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C1化合物上的微生物生长。甲烷假单胞菌提取物将C1单位掺入阿洛酮糖磷酸酯中。

Microbial growth on C1 compounds. Incorporation of C1 units into allulose phosphate by extracts of Pseudomonas methanica.

作者信息

Kemp M B, Quayle J R

出版信息

Biochem J. 1966 Apr;99(1):41-8. doi: 10.1042/bj0990041.

DOI:10.1042/bj0990041
PMID:5965346
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1264954/
Abstract
  1. Incubation of cell-free extracts of methane- or methanol-grown Pseudomonas methanica with [(14)C]formaldehyde and d-ribose 5-phosphate leads to incorporation of radioactivity into a non-volatile product, which has the chromatographic properties of a phosphorylated compound. 2. Treatment of this reaction product with a phosphatase, followed by chromatography, shows the presence of two compounds whose chromatographic properties are consistent with their being free sugars. 3. The minor component of the dephosphorylated products has been identified as fructose. The major component has been identified as allulose (psicose) on the basis of co-chromatography, co-crystallization of the derived phenylosazone and dinitrophenylosazone with authentic derivatives of allulose and behaviour towards oxidation with bromine water. 4. It is suggested that the bacterial extracts catalyse the condensation of a C(1) unit identical with, or derived from, formaldehyde with ribose 5-phosphate to give allulose 6-phosphate. 5. Testing of hexose phosphates and pentose phosphates as substrates has so far shown the reaction to be specific for ribose 5-phosphate. 6. The condensation reaction is not catalysed by extracts of methanol-grown Pseudomonas AM1. 7. A variant of the pentose phosphate cycle, involving this condensation reaction, is suggested as an explanation for the net synthesis of C(3) compounds from C(1) units by P. methanica.
摘要
  1. 将以甲烷或甲醇培养的甲基假单胞菌的无细胞提取物与[¹⁴C]甲醛和d - 核糖5 - 磷酸一起温育,会导致放射性掺入一种非挥发性产物中,该产物具有磷酸化化合物的色谱特性。2. 用磷酸酶处理该反应产物,然后进行色谱分析,结果显示存在两种化合物,其色谱特性与其为游离糖一致。3. 去磷酸化产物的次要成分已被鉴定为果糖。基于与阿洛酮(阿洛酮糖)的真实衍生物共色谱、衍生苯脎和二硝基苯脎共结晶以及对溴水氧化的反应行为,主要成分已被鉴定为阿洛酮(阿洛酮糖)。4. 有人提出,细菌提取物催化与甲醛相同或衍生自甲醛的C(1)单元与核糖5 - 磷酸缩合,生成阿洛酮糖6 - 磷酸。5. 到目前为止,对己糖磷酸酯和戊糖磷酸酯作为底物的测试表明,该反应对核糖5 - 磷酸具有特异性。6. 以甲醇培养的假单胞菌AM1的提取物不催化该缩合反应。7. 有人提出一种涉及这种缩合反应的戊糖磷酸循环变体,作为对甲基假单胞菌由C(1)单元净合成C(3)化合物的解释。

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本文引用的文献

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The enzymatic conversion of 6-phosphogluconate to ribulose-5-phosphate and ribose-5-phosphate.6-磷酸葡萄糖酸酶促转化为5-磷酸核酮糖和5-磷酸核糖。
J Biol Chem. 1951 Nov;193(1):383-96.
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Protein measurement with the Folin phenol reagent.使用福林酚试剂进行蛋白质测定。
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A press for disrupting bacteria and other micro-organisms.一种用于破坏细菌和其他微生物的压榨机。
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Detection of sugars on paper chromatograms.纸色谱上糖的检测
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Microbial growth on C1 compounds. II. Synthesis of cell constituents by methanol- and formate-grown Pseudomonas AM 1, and methanol-grown Hyphomicrobium vulgare.C1化合物上的微生物生长。II. 甲醇和甲酸培养的假单胞菌AM 1以及甲醇培养的普通生丝微菌的细胞成分合成
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Oxidation of methanol and formaldehyde by pseudomonas methanica.甲烷假单胞菌对甲醇和甲醛的氧化作用。
Can J Microbiol. 1960 Feb;6:1-7. doi: 10.1139/m60-001.
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MICROBIAL GROWTH ON C1 COMPOUNDS. SYNTHESIS OF CELL CONSTITUENTS BY METHANE- AND METHANOL-GROWN PSEUDOMONAS METHANICA.C1化合物上的微生物生长。甲烷营养型假单胞菌利用甲烷和甲醇生长合成细胞成分。
Biochem J. 1965 Jun;95(3):859-67. doi: 10.1042/bj0950859.
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ENZYMATIC PREPARATION, STRUCTURE, AND PROPERTIES OF THIAMINE PYROPHOSPHATE-ACTIVATED FORMALDEHYDE.硫胺素焦磷酸激活的甲醛的酶法制备、结构及性质
J Biol Chem. 1965 May;240:2135-41.
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THE INCORPORATION OF D-ALLOSE INTO THE GLYCOLYTIC PATHWAY BY AEROBACTER AEROGENES.产气气杆菌将D-阿洛糖纳入糖酵解途径的过程。
Can J Microbiol. 1964 Dec;10:829-36. doi: 10.1139/m64-108.
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Can J Microbiol. 1964 Oct;10:791-9. doi: 10.1139/m64-100.