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1 Garvan Institute of Medical Research, Sydney, Australia
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John Curtin School of Medical Research, Australian National University, Canberra, Australia
| Abstract |
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(Received 16 April 2004;
accepted after revision 23 August 2004;
first published online 26 August 2004)
Corresponding author S. Oleskevich: Garvan Institute of Medical Research, St-Vincents Hospital, 384 Victoria Street, Sydney, NSW 2010, Australia. Email: s.oleskevich{at}garvan.org.au
| Introduction |
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The two giant calyceal terminals share morphological and physiological features. Both terminals show developmental changes in morphology from a spoon-shaped swelling to a finger-like structure that covers 4060% of the target soma (Ryugo & Fekete, 1982; Kuwabara et al. 1991; Kandler & Friauf, 1993; Smith et al. 1998; Satzler et al. 2002; Taschenberger et al. 2002). The area of the calyx terminal is greater than the endbulb terminal yet both terminals contain hundreds of active zones with clusters of spherical vesicles apposed to slightly curved postsynaptic densities (Neises et al. 1982; Ryugo et al. 1996, 1997; Smith et al. 1998; Rowland et al. 2000; Nicol & Walmsley, 2002; Satzler et al. 2002; Taschenberger et al. 2002; Lee et al. 2003). Both synapses also share developmental changes in physiology as postsynaptic glutamatergic NMDA receptors are replaced by AMPA receptors at maturity (Bellingham et al. 1998; Chuhma & Ohmori, 1998; Taschenberger & von Gersdorff, 2000; Futai et al. 2001; Joshi & Wang, 2002). The AMPA receptor-mediated responses show robust short-term depression to high-frequency stimulation yet are among the fastest and largest in the central nervous system, allowing presynaptic action potentials to generate postsynaptic spikes with very few failures and at very high frequencies, up to 800 Hz (Wu & Kelly, 1993; Taschenberger & von Gersdorff, 2000; Oleskevich & Walmsley, 2002; Schneggenburger et al. 2002).
Despite numerous similarities, the two calyceal synapses occur at different positions in the neuronal circuits for sound localization. Endbulb synapses occur earlier in the ITD and ILD circuits than calyx synapses. Is this positional difference reflected in a functional difference? Previous studies show that the endbulb but not the calyx synapse can improve the degree of phase-locking (the ability to generate spikes at a preferred phase of the stimulus period) of its excitatory input from the auditory nerve (Smith et al. 1998; Paolini et al. 2001). Also, different types and numbers of afferents supplement the calyceal input in the AVCN and MNTB regions, possibly resulting in different degrees of signal modulation. The bushy cells at the endbulb synapse receive diverse inhibitory inputs from the cochlear nucleus, the trapezoid nucleus and the superior paraolivary nucleus (Wu & Oertel, 1986; Roberts & Ribak, 1987; Schofield, 1991; Kolston et al. 1992; Schofield, 1994). Pre- and postsynaptic modulation may occur at the calyx synapse via excitatory and inhibitory afferents to the presynaptic terminal and postsynaptic MNTB principal cells (Trussell, 2002; Von Gersdorff & Borst, 2002).
Here we investigate synaptic transmission at two calyceal synapses to determine whether functional differences are present in these superficially similar synapses. We investigate the parameters of evoked and spontaneous synaptic transmission in the first detailed comparison of the endbulb and calyx synapse. In addition to basic transmission, we probe how the synapses react to perturbations in synaptic input using deaf mutant mice. Previously we reported that a lack of auditory input to the endbulb of Held synapse resulted in numerous changes including evoked EPSC amplitude, release probability, tetanic depression and the frequency of asynchronous release (Oleskevich & Walmsley, 2002). Here we investigate whether these changes in synaptic transmission propagate along the auditory pathway to the calyx of Held synapse. We show that the two giant terminals have different basal properties of synaptic transmission and respond differently to the absence of synaptic input.
