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1.
目的建立APP695^K595N/M596L(Swedish突变)转基因小鼠和评价痴呆表型的发生和发展过程。方法将APP695^K595N/M596L突变基因插入到小鼠朊蛋白(mouse prion protein)启动子下游,构建转基因表达载体,通过显微注射法建立APP695^K595N/M596L突变转基因C57BL/6J小鼠。PCR鉴定转基因小鼠的基因表型,Western blotting检测APP突变基因表达。Thioflavin-S染色检测不同年龄转基因小鼠大脑病理改变。Morris水迷宫动态观察小鼠行为学改变。结果建立了人APP695^K595N/M596L转基因小鼠,Thioflavin-S染色显示转基因小鼠9月龄时在脑海马区可检测到老年斑形成,并且在11、12月龄时明显增多。Morris水迷宫结果发现与同月龄野生型小鼠相比,该转基因小鼠5月龄开始出现学习记忆能力缺陷,7、9、11月行为学结果证实转基因小鼠的学习记忆能力缺陷随年龄增加而日趋严重(P<0.05)。结论建立了人APP695^K595N/M596L转基因小鼠,并能再现人类阿尔茨海默症的行为学及神经病理学特征,为阿尔茨海默病发病机制研究和药物研发提供了有价值的动物模型。  相似文献   

2.
目的研究APP/PS1双转基因阿尔茨海默病小鼠模型老年斑形成和行为改变的动态过程。方法将转APPswe突变基因小鼠与转PSAE9基因突变小鼠杂交,PCR鉴定APPswe/PSAE9双突变转基因小鼠的基因表型,筛选阳性小鼠建立APPswe/PS/kE9双转基因C57BL/6J小鼠模型。抗邮免疫组化、改良Bieschowsky银染法、Thioflavin-S荧光分别动态检测3、4、5、6、9、12月龄APPswe/PSAE9双转基因小鼠大脑病理改变。荷兰Noldus公司EthovisionXT监测分析软件动态观察3、6、9月龄的APPswe/PSAE9双转基因小鼠Morris水迷宫行为学改变。利用SPSS16.0软件统计分析。结果建立了人APPswe/PSAE9双转基因阿尔茨海默病小鼠模型。3月龄APP/PS1双转基因小鼠大脑组织抗Aβ1—17免疫组织化学、改良Bieschowsky银染法、Thioflavin—S荧光未检测到有明显老年斑形成。4.5月龄APPswe/PSAE9双转基因小鼠大脑组织上述三种方法均可检测到老年斑。9、12月龄双转基因小鼠老年斑数量体积明显增加,出现与阿尔茨海默病患者较相似的老年斑改变。Morris水迷宫试验发现3、6、9月龄APPswe/PSAE9双转基因小鼠行为学结果与同月龄野生型小鼠有差异,说明与同月龄野生型小鼠相比出现记忆学习能力缺陷(P〈0.05)。结论成功建立了人APPswe/PSAE9双转基因小鼠阿尔茨海默病模型,为阿尔茨海默病发病机制研究和药物研发提供了有价值的动物模型。  相似文献   

3.
目的建立心脏特异性表达KCNQ1^V180 L转基因小鼠,为研究KCNQ1基因功能及其突变与心律失常性心脏疾病的关系提供工具动物。方法把KCNQ1^V180 L基因插入α-MHC启动子下游,构建转基因表达载体,显微注射法建立C57BL/6J KCNQ1^V180 L转基因小鼠,PCR鉴定转基因小鼠的基因型,采用Western Blot鉴定KCNQ1^V180 L在心脏组织中的表达,记录转基因小鼠死亡情况,超声分析转基因小鼠心脏结构形态和功能改变,心电分析转基因小鼠心肌电生理变化。结果建立了2个心脏组织特异性表达KCNQ1^V180 L转基因小鼠品系。转基因小鼠离乳前即出现猝死;超声检查显示转基因小鼠左心室内径变短,心室壁变厚,短轴缩短率增加;心电分析显示其心室复极异常。结论 KCNQ1^V180 L转基因小鼠具有临床长QT综合征类似的病理改变,可作为研究KCNQ1基因功能及其突变与心律失常发病机制的疾病动物模型。  相似文献   

