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质体磷酸葡聚糖酶影响马铃薯薯块薄壁细胞中麦芽寡糖代谢。

The Plastidial Glucan Phosphorylase Affects the Maltooligosaccharide Metabolism in Parenchyma Cells of Potato (Solanum tuberosum L.) Tuber Discs.

机构信息

Biopolymer Analytics, Institute of Biochemistry and Biology, University of Potsdam, Karl-Liebknecht-Str. 24-25, Building 20, Potsdam-Golm 14476, Germany.

出版信息

Plant Cell Physiol. 2023 Apr 17;64(4):422-432. doi: 10.1093/pcp/pcac174.

Abstract

Maltodextrin metabolism is thought to be involved in both starch initiation and degradation. In this study, potato tuber discs from transgenic lines containing antisense constructs against the plastidial and cytosolic isoforms of α-glucan phosphorylase and phosphoglucomutase were used to evaluate their influences on the conversion of externally supplied glucose-1-phosphate into soluble maltodextrins, as compared to wild-type potato tubers (Solanum tuberosum L. cv. Desiree). Relative maltodextrin amounts analyzed by capillary electrophoresis with laser-induced fluorescence revealed that tuber discs could immediately uptake glucose-1-phosphate and use it to produce maltooligosaccharides with a degree of polymerization of up to 30, as opposed to tubers repressing the plastidial glucan phosphorylase. The results presented here support previous indications that a specific transporter for glucose-1-phosphate may exist in both the plant cells and the plastidial membranes, thereby allowing a glucose-6-phosphate-independent transport. Furthermore, it confirms that the plastidial glucan phosphorylase is responsible for producing longer maltooligosaccharides in the plastids by catalyzing a glucosyl polymerization reaction when glucose-1-phosphate is available. All these findings contribute to a better understanding of the role of the plastidial phosphorylase as a key enzyme directly involved in the synthesis and degradation of glucans and their implication on starch metabolism.

摘要

麦芽糊精的代谢被认为既参与淀粉的起始,也参与淀粉的降解。在这项研究中,使用了含有针对质体和胞质α-葡聚糖磷酸化酶和磷酸葡萄糖变位酶的反义构建体的转基因马铃薯块茎切片,以评估它们对外部供应的葡萄糖-1-磷酸转化为可溶性麦芽糊精的影响,与野生型马铃薯块茎(Solanum tuberosum L. cv. Desiree)相比。通过毛细管电泳与激光诱导荧光分析相对麦芽糊精含量表明,与抑制质体葡聚糖磷酸化酶的块茎相比,块茎切片可以立即吸收葡萄糖-1-磷酸并利用其生产聚合度高达 30 的麦芽寡糖。这里呈现的结果支持了先前的指示,即可能在植物细胞和质体膜中都存在葡萄糖-1-磷酸的特定转运体,从而允许葡萄糖-6-磷酸独立运输。此外,它证实了质体葡聚糖磷酸化酶通过催化当葡萄糖-1-磷酸可用时的葡糖基聚合反应,负责在质体中产生更长的麦芽寡糖。所有这些发现有助于更好地理解质体磷酸化酶作为直接参与葡聚糖的合成和降解的关键酶的作用及其对淀粉代谢的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b2d/10109208/2d3a5d44c19a/pcac174f1.jpg

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