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本文引用的文献

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Increased Fatty Acid beta-Oxidation after Glucose Starvation in Maize Root Tips.玉米根尖葡萄糖饥饿后脂肪酸β-氧化增加。
Plant Physiol. 1992 Jun;99(2):595-600. doi: 10.1104/pp.99.2.595.
2
Coregulation of soybean vegetative storage protein gene expression by methyl jasmonate and soluble sugars.茉莉酸甲酯和可溶性糖对大豆营养贮藏蛋白基因表达的协同调控。
Plant Physiol. 1992 Mar;98(3):859-67. doi: 10.1104/pp.98.3.859.
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Study of glucose starvation in excised maize root tips.离体玉米根尖的葡萄糖饥饿研究。
Plant Physiol. 1991 Jun;96(2):619-26. doi: 10.1104/pp.96.2.619.
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Peroxisomal degradation of branched-chain 2-oxo acids.过氧化物酶体降解支链 2-氧代酸。
Plant Physiol. 1989 Dec;91(4):1387-92. doi: 10.1104/pp.91.4.1387.
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Mechanisms of starvation tolerance in pearl millet.珍珠粟耐饥饿的机制。
Plant Physiol. 1988 Dec;88(4):1381-7. doi: 10.1104/pp.88.4.1381.
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Carbohydrate Responsive Proteins in the Roots of Pennisetum americanum.美洲狼尾草根系中的碳水化合物响应蛋白。
Plant Physiol. 1988 Jul;87(3):566-70. doi: 10.1104/pp.87.3.566.
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Soluble Sugars, Respiration, and Energy Charge during Aging of Excised Maize Root Tips.离体玉米根尖衰老过程中的可溶性糖、呼吸作用与能荷
Plant Physiol. 1980 Sep;66(3):516-9. doi: 10.1104/pp.66.3.516.
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Sugar Levels Modulate Differential Expression of Maize Sucrose Synthase Genes.糖水平调节玉米蔗糖合酶基因的差异表达。
Plant Cell. 1992 Jan;4(1):59-69. doi: 10.1105/tpc.4.1.59.
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Carbon Catabolite Repression Regulates Glyoxylate Cycle Gene Expression in Cucumber.碳分解代谢物阻遏调控黄瓜中乙醛酸循环基因的表达。
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10
Phosphate Modulates Transcription of Soybean VspB and Other Sugar-Inducible Genes.磷酸盐调节大豆VspB和其他糖诱导基因的转录。
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玉米根中葡萄糖饥饿诱导的液泡丝氨酸内肽酶的纯化及生化特性分析

Purification and biochemical characterization of a vacuolar serine endopeptidase induced by glucose starvation in maize roots.

作者信息

James F, Brouquisse R, Suire C, Pradet A, Raymond P

机构信息

Institut National de la Recherche Agronomique, Station de Physiologie, Végétale Villenave d'Ornon, France.

出版信息

Biochem J. 1996 Nov 15;320 ( Pt 1)(Pt 1):283-92. doi: 10.1042/bj3200283.

DOI:10.1042/bj3200283
PMID:8947499
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1217929/
Abstract

An endopeptidase (designated RSIP, for root-starvation-induced protease) was purified to homogeneity from glucose-starved maize roots. The molecular mass of the enzyme was 59 kDa by SDS/PAGE under reducing conditions and 62 kDa by gel filtration on a Sephacryl S-200 column. The isoelectric point of RSIP was 4.55. The purified enzyme was stable, with no auto-proteolytic activity. The enzyme activity was strongly inhibited by proteinaceous trypsin inhibitors, di-isopropylfluorophosphate, 3,4-dichloroisocoumarin and PMSF, suggesting that the enzyme is a serine protease. The maximum proteolytic activity against different protein substrates occurred at pH 6.5. With the exception of succinyl-Leu-Leu-Val-Tyr-4-methylcoumarin, no hydrolysis was detected with synthetic tryptic, chymotryptic or peptidylglutamate substrates. The determination of the cleavage sites in the oxidized B-Chain of insulin showed specificity for hydrophobic residues at the P2 and P3 positions, indicating that RSIP is distinct from other previously characterized maize endopeptidases. Both subcellular fractionation and immuno-detection in situ indicated that RSIP is localized in the vacuole of the root cells. RSIP is the first vacuolar serine endopeptidase to be identified. Glucose starvation induced RSIP: after 4 days of starvation, RSIP was estimated to constitute 80% of total endopeptidase activity in the root tip. These results suggest that RSIP is implicated in vacuolar autophagic processes triggered by carbon limitation.

摘要

从葡萄糖饥饿的玉米根中纯化出一种内肽酶(命名为RSIP,即根饥饿诱导蛋白酶),达到了均一性。在还原条件下,通过SDS/PAGE测定该酶的分子量为59 kDa,在Sephacryl S-200柱上进行凝胶过滤测定其分子量为62 kDa。RSIP的等电点为4.55。纯化后的酶很稳定,没有自蛋白水解活性。该酶的活性受到蛋白质类胰蛋白酶抑制剂、二异丙基氟磷酸、3,4-二氯异香豆素和苯甲基磺酰氟的强烈抑制,表明该酶是一种丝氨酸蛋白酶。针对不同蛋白质底物的最大蛋白水解活性出现在pH 6.5时。除了琥珀酰-Leu-Leu-Val-Tyr-4-甲基香豆素外,用合成的胰蛋白酶、胰凝乳蛋白酶或肽基谷氨酸底物未检测到水解。胰岛素氧化B链中切割位点的测定表明,该酶对P2和P3位置的疏水残基具有特异性,这表明RSIP与其他先前表征的玉米内肽酶不同。亚细胞分级分离和原位免疫检测均表明RSIP定位于根细胞的液泡中。RSIP是第一个被鉴定的液泡丝氨酸内肽酶。葡萄糖饥饿诱导了RSIP的产生:饥饿4天后,估计RSIP占根尖总内肽酶活性的80%。这些结果表明,RSIP参与了由碳限制引发的液泡自噬过程。