| Methods |
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resistance) contained (mM): 120 CsCl, 4 NaCl, 4 MgCl2, 0.001 CaCl2, 10 Hepes, 2 Mg-ATP, 0.2 GTP-tris, and 10 EGTA (pH 7.3; 300 mOsm). Series resistance, which was < 10 M
, was compensated by >80%. Excitatory postsynaptic currents (EPSCs), recorded under voltage clamp (holding potential 60 mV), were evoked by focal stimulation of afferent fibres using an extracellular electrode filled with ACSF in the AVCN or a bipolar tungsten microelectrode positioned at the brainstem midline close to the MNTB (0.1 ms; 2090 V; 0.2 Hz). Trains of stimuli consisted of 15 pulses at 100 Hz at 30 s intervals. Stimulation intensity was set at 1.5 times threshold for all experiments. The synaptic currents were recorded and filtered at 10 kHz with an Axopatch 200B amplifier (Axon Instruments) before being digitized at 20 kHz. Mean peak amplitudes were measured as the mean of 30150 single evoked responses. Excess variance in the amplitude of the synaptic currents was minimized by using a caesium chloride-based internal solution to block potassium conductances, and by adding QX-314 intracellularly to block sodium channels. Spontaneous miniature excitatory postsynaptic currents (mEPSCs) were detected using a sliding template procedure which detected all spontaneous events with amplitudes greater than 2.54 standard deviations of the background noise (Clements & Bekkers, 1997). Approximately 2001000 miniature events were collected for each cell for frequency measurements. Data acquisition and analysis was performed using AxoGraph 4.9 (Axon Instruments).
Variancemean analysis was used to estimate three parameters of synaptic function: the average amplitude of the postsynaptic response to a vesicle of transmitter (Qav); the average probability of vesicle release from a release site (Pr); and the number of independent release sites (N). These three parameters can be estimated from the relationship between the variance and mean amplitude of evoked EPSCS recorded under different release probability conditions (Clements & Silver, 2000). Release probability conditions were modulated by increasing or decreasing the extracellular calcium concentration (0.23.0 mM). To compare Qav with mean mEPSC amplitude, a correction factor was calculated from the ratio of peak amplitude: charge for the evoked and miniature EPSCs, and applied to the Qav value from the variancemean analysis. This corrects for an underestimate of mean Qav as the contribution of individual quanta to evoked EPSC peak amplitude will be less than expected due to the asynchrony of release (Isaacson & Walmsley, 1995; Bellingham et al. 1998).
Bicuculline methochloride (10 µM; Tocris) (+)-2-amino-5-phosphonopentanoic acid (D-AP5; 30 µM; Tocris), tetrodotoxin (TTX; 1 µM; Alomone), tetra-acetoxymethyl ester (30 µM; EGTA-AM; Molecular Probes) and strychnine hydrochloride (1 µM; Sigma) were added, as indicated, to the Ringer's solution and applied by bath perfusion. Lidocaine N-ethyl bromide (QX-314; 2 mM; RBI) was added to the patch electrode solution. Results are expressed as means ± standard error of the mean (S.E.M.) and statistical tests of significance were determined with parametric tests (t test; factorial analysis of variance (ANOVA) with Fischer PLSD post hoc test; restricted maximum likelihood (REML) test). The mEPSC frequency values showed a skewed distribution and therefore were converted to log scale for statistical comparison between the two calyces.
Data from the endbulb synapse of a previously published report (Oleskevich & Walmsley, 2002) were re-analysed and used as comparison data against the calyx synapse. In most cases, new data from additional experiments at the endbulb synapse have been included. All data at the calyx synapse are new.
| Results |
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Synaptic transmission was compared at two calyceal terminals in the central auditory pathway of normal mice. Focal stimulation of the auditory nerve evoked synaptic responses at the endbulb of Heldbushy cell connection in the AVCN (endbulb synapse; n = 26) while bipolar stimulation at the brainstem midline evoked responses at the calyx of Heldprincipal cell connection in the MNTB (calyx synapse; n = 31; Fig. 1A). Evoked responses were AMPA receptor-mediated, isolated by the addition of strychnine, bicuculline and D- AP5. The mean amplitude of evoked AMPA excitatory postsynaptic currents (eEPSCs) was almost two-fold greater at the calyx (5.1 ± 0.8 nA; n = 11) versus endbulb synapse (2.9 ± 0.5 nA; n = 21; P < 0.01; Fig. 1B; Table 1). The eEPSC responses were also slower at the calyx synapse with the mean time constant of decay greater at the calyx (0.75 ± 0.07 ms; n = 11) versus endbulb synapse (0.48 ± 0.02 ms; n = 13; P < 0.001).
