 欧美zozozo另类| 成人精品一区二区免费| 国产精品二区激情视频| 在线播放国产精品三级| 精华霜和精华液先用哪个| 欧美色视频一区免费| 欧美精品啪啪一区二区三区| 天天添夜夜摸| 一级毛片高清免费大全| 波多野结衣高清作品| 成熟少妇高潮喷水视频| 久久人人精品亚洲av| 欧美色视频一区免费| 欧美日韩精品网址| 51午夜福利影视在线观看| 午夜免费鲁丝| 国内揄拍国产精品人妻在线 | 亚洲中文字幕一区二区三区有码在线看 | 久久人人精品亚洲av| 精品欧美国产一区二区三| 老司机在亚洲福利影院| 亚洲av第一区精品v没综合| 久久 成人 亚洲| 精品国产美女av久久久久小说| 成人国语在线视频| ponron亚洲| 中亚洲国语对白在线视频| 国产精品亚洲美女久久久| 国产黄a三级三级三级人| 正在播放国产对白刺激| 国产主播在线观看一区二区| 久久草成人影院| 久久久久久人人人人人| 国产av又大| 久热爱精品视频在线9| 免费观看人在逋| 亚洲精品av麻豆狂野| 久久精品国产清高在天天线| 午夜成年电影在线免费观看| 一a级毛片在线观看| 国产成人一区二区三区免费视频网站| 久久久久久免费高清国产稀缺| 人成视频在线观看免费观看| 色婷婷久久久亚洲欧美| 男女之事视频高清在线观看| 一本综合久久免费| 国产三级黄色录像| 中文字幕久久专区| 国产成年人精品一区二区| www.精华液| 波多野结衣av一区二区av| 国产国语露脸激情在线看| 亚洲三区欧美一区| 日韩大码丰满熟妇| 国产精品98久久久久久宅男小说| 亚洲精品中文字幕一二三四区| 亚洲av中文字字幕乱码综合 | 黑人操中国人逼视频| АⅤ资源中文在线天堂| 淫妇啪啪啪对白视频| 两个人免费观看高清视频| 在线av久久热| 91成人精品电影| 女警被强在线播放| 亚洲国产欧美日韩在线播放| 嫁个100分男人电影在线观看| 手机成人av网站| 免费女性裸体啪啪无遮挡网站| 色综合婷婷激情| 在线天堂中文资源库| 桃色一区二区三区在线观看| 国产av在哪里看| 久久香蕉激情| 日韩欧美 国产精品| 黄片大片在线免费观看| 亚洲三区欧美一区| 男人的好看免费观看在线视频 | 日韩精品免费视频一区二区三区| 精品久久蜜臀av无| 精华霜和精华液先用哪个| 夜夜夜夜夜久久久久| 久久久久久免费高清国产稀缺| 中亚洲国语对白在线视频| 岛国在线观看网站| 亚洲av第一区精品v没综合| 搡老熟女国产l中国老女人| 国产亚洲欧美在线一区二区| 波多野结衣巨乳人妻| 啦啦啦 在线观看视频| 一本精品99久久精品77| 宅男免费午夜| 一本精品99久久精品77| 免费在线观看完整版高清| 久久久久精品国产欧美久久久| 一区福利在线观看| 午夜久久久在线观看| 中文字幕人成人乱码亚洲影| 欧美另类亚洲清纯唯美| 欧美黑人精品巨大| 日本在线视频免费播放| 欧美午夜高清在线| 最新美女视频免费是黄的| 色综合亚洲欧美另类图片| 亚洲国产精品久久男人天堂| 日韩欧美一区二区三区在线观看| 黄色丝袜av网址大全| 亚洲第一av免费看| 国产av又大| 熟妇人妻久久中文字幕3abv| 国产一区二区三区视频了| 啦啦啦 在线观看视频| 久久精品国产99精品国产亚洲性色| 亚洲精品一卡2卡三卡4卡5卡| 美女高潮到喷水免费观看| 熟女少妇亚洲综合色aaa.