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1.
目的:观察电码针对豚鼠庆大霉素(GE)耳毒性的防治作用,方法:测定脑干听觉诱发电位(BAEP)和用组织化学方法测定耳蝇毛细胞及血管纹的琥珀酸脱氢酶(SDH)。结果:电针能降低CE引起的BAEP反应阈的上升幅度,缩小BAEP波峰潜伏期及波峰间期的延长;能保护毛细胞及耳蜗血管纹细胞线粒体呼吸酶的活性。结论:电针能降低GE5的耳毒性,保护毛细胞及耳蜗血管纹细胞线粒体酶的活性。保证这些细胞能量代谢,维持细胞所需要能量的各种功能的活动。减少细胞的损伤,可能有是电针防治GE耳毒性的机制之一。  相似文献   

2.
脑细胞生长肽对GM耳毒性的预防作用   总被引:1,自引:0,他引:1  
目的:观察脑细胞生长肽(cerebral cell growth peptide,CCGP)对庆大霉素(gentamicin,GM)引起的豚鼠耳中毒的预防作用)。方法:用脑干听觉诱发电位(brainstem auditory evoked potential,BAEP)和组织化学方法分别检测动物听阀的变化和耳蜗毛细胞线粒体内琥珀酸脱氢酶(succinate dehydrogenase,SDH)及溶酶体内的酸性磷酸酶(acid phosphatase,ACP)活性变化,并在三组动物进行耳蜗受损毛细胞计数。结果:CCGP能降低GM引起的BAEP反应阈的上升幅度,保护耳蜗毛细胞SDH和维持溶酶体的完整性,减轻毛细胞的损伤。结论:CCGP能降低GM的中毒性;保护耳蜗毛细胞SDH,维持毛细胞的能量代谢,减少溶酶体损伤,降低溶酶体内水解酶逸出引起的毛细胞自溶性损伤,可能是CCGP预防GM耳毒性的机制之一。  相似文献   

3.
Tang H  Cui GY  Shi LJ  Gao QH  Cao Y 《生理学报》2007,59(4):534-538
本文旨在研究川芎嗪(tetramethylpyrazine,TMP)拮抗链霉素耳毒性作用及其对豚鼠耳蜗外毛细胞K^+通道的影响,探讨TMP拈抗链霉素耳毒性的离子通道机制。60只豚鼠随机分为6组,应用听觉脑干反应(auditory brainstem response,ABR)技术检测豚鼠ABR听阈,观测TMP的抗链霉素耳毒作用;并采用全细胞膜片钳技术观察TMP对耳蜗外毛细胞Ca^2+敏感艮电流的影响。结果显示,TMP明显降低链霉素导致的豚鼠ABR听阈升高,提示TMP具有抗链霉素耳毒性作用;TMP能明显增大豚鼠耳蜗外毛细胞Ca^2+敏感艮电流,并呈浓度依赖关系。结果提示,TMP通过增大艮通道电导而拮抗链霉素耳毒性作用。  相似文献   

4.
丹参注射液对链霉素耳中毒豚鼠耳蜗iNOS表达的影响   总被引:2,自引:1,他引:1  
目的: 探讨链霉素(SM)耳中毒过程中豚鼠耳蜗iNOS表达,以及丹参注射液(DS)的拮抗作用.方法: 应用光镜、电镜、免疫组化及图像分析技术,结合听性脑干反应(ABR)测试.结果: 用药10d后,SM组ABR阈值明显升高,DS SM组ABR阈值明显低于SM组,差异显著(P<0.01).光镜及电镜下可见SM组柯蒂氏器、内外毛细胞、螺旋神经节细胞、血管纹损伤严重,DS SM组损伤较轻.SM组iNOS在柯蒂氏器、内外毛细胞、螺旋神经节、血管纹的表达明显高于DS SM组.结论: SM耳中毒时ABR阈值升高,iNOS表达增强.DS能有效的降低SM所致的ABR阈值升高,并抑制iNOS的过量表达,从而减轻SM的耳毒性损伤,提示DS对SM耳毒性损伤有保护作用.  相似文献   