4.
目的大鼠的大脑比小鼠更大,是研究神经系统的重要模型。建立APPswe/PS1dE9/TAU三转基因大鼠,发展能更全面表现人类阿尔兹海默病表型的动物模型。方法构建人PrP—hAPP695K595N/M596L、PrP-hPS1dE9和PDGF-TAU转基因表达载体,显微注射法制备转基因大鼠。PCR法鉴定转基因首建鼠及其子代基因型。Western blot检测转基因大鼠脑组织中人APP、PS1和TAU蛋白的表达。Morris水迷宫检测6月龄三转基因大鼠学习记忆能力改变。APP、PHF—TAU免疫组织化学染色观察三转基因大鼠脑组织APP及TAU的表达。结果得到1个同时高表达人APP、PS1和TAU三个基因的转基因大鼠品系。转基因大鼠6月龄已经出现显著的行为学改变:学习记忆能力下降,病理学改变表现为过度磷酸化TAU增多和神经元胞浆内AB表达异常增加。结论成功建立了APPswe/PS1dE9/TAU三转AD大鼠,可做为新一代工具动物模型用于基础医学和AD转化医学研究。  相似文献   

5.
目的:建立Tau/APP/PS1三转基因小鼠模型,从分子生物学、行为学及病理学角度研究其生物学特征。方法:将自行建立的Tau转基因小鼠与Jackson实验室引种的APP/PS1双转基因小鼠杂交、传代;PCR鉴定小鼠基因型;RT-PCR检测外源基因的转录;Western blot测定外源基因的蛋白表达;Bielschowsky氏染色法和ABC免疫组化法观察大脑神经纤维缠结和老年斑等病理改变;Morris水迷宫观测学习记忆的改变。结果:Tau/APP/PS1三转基因小鼠的大脑可转录和表达Tau、APP和PS1三种外源基因,6~8月龄时大脑皮层和海马可见神经元纤维缠结和老年斑,其学习记忆获得能力在6月龄开始受损。结论:建立的Tau/APP/PS1三转基因小鼠具有Tau和Aβ两种病理改变和学习记忆障碍,为深入探究Tau与Aβ的关系、阐明AD的发病机制以及研发靶点治疗药物提供实验工具。  相似文献   

6.
目的研究阿尔茨海默病(Alzheimer disease,AD)模型小鼠APP/PS1转基因小鼠脑内锌转运体ZNT7的分布和表达,探讨ZNT7参与Aβ老年斑形成的机理。方法应用免疫组织化学染色观察ZNT7在脑内分布情况,应用Western Blot方法分析ZNT7在APP/PS1转基因小鼠大脑内的表达。结果ZNT7免疫阳性反应产物主要分布在APP/PS1转基因小鼠大脑皮层、纹状体和海马的老年斑内,强阳性的ZNT7免疫产物定位于老年斑的核心。Western Blot分析结果表明ZNT7在APP/PS1转基因小鼠大脑内的表达明显高于野生型小鼠。结论ZNT7在APP/PS1转基因小鼠大脑内的高表达以及在Aβ老年斑的定位,提示ZNT7可能参与了锌离子在老年斑内的聚集,进而参与了APP/PS1转基因小鼠大脑内老年斑的形成。  相似文献   

7.
5×FAD转基因小鼠(transgenic mice with five familial Alzheimer’s disease)是携带5个家族性基因突变的APP/PS1转基因小鼠,其中与β-淀粉样蛋白前体(amyloid precursor protein, APP)相关的突变为K670N/M671L(Swedish)、1716V(Florida)和V7171(London),与早老素-1(presenilin 1,PS1)相关的突变为MI46L和L286V。5×FAD小鼠在1.5月龄时脑内已有大量的β-淀粉样蛋白(β-amyloid, Aβ),2月龄时开始出现神经炎性斑(neuritic plaque, NP)。5×FAD小鼠的病理表型包括淀粉样斑块聚集、神经元丢失、神经胶质细胞增生和记忆功能障碍等。5×FAD小鼠的生物学特性可能涉及脑内Aβ斑块的形成变化、Tau蛋白过度磷酸化、突触功能障碍、神经炎症反应、线粒体功能障碍、血脑屏障损伤、神经元损伤、内质网应激和眼部病变等。作为阿尔茨海默病的经典动物模型,5×FAD转基因小鼠在早期即可模拟AD患者晚期的神经病理过程及行为学表现,被广...  相似文献   

