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Visual evoked potentials of Niemann-Pick type C1 mice reveal an impairment of the visual pathway that is rescued by 2-hydroxypropyl-ß-cyclodextrin

Abstract

Background

The lysosomal storage disorder, Niemann Pick type C1 (NPC1), presents a variable phenotype including neurovisceral and neurological symptoms. 2-Hydroxypropyl-ß-cyclodextrin (HPßCD)-based therapies are presently the most promising route of intervention. While severe cerebellar dysfunction remains the main disabling feature of NPC1, sensory functions including auditory and olfactory ones are also affected. Morphological and functional anomalies of Npc1 −/− mouse retina have also been observed, although the functional integrity of the visual pathway from retina to visual cortex is still unsettled. We have addressed this issue by characterizing the visual evoked potential (VEP) response of Npc1 −/− mice and determining if/how HPßCD administration influences the VEPs of both Npc1 −/− and Npc1 +/+ mice.

Methods

VEP elicited by a brief visual stimulus were recorded from the scalp overlying the visual cortex of adult (PN, postnatal days 60, 75, 85 and 100) Npc1 +/+ and Npc1 −/− mice that had received repeated injections of either HPßCD or plain vehicle. The first injection was given at PN4 and was followed by a second one at PN7 and thereafter by weekly injections up to PN49. Cholesterol accumulation and myelin loss were finally assessed by filipin staining and myelin basic protein immunohistochemistry, respectively.

Results and discussion

We have found that the transmission of visual signals from retina to visual cortex is negatively influenced by the loss of Npc1 function. In fact, the VEP response of Npc1 −/− mice displayed a highly significant increase in the latency compared to that of Npc1 +/+ mice. HPßCD administration fully rescued this defect and counteracted the cholesterol accumulation in retinal ganglion cells and dorsal lateral geniculate nucleus neurons, as well as the myelin loss in optic nerve fibers and axons projecting to the visual cortex observed in of Npc1 −/− mice. By contrast, HPßCD administration had no effect on the VEP response of Npc1 +/+ mice, further strengthening the treatment efficacy.

Conclusions

This study pinpoints the analysis of VEP response as a potentially accurate and non-invasive approach to assess neural activity and visual information processing in NPC1 patients, as well as for monitoring the progression of the disease and assessing the efficacy of potential therapies.

Background

Niemann Pick type C1 (NPC1) disease is a rare, inherited lysosomal storage disorder, having variable age of onset and pathophysiological features. The most frequent presentation of the disease is a child of either sex developing coordination problems, dysarthria and hepatosplenomegaly during early school-age years [1, 2]. The disease arises from mutations affecting the function of the protein encoded by the NPC1 gene that, in cooperation with NPC2, mediates the intracellular trafficking of cholesterol endocytosed via low-density lipoprotein receptors. In fact, NPC1 and NPC2 proteins reside in the membrane and lumen of late endosomes, respectively, and cooperate in the outflow of unesterified cholesterol from late endosomes/lysosomes to endoplasmic reticulum and plasma membrane, thereby enabling its incorporation in various cellular compartments [3, 4]. Defects of either proteins lead to the accumulation of endocytosed unesterified cholesterol and other lipids within lysosomes [57]. Approximately 95 % of NPC cases are due to mutations in the NPC1 gene, and 5 % to mutations in NPC2 gene [2].

Prominent neurological signs of NPC1 disease in humans, observed also in animal models as Npc1 −/− mice and cats, are cerebellar dysfunctions landmarked by the progressive degeneration of cerebellar Purkinje cells [8, 9] leading to ataxia [10]. However, other brain areas are also involved in the disease, reducing the efficiency of the processing of sensory information, including auditory, olfactory and visual signals [11]. As indicated by studies in the well established NPC1 mouse model, Npc1 nih/nih (Npc1 −/−) [12], these defects are likely associated with severe neuronal and glial damage in brain areas as the thalamus, which act as relay stations for sensory information on the way to the cortex, whereas neurons of other brain regions, including the cerebral cortex, appear less vulnerable to NPC1-deficiency [1315]. Within the thalamus of Npc1 −/− mouse, significant neuronal loss and marked gliosis are detected in ventral postero-medial/lateral (VPM/VPL, somatosensory), dorsal lateral geniculate (dLGN, visual) and medial geniculate (MGN, auditory) nuclei as early as at 3 weeks of age [14]. Interestingly, hearing loss is among neurological signs frequently associated with NPC1 disease in our species [2, 16] and appears to rely on auditory brainstem neuropathology [17]. In fact, typical features of lysosomal cholesterol accumulation have been observed in the cochlea, inferior colliculus and MGN of Npc1 −/− mice [18], which also display abnormal auditory brainstem responses as early as at postnatal day 20 (PN20) [17].

Besides the auditory pathway, the cellular dysfunctions of Npc1 −/− mouse retina and dLGN suggest that the visual pathway is also affected in NPC1 disease. Morphological and functional anomalies of the retina of these mice were recently reported, showing age-related degeneration of photoreceptors and a number of anomalies in several cell types of the visual system, including increased autophagy in retinal ganglion cell layer (GCL), electron-dense inclusions in bipolar and Müller cells, abnormal arborization of horizontal and amacrine cells, altered myelination, dilated axons of the optic nerve [19] and reduced amplitude of electroretinogram (ERG) responses [20]. However, studies investigating the functional integrity of the visual pathway from retina to visual cortex are still lacking.

Visual evoked potentials (VEPs) are a well established tool for assessing modifications of the visual pathway integrity and visual cortex functioning during normal aging and neurodegeneration in both humans and animal models [2124]. Therefore, in this study we have exploited VEP recording to investigate whether visual signal transmission from retina to visual cortex is impaired in Npc1 −/− mice. The preliminary evidence that the visual pathway is actually defective in these mice prompted us to also assess the rescuing efficacy of 2-hydroxypropyl-ß-cyclodextrin (HPßCD), a drug representing the major treatment currently studied in both patients and animal models of NPC1 disease.

The use of HPßCD was pioneered in a NPC1 mouse model by Camargo et al. [25], but it was only when this drug was administered earlier in life and at higher doses that its therapeutic efficacy was widely appreciated [2628]. In fact, extensive efforts using Npc1 −/− mouse and cat models have thoroughly demonstrated the ability of HPßCD to mobilize intracellular cholesterol [2934], leading to a phase I clinical trial that started in 2013 [35]. However, while HPßCD is considered generally safe, recent studies have shown that it may cause dose-dependent hearing loss in normal mice and in cats affected by NPC disease [33, 36]. In light of this warning on the safety of HPßCD treatment, the experimental design of this study included the treatment of both Npc1 +/+ and Npc1 −/− littermates.

Our results show that the visual stimulus transmission from retina to visual cortex is significantly delayed in Npc1 −/− mice compared to age-matched Npc1 +/+ and that HPßCD administration rescues this defect, having no apparent effect on Npc1 +/+ mice.