5.
目的探讨头孢哌酮钠和卡那霉素在豚鼠化脓性中耳炎中的作用、耳毒性。方法 A、B、C组均应用金黄色葡萄球菌菌苗中耳腔注射法制备化脓性中耳炎模型。然后分别应用生理盐水、头孢哌酮钠滴耳液和卡那霉素滴耳液中耳腔给药治疗,各0.2 ml/次,2次/天,连续给药7天。听性脑干反应(ABR)检测豚鼠鼓室内注射金黄色葡萄球菌前后以及抗生素滴耳后ABR阈值。脓性分泌物评分和菌落计数。耳蜗基底膜铺片:毛细胞计数和形态学观察。结果 A组(生理盐水组)、B组(头孢哌酮钠组)、C组(卡那霉素组)实验后ABR听阈分别为(46.00±5.1)dB peSPL(peSPL:等效峰值声压级),(35.25±4.9)dB peSPL,(42.25±5.2)dB peSPL(差别主要是给药后,造模前后无差别)。脓性分泌物评分分别为A组(2.33±0.4)、B组(1.65±0.4)、C组(1.53±0.3)。细菌培养计数分别为A组(117±10.5)、B组(63±6.9)、C组(49±6.1)。A组和B组毛细胞未见缺失,纤毛和表皮板完好,结构正常,C组毛细胞大片缺失,相应部位的纤毛和表皮板也见缺失。结论头孢哌酮钠滴耳液的抗菌效应可以应用于化脓性中耳炎的治疗,且无耳毒性。卡那霉素滴耳液虽然抗菌效应强,但耳毒性较强,所以不推荐作为治疗化脓性中耳炎的一线用药。  相似文献   

6.
Zhang ZC  Yu HM  Liu Q  Tian J  Wang TF  Lai CJ  Zhou XY 《生理学报》2011,63(2):171-176
本研究旨在观察硫酸卡那霉素(kanamycin sulfate,KM)对成年大鼠的耳毒性效应。6~7周龄的雄性Sprague-Dawley(SD)大鼠40只,随机分为2组:实验组,每天腹腔注射KM(500mg/kg)2周;对照组,注射等量生理盐水2周。通过检测脑干听觉诱发电位(auditory brainstem response,ABR)观察大鼠听力改变。ABR检测结束后,分离出耳蜗进行基底膜铺片、耳蜗冰冻切片,观察耳蜗螺旋神经节细胞(spiral ganglion cells,SGCs)的密度和耳蜗形态学改变。结果显示,注射KM2周后,大鼠在各频率的听觉阈值均有明显升高,其上升幅度超过60dB;随着时间推移,KM组SGCs密度逐渐降低,Corti器结构尚存,但外毛细胞及内毛细胞均有不同程度的缺失,以外毛细胞为甚;内毛细胞缺失与SGCs的密度下降相平行。以上结果表明,6~7周龄大鼠经过KM作用2周后,听力会明显下降,达到重度耳聋甚至全聋。KM的耳毒性作用与SGCs和内外毛细胞的损伤密切相关。  相似文献   

7.
体温过高对大鼠脑干听觉诱发电位和中潜伏期反应的影响   总被引:2,自引:0,他引:2  
目的 :探讨体温过高对大鼠脑干听觉诱发电位 (BAEP)和听觉中潜伏期反应 (MLR )的影响。方法 :诱发电位仪颅表记录大鼠BAEP和MLR ;体表物理升温法逐步升高麻醉大鼠体温 ,传感探头式数字体温计监测大鼠直肠体温 ;主要观察BAEP和MLR的波峰潜伏期 (PL)、波峰间潜伏期 (IPL)和波幅随体温升高而发生的变化及它们消失的临界体温。结果 :BAEP各波PL及Ⅰ Ⅱ、Ⅰ Ⅲ、Ⅰ ⅣIPL随体温升高 ( 3 7~ 41.5℃ )而逐步缩短 ,但当体温升高至 42℃和超过 42℃时各波PL及Ⅰ Ⅱ、Ⅰ ⅣIPL不再继续缩短 ,并略有反向延长 ;MLR各波PL和P1 P3、P2 P3IPL也随体温升高 ( 3 7~ 43℃ )而缩短。随体温升高 ,BAEP和MLR波幅的主要表现为降低 ,特别是在体温升高至42℃以后。BAEP和MLR在体温 ( 4 3 .1± 0 .5)℃时出现不可逆性消失 ,且两者同步消失。结论 :体温过高对大鼠BAEP和MLR有相似的显著影响 ,体温过高至一临界值时会造成BAEP和MLR的不可逆性损害。  相似文献   

