Abstract Luteolin is a flavonoid found in high concentrations in celery and green pepper, and acts as a neuroprotectant. PSMC5 (proteasome 26S subunit, ATPase 5) protein levels were reduced after luteolin stimulation in activated microglia. We aimed to determine whether regulating PSMC5 expression could inhibit neuroinflammation, and investigate the underlying mechanisms.BV2 microglia were transfected with siRNA PSMC5 before the addition of LPS (lipopolysaccharide, 1.0 µg/ml) for 24 h in serum free DMEM. A mouse model of LPS-induced cognitive and motor impairment was established to evaluate the neuroprotective effects of shRNA PSMC5. Intracerebroventricular administration of shRNA PSMC5 was commenced 7 days prior to i.p. injection of LPS (750 μg/kg). Treatments and behavioral experiments were performed once daily for 7 consecutive days. Behavioral tests and pathological/biochemical assays were performed to evaluate LPS-induced hippocampal damage. Molecular dynamics simulation was used to confirm the interaction between PSMC5 and TLR4 (Toll-like receptor 4) in LPS-stimulated BV2 microglia. SiRNA PSMC5 inhibited BV2 microglial activation, and suppressed the release of inflammatory factors (IL-1β, COX-2, PGE2, TNF-α, and iNOS) upon after LPS stimulation in BV2 microglia. LPS increased IκB-α and p65 phosphorylation, which was attenuated by siRNA PSMC5. Behavioral tests and pathological/biochemical assays showed that shRNA PSMC5 attenuated LPS-induced cognitive and motor impairments, and restored synaptic ultrastructure and protein levels in mice. ShRNA PSMC5 reduced pro-inflammatory cytokine (TNF-α, IL-1β, PGE2, and NO) levels in the serum and brain, and relevant protein factors (iNOS and COX-2) in the brain. Furthermore, shRNA PSMC5 upregulated the anti-inflammatory mediators interleukin IL-4 and IL-10 in the serum and brain, and promoted a pro-inflammation-to-anti-inflammation phenotype shift in microglial polarization. Mechanistically, shRNA PSMC5 significantly alleviated LPS-induced TLR4 expression. The polarization of LPS-induced microglial pro-inflammation phenotype was abolished by TLR4 inhibitor and in the TLR-4−/− mouse, as in shRNA PSMC5 treatment. PSMC5 interacted with TLR4 via the amino sites Glu284, Met139, Leu127, and Phe283. PSMC5 site mutations attenuated neuroinflammation and reduced pro-inflammatory factors by reducing TLR4-related effects, thereby reducing TLR4-mediated MyD88 (myeloid differentiation factor 88)-dependent activation of NF-κB. PSMC5 could be an important therapeutic target for treatment of neurodegenerative diseases involving neuroinflammation-associated cognitive deficits and motor impairments induced by microglial activation. Graphical Abstract
In human immunity, the spleen is a major organ, being central to humoral and cellular immunity. In vitro and in vivo, inflammation is regulated by ubiquitin-specific protease 8 (USP8); however, to the best of our knowledge, the effect of USP8 on spleen injury remains unknown. The present study aimed to investigate the protection offered by USP8 against spleen injury in lipopolysaccharide (LPS)-induced mice via attenuation of inflammation. A total of 119 C57BL/6J mice were placed into the following groups: Control group, saline group, LPS group, USP8 group, USP8 + LPS group and negative control (NC) + LPS group. A USP8 lentivirus was injected into mice at 1x10(8) TU/ml intracerebroventricularly for 7 days before LPS was administered via intraperitoneal injection at 750 mu g/kg. From each group, serum and spleen samples were collected for analysis. Histological imaging was used to examine the spleen structure. Western blotting was used to detect the expression levels of proteins associated with the mitogen-activated protein kinase (MAPK) and nuclear factor (NF)-kappa B signaling pathways. Pro-inflammatory cytokines were detected using enzyme-linked immunosorbent assays. Compared with that in the saline, control and USP8 + LPS groups, the spleen volume in the LPS group was markedly increased, and the width of the splenic cord and sinus exhibited morphological damage in the LPS group. Compared with that in the saline, control and USP8 + LPS groups, the protein expression levels of USP8 in the spleen were decreased in the LPS group. Furthermore, the production of LPS-induced pro-inflammatory cytokines (e.g., interleukin-1 beta and tumor necrosis factor-alpha) was reduced in serum and spleen homogenates by USP8. Related inflammatory pathways, including the NF-kappa B and MAPK pathways, were downregulated in the USP8 + LPS group compared with those in the LPS group. In conclusion, the anti-inflammatory effect of USP8 on LPS-induced spleen injury may be mediated by the inhibition of MAPK and NF-kappa B signaling pathways.
