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Profiles of pyrimidine biosynthesis, salvage and degradation in disks of potato (Solanum tuberosum L.) tubers

机译:马铃薯(Solanum tuberosum L.)块茎圆盘中嘧啶的生物合成,挽救和降解情况

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In order to obtain general metabolic profiles of pyrimidine ribo- and deoxyribonucleotides in potato (Solanum tuberosum L.) plants, the in situ metabolic fate of various 14C-labelled precursors in disks from growing potato tubers was investigated. The activities of key enzymes in potato tuber extracts were also studied. The following results were obtained. Of the intermediates in de novo pyrimidine biosynthesis, [14C]carbamoylaspartate was converted to orotic acid and [2-14C]orotic acid was metabolized to nucleotides and RNA. UMP synthase, a bifunctional enzyme with activities of orotate phosphoribosyltransferase (EC 2.4.2.10) and orotidine 5′-monophosphate decarboxylase (EC 4.1.1.23), exhibited high activity. The rates of uptake of pyrimidine ribo- and deoxyribonucleosides by the disks were high, in the range 2.0–2.8 nmol (g FW)–1 h–1. The pyrimidine ribonucleosides, uridine and cytidine, were salvaged exclusively to nucleotides, by uridine/cytidine kinase (EC 2.7.1.48) and non-specific nucleoside phosphotransferase (EC 2.7.1.77). Cytidine was also salvaged after conversion to uridine by cytidine deaminase (EC 3.5.4.5) and the presence of this enzyme was demonstrated in cell-free tuber extracts. Deoxycytidine, a deoxyribonucleoside, was efficiently salvaged. Since deoxycytidine kinase (EC 2.7.1.74) activity was extremely low, non-specific nucleoside phosphotransferase (EC 2.7.1.77) probably participates in deoxycytidine salvage. Thymidine, which is another pyrimidine deoxyribonucleoside, was degraded and was not a good precursor for nucleotide synthesis. Virtually all the thymidine 5′-monophosphate synthesis from thymidine appeared to be catalyzed by phosphotransferase activity, since little thymidine kinase (EC 2.7.1.21) activity was detected. Of the pyrimidine bases, uracil, but not cytosine, was salvaged for nucleotide synthesis. Since uridine phosphorylase (EC 2.4.2.3) activity was not detected, uracil phosphoribosyltransferase (EC 2.4.2.9) seems to play the major role in uracil salvage. Uracil was degraded by the reductive pathway via β-ureidopropionate, but cytosine was not degraded. The activities of the cytosine-metabolizing enzymes observed in other organisms, pyrimidine nucleoside phosphorylase (EC 2.4.2.2) and cytosine deaminase (EC 3.5.4.1), were not detected in potato tuber extracts. Operation of the de novo synthesis of deoxyribonucleotides via ribonucleotide reductase and of the salvage pathway of deoxycytidine was demonstrated via the incorporation of radioactivity from both [2-14C]cytidine and [2-14C]deoxycytidine into DNA. A novel pathway converting deoxycytidine to uracil nucleotides was found and deoxycytidine deaminase (EC 3.5.4.14), an enzyme that may participate in this pathway, was detected in the tuber extracts.
机译:为了获得嘧啶核糖核苷酸和脱氧核糖核苷酸在马铃薯(Solanum tuberosum L.)植物中的一般代谢谱,研究了生长中的马铃薯块茎圆盘中各种14 C-标记的前体的原位代谢命运。还研究了马铃薯块茎提取物中关键酶的活性。获得了以下结果。在从头进行嘧啶生物合成的中间体中,[14 C]氨基甲酰天冬氨酸转化为乳清酸,[2-14 C]乳清酸被代谢为核苷酸和RNA。 UMP合酶是一种具有乳清酸磷酸核糖基转移酶(EC 2.4.2.10)和乳清碱5'-单磷酸脱羧酶(EC 4.1.1.23)活性的双功能酶,具有很高的活性。圆盘对嘧啶核糖和脱氧核糖核苷的吸收率很高,在2.0–2.8 nmol(g FW)–1 h–1 范围内。通过尿苷/胞苷激酶(EC 2.7.1.48)和非特异性核苷磷酸转移酶(EC 2.7.1.77)将嘧啶核糖核苷尿苷和胞苷专门挽救成核苷酸。胞苷脱氨酶(EC 3.5.4.5)转化为尿苷后,胞苷也被挽救,这种酶的存在在无细胞块茎提取物中得到证实。脱氧核糖核苷(一种脱氧核糖核苷)得到了有效挽救。由于脱氧胞苷激酶(EC 2.7.1.74)的活性极低,因此非特异性核苷磷酸转移酶(EC 2.7.1.77)可能参与了脱氧胞苷的抢救。另一种嘧啶脱氧核糖核苷胸腺嘧啶核苷被降解,不是核苷酸合成的良好前体。实际上,由于几乎未检测到胸苷激酶(EC 2.7.1.21)活性,因此所有由胸苷合成的胸苷5'-单磷酸酯似乎都被磷酸转移酶活性催化。在嘧啶碱基中,尿嘧啶而不是胞嘧啶被挽救用于核苷酸合成。由于未检测到尿苷磷酸化酶(EC 2.4.2.3)活性,因此尿嘧啶磷酸核糖基转移酶(EC 2.4.2.9)似乎在尿嘧啶的挽救中起主要作用。尿嘧啶通过β-脲基丙酸酯的还原途径降解,但胞嘧啶没有降解。在马铃薯块茎提取物中未检出在其他生物中观察到的胞嘧啶代谢酶的活性,嘧啶核苷磷酸化酶(EC 2.4.2.2)和胞嘧啶脱氨酶(EC 3.5.4.1)。通过结合[2-14 C]胞苷和[2-14 C]脱氧胞苷的放射性,证明了通过核糖核苷酸还原酶从头合成脱氧核糖核苷酸的操作和脱氧胞苷的挽救途径。脱氧核糖核酸。发现了将脱氧胞苷转化为尿嘧啶核苷酸的新途径,并且在块茎提取物中检测到了可能参与该途径的酶-脱氧胞苷脱氨酶(EC 3.5.4.14)。

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