8.
甲状腺激素对豚鼠卡那霉素中毒性耳聋的预防作用   总被引:6,自引:0,他引:6  
卡那霉素、庆大霉素等抗生素常引起耳聋,目前尚无较好的防治方法。卡那霉素对内耳的毒性作用,主要先影响有关的酶功能,继而破坏毛细胞而致聋。甲状腺激素具有促进蛋白质合成、增强细胞生物氧化的功能。因此可能具有减轻卡那霉素耳毒性的作用。本实验以耳廓反射、内耳生物电及耳蜗铺片为指标,观察甲状腺激素对卡那霉素耳中毒的预防。实验豚鼠分两组,各13只,对照组每天注射卡那霉素300mg/kg,共10天;甲状腺素组先隔天服甲状腺片20mg共四次,以后给予与对照组相同剂量卡那霉素,同时仍隔天服甲状腺片20mg直至停药后16天,前后总共服17次。结果:(1)耳廓反射阈变化,对8、4、2KHz三个频率听力均下降的耳,对照组为11只耳,甲状腺素组为3只耳,两者差异显著。听力下降的频率范围及程度,对照组比甲状腺素组更大。对照组听力下降开始出现的时间明显早于甲状腺素组;(2)内耳生物电,0~80dβ不同程度短声引起的耳蜗微音器电位与听神经动作电位幅值甲状腺素组动物均高于对照组;(8)耳蜗铺片,对照组大部分动物耳蜗各回的毛细胞严重变性缺损,甲状腺素组耳蜗病变仅局限在底回。以上结果表明甲状腺激素能减轻卡那霉素的耳毒性,为耳毒性抗生素致聋的防治提供了一条新的研究途径。  相似文献   

9.
摘要 目的:探讨顺铂对大鼠造成的听力损伤及耳蜗细胞形态学变化。方法:体内实验,运用顺铂腹腔注射的方法,连续七天注射,通过听性脑干反应检测,观察顺铂对不同日龄的大鼠听力损伤情况;测听后取耳蜗,通过基底膜铺片和冰冻切片的免疫荧光染色,观察听力损伤后对耳蜗毛细胞和螺旋神经元的影响。体外实验,耳蜗器官培养免疫荧光染色,观察顺铂对耳蜗毛细胞和螺旋神经元的影响。结果:顺铂具有耳毒性,会对大鼠听力造成损伤,高频听力损伤更加严重,而且对不同日龄的大鼠造成的听力损失不同,小日龄的大鼠对顺铂耳毒性更加敏感。体内实验,顺铂耳毒性造成听力损失,会引起大鼠耳蜗毛细胞的缺失,但未观察到明显的螺旋神经元缺失,也没有观察到明显的Cleaved caspase-3阳性螺旋神经元细胞。体外实验,可以观察到顺铂同时引起毛细胞和螺旋神经元产生明显的损伤。结论:体、内外实验,都可以建立稳定的顺铂耳毒性大鼠耳聋模型,对研究顺铂损伤耳蜗毛细胞的发生机制和保护奠定了实验基础。  相似文献   

10.
目的:研究丹参注射液(SM)对庆大霉素(GM)耳中毒豚鼠耳蜗氧自由基生成的影响,探讨SM对GM耳毒性损伤的保护作用及其机制.方法:检测豚鼠耳蜗组织中超氧化物歧化酶(SOD)活力和丙二醛(MDA)含量,结合听性脑干反应(ABR)测试及透射电镜技术.结果:经GM处理的耳蜗组织中SOD活力明显下降,MDA含量则明显增加(P<0.01),且与ABR阈值升高高度相关(|r|>0.8,P<0.05).同时接受SM的动物,其耳蜗组织中SOD活力明显升高(P<0.01),MDA含量则明显减少(P<0.05),且听功能显著改善.电镜观察显示耳蜗形态学改变与听力变化相一致.结论:氧自由基及其引发的脂质过氧化参与了GM耳中毒过程,SM可通过提高耳蜗组织中SOD活力,防止脂质过氧化,减轻GM的耳蜗毒性,改善听功能.  相似文献   