Methods

Animals and treatments

Npc1 −/− mice are maintained on BALB/cJ background and are derived from heterozygous matings. However, instead of the expected 25 %, only 17 % of Npc1 −/− are weaned. Genotypes were identified at weaning by PCR on tail DNA as described [12]. HPßCD administration was performed by subcutaneous injection of either a 20 % solution (w/v; 4000 mg/Kg body weight) of HPßCD (average degree of substitution of 0.67 of hydroxypropyl groups per glucose unit, MW ~1369 Da, catalog number H-107, Sigma Aldrich, Milan, Italy) in PBS, or plain PBS as control. The treatment schedule was as follows: both Npc1 +/+ and Npc1 −/− pups received two consecutive subcutaneous injections at PN4 and PN7, followed by weekly injections until PN49. Age-matched control mice received plain PBS injections (sham animals). Within the following 1–3 days (PN50-52) mice were chronically implanted with electrodes. For HPßCD/sham administration, pre-weaning PN4-PN21 pups were separated from the mother, weighed, injected at the scruff of the neck [26], monitored for complete absorption of the injection bolus and finally returned to the home cage. The entire injection procedure lasted approximately 15–20 min, giving each pup a similar treatment, inclusive of maternal separation, handling and injection. A scheme summarizing the schedule of injection, electrode implantation and VEP recording is shown in (Additional file 1: Figure S1). HPßCD administration according to the schedule described above significantly increased the life expectancy of Npc1 −/− mice (Additional file 2: Figure S2). Given that heterozygous matings limited the availability of Npc1 −/− and Npc1 +/+ pups, experimental groups were formed and processed as follows: a first group of Npc1 +/+ (n = 12) and Npc1 −/− (n = 12) age-matched mice that had not received any kind of handling before electrode implantation (naive mice) were subjected to VEP recordings at PN75 (Fig. 1); a second group of Npc1 +/+ and Npc1 −/− age-matched mice, either HPßCD-treated or sham (n = 13 in each experimental group), were subjected to VEP recordings at PN60, PN75, PN85 and PN100, except for 5 mice of each experimental group that were sacrificed immediately after the PN75 recording for histological analyses. In addition, the Npc1 −/− mice were never recorded at PN100 because they did not survive after PN90-PN95. All mice were maintained in our animal facility in accordance with Sapienza University guidelines for the care and use of laboratory animals. Experimental protocols and related procedures were approved by the Italian Ministry of Public Health.

Fig. 1
figure 1

VEP components of naïve PN75 Npc1 +/+ and Npc1 −/− mice. Representative VEPs are shown in the figure. Note the increase in N1, N2 and N3 latency and the reduction in amplitude displayed by Npc1 −/− compared to Npc1 +/+ mice. N1, first negative peak; N2, second negative peak; N3, third negative peak

Visual Evoked Potential (VEP) recording

VEP experiments were performed according to published procedures [37, 38]. Briefly, mice were anaesthetized by intraperitoneal injection of a mixture of xylazine (Rompun, Bayer AG, Leverkusen-Germania, 20 mg/Kg i.p) and ketamine (Ketavet 100, Gellini Farmaceutici Spa, Peschira Borromea-MI, 32 mg/Kg i.p.) and locally injected with lidocaine (xylocaine 2 %, 0.1 ml under the scalp) before the implantation of chronic electrodes. Three epidural L-shaped monopolar stainless steel electrodes were implanted (right anterior: 1.3 mm anterior to bregma and 1.5 mm lateral to sagittal suture; right and left posterior: 3 mm posterior to bregma and 2.5 lateral to sagittal suture), with the right posterior (active) electrode position within the area of maximal visual cortex acuity [39]. Electrophysiological recording started 1 week after electrode implantation. Each mouse, awake and free to move, was dark-adapted for 20 min in an anechoic testing cage placed in a dark, soundproofed and electrically-shielded room before VEP recording. Light flash-VEPs were elicited by a Grass-Instruments PS22 photic stimulator (stimulus intensity 236.4 cd/m2/s; stimulus rate 1 flash/s; stimulus duration 10 μsec) located outside the sound-proofed cage to avoid acoustic contamination from the strobe. To avoid possible interferences due to circadian rhythm, VEPs were always recorded between 09:00 and 12:00 a.m., EEG signals were amplified through a DC-powered preamplifier with a gain of 1000× and an analogic high-pass filter at 1 Hz and a low-pass filter at 10 kHz. Acquisitions were performed at 2.5 kHz sampling rate. An InstruNet A/D 16 bit conversion board delivered signals to the acquisition system (Superscope GW Instruments, Somerville, Massachusetts, USA, adapted by Analysa, Cuneo, Italy) on a personal computer. Brain activity and trigger were continuously acquired and saved as raw data to be analyzed off-line. VEPs from a sequence of 90 strobe light flash were averaged to obtain the final waveform. After a pause of 5 min, the same mouse was again stimulated by another series of 90 stimuli and this procedure was repeated for a total of 6–8 times in the same day. Registrations made anomalous by the occurrence of artifacts and/or the insurgence of seizures, as previously described in Npc1 −/− mice [40], were discarded. VEP amplitude and latency were measured after baseline removal. N1, N2 and N3 latencies were calculated as the times elapsed between the onset of first stimulus and the peak of the first, second and third negative responses, respectively, whereas N1 amplitude was taken as the absolute value of the first negative peak. Each mouse was used for repeated sessions at increasing ages (PN58-62, PN73-77, PN83-87, PN98-102), here for brevity indicated as PN60, PN75, PN85, PN100, except for the Npc1 −/− mice that, if not treated with HPßCD, were not analyzed after PN85 because they usually died at PN90-95 days, as previously reported [31].