8.
目的:评价APP/PS1双转基因小鼠基因表达及认知行为能力的变化,为AD的相关研究提供有效的动物模型。方法:采用雄、雌鼠1:1合笼配对的方式,令APP/PS1双转基因小鼠自然交配进行繁育。PCR鉴定APP/PS1双转基因鼠仔鼠的基因型后,选择APP/PS1阳性小鼠作为模型(AD)组,同批APP/PS1阴性为对照(CT)组,每组8只小鼠。以Morris水迷宫实验检测仔鼠的空间学习记忆能力,以HE染色、刚果红染色观察仔鼠脑片组织病理学改变。结果:①APP/PS1双转基因鼠仔鼠基因经PCR扩增,出现约360 bp的目的基因条带,表明成功繁育出转入APP/PS1基因的仔鼠;②Morris水迷宫实验结果显示,与7月龄阴性小鼠(CT组)比较,同月龄的双转基因AD组小鼠的空间学习记忆能力明显降低(P<0.05);③HE染色结果显示,AD组小鼠海马结构及细胞形态出现明显异常;刚果红染色结果显示,AD组小鼠脑片组织出现β淀粉样蛋白斑块沉积。结论:APP/PS1双转基因小鼠较好地模拟了AD的病理变化及行为学特征,可作为研究AD发病机制及开发AD防治药物的实验工具。  相似文献   

9.
该文旨在研究雌激素缺乏不同时间段对APP/PS1双转基因小鼠学习记忆及海马区细胞增殖和成熟的影响及探究潜在的机制。将3月龄APP/PS1双转基因AD雌性小鼠行双侧卵巢切除(AD-OVX),以假手术AD小鼠(AD-Sham)及同月龄正常野生型小鼠(WT)作为对照,于术后1周(模拟绝经早期)和3月(模拟绝经中晚期), Morris水迷宫行为测试结果显示,在APP/PS1双转基因AD小鼠中, OVX后1周, AD-OVX组与AD-Sham组比较,其逃避潜伏期、搜索路径以及穿越平台的次数无明显差异(P0.05);而OVX后3月, AD-OVX组小鼠找到平台的时间和搜索路径显著延长(P0.05),穿越平台的次数也相应减少(P0.05);子宫重量结果、EDU细胞增殖状况、老年斑、脑内NeuN蛋白和芳香酶的变化水平分别显示,在APP/PS1双转基因AD小鼠中, OVX后1周, AD-OVX组与ADSham组比较,循环雌激素水平无明显变化;小鼠脑内未见老年斑;小鼠海马区新生阳性细胞数量和NeuN的表达反应性增多(P0.05);此时小鼠脑内芳香酶表达也呈反应性升高(P0.05)。而OVX后3月, AD-OVX组小鼠循环雌激素水平明显降低(P0.05);脑内老年斑显著增加(P0.05);小鼠海马区新生阳性细胞数量和NeuN的表达减少(P0.05);此时小鼠脑内芳香酶水平也显著降低(P0.05)。以上结果说明,雌激素缺乏早期可反应性地增加痴呆小鼠海马区细胞的增殖和成熟,对小鼠学习记忆无影响;但随着雌激素缺乏时间的延长,痴呆小鼠出现学习记忆的损害及海马区细胞增殖和成熟减少;该作用可能与脑内芳香酶水平的变化密切相关。  相似文献   

10.
目的观察姜黄素对阿尔茨海默病(Alzheimer'sdisease,AD)模型APP/PS1双转基因小鼠胰岛素受体(insulinreceptor,InR)和胰岛素样生长因子1受体(insulin·likegrowthfactor1receptor,IGF1R)表达的影响。方法将3月龄的APP/PS1双转基因小鼠随机分为模型组、阳性罗格列酮对照组(每日10ms/kg)、姜黄素大(每日400mg/kg)、中(每日200mg/kg)、小剂量组(100mg/kg),正常组为相同背景非转基因小鼠。灌胃3个月后,应用免疫组织化学和Westernblot方法进行检测。结果InR和IGF1R免疫组化染色,模型组小鼠大脑海马CA1区较正常对照组InR阳性细胞明显增加(P〈0.01),姜黄素干预组有所恢复;而模型组小鼠大脑海马CA1区较正常对照组IGF1R阳性细胞明显减少(P〈0.01),姜黄素干预组有所恢复。Western blot检测海马InR和IGF1R的蛋白表达结果与免疫组织化学检测结果一致。结论姜黄素可以使APP/PS1双转基因小鼠海马增加的InR和减少的IGF1R得以恢复,改善APP/PS1双转基因小鼠胰岛素信号转导。  相似文献   