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To investigate whether differences in eEPSCs and mEPSCs between the endbulb and calyx synapse could be explained by differences in quantal parameters, we used variancemean analysis to estimate quantal amplitude (Qav), the average probability for releasing at least one vesicle from an active zone following a single pre-synaptic action potential (Pr), and number of release sites (N; Fig. 2). A visual inspection of the parabolic fit to the variancemean relationship suggests a difference in Pr and N between the endbulb and calyx synapse (Fig. 2A and B). We observed a 60% larger mean release probability at the calyx (0.78 ± 0.07; n = 7) versus endbulb synapse (0.49 ± 0.10; n = 5; P < 0.05) at the standard external calcium concentration of 2 mM (Fig. 2C). The mean Qav (corrected for asynchrony, see Methods) was significantly smaller at the calyx versus endbulb synapse (P < 0.0001), consistent with the difference in peak amplitude measures of mEPSCs (Fig. 1C; Table 1). The number of release sites was 400% greater at the calyx versus the endbulb synapse (P < 0.0001; Table 1). The combination of larger Pr and larger N presumably underlies the observed larger eEPSC amplitude at the calyx.
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The larger release probability at the calyx synapse could be influenced by the number of docked and primed vesicles at the release site (Murthy & Stevens, 1998; Walmsley et al. 1998; Schikorski & Stevens, 1999; Taschenberger et al. 2002). We therefore measured the size of the RRP using a technique first described at a nervemuscle synapse (Elmqvist & Quastel, 1965; Schneggenburger et al. 1999). Trains of stimuli (100 Hz) were applied to the endbulb and calyx synapse and the cumulative EPSC amplitude (NQav) was plotted versus stimulus number (Fig. 3E). A linear fit was applied from stimulus number 1015 and the y-intercept of the linear fit provided an estimate of NQav. The number of vesicles (ves) in the RRP, calculated from NQav/Qav, was almost 10-fold greater in the calyx (1025 ves, n = 5) versus endbulb synapse (112 ves, n = 7; P < 0.005; Fig. 3F; Table 1). Using the mean value of N from the variancemean analysis, the RRP size per release site was not statistically different between the two synapses (endbulb, 1.2 ± 0.2 ves (release site)1; calyx, 2.1 ± 0.6 ves (release site)1). The probability of release for a single vesicle from the readily releasable pool (Pves), calculated from the ratio of the first EPSC amplitude and the RRP, was not significantly different between the endbulb (0.53 ± 0.03) and calyx synapses (0.49 ± 0.03).
Effect of deafness is different at the calyx versus endbulb synapse
In addition to the observed differences in basal synaptic transmission between the two calyceal synapses, we investigated the modulation of synaptic transmission following alterations in synaptic input. We have previously shown that the endbulb synapse undergoes significant modulation by a lack of synaptic input (Oleskevich & Walmsley, 2002). Here we investigate whether synaptic transmission at the calyx synapse is also affected in congenitally deaf mice. We used deafness mutant mice (dn/dn) which are profoundly deaf from birth due to abnormal hair cells and thus little or no evoked synaptic activity reaches the endbulb or calyx synapses. Whole-cell recordings were made from bushy cells in the AVCN of deaf mice (n = 35) and from principal cells in the MNTB of deaf mice (n = 28; Fig. 4). There was no difference in age groups between deaf and normal animals at the endbulb or calyx synapse for measurements of eEPSCs, mEPSCs, release probability, tetanic depression and aEPSC frequency. At the endbulb synapse, the mean amplitude of eEPSCs was significantly greater in the deaf mice (normal, 2.9 ± 0.5 nA; deaf, 4.8 ± 0.6 nA, n = 34; P < 0.02; Fig. 4B). In contrast, eEPSC amplitudes at the calyx synapse were similar between normal and deaf mice (normal, 5.1 ± 0.8 nA, n = 11; deaf, 6.0 ± 1.2 nA, n = 7).