Astaxanthin (Ast) is an effective neuroprotective and antioxidant compound used to treat Alzheimer's disease (AD); however, the underlying in vivo molecular mechanisms remain unknown. In this study, we report that Ast can activate the mammalian target of rapamycin (mTOR) pathway in the 8-month-old APP/PS1 transgenic mouse model of AD. Our results suggest that Ast could ameliorate the cognitive defects in APP/PS1 mice by activating the mTOR pathway. Moreover, mTOR activation perturbed the mitochondrial dynamics, increased the synaptic plasticity after 21 days of treatment with Ast (10 mg/kg/day), and increased the expression of Aβ-degrading enzymes, mitochondrial fusion, and synapse-associated proteins and decreased the expression of mitochondrial fission proteins. Intraperitoneal injection of the mTOR inhibitor, rapamycin, abolished the effects of Ast. In conclusion, Ast activates the mTOR pathway, which is necessary for mitochondrial dynamics and synaptic plasticity, leading to improved learning and memory. Our results support the use of Ast for the treatment of cognitive deficits. Graphical abstract In summary, Ast ameliorates cognitive deficits via facilitating the mTOR-dependent mitochondrial dynamics and synaptic damage, and reducing Aβ accumulation. This model supports the use of Ast for the treatment of cognitive deficits.
Oxidative stress is a potential pathological mechanism of Alzheimer’s disease (AD). Berberine (BBR) can improve antioxidative capacity and inhibit Aβ protein aggregation and tau protein hyperphosphorylation in AD, and stem cell therapy is also increasingly recognized as a therapy for AD. Bone marrow mesenchymal stem cells (BMSCs) have many advantages, as they exhibit antioxidant and anti-inflammatory activity and secrete a variety of neurotrophic factors, and play important roles in neurodegenerative disease treatment. In this study, we investigated the antioxidant effects of secretions from BMSCs pretreated with BBR on tert -butyl hydroperoxide ( t -BHP)–damaged neurons. We demonstrated that BBR can enhance BMSC viability and the secretion of nerve growth factor (NGF) and brain-derived neurotrophic factor (BDNF), both of which are vital neurotrophic factors that maintain neuronal growth. Moreover, conditioned medium from BBR-treated BMSCs (BBR-BMSC-CM) reduced reactive oxygen species (ROS) production, attenuated a decrease in the mitochondrial membrane potential, and ameliorated neuronal apoptosis by decreasing levels of the apoptotic proteins Bax/Bcl-2, cytochrome c, and cleaved caspase-3/caspase-3. In addition, increased synaptophysin (SYP) and postsynaptic density protein 95 (PSD95) levels indicated that neuronal synaptic function was restored. Further study revealed that BBR-BMSC-CM activated the antioxidant proteins Keap1, Nrf2, and HO-1. In conclusion, our results showed that BBR-BMSC-CM attenuated apoptosis and oxidative damage in neurons by activating the Keap1-Nrf2-HO-1 signaling pathway. Taken together, these results also suggest BBR as a drug to stimulate the secretion of nutritional cytokines with the potential to treat AD.
