Downregulation of the inwardly rectifying potassium channel Kir4.1 is a key step for inducing retinal Müller cell activation and interaction with other glial cells,which is involved in retinal ganglion cell apopt...Downregulation of the inwardly rectifying potassium channel Kir4.1 is a key step for inducing retinal Müller cell activation and interaction with other glial cells,which is involved in retinal ganglion cell apoptosis in glaucoma.Modulation of Kir4.1 expression in Müller cells may therefore be a potential strategy for attenuating retinal ganglion cell damage in glaucoma.In this study,we identified seven predicted phosphorylation sites in Kir4.1 and constructed lentiviral expression systems expressing Kir4.1 mutated at each site to prevent phosphorylation.Following this,we treated Müller glial cells in vitro and in vivo with the m Glu R I agonist DHPG to induce Kir4.1 or Kir4.1 Tyr^(9)Asp overexpression.We found that both Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression inhibited activation of Müller glial cells.Subsequently,we established a rat model of chronic ocular hypertension by injecting microbeads into the anterior chamber and overexpressed Kir4.1 or Kir4.1 Tyr^(9)Asp in the eye,and observed similar results in Müller cells in vivo as those seen in vitro.Both Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression inhibited Müller cell activation,regulated the balance of Bax/Bcl-2,and reduced the m RNA and protein levels of pro-inflammatory factors,including interleukin-1βand tumor necrosis factor-α.Furthermore,we investigated the regulatory effects of Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression on the release of pro-inflammatory factors in a co-culture system of Müller glial cells and microglia.In this co-culture system,we observed elevated adenosine triphosphate concentrations in activated Müller cells,increased levels of translocator protein(a marker of microglial activation),and elevated interleukin-1βm RNA and protein levels in microglia induced by activated Müller cells.These changes could be reversed by Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression in Müller cells.Kir4.1 overexpression,but not Kir4.1 Tyr^(9)Asp overexpression,reduced the number of proliferative and migratory microglia induced by activated Müller cells.Collectively,these results suggest that the tyrosine residue at position nine in Kir4.1 may serve as a functional modulation site in the retina in an experimental model of glaucoma.Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression attenuated Müller cell activation,reduced ATP/P2X receptor–mediated interactions between glial cells,inhibited microglial activation,and decreased the synthesis and release of pro-inflammatory factors,consequently ameliorating retinal ganglion cell apoptosis in glaucoma.展开更多
目的探讨蛋白质EPB41(erythrocyte membrane protein band 4.1)对食管癌细胞恶性表型的影响,并基于Wnt/β-catenin信号通路介导的脂肪酸氧化(fatty acid oxidation,FAO)探讨可能的潜在机制。方法将对数生长期的KYSE30细胞及KYSE150细胞...目的探讨蛋白质EPB41(erythrocyte membrane protein band 4.1)对食管癌细胞恶性表型的影响,并基于Wnt/β-catenin信号通路介导的脂肪酸氧化(fatty acid oxidation,FAO)探讨可能的潜在机制。方法将对数生长期的KYSE30细胞及KYSE150细胞各分为5组,检测mRNA和蛋白质表达、细胞增殖和迁移率、ATP水平、NADPH/NADP^(+)比率、活性氧(ROS)和GSH水平。结果在KYSE30细胞中,转染EPB41 siRNA组细胞克隆数、细胞迁移率、ATP水平、NADPH/NADP^(+)比率、ROS水平、细胞中Wnt3a、β-catenin和核β-catenin蛋白质表达均明显增加(P<0.05),且脂肪酸氧化抑制剂和Wnt通路抑制剂可逆转EPB41的作用;在KYSE150细胞中,转染EPB41过表达载体oe-EPB41组细胞克隆数、细胞迁移率、ATP水平、NADPH/NADP^(+)比率、ROS水平、细胞中Wnt3a、β-catenin和核β-catenin蛋白质表达均明显降低(P<0.05),且脂肪酸氧化诱导剂和Wnt通路激活剂可逆转EPB41的作用。结论EPB41在食管癌细胞中的表达下调,EPB41过表达可通过抑制FAO途径来抑制食管癌细胞的增殖和迁移,这可能是通过调控Wnt/β-catenin信号通路转导来实现。展开更多