11.
目的:探讨缺氧对稳定表达人淀粉样前体蛋白的HEK293细胞(HEK293-APP695)存活及相关蛋白表达的影响,为深入研究缺氧对阿尔茨海默病的调节作用提供稳定的细胞模型。方法:利用缺氧手套箱(0.3% O2)处理HEK293-APP695细胞,CCK-8法检测细胞的存活情况;Western blot检测缺氧条件下阿尔茨海默病(AD)相关蛋白APP、APP-CTFs和BACE1的表达变化。结果:缺氧处理后,HEK293-APP695细胞的存活率明显下降,APP表达降低,其剪切体APP-CTFs表达升高。结论:缺氧导致APP剪切的增多,抑制细胞的存活,提示缺氧可能通过影响BACE1的活性在AD的发病进程中起重要的调节作用。  相似文献   

12.
We examined a neuronal cell system in which single-cell expression of either familial Alzheimer's disease (FAD) gene V642I-APP or K595N/M596L-APP (NL-APP) in an inducible plasmid was controlled without affecting transfection efficiency. This system revealed that (i) low expression of both mutants exerted toxicity sensitive to both Ac-DEVD-CHO (DEVD) and glutathione ethyl ester (GEE), whereas wild-type APP (wtAPP) only at higher expression levels caused GEE/DEVD-resistant death to lesser degrees; (ii) toxicity by the V642I mutation was entirely GEE/DEVD sensitive; and (iii) toxicity by higher expression of NL-APP was GEE/DEVD resistant. The GEE/DEVD-sensitive death was sensitive to pertussis toxin and was due to G(o)-interacting His(657)-Lys(676) domain. The GEE/DEVD-resistant death was due to C-terminal Met(677)-Asn(695). APP mutants lacking either domain unraveled elaborate intracellular cross-talk between these domains. E618Q-APP, responsible for non-AD type of a human disease, only exerted GEE/DEVD-resistant death at higher expression. Therefore, (i) different FAD mutations in APP cause neuronal cell death through different cytoplasmic domains via different sets of mechanisms; (ii) expression levels of FAD genes are critical in activating specific death mechanisms; and (iii) toxicity by low expression of both mutants most likely reflects the pathogenetic mechanism of FAD.  相似文献   

13.
The mediator neuroprotectin D1 (NPD1) is an enzymatic derivative of the omega-3 essential fatty acid docosahexaenoic acid. NPD1 stereoselectively and specifically binds to human retinal pigment epithelium (RPE) cells and neutrophils. In turn, this lipid mediator induces dephosphorylation of Bcl-xL in a PP2A-dependent manner and induces PI3K/Akt and mTOR/p70S6K pathways leading to RPE cell survival during oxidative stress-induced apoptosis. As a proof of principle of its systemic in vivo bioactivity, NPD1 attenuates laser-induced choroidal neovascularization in mice. Using human neural cells transfected with amyloid precursor protein (APP)sw (Swedish double mutation APP695sw, K595N, M596L), NPD1 was shown to regulate secretase-mediated production of Aβ peptide, downregulates pro-inflammatory gene expression, and promotes cell survival. In human neural cells overexpressing beta-amyloid precursor protein (βAPP), the lipid mediator suppressed Aβ42 shedding by downregulating β-secretase (BACE1) while activating the α-secretase (ADAM10), thus shifting the βAPP cleavage from the noxious amyloidogenic pathway into a non-amyloidogenic, neurotrophic pathway. Furthermore, downregulation of Aβ42 peptide release by NPD1 may be dependent upon PPARγ activation. In conclusion, NPD1 exhibits anti-inflammatory, anti-amyloidogenic, and anti-apoptotic bioactivities in human neural cells in part via PPARγ signaling and through the targeting of α- and β-secretase systems.  相似文献   