Ubiquitin-specific protease 8 (USP8) regulates inflammation in vitro; however, the mechanisms by which USP8 inhibits neuroinflammation and its pathophysiological functions are not completely understood. In this study, we aimed to determine whether USP8 exerts neuroprotective effects in a mouse model of lipopolysaccharide (LPS)-induced cognitive and motor impairment. We commenced intracerebroventricular USP8 administration 7 days prior to i.p. injection of LPS (750 mu g/kg). All treatments and behavioral experiments were performed once per day for 7 consecutive days. Behavioral tests and pathological/biochemical assays were performed to evaluate LPS-induced hippocampal damage. USP8 attenuated LPS-induced cognitive and motor impairments in mice. Moreover, USP8 downregulated several pro-inflammatory cytokines [nitric oxide (NO), tumor necrosis factor a (TNF-alpha), prostaglandin E-2 (PGE(2)), and interleukin-1 beta (IL-1 beta)] in the serum and brain, and the relevant protein factors [inducible nitric oxide synthase (iNOS) and cyclooxygenase 2 (COX-2)] in the brain. Furthermore, USP8 upregulated the anti-inflammatory mediators interleukin (IL)-4 and IL-10 in the serum and brain, and promoted a shift from pro-inflammatory to anti-inflammatory microglial phenotypes. The LPS-induced microglial pro-inflammatory phenotype was abolished by TLR4 inhibitor and in TLR4(-/-) mice; these effects were similar to those of USP8 treatment. Mechanistically, we found that USP8 increased the expression of neuregulin receptor degradation protein-1 (Nrdp1), potently downregulated the expression of TLR4 and myeloid differentiation primary response protein 88 (MyD88) protein, and inhibited the phosphorylation of I kappa B kinase (IKK) beta and kappa B-alpha (I kappa B alpha), thereby reducing nuclear translocation of p65 by inhibiting the activation of the nuclear factor-kappaB (NF-kappa B) signaling pathway in LPS-induced mice. Our results demonstrated that USP8 exerts protective effects against LPS-induced cognitive and motor deficits in mice by modulating microglial phenotypes via TLR4/MyD88/NF-kappa B signaling.
BACKGROUND/PURPOSE:Ultraviolet (UV) A (315-400 nm) is the UV light that most frequently reaches the Earth's surface and can penetrate the epidermis through to the dermis, causing various issues, including skin aging and skin cancer. The results of our previous studies have shown that the flavonoid monomer cyanidin-3-o-glucoside (C3G) can effectively inhibit primary human dermal fibroblast (HDF) oxidative damage and apoptosis caused by UVA radiation. Many flavonoids can regulate the level of autophagy. However, whether C3G inhibits UVA-induced oxidative damage to primary HDFs by regulating autophagy levels remains unclear. METHODS AND RESULTS:In this study, we used different doses (0-12 J/cm2 ) of UVA to irradiate cells and showed that the expression levels of autophagy-related gene 5 (Atg5) and microtubule-associated protein 1 light chain 3 (LC3)-II in primary HDFs first increased and then decreased. The expression of Atg5 and LC3-II was significantly decreased under 12 J/cm2 (light-damage model). C3G increased the levels of Atg5 and LC3-II. Primary HDFs were pretreated with C3G, followed by treatment with the autophagy inhibitor 3-methyladenine (3-MA) after 12 J/cm2 UVA irradiation. The inhibitory effects of C3G on morphological changes, oxidative damage, and apoptosis in primary HDFs induced by UVA were significantly decreased. CONCLUSION:C3G can inhibit UVA-induced damage to primary HDFs by inducing autophagy. These results provide a theoretical basis for the application of natural compounds to resist light damage to the skin in the future.
目的:建立脓毒症相关性脑病(sepsis-associated encephalopathy,SAE)小鼠模型并对其认知功能障碍进行初步研究.方法:选取8~10周龄SPF级雄性C57BL/6J小鼠.第1部分实验将小鼠随机分为4组,即正常对照组,盲肠结扎穿孔术(cecal ligation and puncture,CLP)1组和CLP2组(分别用7号和12号针头行小鼠腹腔CLP)和假手术组(小鼠仅开腹分离盲肠).第2部分实验将小鼠随机分为3组,即正常对照组,假手术组和CLP组.采用Kaplan-Meier法分析小鼠术后存活率;神经行为学评分评价小鼠的神经行为变化;Morris水迷宫实验和避暗实验检测小鼠的认知记忆功能变化;爬杆实验和悬挂实验测试小鼠的运动协调性;ELISA法检测小鼠血清前列腺素E2(prostaglandin E2,PGE2)水平变化.结果:第1部分实验中,CLP术后小鼠出现明显嗜睡、竖毛、寒颤和厌食等症状,CLP1组和CLP2组小鼠48 h死亡率分别为20%和30%.两部分实验中行小鼠腹腔盲肠结扎穿孔术组小鼠神经行为学评分均显著低于对照组和假手术组(P<0.01);Morris水迷宫中逃避潜伏期时间均显著延长(P<0.01),目标象限停留时间和穿越平台次数减少(P<0.01);悬挂实验和爬杆实验中评分均出现显著降低(P<0.01);在避暗实验开始后大部分小鼠活动量显著减小甚至未曾进入暗室(P<0.05).第2部分实验中,CLP术后小鼠血清中PGE2释放量显著增加(P<0.01).结论:通过12号针行盲肠结扎穿孔术可成功建立稳定的脓毒症相关性脑病小鼠模型,用此法建立的SAE小鼠模型存在学习记忆认知功能障碍.