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The two calyceal synapses respond differently to trains of stimuli in deafness mutant mice. Tetanic depression at the endbulb synapse was significantly greater in deaf (93 ± 1% of initial EPSC; n = 18) versus normal mice (88 ± 1% of initial EPSC; n = 6; P < 0.001; Fig. 6A, C). At the calyx synapse, tetanic depression was similar between deaf (73 ± 5% of the initial eEPSC; n = 5) and normal mice (72 ± 4% of the initial eEPSC; n = 5; Fig. 6B, C). The effect of deafness on the frequency of aEPSCs was pronounced at the endbulb synapse where a 10-fold greater rate of aEPSC release was observed in deaf mice (normal, 7 ± 1 Hz; n = 6; deaf, 98 ± 21 Hz, n = 18, P < 0.01, Fig. 6A inset and Fig. 6D). The higher rate of aEPSC release could contribute to the larger tetanic depression observed at the endbulb synapse in deaf mice. No change in aEPSC frequency was observed at the calyx synapse of normal (n = 5) and deaf mice (n = 5; Fig. 6B inset and Fig. 6D; Table 1). There was no effect of deafness on the RRP, the RRP per release site or Pves at the endbulb or calyx synapse (data not shown).
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| Discussion |
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Short-term depression during high-frequency simulation
In response to high-frequency stimulation, the postsynaptic AMPA response quickly depresses to a steady-state level at both the calyx and endbulb synapse. This short-term or tetanic depression is primarily caused by depletion of the readily releasable pool of vesicles and desensitization of postsynaptic AMPA receptors but may also include presynaptic mechanisms (for review see von Gersdorff & Borst, 2002). The response is reduced substantially (by 70%) at the calyx synapse during a train of stimuli, consistent with previous findings (72% and 75% depression at the calyx synapse and 93% depression at the endbulb synapse in the avian nucleus magnocellularis) (Taschenberger & von Gersdorff, 2000; Brenowitz & Trussell, 2001; Joshi & Wang, 2002). Some studies suggest that the steady-state level of depression is determined by the rate of vesicle depletion versus vesicle replenishment and is independent of the initial release probability (O'Donovan & Rinzel, 1997). However, a correlation between release probability and tetanic depression has been demonstrated at endbulb synapses in the mouse and chick, and here at the calyx synapse where a higher release probability was observed with less tetanic depression (Brenowitz et al. 1998; Brenowitz & Trussell, 2001; Oleskevich & Walmsley, 2002). Less tetanic depression was also associated with a larger RRP size, in agreement with previous developmental studies at the calyx synapse (Taschenberger & von Gersdorff, 2000; Iwasaki & Takahashi, 2001).
Delayed asynchronous transmitter release
The gradual accumulation of residual calcium in the presynaptic terminal during a train of stimuli is thought to cause a delayed asynchronous release of transmitter. Delayed asynchronous release may be especially significant in neuronal pathways that commonly respond with spike trains, such as the auditory pathway. Asynchronous release has been related to the calcium buffering capacity in the presynaptic terminal. The application of calcium buffers can reduce the frequency of aEPSCs at the calyx synapse of young animals, and in hippocampal cultures (Chuhma et al. 2001; Hagler & Goda, 2001; Otsu et al. 2004). At the endbulb synapse in deafness mutant mice, the application of the membrane-permeable calcium buffer, EGTA-AM, reduced asynchronous release and relieved tetanic depression (Oleskevich & Walmsley, 2002). This suggests that high levels of asynchronous release are sufficient to deplete the RRP and contribute to tetanic depression (Hagler & Goda, 2001; Otsu et al. 2004). However, low levels of asynchronous release may result in less tetanic depression as observed at the calyx synapse (less asynchronous release and less tetanic depression compared to the endbulb synapse). The lower level of aEPSC release may relate to enhanced calcium buffering capacity in the calyx compared to the endbulb terminal. Differences in calcium-binding proteins, in particular calbindin, may underlie differences in calcium buffering capacities at these two calyceal terminals (Caicedo et al. 1996; Caicedo et al. 1997).
Spontaneous miniature transmitter release
Spontaneous miniature EPSCs were significantly smaller, less frequent and slower at the calyx synapse, compared with the endbulb synapse. The observed mEPSC amplitude (42 pA) is consistent with previous values reported at the calyx synapse which range from 30 to 70 pA (Chuhma & Ohmori, 1998; Taschenberger & von Gersdorff, 2000; Iwasaki & Takahashi, 2001; Sahara & Takahashi, 2001). The frequency of mEPSCs at the calyx (0.8 Hz) was slightly lower than in previous reports 1.02.5 Hz (Barnes-Davies & Forsythe, 1995; Sahara & Takahashi, 2001). The inverse relationship between mEPSC frequency and release probability at the calyx synapse is in agreement with the hypothesis that the protein complex necessary for evoked transmitter release is distinct from the complex involved in spontaneous release (Deitcher et al. 1998; Washbourne et al. 2001). Such a separation of release mechanisms could also explain the observation of a lower mEPSC frequency and a greater number of release sites and RRP size at the calyx synapse. The decay time of mEPSCs at the calyx (1 ms) was in agreement with other reported decay times (0.32 ms) (Chuhma & Ohmori, 1998; Iwasaki & Takahashi, 2001; Sahara & Takahashi, 2001), and significantly slower at the calyx than the endbulb synapse (0.2 ms). The difference between synapses could be related to different AMPA receptor subunits and/or desensitization.