Intrinsically disordered proteins(IDPs)and their regions(IDRs)play crucial roles in cellular func-tions despite their lack of stable three-dimensional structures.In this study,we investigate the interac-tions between ...Intrinsically disordered proteins(IDPs)and their regions(IDRs)play crucial roles in cellular func-tions despite their lack of stable three-dimensional structures.In this study,we investigate the interac-tions between the C-terminal do-main of protein 4.1G(4.1G CTD)and the nuclear mitotic apparatus protein(NuMA)under varying pH and salt ion conditions to under-stand the regulatory mechanisms affecting their binding.4.1G CTD and NuMA bind effec-tively under neutral and alkaline conditions,but their interaction is disrupted under acidic conditions(pH 3.6).The protonation of positively charged residues at the C-terminal of 4.1G CTD under acidic conditions leads to increased electrostatic repulsion,weakening the overall binding free energy.Secondary structure analysis shows that specific regions of 4.1G CTD re-main stable under both pH conditions,but the C-terminal region(aa 990−1000)and the N-terminal region of NuMA(aa 1800−1810)exhibit significant reductions in secondary struc-ture probability under acidic conditions.Contact map analysis and solvent-accessible surface area analysis further support these findings by showing a reduced contact probability be-tween these regions under pH 3.6.These results provide a comprehensive understanding of how pH and ionic strength regulate the binding dynamics of 4.1G CTD and NuMA,emphasiz-ing the regulatory role of electrostatic interactions.展开更多
Gibberella stalk rot(GSR)caused by Fusarium graminearum is one of the most devastating diseases of maize,seriously impacting maize yield and quality,as well as the ability to use technology of mechanical harvesting.En...Gibberella stalk rot(GSR)caused by Fusarium graminearum is one of the most devastating diseases of maize,seriously impacting maize yield and quality,as well as the ability to use technology of mechanical harvesting.Environmental conditions including photoperiod affect crop disease resistance.However,the mechanism underlying photoperiod-regulated maize GSR resistance remains unexplored.We found in this study that GSR resistance is regulated by the ZmPIF4.1(Phytochrome-Interacting Factor4)-ZmPTI1c(Pto-Interacting 1)-ZmMYB31 module coupled with photoperiod.The functional analysis of zmpti1c mutant indicated that ZmPTI1c negatively regulates maize GSR resistance.Short day promoted the disease progression in both zmpti1c and wild-type plants.ZmPTI1c promoter contains multiple predicted cis-acting elements for light responses.Yeast one-hybrid assay(Y1H),Electrophoretic mobility shift analysis(EMSA),and Dual-luciferase(LUC)reporter assays demonstrated that ZmPIF4.1 binds to the G-box in ZmPTI1c promoter and activates its expression.Moreover,expression levels of ZmPIF4 and ZmPTI1c were significantly higher under short day than under long day.ZmPTI1c interacted with and phosphorylated ZmMYB31.GSR resistance in zmmyb31 mutant was significantly increased than in wild type,indicating that ZmMYB31 also negatively regulated GSR resistance.Furthermore,ZmMYB31 suppressed the transcriptional activation of ZmPTI1c by ZmPIF4.1.Overall,ZmPIF4.1-ZmPTI1c-ZmMYB31negatively regulates maize immunity to GSR,which is likely modulated by photoperiod.展开更多
目的研究羟苯磺酸钙在高糖诱导的环境下对Müller细胞氧化损伤的保护作用及其机制。方法通过高糖诱导建立Müller细胞氧化损伤模型,并将细胞分为4组,即对照组(正常培养)、高糖组(35mmol/L葡萄糖培养基)、对照+羟苯磺酸钙组(常...目的研究羟苯磺酸钙在高糖诱导的环境下对Müller细胞氧化损伤的保护作用及其机制。方法通过高糖诱导建立Müller细胞氧化损伤模型,并将细胞分为4组,即对照组(正常培养)、高糖组(35mmol/L葡萄糖培养基)、对照+羟苯磺酸钙组(常规培养基础上加入0.5μmol/L羟苯磺酸钙)和高糖+羟苯磺酸钙组(高糖基础上加入0.5μmol/L羟苯磺酸钙)。使用CCK-8评估细胞增殖,流式细胞术检测细胞凋亡,试剂盒检测氧化应激指标,蛋白印迹技术检测内向整流钾离子通道4.1(inwardly rectifying K channel 4.1,Kir4.1)和水通道蛋白4(aquaporin-4,AQP4)蛋白水平。结果与对照组比较,高糖组Müller细胞增殖活性降低且凋亡率升高,细胞发生氧化应激,AQP4蛋白表达水平升高而Kir4.1蛋白表达水平降低(P<0.05)。与高糖组比较,高糖+羟苯磺酸钙组细胞增殖活性增加且凋亡率降低,细胞氧化应激损伤减轻,AQP4蛋白表达水平降低而Kir4.1蛋白表达水平升高(P<0.05)。结论羟苯磺酸钙可能通过调节AQP4/Kir4.1轴抑制高糖诱导的Müller细胞氧化损伤。展开更多
