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红曲色素是天然安全的色素和防腐剂,根据代谢数据库选择了6种代谢途径关键酶的抑制剂,在基本培养基中考察这些抑制剂对红曲霉生长和合成色素的影响。甲羟戊酸合成途径的抑制剂邻氨基苯甲酸和3,4-二羟苯甲酸对红曲霉生长和色素生物合成都没有影响;莽草酸途径关键酶氨基苯甲酸合成酶的抑制剂三甲胺不抑制红曲霉的生长和色素的合成。在不影响红曲霉生长的浓度范围内,聚酮途径中β-酮酯酰-ACP合成酶的专性抑制剂碘乙酰胺(0.5mmol/L)抑制红曲色素合成程度达64.7%,非专性抑制剂咪唑(1mmol/L)抑制幅度达60%,聚酮途径硫酯酶的抑制剂2,4-二硝基氟苯(0.5mmol/L)强烈抑制红曲霉合成色素的活性,抑制程度达91.5%。相关酶活抑制的试验数据显示红曲霉可能经过聚酮途径合成红曲色素。  相似文献   
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反义封闭NGAL基因表达对SHEEC食管癌细胞微丝骨架的影响   总被引:7,自引:3,他引:7  
为了研究反义封闭NGAL基因表达对SHEEC食管癌细胞微丝骨架以及肿瘤细胞生物学行为的影响,以不同长度NGAL基因片段反义表达载体和硫代修饰反义寡核苷酸单链片段转染SHEEC食管癌细胞,通过G418筛选,建立一系列旨在封闭SHEEC食管癌细胞NGAL基因表达的亚细胞克隆.在细胞内F-肌动蛋白(F-actin)及DNA荧光双标记基础上,通过流式细胞术、激光共聚焦显微镜扫描术等技术手段检测封闭反义NGAL基因表达后, SHEEC食管癌细胞中F-actin和DNA含量、F-actin形态结构以及肿瘤细胞生物学行为的变化特征.结果显示,反义封闭NGAL基因表达后,SHEEC食管癌细胞F-actin的含量明显降低,与永生化食管上皮细胞SHEE相近,但细胞分裂增殖指数未见明显变化.表明反义封闭NGAL基因表达对SHEEC食管癌细胞的微丝骨架有明显影响,而对SHEEC食管癌细胞的分裂增殖影响不明显.激光共聚焦显微镜扫描观测显示,反义封闭NGAL基因表达可使SHEEC食管癌细胞F-actin分布均匀,F-actin小体减少,细胞间连接重新建立,结构较紧密,主要形态结构特征与SHEE细胞趋于一致.提示反义封闭NGAL基因表达可对SHEEC食管癌细胞的微丝骨架F-actin产生明显影响,推测癌细胞的微丝骨架F-actin可能是NGAL基因在SHEEC食管癌细胞中发挥功能的一种作用环节.  相似文献   
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Wnt/β-catenin signaling controls various cell fates in metazoan development, and its dysregulation is often associated with cancer formation. However, regulations of this signaling pathway are not completely understood. Here, we report that Lzap, a tumor suppressor, controls nuclear translocation of β-catenin. In zebrafish embryos disruption of lzap increases the expression of chordin (chd), which encodes a bone morphogenetic protein (BMP) antagonist that is localized in prospective dorsal cells and promotes dorsal fates. Consistently, lzap-deficient embryos with attenuated BMP signaling are dorsalized, which can be rescued by overexpression of zebrafish lzap or bmp2b or human LZAP. The expansion of chd expression in embryos lacking lzap is due to the accumulation of nuclear β-catenin in ventral cells, in which β-catenin is usually degraded. Furthermore, the activity of GSK3, a master regulator of β-catenin degradation, is suppressed in lzap-deficient embryos via inhibitory phosphorylation. Finally, we also report that a similar regulatory axis is also likely to be present in a human tongue carcinoma cell line, SAS. Our results reveal that Lzap is a novel regulator of GSK3 for the maintenance of ventral cell properties and may prevent carcinogenesis via the regulation of β-catenin degradation.  相似文献   
4.
目的:改造大肠杆菌苯丙氨酸生物合成的中心代谢途径,优化关键酶基因pheA、aroF、ppsA、tktA的协同表达,进一步提高苯丙氨酸产量。方法:构建重组质粒pZE12-AFPT,鉴定后通过SDS-PAGE观察其蛋白表达量,并转入缺陷菌大肠杆菌MGΔ中构建工程菌,发酵培养后测量苯丙氨酸产量,与本室保存的重组质粒MGΔpZE12-AF做对比;构建重组质粒pZE21-AF和pZA31-PT,将后者转入感受态pZE12-AF和pZE21-AF中,得到双抗性质粒,并比较转化前后苯丙氨酸的产量。结果:工程菌MGΔpZE12-AFPT的苯丙氨酸产量比对照菌株MGΔpZE12-AF提高了近1.6倍,并且实现了4个串联基因的协同表达;质粒pZA31-PT转入pZE12-AF和pZE21-AF后,苯丙氨酸产量比原质粒pZE12-AF和pZE21-AF分别提高了近0.6倍和2.8倍。结论:实现了4个关键酶基因的串联表达,改造了苯丙氨酸的生物合成途径,使得苯丙氨酸产量有所提高,为进一步得到其高产菌株奠定了基础。  相似文献   
5.
Yang  Dong-Yue  Zhuang  Kun-Yang  Ma  Na-Na 《Protoplasma》2023,260(2):625-635

Ascorbic acid (AsA) plays an important role in scavenging reactive oxygen species (ROS) and reducing photoinhibition in plants, especially under stress. The function of SlGGP which encodes the key enzyme GDP-L-galactose phosphorylase in AsA synthetic pathway is relatively clear. However, there is another gene SlGGP-LIKE that encodes this enzyme in tomato, and there are few studies on it, especially under salt stress. In this study, we explored the function of this gene in tomato salt stress response using transgenic lines overexpressing SlGGP-LIKE (OE). Under normal conditions, overexpressing SlGGP-LIKE can increase the content of reduced AsA and the ratio of AsA/ DHA (dehydroascorbic acid), as well as the level of xanthophyll cycle. Under salt stress, compared with the wild-type plants (WT), the OE lines can maintain higher levels of reduced AsA. In addition, OE lines also have higher levels of reduced GSH (glutathione) and total GSH, higher ratios of AsA/DHA and GSH/oxidative GSH (GSSR), and higher level of xanthophyll cycle. Therefore, the OE lines are more tolerant to salt stress, with higher photosynthetic activity, higher antioxidative enzyme activities, higher content of D1 protein, lower production rate of ROS, and lighter membrane damage. These results indicate that overexpressing SlGGP-LIKE can enhance tomato resistance to salt stress through promoting the synthesis of AsA.

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