Activity-dependent plasticity
Most properties of synaptic transmission were not altered at the calyx synapse in deaf mice, in sharp contrast to the endbulb synapse. Presynaptic plasticity was observed at the endbulb synapse when a lack of synaptic input caused a greater eEPSC amplitude, release probability, tetanic depression, and frequency of delayed aEPSCs (Oleskevich & Walmsley, 2002). Surprisingly, the calyx synapse in deaf mice showed no change in any of the measured properties of evoked synaptic transmission and only small changes in spontaneous transmission. This suggests that the endbulb synapse is capable of greater developmental plasticity than the calyx synapse when presented with changes in synaptic input. It is possible that once alterations in synaptic input are registered at the modified endbulb/globular bushy cell synapse in the AVCN, further modification is not necessary at subsequent calyx/principal cells synapses in the MNTB. Alternatively, the MNTB may be more of a hard-wired relay region than the AVCN. Plasticity in the AVCN has been established previously as the output from globular bushy cells shows improved synchronization and phase-locking compared to auditory nerve input (Smith et al. 1998; Paolini et al. 2001). This signal conditioning role of the endbulb synapse contrasts with the calyx synapse in the MNTB. The calyx synapse is regarded as a simple sign-inverting relay synapse, converting glutamatergic excitatory input into glycinergic inhibitory output, and faithfully transforming presynaptic action potentials into postsynaptic spikes (Smith et al. 1998; Futai et al. 2001; Paolini et al. 2001). However, evidence is accumulating for modulation of synaptic transmission at the calyx synapse by glycinergic and GABAergic inhibitory afferents to the MNTB, which cover 20% of the somatic area of MNTB principal cells (Kuwabara et al. 1991; Ostapoff et al. 1997; Smith et al. 1998). Sound-driven inhibition of principal cells in the MNTB can affect postsynaptic spike activity (Kopp-Scheinpflug et al. 2003) and recent data show that evoked glycinergic inhibition can influence excitatory transmission and action potential generation in these cells (Awatramani et al. 2004).
Although the endbulb and calyx share many features typical of calyceal synapses, they also exhibit significant differences in their evoked and spontaneous synaptic transmission properties. Further, their contrasting response to an absence of synaptic input indicates that different mechanisms of plasticity are operating at these not-so-simple relay synapses.
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| Acknowledgements |
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B. Walmsley, A. Berntson, R. N. Leao, and R. E. W. Fyffe Activity-dependent regulation of synaptic strength and neuronal excitability in central auditory pathways J. Physiol., April 15, 2006; 572(2): 313 - 321. [Abstract] [Full Text] [PDF] |
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R. N. Leao, H. Sun, K. Svahn, A. Berntson, M. Youssoufian, A. G. Paolini, R. E. W. Fyffe, and B. Walmsley Topographic organization in the auditory brainstem of juvenile mice is disrupted in congenital deafness J. Physiol., March 15, 2006; 571(3): 563 - 578. [Abstract] [Full Text] [PDF] |
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D. K. Ryugo, E. A. Kretzmer, and J. K. Niparko Restoration of Auditory Nerve Synapses in Cats by Cochlear Implants Science, December 2, 2005; 310(5753): 1490 - 1492. [Abstract] [Full Text] [PDF] |
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M. Youssoufian, S. Oleskevich, and B. Walmsley Development of a Robust Central Auditory Synapse in Congenital Deafness J Neurophysiol, November 1, 2005; 94(5): 3168 - 3180. [Abstract] [Full Text] [PDF] |
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Y. Wang and P. B. Manis Synaptic Transmission at the Cochlear Nucleus Endbulb Synapse During Age-Related Hearing Loss in Mice J Neurophysiol, September 1, 2005; 94(3): 1814 - 1824. [Abstract] [Full Text] [PDF] |
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