In this study, we investigated lipopolysaccharide (LPS)-induced cognitive impairment and neuroinflammation in C57BL/6J mice by using behavioral tests, immunofluorescence, enzyme-linked immunosorbent assay (ELISA) and Western blot. We found that LPS treatment leads to sickness behavior and cognitive impairment in mice as shown in the Morris water maze and passive avoidance test, and these effects were accompanied by microglia activation (labeled by ionized calcium binding adaptor molecule-1, IBA-1) and neuronal cell loss (labeled by microtubule-associated protein 2, MAP-2) in the hippocampus. The levels of interleukin-4 (IL-4) and interleukin-10 (IL-10) in the serum and brain homogenates were reduced by the LPS treatment, while the levels of tumor necrosis factor-α (TNF-α), interleukin-1β (IL-1β), prostaglandin E2 (PGE 2 ) and nitric oxide (NO) were increased. In addition, LPS promoted the expression of cyclooxygenase-2 (COX-2) and inducible nitric oxide synthase (iNOS) in the brain homogenates. The Western blot analysis showed that the nuclear factor kappa B (NF-κB) signaling pathway was activated in the LPS groups. Furthermore, VIPER, which is a TLR-4-specific inhibitory peptide, prevented the LPS-induced neuroinflammation and cognitive impairment. These data suggest that LPS induced cognitive impairment and neuroinflammation via microglia activation by activating the NF-kB signaling pathway; furthermore, we compared the time points, doses, methods and outcomes of LPS administration between intraperitoneal and intracerebroventricular injections of LPS in LPS-induced neuroinflammation and cognitive impairment, and these data may provide additional insight for researchers performing neuroinflammation research.
Oxidative stress is a key factor of and closely implicated in the pathogenesis of Alzheimer’s disease (AD). We herein used tert-butyl hydroperoxide (t-BHP) to induce oxidative stress and mimic oxidative neurotoxicity in vitro. Lycopene is a natural antioxidant that has a strong ability to eliminate free radicals and shows effective protection in some neurodegenerative disease models. However, the effect of lycopene on t-BHP-induced neuronal damage in primary mouse neurons is unknown. This study aimed to investigate the effects of lycopene on t-BHP-induced neuronal damage and the related mechanisms. We found that lycopene pretreatment effectively enhanced the cell viability, improved the neuron morphology, increased the GSH/GSSG level, restored the mitochondrial membrane potential (ΔΨm) and decreased reactive oxygen species generation. Furthermore, lycopene reduced the ratios of Bax:Bcl-2 and cleaved caspase-3:caspase-3 and the level of cytochrome C, increased the levels of synaptophysin (SYP) and postsynaptic density 95 (PSD95) and activated the PI3K/Akt pathway. In conclusion, lycopene attenuated oxidative stress and reduced t-BHP-induced cell apoptosis, and the mechanism is likely related to activation of the PI3K/Akt pathway. Therefore, lycopene is a potential agent for preventing oxidative stress-mediated AD.