11.
The structures of cochlear transduction include stereocilia at the apical surface of hair cells and their connection to the tectorial membrane. The transduction site is one of the loci for noise-induced cochlear damage. Although stereocilia are susceptible to noise, it has been found that in the inner ears of avians, this fragile structure is largely self-repairing and is associated with recovery of hearing sensitivity after noise exposure, as observed in the difference between the temporal threshold shift (TTS) and the permanent threshold shift (PTS). In the mammalian cochleae, however, threshold shifts measured in the auditory brainstem responses (ABR) did not parallel the chronological changes in the stereocilia on hair cells. It is unclear how the morphological recovery of the stereocilia on the mammalian hair cells is correlated with the changes in cochlear transduction that can be assessed by measuring receptor potential. In the present study, guinea pigs were exposed to a broadband noise of 110 dB SPL for 2 h. Auditory sensitivity was evaluated using ABR and cochlear transduction was assessed using cochlear microphonics (CM). Stereocilia morphology was quantified at different time points after the noise and compared with the control. The noise produced a TTS of 55.69 ± 14.13 dB in frequency-averaged ABR thresholds. The threshold shift was reduced to 9.58 ± 11.75 dB SPL 1 month later with virtually no loss of hair cells. Damage to the stereocilia immediately after noise exposure was found to be associated with depression of CM amplitude. Virtually no abnormal stereocilia were observed 1 month after the noise in association with a fully recovered CM.  相似文献   

12.
Moderate acoustic overexposure in adult rodents is known to cause acute loss of synapses on sensory inner hair cells (IHCs) and delayed degeneration of the auditory nerve, despite the completely reversible temporary threshold shift (TTS) and morphologically intact hair cells. Our objective was to determine whether a cochlear synaptopathy followed by neuropathy occurs after noise exposure in pubescence, and to define neuropathic versus non-neuropathic noise levels for pubescent mice. While exposing 6 week old CBA/CaJ mice to 8-16 kHz bandpass noise for 2 hrs, we defined 97 dB sound pressure level (SPL) as the threshold for this particular type of neuropathic exposure associated with TTS, and 94 dB SPL as the highest non-neuropathic noise level associated with TTS. Exposure to 100 dB SPL caused permanent threshold shift although exposure of 16 week old mice to the same noise is reported to cause only TTS. Amplitude of wave I of the auditory brainstem response, which reflects the summed activity of the cochlear nerve, was complemented by synaptic ribbon counts in IHCs using confocal microscopy, and by stereological counts of peripheral axons and cell bodies of the cochlear nerve from 24 hours to 16 months post exposure. Mice exposed to neuropathic noise demonstrated immediate cochlear synaptopathy by 24 hours post exposure, and delayed neurodegeneration characterized by axonal retraction at 8 months, and spiral ganglion cell loss at 8-16 months post exposure. Although the damage was initially limited to the cochlear base, it progressed to also involve the cochlear apex by 8 months post exposure. Our data demonstrate a fine line between neuropathic and non-neuropathic noise levels associated with TTS in the pubescent cochlea.  相似文献   

13.
本实验观察115dB(SPL)白噪声暴露20min对豚鼠耳蜗直流电位(EP),复合听神经动作电位(CAP),微音器电位(CM)的影响。发现此种噪声暴露确可提高源于血管纹的正EP(P-EP),说明有血管纹功能的代偿性增强;而负EP(N-EP)变化不大。AP及CM输入-输出函数的变化说明噪声首先影响外毛细胞的主动运动功能。EP与耳蜗电图的对照分析表明,血管纹功能的改变确能影响噪声性听损伤的发展。  相似文献   

14.
Various cochlear pathologies, such as acoustic trauma, ototoxicity and age-related degeneration, cause hearing loss. These pre-existing hearing losses can alter cochlear responses to subsequent acoustic overstimulation. So far, the knowledge on the impacts of pre-existing hearing loss caused by genetic alteration of cochlear genes is limited. Prestin is the motor protein expressed exclusively in outer hair cells in the mammalian cochlea. This motor protein contributes to outer hair cell motility. At present, it is not clear how the interference of prestin function affects cochlear responses to acoustic overstimulation. To address this question, a genetic model of prestin dysfunction in mice was created by inserting an internal ribosome entry site (IRES)-CreERT2-FRT-Neo-FRT cassette into the prestin locus after the stop codon. Homozygous mice exhibit a threshold elevation of auditory brainstem responses with large individual variation. These mice also display a threshold elevation and a shift of the input/output function of the distortion product otoacoustic emission, suggesting a reduction in outer hair cell function. The disruption of prestin function reduces the threshold shifts caused by exposure to a loud noise at 120 dB (sound pressure level) for 1 h. This reduction is positively correlated with the level of pre-noise cochlear dysfunction and is accompanied by a reduced change in Cdh1 expression, suggesting a reduction in molecular responses to the acoustic overstimulation. Together, these results suggest that prestin interference reduces cochlear stress responses to acoustic overstimulation.  相似文献   