14.
Alzheimer's disease (AD) is histopathologically characterized by neurodegeneration, the formation of intracellular neurofibrillary tangles and extracellular Aβ deposits that derive from proteolytic processing of the amyloid precursor protein (APP). As rodents do not normally develop Aβ pathology, various transgenic animal models of AD were designed to overexpress human APP with mutations favouring its amyloidogenic processing. However, these mouse models display tremendous differences in the spatial and temporal appearance of Aβ deposits, synaptic dysfunction, neurodegeneration and the manifestation of learning deficits which may be caused by age‐related and brain region‐specific differences in APP transgene levels. Consequentially, a comparative temporal and regional analysis of the pathological effects of Aβ in mouse brains is difficult complicating the validation of therapeutic AD treatment strategies in different mouse models. To date, no antibodies are available that properly discriminate endogenous rodent and transgenic human APP in brains of APP‐transgenic animals. Here, we developed and characterized rat monoclonal antibodies by immunohistochemistry and Western blot that detect human but not murine APP in brains of three APP‐transgenic mouse and one APP‐transgenic rat model. We observed remarkable differences in expression levels and brain region‐specific expression of human APP among the investigated transgenic mouse lines. This may explain the differences between APP‐transgenic models mentioned above. Furthermore, we provide compelling evidence that our new antibodies specifically detect endogenous human APP in immunocytochemistry, FACS and immunoprecipitation. Hence, we propose these antibodies as standard tool for monitoring expression of endogenous or transfected APP in human cells and APP expression in transgenic animals.  相似文献   

15.
Neuroprotectin D1 (NPD1) is a stereoselective mediator derived from the omega-3 essential fatty acid docosahexaenoic acid (DHA) with potent inflammatory resolving and neuroprotective bioactivity. NPD1 reduces Aβ42 peptide release from aging human brain cells and is severely depleted in Alzheimer's disease (AD) brain. Here we further characterize the mechanism of NPD1's neurogenic actions using 3xTg-AD mouse models and human neuronal-glial (HNG) cells in primary culture, either challenged with Aβ42 oligomeric peptide, or transfected with beta amyloid precursor protein (βAPP)(sw) (Swedish double mutation APP695(sw), K595N-M596L). We also show that NPD1 downregulates Aβ42-triggered expression of the pro-inflammatory enzyme cyclooxygenase-2 (COX-2) and of B-94 (a TNF-α-inducible pro-inflammatory element) and apoptosis in HNG cells. Moreover, NPD1 suppresses Aβ42 peptide shedding by down-regulating β-secretase-1 (BACE1) while activating the α-secretase ADAM10 and up-regulating sAPPα, thus shifting the cleavage of βAPP holoenzyme from an amyloidogenic into the non-amyloidogenic pathway. Use of the thiazolidinedione peroxisome proliferator-activated receptor gamma (PPARγ) agonist rosiglitazone, the irreversible PPARγ antagonist GW9662, and overexpressing PPARγ suggests that the NPD1-mediated down-regulation of BACE1 and Aβ42 peptide release is PPARγ-dependent. In conclusion, NPD1 bioactivity potently down regulates inflammatory signaling, amyloidogenic APP cleavage and apoptosis, underscoring the potential of this lipid mediator to rescue human brain cells in early stages of neurodegenerations.  相似文献   

16.
The growth of A-1 fibroblasts depends on exogenous amyloid beta/A4 protein precursor (APP), providing a simple bioassay to study the function of APP. Our preliminary study, testing the activity of a series of fragments derived from the secreted form of APP-695 (sAPP- 695) on this bioassay, has shown that at least one of the active sites of sAPP-695 was localized within a 40-mer sequence (APP296-335, Kang sequence; Roch, J.-M., I. P. Shapiro, M. P. Sundsmo, D. A. C. Otero, L. M. Refolo, N. K. Robakis, and T. Saitoh. 1992. J. Biol. Chem. 267:2214- 2221). In the present study, to further characterize the growth- promoting activity of sAPP-695 on fibroblasts, we applied a battery of synthetic peptides on this bioassay and found that: (a) the sequence of five amino acids, RERMS (APP328-332), was uniquely required for the growth-promoting activity of sAPP-695; (b) the activity was sequence- specific because the reverse-sequence peptide of the active domain had no activity; and (c) the four-amino-acid peptide RMSQ (APP330-333), which partially overlaps the COOH-terminal side of the active sequence RERMS, could antagonize the activity of sAPP-695. Furthermore, a recombinant protein which lacks this active domain (APP20-591 without 306-335) did not promote fibroblast cell growth, suggesting that this domain is the only site of sAPP-695 involved in the growth stimulation. The availability of these biologically active, short peptides and their antagonists should prove to be an essential step for the elucidation of APP involvement in regulation of cellular homeostasis.  相似文献   