A promising intervention for Alzheimer's disease (AD) would ideally target key pathological factors that are involved in AD pathogenesis. Soluble factors produced by engrafted mesenchymal stem cells (MSCs) mediate potential therapeutic effects in AD. However, these therapeutic benefits are largely hampered by the limited paracrine capacity of MSCs. In this study, we used adenovirus-mediated gene transduction of bone marrow MSCs to deliver exogenous proteins into the brain of APPswe/PSEN1dE9 (APP/PS1) mice in the early stage of impairment. We observed that engrafted MSCs carrying exogenous (C-X3-C motif) ligand 1 (CX3CL1) alone reduced the production of the inflammatory cytokine TNF-ɑ and improved synapse-related protein expression but not cognitive function. Transplantation of MSCs carrying CX3CL1 and Wnt3a (CX3CL1-Wnt3a-MSC) significantly attenuated the learning and memory impairment when compared with a control group. The improvement of neurobehavioral functions in APP/PS1 mice treated with CX3CL1-Wnt3a-MSC was related to the inhibition of microglial neurotoxicity and promotion of hippocampal neurogenesis. Transplantation of CX3CL1-Wnt3a-MSC also regulated phosphoinositide 3-kinase/activated protein kinase B (PI3K/AKT) signaling to inhibit the activity of glycogen synthase kinase 3 beta (GSK3β). Taken together, these results indicate that the delivery of exogenous proteins via MSCs can modulate microglial function and enhance neurogenesis, thereby providing new insights into AD intervention.
阿尔茨海默病(AD)是一种进行性发展的神经退行性疾病,目前尚无确切有效治疗措施.近年来研究发现基因编码的髓样细胞触发受体2(TREM2)可通过加强吞噬β-淀粉样蛋白(Aβ)及抑制中枢神经炎症而改善AD症状,并且TREM2功能缺失或缺陷的变体会加剧Aβ毒性进而增加AD风险.因此,近年来TREM2基因成为AD有效预防和治疗的靶点的研究热点之一.然而,近期的一些研究表明TREM2是一把双刃剑:在AD早期阶段,TREM2缺陷可防止大脑受Aβ的侵害;但是在AD晚期,TREM2功能缺失会加重大脑毒性损伤.本文就从TREM2与AD发病机制的关系的最新进展予以综述.
通过分析高分辨磁共振(HR-MRI)确诊的1例自发性大脑前动脉夹层致青年卒中的临床诊疗情况及影像资料,探讨HR-MRI诊断夹层动脉瘤的可行性.
Neural stem cells (NSCs) hold great potential for the treatment of Alzheimer's disease (AD) through both cellular replacement and their secretion of trophic factors. Lycopene is a potent β-carotenoid antioxidant that has been shown to ameliorate oxidative damage in previous studies. However, it is unclear if lycopene can interact with NSCs to induce the secretion of growth factors, and whether pretreatment with lycopene will allow NSCs to secrete enough trophic factors to reduce oxidative damage to neurons. We pretreated cultured NSCs with lycopene, then applied the lycopene-treated-NSC-conditioned media (Ly-NSC-CM) to primary neuronal cultures exposed to tert-butyl hydroperoxide (t-BHP) to induce oxidative damage. We found that lycopene promoted the secretion of nerve growth factor (NGF), brain-derived neurotrophic factor (BDNF), and vascular endothelial growth factor (VEGF) from NSCs. In addition, Ly-NSC-CM attenuated oxidative stress and reduced t-BHP-induced cell apoptosis. We found an antiapoptotic effect related to inhibited expression of Bax/Bcl-2, cytochrome C, and cleaved caspase-3. Moreover, Ly-NSC-CM increased the levels of synaptic proteins, including synaptophysin (SYP) and postsynaptic density 95 (PSD-95), and activated the PI3K/Akt pathway in cultured neurons. Collectively, these data indicate that Ly-NSC-CM could protect neurons from t-BHP-induced oxidative damage.
Background/purposeUltraviolet-A (UVA) radiation can induce photoaging and skin cancer, but means to prevent or treat UVA-induced skin damage require further study. We investigated the effects of cyanidin-3-o-glucoside (C3G), a monomer of anthocyanin, on UVA-induced damage in primary human dermal fibroblasts (HDFs), and we identify possible mechanisms underlying the protective effects of this compound. MethodsPrimary HDFs were pretreated with 80mol/L C3G for 2hours and UVA irradiated at 12J/cm(2). The cells were then incubated with 80mol/L C3G for 12hours after irradiation. HDFs were randomly divided into control, UVA treatment, C3G, and UVA treatment plus C3G pretreatment groups. ResultsC3G increased the cell viability of primary HDFs and decreased UVA-induced ROS production and apoptosis rate. Compared to the UVA group, the UVA plus pretreatment with C3G group displayed increased Bcl-2 expression and Bcl-2/Bax ratio, decreased cleaved caspase-3 and p-P38 levels, and increased ERK phosphorylation; no significant effect on p-JNK levels was observed. ConclusionC3G reduced UVA-induced HDF oxidative damage and apoptosis, likely be related to the down-regulation of p-P38, up-regulation of ERK protein phosphorylation.