本实验室首次在肾脏远端肾单位闰细胞记录到去极化激活电流,并根据电生理学和药理学特征鉴定其离子通道的类型。用Axon Multi Clamp 700B膜片钳系统记录C57BL/6J小鼠肾脏远端肾单位肾小管细胞全细胞电流,并观察钾通道抑制剂对闰细胞去...本实验室首次在肾脏远端肾单位闰细胞记录到去极化激活电流,并根据电生理学和药理学特征鉴定其离子通道的类型。用Axon Multi Clamp 700B膜片钳系统记录C57BL/6J小鼠肾脏远端肾单位肾小管细胞全细胞电流,并观察钾通道抑制剂对闰细胞去极化激活电流的影响。此外,应用免疫荧光技术研究介导该电流的离子通道的具体定位。结果显示,当细胞外液为等钾溶液时,可在闰细胞记录到去极化激活电流,但该去极化激活电流未在主细胞观察到。在远端肾单位闰细胞记录到的去极化激活电流能被电压门控钾通道Kv4.1抑制剂阻断。Kv4.1蛋白免疫荧光只存在于闰细胞,未在主细胞观察到。Kv4.1蛋白免疫荧光可见于闰细胞的管腔膜和管周膜,但管腔膜的荧光强度高于管周膜。由此得出结论,闰细胞去极化激活电流由Kv4.1钾通道介导,该通道主要表达在闰细胞的管腔膜上。展开更多
通过扫描电镜/能谱、X射线衍射以及金相分析,针对含0.3%Fe(质量分数)的Al Mg Si Cu铝合金,研究了Mn含量对其结晶相的影响。研究表明:合金在铸造过程中形成的结晶相为Al1.9CuMg4.1Si3.3,Al5(FeMn)Si,Al8(FeMn)2Si以及少量的Mg2Si;增大含M...通过扫描电镜/能谱、X射线衍射以及金相分析,针对含0.3%Fe(质量分数)的Al Mg Si Cu铝合金,研究了Mn含量对其结晶相的影响。研究表明:合金在铸造过程中形成的结晶相为Al1.9CuMg4.1Si3.3,Al5(FeMn)Si,Al8(FeMn)2Si以及少量的Mg2Si;增大含Mn量,合金中AlFeMnSi型结晶相数量增多;对合金进行均匀化处理时,Al1.9CuMg4.1Si3.3相完全溶解,发生Al5(FeMn)Si向Al8(FeMn)2Si相的转变;对合金进行轧制及最终热处理后,结晶相碎化且沿轧向呈纤维状分布,但结晶相的类型不变。展开更多
基金supported by the National Natural Science Foundation of China,Nos.32271043(to ZW)and 82171047(to YM)the both Science and Technology Major Project of Shanghai,No.2018SHZDZX01 and ZJLabShanghai Center for Brain Science and Brain-Inspired Technology(to ZW)。
文摘Downregulation of the inwardly rectifying potassium channel Kir4.1 is a key step for inducing retinal Müller cell activation and interaction with other glial cells,which is involved in retinal ganglion cell apoptosis in glaucoma.Modulation of Kir4.1 expression in Müller cells may therefore be a potential strategy for attenuating retinal ganglion cell damage in glaucoma.In this study,we identified seven predicted phosphorylation sites in Kir4.1 and constructed lentiviral expression systems expressing Kir4.1 mutated at each site to prevent phosphorylation.Following this,we treated Müller glial cells in vitro and in vivo with the m Glu R I agonist DHPG to induce Kir4.1 or Kir4.1 Tyr^(9)Asp overexpression.We found that both Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression inhibited activation of Müller glial cells.Subsequently,we established a rat model of chronic ocular hypertension by injecting microbeads into the anterior chamber and overexpressed Kir4.1 or Kir4.1 Tyr^(9)Asp in the eye,and observed similar results in Müller cells in vivo as those seen in vitro.Both Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression inhibited Müller cell activation,regulated the balance of Bax/Bcl-2,and reduced the m RNA and protein levels of pro-inflammatory factors,including interleukin-1βand tumor necrosis factor-α.Furthermore,we investigated the regulatory effects of Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression on the release of pro-inflammatory factors in a co-culture system of Müller glial cells and microglia.In this co-culture system,we observed elevated adenosine triphosphate concentrations in activated Müller cells,increased levels of translocator protein(a marker of microglial activation),and elevated interleukin-1βm RNA and protein levels in microglia induced by activated Müller cells.These changes could be reversed by Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression in Müller cells.Kir4.1 overexpression,but not Kir4.1 Tyr^(9)Asp overexpression,reduced the number of proliferative and migratory microglia induced by activated Müller cells.Collectively,these results suggest that the tyrosine residue at position nine in Kir4.1 may serve as a functional modulation site in the retina in an experimental model of glaucoma.Kir4.1 and Kir4.1 Tyr^(9)Asp overexpression attenuated Müller cell activation,reduced ATP/P2X receptor–mediated interactions between glial cells,inhibited microglial activation,and decreased the synthesis and release of pro-inflammatory factors,consequently ameliorating retinal ganglion cell apoptosis in glaucoma.