17.
Modulation of amyloid precursor protein (APP) metabolism plays a pivotal role in the pathogenesis of Alzheimer's disease. The phosphotyrosine-binding/protein interaction (PTB/PI) domain of X11alpha, a neuronal cytosolic adaptor protein, binds to the YENPTY sequence in the cytoplasmic carboxyl terminus of APP. This interaction prolongs the half-life of APP and inhibits Abeta40 and Abeta42 secretion. X11alpha/Mint-1 has multiple protein-protein interaction domains, a Munc-18 interaction domain (MID), a Cask/Lin-2 interaction domain (CID), a PTB/PI domain, and two PDZ domains. These X11alpha protein interaction domains may modulate its effect on APP processing. To test this hypothesis, we performed a deletion analysis of X11alpha effects on metabolism of APP(695) Swedish (K595N/M596L) (APP(sw)) by transient cotransfection of HEK 293 cells with: 1) X11alpha (X11alpha-wt, N-MID-CID-PTB-PDZ-PDZ-C), 2) amino-terminal deletion (X11alpha-DeltaN, PTB-PDZ-PDZ), 3) carboxyl-terminal deletion (X11alpha-DeltaPDZ, MID-CID-PTB), or 4) deletion of both termini (PTB domain only, PTB). The carboxyl terminus of X11alpha was required for stabilization of APP(sw) in cells. In contrast, the amino terminus of X11alpha was required to stimulate APPs secretion. X11alpha, X11alpha-DeltaN, and X11alpha-PTB, but not X11alpha-DeltaPDZ, were effective inhibitors of Abeta40 and Abeta42 secretion. These results suggest that additional protein interaction domains of X11alpha modulate various aspects of APP metabolism.  相似文献   

18.
Neural differentiation of the embryonal carcinoma P19 cell line markedly increased the abundance of mRNA encoding Alzheimer amyloid beta/A4-protein precursor (APP). In P19 cells treated with retinoic acid, the abundance of mRNA encoding APP695, which lacks the protease inhibitor domain, reached a maximum on days 2-4 and decreased thereafter, whereas the abundances of mRNAs encoding APP751 and APP770, both possessing the protease inhibitor domain, slowly increased to reach higher levels than APP695 mRNA at later stages of neural differentiation. The induction of APP695 mRNA was consistent with the appearance of neurons in the P19 cultures. A high abundance of APP695 mRNA was also detected in mouse brain at a stage of the period of neuroblast formation. Thus, neural differentiation of P19 cells may present a suitable model for studying the regulation of APP gene expression during early differentiation of brain cells in vivo.  相似文献   

19.
目的:研究H102对APP695转基因模型小鼠脑内淀粉样蛋白和淀粉样蛋白前体蛋白表达的影响方法:9月龄转基因小鼠随机分为模型组和药物注射组,正常对照组采用月龄和性别与之相匹配的C57BL/6J小鼠。药物注射组给予侧脑室注射H102,每只每次3μl,连续10d;模型组和正常对照组给予等体积NS。应用免疫组织化学结合刚果红组织学染色,普通光学显微镜观察海马和颞叶皮层蛋白表达的变化。免疫印迹法检测小鼠大脑皮层APP蛋白的表达。结果:Aβ和APP免疫组化染色结果显示对照组海马CA1区神经元胞浆着色呈阴性或弱阳性,模型组较对照组阳性细胞增多,表达增强,胞浆着色明显加深。药物注射组同模型组相比,胞浆着色变淡,表达减弱。刚果红染色观察转基因小鼠模型组和H102注射组大脑颞叶皮层和海马的淀粉样斑块,可见H102注射组淀粉样斑块数较模型组明显减少。正常对照组未见阳性淀粉样斑块。免疫印迹检测显示模型组APP蛋白表达明显增加,给药组与模型组相比具有统计学意义。结论:APP695转基因小鼠大脑CA1区Aβ蛋白和APP蛋白表达增加,H102能够明显抑制该转基因小鼠Aβ蛋白和APP蛋白表达。  相似文献   

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