| 国产高清视频在线播放一区| 亚洲欧美一区二区三区黑人| 国产在线精品亚洲第一网站| 97人妻精品一区二区三区麻豆 | 一级毛片高清免费大全| 久久精品aⅴ一区二区三区四区| 国产国语露脸激情在线看| 国产亚洲av高清不卡| 一夜夜www| 国产精品野战在线观看| 国产精品久久久久久精品电影 | 国产野战对白在线观看| 亚洲色图 男人天堂 中文字幕| 午夜福利成人在线免费观看| 日韩欧美国产一区二区入口| 久久久久九九精品影院| 黑人欧美特级aaaaaa片| 中出人妻视频一区二区| 一区二区三区激情视频| a级毛片a级免费在线| 亚洲天堂国产精品一区在线| 一区二区日韩欧美中文字幕| 校园春色视频在线观看| 99国产极品粉嫩在线观看| 欧美性猛交黑人性爽| 国产成人啪精品午夜网站| 嫩草影视91久久| 最近最新免费中文字幕在线| 麻豆一二三区av精品| av欧美777| 亚洲色图 男人天堂 中文字幕| 两性午夜刺激爽爽歪歪视频在线观看 | 国产久久久一区二区三区| 成人国产一区最新在线观看| 中亚洲国语对白在线视频| 91九色精品人成在线观看| 99精品欧美一区二区三区四区| 色综合欧美亚洲国产小说| 亚洲精品国产区一区二| 国产成人精品无人区| 黑人操中国人逼视频| 国产成年人精品一区二区| 亚洲国产中文字幕在线视频| 国产精品久久久久久亚洲av鲁大| 国产精华一区二区三区| 又黄又爽又免费观看的视频| 国产一区二区三区在线臀色熟女| 久久久久久久久免费视频了| 精品久久久久久,| 18禁黄网站禁片午夜丰满| 亚洲人成网站在线播放欧美日韩| 精品免费久久久久久久清纯| 99国产精品99久久久久| 久久香蕉国产精品| 国产精品亚洲美女久久久| 满18在线观看网站| 亚洲人成网站在线播放欧美日韩| 中文字幕人妻熟女乱码| 国产三级在线视频| 日韩欧美在线二视频| 他把我摸到了高潮在线观看| 欧美最黄视频在线播放免费| 久久中文字幕人妻熟女| 激情在线观看视频在线高清| 青草久久国产| 亚洲av成人不卡在线观看播放网| 老司机午夜福利在线观看视频| 久久精品夜夜夜夜夜久久蜜豆 | 男男h啪啪无遮挡| av在线天堂中文字幕| 757午夜福利合集在线观看| 欧美在线一区亚洲| 亚洲精品在线美女| 亚洲人成伊人成综合网2020| 久久国产精品男人的天堂亚洲| 少妇的丰满在线观看| 久久精品aⅴ一区二区三区四区| 成人18禁高潮啪啪吃奶动态图| 哪里可以看免费的av片| av电影中文网址| 满18在线观看网站| 亚洲国产高清在线一区二区三 | 亚洲三区欧美一区| 99久久国产精品久久久| www日本黄色视频网| 午夜成年电影在线免费观看| 免费高清视频大片| 久久人人精品亚洲av| 亚洲欧美精品综合久久99| 他把我摸到了高潮在线观看| 成人欧美大片| 香蕉丝袜av| 国产精品99久久99久久久不卡| 高清毛片免费观看视频网站| 嫩草影视91久久| 亚洲免费av在线视频| 久久亚洲精品不卡| 怎么达到女性高潮| 欧美激情高清一区二区三区| 国产精品98久久久久久宅男小说| 欧美人与性动交α欧美精品济南到| 99国产极品粉嫩在线观看| 成人三级做爰电影| 日本精品一区二区三区蜜桃| 中文资源天堂在线| 久久天躁狠狠躁夜夜2o2o| 久久婷婷成人综合色麻豆| 亚洲人成伊人成综合网2020| 国产高清激情床上av| 黑人欧美特级aaaaaa片| 国产精品自产拍在线观看55亚洲| 又黄又爽又免费观看的视频| tocl精华| 午夜福利18| 在线播放国产精品三级| 美女高潮到喷水免费观看| 超碰成人久久| 十八禁人妻一区二区| 亚洲 国产 在线| 亚洲欧美精品综合久久99| 亚洲,欧美精品.