15.
The overproduction of reactive oxygen species (ROS) and reactive nitrogen species (RNS) has been known to contribute to the pathogenesis of noise-induced hearing loss. In this study, we discovered that in BALB/c mice pretreatment with methylene blue (MB) for 4 consecutive days significantly protected against cochlear injury by intense broad-band noise for 3 h. It decreased both compound threshold shift and permanent threshold shift and, further, reduced outer hair cell death in the cochlea. MB also reduced ROS and RNS formation after noise exposure. Furthermore, it protected against rotenone- and antimycin A-induced cell death and also reversed ATP generation in the in vitro UB-OC1 cell system. Likewise, MB effectively attenuated the noise-induced impairment of complex IV activity in the cochlea. In addition, it increased the neurotrophin-3 (NT-3) level, which could affect the synaptic connections between hair cells and spiral ganglion neurons in the noise-exposed cochlea, and also promoted the conservation of both efferent and afferent nerve terminals on the outer and inner hair cells. These findings suggest that the amelioration of impaired mitochondrial electron transport and the potentiation of NT-3 expression by treatment with MB have a significant therapeutic value in preventing ROS-mediated sensorineural hearing loss.  相似文献   

16.
Li H  Wang Q  Steyger PS 《PloS one》2011,6(4):e19130

Background

Exposure to intense sound or high doses of aminoglycoside antibiotics can increase hearing thresholds, induce cochlear dysfunction, disrupt hair cell morphology and promote hair cell death, leading to permanent hearing loss. When the two insults are combined, synergistic ototoxicity occurs, exacerbating cochlear vulnerability to sound exposure. The underlying mechanism of this synergism remains unknown. In this study, we tested the hypothesis that sound exposure enhances the intra-cochlear trafficking of aminoglycosides, such as gentamicin, leading to increased hair cell uptake of aminoglycosides and subsequent ototoxicity.

Methods

Juvenile C57Bl/6 mice were exposed to moderate or intense sound levels, while fluorescently-conjugated or native gentamicin was administered concurrently or following sound exposure. Drug uptake was then examined in cochlear tissues by confocal microscopy.

Results

Prolonged sound exposure that induced temporary threshold shifts increased gentamicin uptake by cochlear hair cells, and increased gentamicin permeation across the strial blood-labyrinth barrier. Enhanced intra-cochlear trafficking and hair cell uptake of gentamicin also occurred when prolonged sound, and subsequent aminoglycoside exposure were temporally separated, confirming previous observations. Acute, concurrent sound exposure did not increase cochlear uptake of aminoglycosides.

Conclusions

Prolonged, moderate sound exposures enhanced intra-cochlear aminoglycoside trafficking into the stria vascularis and hair cells. Changes in strial and/or hair cell physiology and integrity due to acoustic overstimulation could increase hair cell uptake of gentamicin, and may represent one mechanism of synergistic ototoxicity.  相似文献   

17.
Our previous work has suggested that traumatic noise activates Rho‐GTPase pathways in cochlear outer hair cells (OHCs), resulting in cell death and noise‐induced hearing loss (NIHL). In this study, we investigated Rho effectors, Rho‐associated kinases (ROCKs), and the targets of ROCKs, the ezrin‐radixin‐moesin (ERM) proteins, in the regulation of the cochlear actin cytoskeleton using adult CBA/J mice under conditions of noise‐induced temporary threshold shift (TTS) and permanent threshold shift (PTS) hearing loss, which result in changes to the F/G‐actin ratio. The levels of cochlear ROCK2 and p‐ERM decreased 1 h after either TTS‐ or PTS‐noise exposure. In contrast, ROCK2 and p‐ERM in OHCs decreased only after PTS‐, not after TTS‐noise exposure. Treatment with lysophosphatidic acid, an activator of the Rho pathway, resulted in significant reversal of the F/G‐actin ratio changes caused by noise exposure and attenuated OHC death and NIHL. Conversely, the down‐regulation of ROCK2 by pretreatment with ROCK2 siRNA reduced the expression of ROCK2 and p‐ERM in OHCs, exacerbated TTS to PTS, and worsened OHC loss. Additionally, pretreatment with siRNA against radixin, an ERM protein, aggravated TTS to PTS. Our results indicate that a ROCK2‐mediated ERM‐phosphorylation signaling cascade modulates noise‐induced hair cell loss and NIHL by targeting the cytoskeleton.

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