文摘目的探讨蛋白质EPB41(erythrocyte membrane protein band 4.1)对食管癌细胞恶性表型的影响,并基于Wnt/β-catenin信号通路介导的脂肪酸氧化(fatty acid oxidation,FAO)探讨可能的潜在机制。方法将对数生长期的KYSE30细胞及KYSE150细胞各分为5组,检测mRNA和蛋白质表达、细胞增殖和迁移率、ATP水平、NADPH/NADP^(+)比率、活性氧(ROS)和GSH水平。结果在KYSE30细胞中,转染EPB41 siRNA组细胞克隆数、细胞迁移率、ATP水平、NADPH/NADP^(+)比率、ROS水平、细胞中Wnt3a、β-catenin和核β-catenin蛋白质表达均明显增加(P<0.05),且脂肪酸氧化抑制剂和Wnt通路抑制剂可逆转EPB41的作用;在KYSE150细胞中,转染EPB41过表达载体oe-EPB41组细胞克隆数、细胞迁移率、ATP水平、NADPH/NADP^(+)比率、ROS水平、细胞中Wnt3a、β-catenin和核β-catenin蛋白质表达均明显降低(P<0.05),且脂肪酸氧化诱导剂和Wnt通路激活剂可逆转EPB41的作用。结论EPB41在食管癌细胞中的表达下调,EPB41过表达可通过抑制FAO途径来抑制食管癌细胞的增殖和迁移,这可能是通过调控Wnt/β-catenin信号通路转导来实现。
基金supported by the National Natural Science Foundation of China(No.22073018,No.22377015).
文摘Intrinsically disordered proteins(IDPs)and their regions(IDRs)play crucial roles in cellular func-tions despite their lack of stable three-dimensional structures.In this study,we investigate the interac-tions between the C-terminal do-main of protein 4.1G(4.1G CTD)and the nuclear mitotic apparatus protein(NuMA)under varying pH and salt ion conditions to under-stand the regulatory mechanisms affecting their binding.4.1G CTD and NuMA bind effec-tively under neutral and alkaline conditions,but their interaction is disrupted under acidic conditions(pH 3.6).The protonation of positively charged residues at the C-terminal of 4.1G CTD under acidic conditions leads to increased electrostatic repulsion,weakening the overall binding free energy.Secondary structure analysis shows that specific regions of 4.1G CTD re-main stable under both pH conditions,but the C-terminal region(aa 990−1000)and the N-terminal region of NuMA(aa 1800−1810)exhibit significant reductions in secondary struc-ture probability under acidic conditions.Contact map analysis and solvent-accessible surface area analysis further support these findings by showing a reduced contact probability be-tween these regions under pH 3.6.These results provide a comprehensive understanding of how pH and ionic strength regulate the binding dynamics of 4.1G CTD and NuMA,emphasiz-ing the regulatory role of electrostatic interactions.