Detection of intracellular cholesterol and myelin

PN75 Npc1 +/+ and Npc1 −/− mice, either injected with HPßCD or sham according to the schedule of Additional file 1: Figure S1, were anaesthetized by intraperitoneal injection of a mixture of xylazine/ketamine (20–34 mg/kg i.p) and then transcardially perfused with 4 % paraformaldehyde (PFA) in PBS. For filipin staining, brains, eyes and optic nerves were removed, post-fixed overnight at 4 °C in 4 % PFA, cryoprotected with sucrose (30 % in PBS), embedded in frozen section compound (FSC22 ClearR Frozen Section Compound, Leica Biosystems, Milan, Italy) and serially sectioned (slice thickness 10 μm) using a cryostat (Leica CM 1900). Sagittal sections were mounted on adhesive glass slides (X-tra glass slides, Leica Biosystems), washed in PBS and post-fixed in cold acetone at −20 °C for 10 min and then in 3 % PFA for 10 min. Sections were incubated overnight at 4 °C in a buffer made of 0.1 M glycine in PBS supplemented with 0.3 % BSA, stained with filipin (10 μg/ml in PBS) for 3 h at room temperature and finally mounted with buffered glycerol. For myelin basic protein (MBP) detection, PFA-fixed tissues were dehydrated, embedded in Paraplast Tissue Embedding Medium (Leica Biosystems) and serially sectioned (slice thickness 8 μm). Sagittal sections were mounted on X-tra Adhesive glass slides (Leica Biosystems), de-waxed with xylene, re-hydrated and washed in PBS. Epitopes were unmasked by heating sections twice (10 min each) in 0.1 M citric acid, pH 6.0, in a microwave oven. After washing with PBS, sections were incubated overnight at 4 °C with a monoclonal anti-MBP antibody (Sigma-Aldrich, Milano, Italy; 1:100 dilution in PBS), and then stained using the rabbit Vectastain Elite ABC Kit (Vector Laboratories Inc., Burlingame, CA, USA), followed by the DAB Peroxidase Substrate Kit (Vector Laboratories Inc.) according to manufacturer’s instructions. Epifluorescent images of filipin/MBP staining (Additional file 3: Figure S3) were obtained using a Zeiss Axioplan fluorescent microscope equipped with Cool Snap K4 Photometrics camera or a Sony nex-3 N mirrorless camera (Sony Europe Limited, Milano, Italy). Images were processed using ImageJ NIH software version 1.48v.

Gross histology and cell counts

The cytoarchitecture and cell number of visual cortex and dLGN were determined by staining sagittal sections of PN75 Npc1 +/+ and Npc1 −/−, either sham or HPßCD-treated, tissues with hematoxylin (Sigma-Aldrich) for 15 min and then eosin Y (0.3 % in ethanol 80 %; Sigma-Aldrich) for 15 s. The counting of cell nuclei was performed on three consecutive sagittal sections of at least five mice/group, using the function “cell counter” of ImageJ NIH software. Three region of interest (ROI, 400 μm2 each) were randomly selected in each field as previously described [41], and histological observations and evaluations were blindly and independently performed by two investigators.

Statistics

Statistical analyses were performed using GraphPad Prism version 5.0d (GraphPad, La Jolla, CA). Data were tested for normality (Wilk-Shapiro’s test) and homoscedasticity (Levene’s test) and then analyzed by unpaired two-tailed Student’s t test, one-way ANOVA, two-way ANOVA for independent (group, genotype, treatment) measures, and repeated measures one-way ANOVA followed by Tukey’s HSD post-hoc test. P values smaller than 0.05 were considered significant.

Results

An abnormal VEP indicates a decreased visual pathway efficiency of Npc1 −/− mice

VEPs consist of electrical potentials elicited by a brief visual stimulus that are recorded from the scalp overlying the visual cortex. Typically, VEP waveforms consist of a sequence of voltage deflections named peaks, waves or components. The shape of representative VEPs of Npc1 +/+ and Npc1 −/− adult (PN75) mice is displayed in Fig. 1. The three negative VEP components, N1, N2 and N3, showed that the VEP response is strongly influenced by Npc1 deficiency. In fact, N1-N3 VEP components of Npc1 −/− mice appeared with a delay of 1.5–2 msec (latency) and displayed a reduced voltage amplitude compared to those of Npc1 +/+ mice. The values of VEP latency and amplitude recorded in this experiment are reported in Table 1.

Table 1 Effect of genotype on VEP latency and amplitude in naive PN75 Npc1 +/+ and Npc1 −/− micea

VEP recordings of HPßCD-treated Npc1 +/+ and Npc1 −/− mice display a specific rescue of VEP latency in Npc1 −/− mice

Based on the defective VEP responses of Npc1 −/− mice, we settled to investigate the efficacy of HPßCD administration in rescuing this defect. Studies aimed at characterizing the ability of HPßCD to circumvent defective cholesterol trafficking and disease severity in Npc1 −/− mice have so far exploited either a single injection at PN7 [27] or repeated injections starting at PN7 or at weaning [25, 28, 31], leading to the conclusion that earlier injections resulted in a stronger efficacy. Therefore, to boost the efficacy of HPßCD treatment, we designed a treatment schedule consisting of two subsequent HPßCD injections at PN4 and PN7, namely before the blood brain barrier is completely formed [42] and when cholesterol synthesis in the mouse brain reaches its highest level [43], making it reasonable the expectation that the neuronal import of glia-derived cholesterol is maximal. We also sought to continue injections after PN7 by weekly injecting mice up to 7 weeks of age (see Additional file 1: Figure S1).

Because of the novelty introduced in our protocol, with particular reference to the early injection at PN4 shortly followed by an additional injection at PN7, we sought to preliminarily evaluate the effect of plain PBS, i.e. the vehicle of HPßCD administration (see Methods), by comparing the VEP recordings of naïve Npc1 +/+ and Npc1 −/− mice of Fig. 1 with representative VEP recording of sham mice (Fig. 2a). Interestingly, the injections of plain PBS significantly influenced the VEP response of Npc1 +/+ mice. In fact (Fig. 2b) these Npc1 +/+ mice (thereafter named “sham”) displayed a significantly shortening of N1 latency (24.77 ± 0.32 msec) compared to that of naive Npc1 +/+ mice (27.59 ± 0.16 msec). By contrast, the latency of PN75 sham Npc1 −/− was similar to that of naive Npc1 −/− mice (28.16 ± 0.40 msec and 28.98 ± 0.59 msec, respectively). We also noticed that the VEP amplitudes of sham mice, either Npc1 +/+ or Npc1 −/− , did not significantly differ from each other (N1: 32.36 ± 5.32 μV and 20.91 ± 2.22 μV, respectively; p < 0.05), in spite of the significant difference in N1 amplitude values of naive Npc1 +/+ and Npc1 −/− mice (Fig. 2c). The complete output of statistical analyses of VEP N1 latency and amplitude values is reported in (Additional file 4: Table S1), whereas significant differences of post-hoc comparisons are indicated by asterisks in Fig. 2.