AIM:To investigate the protective effect of lycopene on primary mouse cerebrocortical neurons ex -posed to tert-butyl hydroperoxide ( t-BHP) and its mechanisms of in vitro.METHODS:Primary cerebrocortical neurons of newborn C57 mice were extracted and divided into normal group , t-BHP group, lycopene +t-BHP group and lycopene group.The neuronal damage was induced by t-BHP exposure for 24 h, and the cell viability was examined by MTT assay . ROS content was measured by flow cytometry , and the protein levels of Bax , Bcl-2, caspase-3, cleaved caspase-3 and cyto-chrome C were examined by Western blot .RESULTS:The primary mouse cortical neurons expressed MAP-2 protein.Ly-copene at concentration of 4μmol/L reversed the decrease in cell viability .Flow cytometry revealed that lycopene treatment attenuated ROS content under the condition of t-BHP exposure.In addition, the protein level of Bcl-2 was increased, and the expression of Bax , cleaved caspase-3 and cytochrome-C was suppressed in lycopene +t-BHP group.CONCLUSION:The protective effect of lycopene on cortical neurons with t-BHP-induced injury may be involved in the mechanism of neuro-nal antioxidative response by down-regulating caspase-3 and Bax/Bcl-2 through the mitochondrial apoptotic pathway .
AIM:To investigate the effect of bone marrow mesenchymal stem cell(BMSC) transplantation on learning and memory abilities and pathological changes of Alzheimer disease (AD) mice and the molecular mechanisms. METHODS:C57/BL6 wild-type (WT) and transgenic(Tg) mice were randomly divided into 4 groups:WT/PBS group, WT/BMSCs group,Tg/PBS group and Tg/BMSCs group. The mice were administered with PBS or BMSCs via intracere-broventricular injection. Spatial learning and memory abilities of the mice were evaluated by Morris water maze test on the 3rd day after surgery. Real-time PCR was applied to detect the mRNA expression of CX3C chemokine ligand 1 (CX3CL1),CX3C chemokine receptor 1 (CX3CR1), IL-1β, TNF-α, Nurr1, YM1, insulin-degrading enzyme (IDE) and matrix metalloproteinase 9(MMP9). The protein levels of CX3CL1 and Aβ42 were measured by ELISA. Western blot was used to detect the protein expression of postsynaptic density protein 95 (PSD95) and synaptophysin (SYP). RE-SULTS:The transplanted BMSCs were observed near the hippocampus of APP/PS1 mice on the 10th postoperative day. The escape latency of the mice in Tg/PBS group was significantly longer than that in the WT/PBS mice(P<0.05). Com-pared with Tg/PBS group,the escape latency of Tg/BMSCs group was significantly shorter (P<0.05), and the mRNA and protein levels of CX3CL1 in Tg/BMSCs group were significantly higher than those in Tg/PBS group (P<0.01). The results of immunohistofluorescence staining showed that BMSC transplantation promoted the activation of microglia in the brain of WT and Tg mice. The mRNA expression of YM1 was up-regulated in WT/BMSCs group and Tg/BMSCs group (P<0.05). Compared with WT/PBS mice, the mRNA expression of TNF-α in the cortex and hippocampus of Tg/PBS group was significantly increased (P<0.05),and the mRNA expression of Nurr1 in the cortex was significantly decreased (P<0.01). Meanwhile,the mRNA expression of TNF-α in the cortex of Tg/BMSCs mice was decreased(P<0.01) and the mRNA expression of CX3CR1 and Nurr1 was up-regulated compared with Tg/PBS group (P<0.05). The results of Western blot showed that the protein levels of PSD95,p85,p110 and p-Akt in Tg/BMSCs group were significantly higher than those in Tg/PBS group (P<0.05). Finally, BMSC transplantation reduced the protein level of Aβ42 in APP/PS1 mice(P<0.05), and increased the mRNA expression of IDE and MMP9 in the hippocampus (P <0.05). CONCLU-SION:BMSC transplantation modulates neuroinflammatory responses and promotes neuroprotective factor and synaptic pro-tein expression,thus improving the learning and memory abilities in the APP/PS1 mice,which may be achieved by up-reg-ulating the expression of CX3CL1.