| 看片在线看免费视频| 国产高清有码在线观看视频 | 欧美日本亚洲视频在线播放| 在线播放国产精品三级| 久久久国产精品麻豆| 少妇熟女aⅴ在线视频| 男人的好看免费观看在线视频 | 丝袜美腿诱惑在线| 国产亚洲av高清不卡| 国产麻豆成人av免费视频| 精品国产一区二区三区四区第35| 精品久久久久久久久久免费视频| 久久中文字幕人妻熟女| 欧美成人午夜精品| 欧美日韩一级在线毛片| 搡老岳熟女国产| 一卡2卡三卡四卡精品乱码亚洲| 精品国产一区二区三区四区第35| 久久久久国产一级毛片高清牌| 男女午夜视频在线观看| 欧美日韩一级在线毛片| 亚洲精品在线美女| 午夜精品在线福利| 老熟妇仑乱视频hdxx| 制服诱惑二区| 日韩欧美 国产精品| 中文字幕人妻熟女乱码| 亚洲专区中文字幕在线| 国产极品粉嫩免费观看在线| 一进一出抽搐gif免费好疼| 国产av又大| 日韩欧美 国产精品| 99久久国产精品久久久| 亚洲精品在线观看二区| 国产日本99.免费观看| 免费看a级黄色片| 无人区码免费观看不卡| av中文乱码字幕在线| 首页视频小说图片口味搜索| 色在线成人网| 91麻豆av在线| avwww免费| 久久久久精品国产欧美久久久| 国产私拍福利视频在线观看| 亚洲精品国产一区二区精华液| 黄色女人牲交| 欧美大码av| 国产精品二区激情视频| 窝窝影院91人妻| or卡值多少钱| 两性午夜刺激爽爽歪歪视频在线观看 | 日韩精品免费视频一区二区三区| 黄色丝袜av网址大全| 亚洲成av片中文字幕在线观看| 日日爽夜夜爽网站| 亚洲精品久久成人aⅴ小说| 视频区欧美日本亚洲| 精品久久久久久久久久免费视频| 长腿黑丝高跟| 中文字幕av电影在线播放| 国产亚洲欧美在线一区二区| 99久久99久久久精品蜜桃| 国内毛片毛片毛片毛片毛片| 少妇熟女aⅴ在线视频| 男女视频在线观看网站免费 | 国产乱人伦免费视频| 国产成人影院久久av| 亚洲一区二区三区色噜噜| 亚洲人成电影免费在线| av中文乱码字幕在线| 精品久久蜜臀av无| 婷婷六月久久综合丁香| 精品久久久久久久久久久久久 | 国产精品美女特级片免费视频播放器 | 色婷婷久久久亚洲欧美| 一区二区三区精品91| 亚洲国产精品999在线| 亚洲欧美日韩高清在线视频| 久久中文字幕人妻熟女| 国产一级毛片七仙女欲春2 | 国产一卡二卡三卡精品| 国产伦一二天堂av在线观看| 真人一进一出gif抽搐免费| 在线视频色国产色| 亚洲在线自拍视频| 亚洲aⅴ乱码一区二区在线播放 | 俄罗斯特黄特色一大片| 不卡一级毛片| 亚洲国产中文字幕在线视频| 免费高清在线观看日韩| 国产午夜福利久久久久久| 成人三级做爰电影| 成人亚洲精品一区在线观看| 亚洲人成网站在线播放欧美日韩| 少妇的丰满在线观看| 黄色视频不卡| av免费在线观看网站| 桃色一区二区三区在线观看| 18禁国产床啪视频网站| 波多野结衣巨乳人妻| 亚洲七黄色美女视频| 国产一区二区三区视频了| 亚洲精品国产一区二区精华液| 黄色视频不卡| 99国产精品一区二区三区| 中国美女看黄片| 欧美又色又爽又黄视频| 亚洲天堂国产精品一区在线| 日本a在线网址| 国产爱豆传媒在线观看 | 黄色成人免费大全| 十分钟在线观看高清视频www| 哪里可以看免费的av片| 变态另类成人亚洲欧美熟女| 国产精品亚洲av一区麻豆| 19禁男女啪啪无遮挡网站| 精品不卡国产一区二区三区| 久久精品国产99精品国产亚洲性色| 亚洲精品粉嫩美女一区| 一边摸一边做爽爽视频免费| 亚洲第一欧美日韩一区二区三区| 亚洲av日韩精品久久久久久密| 黑人巨大精品欧美一区二区mp4| 精品久久蜜臀av无| 久久久久久大精品| 国产午夜福利久久久久久| 欧美中文综合在线视频| 久久人妻福利社区极品人妻图片| ponron亚洲| 观看免费一级毛片| 国产成人精品无人区|