Fig. 2
figure 2

VEP components of naïve/sham PN75 Npc1 +/+ and Npc1 −/− mice. a Representative VEPs are shown in panel a (see Fig. 1 for description). Note the different values of N1 peak latency and amplitude (arrows) depending on experimental manipulation and/or genotype. b, c Histograms indicate the mean ± SEM of N1 latency and amplitude values obtained in the experimental groups indicated in the panels. Note that the latency of sham Npc1 +/+ mice significantly decreased compared to that of naïve Npc1 +/+ mice, whereas sham and naïve Npc1 −/− mice had similar latency. The amplitude of sham mice, either Npc1 +/+ or Npc1 −/− , did not significantly differ from each other, but were significantly reduced compared to that of Npc1 +/+ naïve mice. Asterisks indicate statistically significant differences among experimental groups (***, p < 0.001)

In light of the observations reported above, subsequent determinations of the effect of HPßCD on Npc1 +/+ and Npc1 −/− mice, thereafter named “HPßCD”, were performed using age-matched sham mice as controls. These determinations provided a wealth of information that is summarized as follows. First (Fig. 3a, b), the N1 latencies of both sham and HPßCD-treated Npc1 +/+ mice were similar with each other (24.77 ± 0.32 msec and 24.82 ± 0.60 msec, respectively; p > 0.05), but significantly shorter (p < 0.05) than that of Npc1 +/+ naïve mice. Similar results were also obtained for N2 and N3 latencies. We therefore concluded that HPßCD and PBS injections had similar effects on Npc1 +/+ mice, indicating a dependence on the injection and/or maternal separation per se. Second, HPßCD administration had a beneficial and highly specific effect in normalizing the VEP latency of Npc1 −/− mice. Indeed, the latency of N1 wave appeared significantly earlier in HPßCD-treated Npc1 −/− compared to that of Npc1 −/− sham mice (24.39 ± 0.45 msec and 28.16 ± 0.40 msec, respectively; p < 0.05), indicating that this effect depended on the HPßCD administration rather than on the injection and/or maternal separation. Moreover, the N1 latency values of HPßCD-treated Npc1 −/− mice were similar to those of either HPßCD or sham Npc1 +/+ mice (24.82 ± 0.60 msec and 24.77 ± 0.32 msec, respectively; p > 0.05), indicating that HPßCD effectively rescued cellular/molecular substrates underlying the Npc1 −/− deficiency. Similar results were also obtained for N2 and N3 latencies. It is also interesting to note that the N1 latency of sham Npc1 +/+, HPßCD-treated Npc1 +/+ and HPßCD-treated Npc1 −/− mice did not increase from PN60 to PN85, whereas it significantly increased in sham Npc1 −/− mice (Fig. 2b), suggesting that HPßCD effectively prevented the visual system impairment that Npc1 −/− mice undergo with aging. The statistical analysis of this panel is reported in (Additional file 5: Table S2).

Fig. 3
figure 3

VEP latency and amplitude in PN60, PN75, PN85 and PN100, either sham or HPßCD-treated, Npc1 +/+ and Npc1 −/− mice. a Histograms indicate the mean ± SEM of N1, N2, and N3 latency values obtained in different experimental groups at increasing ages, as indicated in the panel. Note that HPßCD fully rescued the latency increase observed in Npc1 −/− mice, whereas it had no effect on Npc1 +/+ mice. PN100 sham Npc1 −/− mice are not reported because these animals never survived beyond PN95, unless treated with HPßCD. b Effect of the age on N1 latency of various experimental group. Note that the latency significantly increased with age in sham Npc1 −/− mice, but not in Npc1 +/+ mice, and that such increase was effectively prevented by treatment with HPßCD (*, p < 0.05). c Histograms indicate the mean ± SEM of N1 amplitude values obtained in different experimental groups at increasing ages, as indicated in the panel. Asterisks indicate statistically significant differences among experimental groups (*, p < 0.05; **, p < 0.01; ***, p < 0.001)

In contrast to latency, VEP amplitude (Fig. 3c) was not significantly affected by HPßCD in both Npc1 −/− and Npc1 +/+ mice, indicating that the observed variations in this parameter were fully independent on the drug. The complete output of statistical analyses of VEP N1, N2, N3 latency and N1 amplitude values recorded at PN60, PN75, PN85, PN100 are reported in (Additional file 6: Table S3, Additional file 7: Table S4), whereas significant differences of post-hoc comparisons are indicated by asterisks in Fig. 3.

HPßCD rescues the abnormal cholesterol accumulation of Npc1 −/− mice

To verify whether HPßCD not only normalized the VEP latency of Npc1 −/− mice, but also rescued the abnormal cellular features typical of the disease, we visualized intracellular cholesterol accumulation by filipin staining on brain slices of PN75 sham or HPBCD-treated, Npc1 +/+ and Npc1 −/− mice. We first focused this analysis on visual cortex and thalamic dLGN (representing the only relay station for visual information on its way from retina to visual cortex) [44, 45]. Interestingly, the HPßCD administration almost completely eliminated the filipin-stained cholesterol deposits present in the visual cortex and dLGN of Npc1 −/− sham mice (Fig. 4a, b). Similar features were also observed in retinal ganglion cells (Fig. 4c), whereas HPßCD administration did not have any effect on Npc1 +/+ mice (Fig. 4a–c).

Fig. 4
figure 4

HPßCD corrects the cholesterol storage defect of Npc1 −/− mice. Brain parasagittal sections of PN75 Npc1 +/+ and Npc1 −/− mice, either sham or HPßCD-treated, were stained with filipin. Representative fields (Additional file 3: Figure S3) of a primary visual cortex (V1), b dorsal lateral geniculate nucleus (dLGN) and c retinal ganglion cells are shown in the figure. Note that the cytoplasmic cholesterol accumulation (arrowheads) is almost fully rescued by HPßCD. RPE: retinal pigment ephitelium; OS: outer segments; ONL: outer nuclear layer; OPL: outer plexiform layer; INL: inner nuclear layer; IPL: inner plexiform layer; GCL: ganglion cell layer. Scale bars indicate 50 μm (a, b) and 25 μm (c)

HPßCD rescues the myelin loss of Npc1 −/− mice

Both NPC patients and Npc1 −/− mice display a prominent dysmyelination, although the mechanism(s) that specifically underlies such loss of myelin are presently not fully understood. In fact, both neuronal and/or oligodendrocyte deficiency of Npc1 protein can severely affect the synthesis of myelin at early postnatal days, resulting in myelin loss with aging [46]. To assess whether a myelin deficit was a putative cause of the increase in the VEP latency of Npc1 −/− mice, brain sections of PN75 sham or HPßCD-treated Npc1 +/+ and Npc1 −/− mice were immunostained with an antibody directed against the myelin basic protein (MBP) (Fig. 5). Parasagittal sections encompassing both somatosensory and primary visual cortices (Fig. 5a, b) of Npc1 +/+ showed a similar abundance of myelinated fibers in the regions of both sham and HPßCD-treated Npc1 +/+, whereas myelinated fibers were below the level of detection in Npc1 −/− mice. MBP immunostainig of optic nerve sections of Npc1 −/− mice also showed a similar pattern of myelin reduction, which was partially rescued by HPßCD administration (Fig. 5c). Moreover, gross histology analyses showed a significant reduction of cellularity in both visual cortex and dLGN (Fig. 6), making it reasonable that a neuronal loss contributed to the visual cortex myelin reduction of Npc1 −/− mice. The cytoarchitecture of visual cortex appeared also disorganized in Npc1 −/− mice, whereas both cellularity and cytoarchitecture were normalized by the HPßCD administration (Fig. 6a).