AIM:To establish a mouse model of immuno-inflammation in central nervous system (CNS) associated with cognitive dysfunction.METHODS:C57BL/6J male mice were divided into 3 groups.Lipopolysaccharide (LPS) was intraperitoneally injected into the mice to induce cognitive impairment.Morris water maze test, passive avoidance test and pole test were used to observe the behavioral changes of mice.The histomorphology was analyzed by the method of immunofluorescence.The detailed molecular mechanism was determined by Western blot.RESULTS:Compared with saline group, LPS induced mouse sickness behavior and memory loss.Microglia activation and neuronal loss in the hippocampus were observed.The expression of neuroinflammatory proteins COX-2 and iNOS in the brain of LPS-induced mice was increased.CONCLUSION:Intraperitoneal injection of LPS induces cognitive dysfunction in mice.
Lutein injection is a possible therapeutic approach for retinal diseases, but the molecular mechanism of its neuroprotective effect remains to be elucidated. The aim of this study was to investigate its protective effects in retinal ganglion cells (RGCs) against N -methyl- d -aspartate (NMDA)-induced retinal damage in vivo. Retinal damage was induced by intravitreal NMDA injection in rats. Each animal was given five daily intraperitoneal injections of Lutein or vehicle along with intravitreal NMDA injections. Electroretinograms were recorded. The number of viable RGCs was quantified using the retinal whole-mount method by immunofluorescence. Proteins were measured by Western blot assays. Lutein reduced the retinal damage and improved the response to light, as shown by an animal behavior assay (the black-and-white box method) in rats. Furthermore, Lutein treatment prevented the NMDA-induced reduction in phNR wave amplitude. Lutein increased RGC number after NMDA-induced retina damage. Most importantly, Bax, cytochrome c, p-p38 MAPK, and p–c-Jun were all upregulated in rats injected with NMDA, but these expression patterns were reversed by continuous Lutein uptake. Bcl-2, p-GSK-3β, and p-Akt in the Lutein-treated eyes were increased compared with the NMDA group. Lutein has neuroprotective effects against retinal damage, its protective effects may be partly mediated by its anti-excitability neurotoxicity, through MAPKs and PI3K/Akt signaling, suggesting a potential approach for suppressing retinal neural damage.
目的:观察叶黄素(lutein)对叔丁基过氧化氢(t-BHP)处理的视网膜神经节细胞(RGC-5细胞系)的保护效应并探讨其作用机制.方法:用免疫荧光染色检测视网膜神经节特异性蛋白Bm-3和神经微管结合蛋白MAP-2的表达来鉴定RGC-5细胞;将RGC-5细胞随机分为对照组、t-BHP处理组、t-BHP和lutein共同处理组、lutein处理组,培养24 h,MTT实验检测细胞活力;Annexin V-FITC/PI双染流式细胞术检测细胞凋亡;免疫细胞化学技术检测easpase-3蛋白的活化情况;Western blot检测Bcl-2/Bax、cleaved caspase-3、JNK和c-Jun蛋白的变化.结果:MTT实验和流式细胞检测结果显示,lutein能提高t-BHP处理的RGC-5细胞的活力,并降低t-BHP诱导的RGC-5细胞凋亡;免疫荧光结果显示lutein能抑制t-BHP诱导的caspase-3的活化;与对照组比较,t-BHP处理后RGC-5细胞抗凋亡蛋白Bcl-2表达下调(P<0.05),Bax/Bcl-2比率升高,cleaved caspase-3表达上调(P<0.05),JNK和c-Jun蛋白的磷酸化水平增加(P<0.05),t-BHP的上述作用可被lutein部分逆转.结论:Lutein能够降低t-BHP诱导的RGC-5细胞凋亡,其机制与其上调Bcl-2的表达、抑制caspase-3的活化并降低JNK和c-Jun蛋白的磷酸化有关.