基金supported financially by the grants from the JBGS[2021]002 project from the Jiangsu Governmentthe National Nature Science Foundation of China(32472095)+2 种基金the National Key Research and Development Program of China(2020YFE02029002)Collaborative Innovation Center for Modern Crop Production(CIC-MCP)to Xiquan Gaosupported in part by the high-performance computing platform of Bioinformatics Center,Nanjing Agricultural University。
文摘Gibberella stalk rot(GSR)caused by Fusarium graminearum is one of the most devastating diseases of maize,seriously impacting maize yield and quality,as well as the ability to use technology of mechanical harvesting.Environmental conditions including photoperiod affect crop disease resistance.However,the mechanism underlying photoperiod-regulated maize GSR resistance remains unexplored.We found in this study that GSR resistance is regulated by the ZmPIF4.1(Phytochrome-Interacting Factor4)-ZmPTI1c(Pto-Interacting 1)-ZmMYB31 module coupled with photoperiod.The functional analysis of zmpti1c mutant indicated that ZmPTI1c negatively regulates maize GSR resistance.Short day promoted the disease progression in both zmpti1c and wild-type plants.ZmPTI1c promoter contains multiple predicted cis-acting elements for light responses.Yeast one-hybrid assay(Y1H),Electrophoretic mobility shift analysis(EMSA),and Dual-luciferase(LUC)reporter assays demonstrated that ZmPIF4.1 binds to the G-box in ZmPTI1c promoter and activates its expression.Moreover,expression levels of ZmPIF4 and ZmPTI1c were significantly higher under short day than under long day.ZmPTI1c interacted with and phosphorylated ZmMYB31.GSR resistance in zmmyb31 mutant was significantly increased than in wild type,indicating that ZmMYB31 also negatively regulated GSR resistance.Furthermore,ZmMYB31 suppressed the transcriptional activation of ZmPTI1c by ZmPIF4.1.Overall,ZmPIF4.1-ZmPTI1c-ZmMYB31negatively regulates maize immunity to GSR,which is likely modulated by photoperiod.
文摘目的研究羟苯磺酸钙在高糖诱导的环境下对Müller细胞氧化损伤的保护作用及其机制。方法通过高糖诱导建立Müller细胞氧化损伤模型,并将细胞分为4组,即对照组(正常培养)、高糖组(35mmol/L葡萄糖培养基)、对照+羟苯磺酸钙组(常规培养基础上加入0.5μmol/L羟苯磺酸钙)和高糖+羟苯磺酸钙组(高糖基础上加入0.5μmol/L羟苯磺酸钙)。使用CCK-8评估细胞增殖,流式细胞术检测细胞凋亡,试剂盒检测氧化应激指标,蛋白印迹技术检测内向整流钾离子通道4.1(inwardly rectifying K channel 4.1,Kir4.1)和水通道蛋白4(aquaporin-4,AQP4)蛋白水平。结果与对照组比较,高糖组Müller细胞增殖活性降低且凋亡率升高,细胞发生氧化应激,AQP4蛋白表达水平升高而Kir4.1蛋白表达水平降低(P<0.05)。与高糖组比较,高糖+羟苯磺酸钙组细胞增殖活性增加且凋亡率降低,细胞氧化应激损伤减轻,AQP4蛋白表达水平降低而Kir4.1蛋白表达水平升高(P<0.05)。结论羟苯磺酸钙可能通过调节AQP4/Kir4.1轴抑制高糖诱导的Müller细胞氧化损伤。
基金supported by the National Natural Science Foundation of China(No.31171109,31571187)。
文摘本实验室首次在肾脏远端肾单位闰细胞记录到去极化激活电流,并根据电生理学和药理学特征鉴定其离子通道的类型。用Axon Multi Clamp 700B膜片钳系统记录C57BL/6J小鼠肾脏远端肾单位肾小管细胞全细胞电流,并观察钾通道抑制剂对闰细胞去极化激活电流的影响。此外,应用免疫荧光技术研究介导该电流的离子通道的具体定位。结果显示,当细胞外液为等钾溶液时,可在闰细胞记录到去极化激活电流,但该去极化激活电流未在主细胞观察到。在远端肾单位闰细胞记录到的去极化激活电流能被电压门控钾通道Kv4.1抑制剂阻断。Kv4.1蛋白免疫荧光只存在于闰细胞,未在主细胞观察到。Kv4.1蛋白免疫荧光可见于闰细胞的管腔膜和管周膜,但管腔膜的荧光强度高于管周膜。由此得出结论,闰细胞去极化激活电流由Kv4.1钾通道介导,该通道主要表达在闰细胞的管腔膜上。
文摘通过扫描电镜/能谱、X射线衍射以及金相分析,针对含0.3%Fe(质量分数)的Al Mg Si Cu铝合金,研究了Mn含量对其结晶相的影响。研究表明:合金在铸造过程中形成的结晶相为Al1.9CuMg4.1Si3.3,Al5(FeMn)Si,Al8(FeMn)2Si以及少量的Mg2Si;增大含Mn量,合金中AlFeMnSi型结晶相数量增多;对合金进行均匀化处理时,Al1.9CuMg4.1Si3.3相完全溶解,发生Al5(FeMn)Si向Al8(FeMn)2Si相的转变;对合金进行轧制及最终热处理后,结晶相碎化且沿轧向呈纤维状分布,但结晶相的类型不变。