Fig. 5
figure 5

HPßCD counteracts the myelin loss of Npc1 −/− mice. Brain sections of PN75, either sham or HPßCD-treated, Npc1 +/+ and Npc1 −/− mice were immunostained with anti-myelin basic protein antibody (brown). Representative fields (see Additional file 3: Figure S3) of parasagittal sections of a primary visual cortex b primary somatosensory cortex, and c transversal sections of optic nerve are shown in the figure. The robust myelin reduction of Npc1 −/− mice was partially rescued by HPßCD administration. I–VI: cortical layers; fmj: forceps major corpus callosum; CPu: caudate putamen (striatum). Scale bars indicate 50 μm (a, b) and 6 μm (c)

Fig. 6
figure 6

HPßCD rescues the reduced cell number of Npc1 −/− mice. Brain sections of PN75, either sham or HPßCD-treated, Npc1 +/+ and Npc1 −/− mice were stained with haematoxylin and eosin. Representative fields (see Additional file 3: Figure S3) of a primary visual cortex and b dorsal lateral geniculate nucleus (dLGN) are shown in the figure. c Histograms indicate cell densities (mean ± SEM) determined on 5 randomly selected 400 μm2 regions of primary visual cortex (V1) and lateral geniculate nucleus (dLGN). Asterisk indicates a significant difference (*, p < 0.05). fmj: forceps major corpus callosum; I-VI cortical layer. Scale bars indicate 50 μm (a, b)

Discussion

The rationale for undertaking this study was grounded on accumulating evidence that there is severe neuronal and glial damage in thalamocortical areas of Npc1 −/− mice [15, 47], as well as defective myelin formation and maintenance associated with Npc1 functional deficiency [46, 48]. These abnormalities are likely associated with an impairment of various sensory pathways, as already indicated by the deficit of auditory [11, 49] and olfactory [50] systems in Npc1 −/− mice and of multisensory processing in NPC patients [51]. As for the visual system of Npc1 −/− mice, retinal cellular and functional defects were recently described [19, 20], but the functional integrity of their visual pathway has not been investigated yet. Now addressing this issue, we report that the transmission of visual stimuli from retina to visual cortex is strongly influenced by the lack of Npc1 function. In fact, compared to naïve Npc1 +/+ mice, naïve Npc1 −/− mice displayed a significant increase in the latency and a dramatic decrease in the amplitude of their N1-N3 VEP components, likely due to gross histological and cellular alterations of the visual system of these mice, including cholesterol accumulation, reduced cellularity, and a high level of demyelinization along the entire visual stimulus itinerary, from retina to visual cortex (present data, [46, 52]).

Different cellular/functional mechanism(s) are likely underlying the VEP features of sham Npc1 +/+ and Npc1 −/− mice. In the case of Npc1 +/+ mice, in fact, the postnatal injection of plain PBS elicited dramatic VEP changes during adulthood resulting in a significant decrease of both latency and amplitude. These modifications are likely to reflect the ability of normal mouse brain to modify its structure and function in response to a week and transitory stress(es) (as the interscapular injections, transient body constriction and brief maternal separation performed in our experiments) during early postnatal life. Among these putative stressors, maternal separation should be ruled out because its duration in present experiments (20 min) was much shorter than the 3 h duration required for a permanent negative effect during adulthood in the mouse [53]. In contrast, it is well documented that the administration of short-lasting stresses during infancy elicits an opposite effect, increasing adult brain resilience to stress in both mice and humans [54]. In line with this view, the significant decrease in VEP latency and amplitude of sham Npc1 +/+ mice suggests that, among other possibilities, the early postnatal stress improved the adult visual pathway efficiency and specialization (decrease in latency) and reduced the overall number of stimulus-locked oscillations (decrease in amplitude) [55].

While the VEP response of sham Npc1 +/+ mice is apparently modified by the postnatal stress, this is likely not true for sham Npc1 −/− mice. In this case, in fact, the injection protocol did not elicit any significant effect on both VEP latency and amplitude, suggesting these mice were actually unable to respond to postnatal stress as wild-type mice did. We favor the hypothesis that such ability was missing in Npc1 −/− mice because of the severe structural and/or functional disorganization of their visual system, including eye, optic nerve, dLGN and cortex. It is also worth to note that, although the small VEP amplitude of naïve/sham Npc1 −/− mice was statistically similar to that of sham Npc1 +/+ mice, it likely was very different in nature. In fact Npc1 −/− sham mice also displayed an abnormally high value of VEP latency, in line with their altered neuroanatomical features.

The latency value of HPßCD-treated Npc1 +/+ mice was similar to that of Npc1 +/+ sham mice, indicating uneffectiveness of the drug. Indeed, both HPßCD-treated and sham Npc1 +/+ mice displayed an approximately 3 msec reduction of N1 latency compared to that of Npc1 +/+ naive mice, leading to the conclusion that the latency decrease of Npc1 +/+ sham and HPßCD-treated mice is a consequence of the stress elicited by pup manipulation associated with the injection per se. This conclusion is in agreement with a previous study showing a similar (3–3.5 msec) reduction in VEP latency of adult mice that had received repeated saline injections and manipulation-elicited stress during early postnatal life [56].

The response of Npc1 −/− mice to HPßCD administration was completely different. In fact the drug rescued the increased VEP latency of Npc1 −/− mice, eliciting latency values that nicely approximated those of both sham and HPßCD-treated Npc1 +/+ mice. This beneficial effect was therefore associated with the drug rather than with the injection/manipulation per se.

Both sham and HPßCD treatments did not determine any significant difference between the amplitudes of Npc1 +/+ and Npc1 −/− mice. High variability and low consistency are frequently observed in repeated amplitude recordings of the same animal (not shown), likely because this component is greatly influenced by the background level of ongoing cortical activity [57, 58]. For this reason, latency is generally considered a more robust and reliable indicator of the visual pathway integrity [52] compared to amplitude. This is particularly true for a mouse model presenting demyelination as the Npc1 −/− mouse [46], in which the latency delay we report in this study likely reflects, among other cellular/histological alterations, the high level of demyelination along the visual stimulus itinerary [52].

By unveiling the different VEP response of sham and HPßCD-treated Npc1 +/+ and Npc1 −/− mice, our results further strengthen the specific effect of HPßCD treatment in normalizing Npc1 −/− brain structural/functional organization, including that of visual pathway. Accordingly, we show that cholesterol accumulation in retinal ganglion cells, in dLGN neurons and in visual cortex are largely rescued by the HPßCD administration, which also counteracts the robust myelin reduction in optic nerve fibers and axons projecting to the visual cortex of Npc1 −/− mice.

Conclusions

The results of this study based on VEP analysis expand recent observations on the presence of severe neuronal and glial damage in brain areas as the thalamus, correlating these features to the impairment of visual stimulus transmission from retina to visual cortex. They also provide an additional insight on the effectiveness and safety of HPßCD administration. In light of these findings, VEP analysis appears as a putatively accurate and non-invasive tool to monitor neural activity and sensory processing in NPC1 patients, as well as to monitor disease progression and to assess the efficacy of potential therapies.

Abbreviations

CPu:

Caudate putamen

dLGN:

Dorsal lateral geniculate nucleus

ERG:

Electroretinogram

Fmj:

Forceps major corpus callosum

GCL:

Ganglion cell layer

HPßCD:

2-hydroxypropyl-ß-cyclodextrin

INL:

Inner nuclear layer

IPL:

Inner plexiform layer

MBP:

Myelin basic protein

MGN:

Medial geniculate nucleus

NPC1:

Niemann Pick type C1

ONL:

Outer nuclear layer

OPL:

Outer plexiform layer

OS:

Outer segments

PFA:

Paraformaldehyde

PN:

Post natal day

ROI:

Region of interest

RPE:

Retinal pigment ephitelium

V1:

Primary visual cortex

VEP:

Visual evoked potential

VPL:

Ventral postero-lateral

VPM:

Ventral postero-medial

References

  1. Imrie J, Dasgupta S, Besley GT, Harris C, Heptinstall L, Knight S, et al. The natural history of Niemann-Pick disease type C in the UK. J Inherit Metab Dis. 2007;30:51–9.

    Article  CAS  PubMed  Google Scholar 

  2. Vanier MT. Niemann–Pick disease type C. Orphanet J Rare Dis. 2010;5:16.

    Article  PubMed Central  PubMed  Google Scholar 

  3. Kwon HJ, Abi-Mosleh L, Wang ML, Deisenhofer J, Goldstein JL, Brown MS, et al. Structure of N-terminal domain of NPC1 reveals distinct subdomains for binding and transfer of cholesterol. Cell. 2009;137:1213–24.

    Article  PubMed Central  PubMed  Google Scholar 

  4. Deffieu MS, Pfeffer SR. Niemann-Pick type C 1 function requires lumenal domain residues that mediate cholesterol-dependent NPC2 binding. Proc Natl Acad Sci U S A. 2011;108:18932–6.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  5. Chevallier J, Chamoun Z, Jiang G, Prestwich G, Sakai N, Matile S, et al. Lysobisphosphatidic acid controls endosomal cholesterol levels. J Biol Chem. 2008;283:27871–80.

    Article  CAS  PubMed  Google Scholar 

  6. Li H, Turley SD, Liu B, Repa JJ, Dietschy JM. GM2/GD2 and GM3 gangliosides have no effect on cellular cholesterol pools or turnover in normal or NPC1 mice. J Lipid Res. 2008;49:1816–28.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  7. Kobayashi T, Beuchat MH, Lindsay M, Frias S, Palmiter RD, Sakuraba H, et al. Late endosomal membranes rich in lysobisphosphatidic acid regulate cholesterol transport. Nat Cell Biol. 1999;1:113–8.

    Article  CAS  PubMed  Google Scholar 

  8. Sarna J, Miranda SR, Schuchman EH, Hawkes R. Patterned cerebellar Purkinje cell death in a transgenic mouse model of Niemann Pick type A/B disease. Eur J Neurosci. 2001;13:1873–80.

    Article  CAS  PubMed  Google Scholar 

  9. Li H, Repa JJ, Valasek MA, Beltroy EP, Turley SD, German DC, et al. Molecular, anatomical, and biochemical events associated with neurodegeneration in mice with Niemann-Pick type C disease. J Neuropathol Exp Neurol. 2005;64:323–33.

    CAS  PubMed  Google Scholar 

  10. Võikar V, Rauvala H, Ikonen E. Cognitive deficit and development of motor impairment in a mouse model of Niemann-Pick type C disease. Behav Brain Res. 2002;132:1–10.

    Article  PubMed  Google Scholar 

  11. King KA, Gordon-Salant S, Yanjanin N, Zalewski C, Houser A, Porter FD, et al. Auditory phenotype of Niemann-Pick disease, type C1. Ear Hear. 2014;35:110–7.

    Article  PubMed Central  PubMed  Google Scholar 

  12. Loftus SK, Morris JA, Carstea ED, Gu JZ, Cummings C, Brown A, et al. Murine model of Niemann–Pick C disease: mutation in a cholesterol homeostasis gene. Science. 1997;277:232–5.

    Article  CAS  PubMed  Google Scholar 

  13. Lopez ME, Klein AD, Dimbil UJ, Scott MP. Anatomically defined neuron- based rescue of neurodegenerative niemann-pick type C disorder. J Neurosci. 2011;31:4367–78.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  14. Pressey SN, Smith DA, Wong AM, Platt FM, Cooper JD. Early glial activation, synaptic changes and axonal pathology in the thalamocortical system of Niemann- Pick type C1 mice. Neurobiol Dis. 2012;45:1086–100.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  15. Ong WY, Kumar U, Switzer RC, Sidhu A, Suresh G, Hu CY, et al. Neurodegeneration in Niemann-Pick type C disease mice. Exp Brain Res. 2001;141:218–31.

    Article  CAS  PubMed  Google Scholar 

  16. Yanjanin NM, Vélez JI, Gropman A, King K, Bianconi SE, Conley SK, et al. Linear clinical progression, independent of age of onset, in Niemann-Pick disease, type C. Am J Med Genet B Neuropsychiatr Genet. 2010;153B:132–40.

    PubMed Central  PubMed  Google Scholar 

  17. King KA, Gordon-Salant S, Pawlowski KS, Taylor AM, Griffith AJ, Houser A, et al. Hearing loss is an early consequence of Npc1 gene deletion in the mouse model of Niemann-Pick disease, type C. J Assoc Res Otolaryngol. 2014;15:529–41.

    Article  PubMed Central  PubMed  Google Scholar 

  18. Luan Z, Saito Y, Miyata H, Ohama E, Ninomiya H, Ohno K. Brainstem neuropathology in a mouse model of Niemann-Pick disease type C. J Neurol Sci. 2008;268:108–16.

    Article  CAS  PubMed  Google Scholar 

  19. Yan X, Ma L, Hovakimyan M, Lukas J, Wree A, Frank M, et al. Defects in the retina of Niemann-pick type C 1 mutant mice. BMC Neurosci. 2014;15:126.

    Article  PubMed Central  PubMed  Google Scholar 

  20. Claudepierre T, Paques M, Simonutti M, Buard I, Sahel J, Maue RA, et al. Lack of Niemann-Pick type C1 induces age-related degeneration in the mouse retina. Mol Cell Neurosci. 2010;43:164–76.

    Article  CAS  PubMed  Google Scholar 

  21. Pollock VE, Schneider LS, Chui HC, Henderson V, Zemansky M, Sloane RB. Visual evoked-potentials in dementia: a meta-analysis and empirical study of Alzheimers-disease patients. Biol Psychiatry. 1989;25:1003–13.

    Article  CAS  PubMed  Google Scholar 

  22. Kromer R, Serbecic N, Hausner L, Froelich L, Beutelspacher SC. Comparison of visual evoked potentials and retinal nerve fiber layer thickness in Alzheimer’s disease. Front Neurol. 2013;4:203.

    Article  PubMed Central  PubMed  Google Scholar 

  23. Chirapapaisan N, Laotaweerungsawat S, Chuenkongkaew W, Samsen P, Ruangvaravate N, Thuangtong A, et al. Diagnostic value of visual evoked potentials for clinical diagnosis of multiple sclerosis. Doc Ophthalmol. 2015;130:25–30.

    Article  PubMed  Google Scholar 

  24. Aras S, Tanriover G, Aslan M, Yargicoglu P, Agar A. The role of nitric oxide on visual-evoked potentials in MPTP-induced Parkinsonism in mice. Neurochem Int. 2014;72:48–57.

    Article  CAS  PubMed  Google Scholar 

  25. Camargo F, Erickson RP, Garver WS, Hossain GS, Carbone PN, Heidenreich RA, et al. Cyclodextrins in the treatment of a mouse model of Niemann-Pick C disease. Life Sci. 2001;70:131–42.

    Article  CAS  PubMed  Google Scholar 

  26. Liu B, Li H, Repa JJ, Turley SD, Dietschy JM. Genetic variations and treatments that affect the lifespan of the NPC1 mouse. J Lipid Res. 2008;49:663–9.

    Article  CAS  PubMed  Google Scholar 

  27. Liu B, Turley SD, Burns DK, Miller AM, Repa JJ, Dietschy JM. Reversal of defective lysosomal transport in NPC disease ameliorates liver dysfunction and neurodegeneration in the npc1−/− mouse. Proc Natl Acad Sci U S A. 2009;106:2377–82.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  28. Davidson CD, Ali NF, Micsenyi MC, Stephney G, Renault S, Dobrenis K, et al. Chronic cyclodextrin treatment of murine Niemann-Pick C disease ameliorates neuronal cholesterol and glycosphingolipid storage and disease progression. PLoS One. 2009;4:e6951.

    Article  PubMed Central  PubMed  Google Scholar 

  29. Liu B, Ramirez CM, Miller AM, Repa JJ, Turley SD, Dietschy JM. Cyclodextrin overcomes the transport defect in nearly every organ of NPC1 mice leading to excretion of sequestered cholesterol as bile acid. J Lipid Res. 2010;51:933–44.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  30. Aqul A, Liu B, Ramirez CM, Pieper AA, Estill SJ, Burns DK, et al. Unesterified cholesterol accumulation in late endosomes/lysosomes causes neurodegeneration and is prevented by driving cholesterol export from this compartment. J Neurosci. 2011;31:9404–13.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  31. Ramirez CM, Liu B, Taylor AM, Repa JJ, Burns DK, Weinberg AG, et al. Weekly cyclodextrin administration normalizes cholesterol metabolism in nearly every organ of the Niemann-Pick type C1 mouse and markedly prolongs life. Pediatr Res. 2010;68:309–15.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  32. Ramirez CM, Liu B, Aqul A, Taylor AM, Repa JJ, Turley SD, et al. Quantitative role of LAL, NPC2, and NPC1 in lysosomal cholesterol processing defined by genetic and pharmacological manipulations. J Lipid Res. 2011;52:688–98.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  33. Ward S, O’Donnell P, Fernanadez S, Vite CH. 2-cydroxypropyl-beta-dyclodextrin raises hearing threshold in normal cats and cats with Niemann-Pick C disease. Pediatr Res. 2010;68:52–6.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  34. Vite CH, Bagel JH, Swain GP, Prociuk M, Sicora TU, Stein VM, et al. Intracisternal cyclodextrin prevents cerebellar dysfunction and Purkinje cell death in feline Niemann-Pick type C1 disease. Sci Transl Med. 2015;7:276ra26.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  35. Ottinger EA, Kao ML, Carrillo-Carrasco N, Yanjanin N, Shankar RK, Janssen M, et al. Collaborative development of 2-hydroxypropyl-β-cyclodextrin for the treatment of Niemann-Pick type C1 disease. Curr Top Med Chem. 2014;14:330–9.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  36. Crumling MA, Liu L, Thomas PV, Benson J, kanicki A, Kabara L, et al. Hearing loss and hair cell death in mice given the cholesterol-chelating agent hydroxypropyl-beta-cyclodextrin. PLoS One. 2012;7:e53280.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  37. Lopez L, Brusa A, Fadda A, Loizzo S, Martinangeli A, Sannita WG, et al. Modulation of flash stimulation intensity and frequency: effects on visual evoked potentials and oscillatory potentials recorded in awake, freely moving mice. Behav Brain Res. 2002;131:105–14.

    Article  PubMed  Google Scholar 

  38. Guarino I, Loizzo S, Lopez L, Fadda A, Loizzo A. A chronic implant to record electroretinogram, visual evoked potentials and oscillatory potentials in awake, freely moving rats for pharmacological studies. Neural Plast. 2004;11:241–50.

    Article  PubMed Central  PubMed  Google Scholar 

  39. Porciatti V, Pizzorusso T, Maffei L. The visual physiology of the wild type mouse determined with pattern VEPs. Vision Res. 1999;39:3071–81.

    Article  CAS  PubMed  Google Scholar 

  40. D’Arcangelo G, Grossi D, De Chiara G, de Stefano MC, Cortese G, Citro G, et al. Glutamatergic neurotransmission in a mouse model of Niemann-Pick type C disease. Brain Res. 2011;1396:11–9.

    Article  PubMed  Google Scholar 

  41. Nusca S, Canterini S, Palladino G, Bruno F, Mangia F, Erickson RP, et al. A marked paucity of granule cells in the developing cerebellum of the Npc1 −/−mouse is corrected by a single injection of hydroxypropyl-β-cyclodextrin. Neurobiol Dis. 2014;70:117–26.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  42. Hagan N, Ben-Zvi A. The molecular, cellular, and morphological components of blood–brain barrier development during embryogenesis. Semin Cell Dev Biol. 2015;38:7–15.

    Article  CAS  PubMed  Google Scholar 

  43. Ness GC. Developmental regulation of the expression of genes encoding proteins involved in cholesterol homeostasis. Am J Med Genet. 1994;50:355–7.

    Article  CAS  PubMed  Google Scholar 

  44. Glickfeld LL, Reid RC, Andermann ML. A mouse model of higher visual cortical function. Curr Opin Neurobiol. 2014;24:28–33.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  45. Hoffpauir BK, Marrs GS, Mathers PH, Spirou GA. Does the brain connect before the periphery can direct? A comparison of three sensory systems in mice. Brain Res. 2009;1277:115–29.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  46. Yu T, Lieberman AP. Npc1 acting in neurons and glia is essential for the formation and maintenance of CNS myelin. PLoS Genet. 2013;9:e1003462.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  47. Baudry M, Yao Y, Simmons D, Liu J, Bi X. Postnatal development of inflammation in a murine model of Niemann-Pick type C disease: immunohistochemical observations of microglia and astroglia. Exp Neurol. 2003;184:887–903.

    Article  CAS  PubMed  Google Scholar 

  48. Borbon I, Totenhagen J, Fiorenza MT, Canterini S, Ke W, Trouard T, et al. Niemann-Pick C1 mice, a model of “juvenile Alzheimer’s disease”, with normal gene expression in neurons and fibrillary astrocytes show long term survival and delayed neurodegeneration. J Alzheimers Dis. 2012;30:875–87.

    CAS  PubMed  Google Scholar 

  49. Iodice R, Dubbioso R, Topa A, Ruggiero L, Pisciotta C, Esposito M, et al. Electrophysiological characterization of adult-onset Niemann-Pick type C disease. J Neurol Sci. 2015;348:262–5.

    Article  PubMed  Google Scholar 

  50. Hovakimyan M, Meyer A, Lukas J, Luo J, Gudziol V, Hummel T, et al. Olfactory deficits in Niemann-Pick type C1 (NPC1) disease. PLoS One. 2013;8:e82216.

    Article  PubMed Central  PubMed  Google Scholar 

  51. Andrade GN, Molholm S, Butler JS, Brandwein AB, Walkley SU, Foxe JJ. Atypical multisensory integration in Niemann-Pick type C disease - towards potential biomarkers. Orphanet J Rare Dis. 2014;9:149.

    Article  PubMed Central  PubMed  Google Scholar 

  52. You Y, Klistorner A, Thie J, Graham SL. Latency delay of visual evoked potential is a real measurement of demyelination in a rat model of optic neuritis. Invest Ophthalmol Vis Sci. 2011;52:6911–8.

    Article  PubMed  Google Scholar 

  53. Vetulani J. Early maternal separation: a rodent model of depression and a prevailing human condition. Pharmacol Rep. 2013;65:1451–61.

    Article  PubMed  Google Scholar 

  54. McEwen BS, Gianaros PJ. Stress- and allostasis-induced brain plasticity. Annu Rev Med. 2011;62:431–45.

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  55. Barry RJ, De Blasio FM, De Pascalis V, Karamacoska D. Preferred EEG brain states at stimulus onset in a fixed interstimulus interval equiprobable auditory Go/NoGo task: a definitive study. Int J Psychophysiol. 2014;94(1):42–58.

    Article  PubMed  Google Scholar 

  56. Loizzo A, Spampinato SM, Campana G, Vella S, Fortuna A, Costa L, et al. Enhanced brain performance in mice following postnatal stress. J Endocrinol. 2012;215:413–24.

    Article  CAS  PubMed  Google Scholar 

  57. Başar E, Rahn E, Demiralp T, Schürmann M. Spontaneous EEG theta activity controls frontal visual evoked potential amplitudes. Electroencephalogr Clin Neurophysiol. 1998;108:101–9.

    Article  PubMed  Google Scholar 

  58. Meeren HK, Van Luijtelaar EL, Coenen AM. Cortical and thalamic visual evoked potentials during sleep-wake states and spike-wave discharges in the rat. Electroencephalogr Clin Neurophysiol. 1998;108:306–19.

    Article  CAS  PubMed  Google Scholar 

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Acknowledgements

We are grateful to Vilfredo De Pascalis for advice on VEP analyses, Paola Caporali and Paolo Campus for advice in statistical analyses and to Stefano Ferraina for critical reading of the manuscript. The financial supports of Telethon - Italy (Grant no. GGP13183) and Ateneo 2013 Sapienza to M.T.F. are gratefully acknowledged.

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Correspondence to Maria Teresa Fiorenza.

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Competing interests

The authors declare that they have no competing interests.

Authors’ contributions

GP, RPE, FM and MTF designed research and interpreted the data; GP performed VEP recordings, immunohistochemistry and filipin staining; SL and AF provided VEP recording know-how, including electrode implantation and contributed to data analyses; SC performed histology and supervised immunohistochemistry experiments; FP assisted eye histology and contributed to eye morphological analyses; RPE and FM contributed with advise, discussion and manuscript editing; MTF wrote the paper. All authors read and approved the final manuscript.

Additional files

Additional file 1: Figure S1.

A schematic summary of sham/ HPßCD injections, electrode implantation and VEP recording in various experimental groups. (JPEG 2651 kb)

Additional file 2: Figure S2.

Survival curves of naive Npc1 −/−, sham Npc1 −/− and HPβCD Npc1 −/−mice. Kaplan-Meier plots were analyzed by Log-rank (Mantel -Cox) test: Npc1 −/− vs Npc1 −/− sham, p > 0.05; Npc1 −/− vs Npc1 −/− HPβCD, p < 0.0001. Survival (mean value ± SEM): naive Npc1 −/−, 91.3 ± 1.3; sham Npc1 −/−, 87.8 ± 0.9; HPβCD Npc1 −/−, 145 ± 3.0. (JPEG 2830 kb)

Additional file 3: Figure S3.

Circles indicate the brain areas selected for histological analyses. 1, primary visual cortex; 2, dorso lateral geniculate nucleus; 3, retina. V1, primary visual cortex; dLGN, dorso lateral geniculate nucleus; CPu, caudate putamen; cc, corpus callosum; LV, lateral ventricle; S1, primary somatosensory cortex. (JPEG 3262 kb)

Additional file 4: Table S1.

A comparison of VEP N1 latency and amplitude of PN75 naive Npc1 +/+ , sham Npc1 +/+ , naive Npc1 −/− and sham Npc1 −/−. (JPEG 2961 kb)

Additional file 5: Table S2.

Effect of age and disease progression (PN60-PN100) on VEP N1 latency. (JPEG 2726 kb)

Additional file 6: Table S3.

VEP latency and amplitude in PN60, PN75 and PN85, either sham or HPβCD -treated, Npc1 +/+ and Npc1 −/− mice. (JPEG 2776 kb)

Additional file 7: Table S4.

VEP latency and amplitude of either sham or HPβCD -treated PN100 Npc1 +/+ and Npc1 −/− mice. (JPEG 2673 kb)

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Palladino, G., Loizzo, S., Fortuna, A. et al. Visual evoked potentials of Niemann-Pick type C1 mice reveal an impairment of the visual pathway that is rescued by 2-hydroxypropyl-ß-cyclodextrin. Orphanet J Rare Dis 10, 133 (2015). https://doi.org/10.1186/s13023-015-0348-0

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