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Structural and biochemical characterizations of Thermus thermophilus HB8 transketolase producing a heptulose.
Yoshihara, Akihide; Takamatsu, Yota; Mochizuki, Susumu; Yoshida, Hiromi; Masui, Ryoji; Izumori, Ken; Kamitori, Shigehiro.
Afiliação
  • Yoshihara A; International Institute of Rare Sugar Research and Education, Kagawa University, Takamatsu, Kagawa, 760-8521, Japan. yoshihara.akihide@kagawa-u.ac.jp.
  • Takamatsu Y; Department of Applied Biological Science, Faculty of Agriculture, Kagawa University, Miki, Kagawa, 761-0795, Japan. yoshihara.akihide@kagawa-u.ac.jp.
  • Mochizuki S; Department of Applied Biological Science, Faculty of Agriculture, Kagawa University, Miki, Kagawa, 761-0795, Japan.
  • Yoshida H; International Institute of Rare Sugar Research and Education, Kagawa University, Takamatsu, Kagawa, 760-8521, Japan.
  • Masui R; Department of Applied Biological Science, Faculty of Agriculture, Kagawa University, Miki, Kagawa, 761-0795, Japan.
  • Izumori K; International Institute of Rare Sugar Research and Education, Kagawa University, Takamatsu, Kagawa, 760-8521, Japan.
  • Kamitori S; Life Science Research Center and Faculty of Medicine, Kagawa University, Miki, Kagawa, 761-0793, Japan.
Appl Microbiol Biotechnol ; 107(1): 233-245, 2023 Jan.
Article em En | MEDLINE | ID: mdl-36441206
Transketolase is a key enzyme in the pentose phosphate pathway in all organisms, recognizing sugar phosphates as substrates. Transketolase with a cofactor of thiamine pyrophosphate catalyzes the transfer of a 2-carbon unit from D-xylulose-5-phosphate to D-ribose-5-phosphate (5-carbon aldose), giving D-sedoheptulose-7-phosphate (7-carbon ketose). Transketolases can also recognize non-phosphorylated monosaccharides as substrates, and catalyze the formation of non-phosphorylated 7-carbon ketose (heptulose), which has attracted pharmaceutical attention as an inhibitor of sugar metabolism. Here, we report the structural and biochemical characterizations of transketolase from Thermus thermophilus HB8 (TtTK), a well-characterized thermophilic Gram-negative bacterium. TtTK showed marked thermostability with maximum enzyme activity at 85 °C, and efficiently catalyzed the formation of heptuloses from lithium hydroxypyruvate and four aldopentoses: D-ribose, L-lyxose, L-arabinose, and D-xylose. The X-ray structure showed that TtTK tightly forms a homodimer with more interactions between subunits compared with transketolase from other organisms, contributing to its thermal stability. A modeling study based on X-ray structures suggested that D-ribose and L-lyxose could bind to the catalytic site of TtTK to form favorable hydrogen bonds with the enzyme, explaining the high conversion rates of 41% (D-ribose) and 43% (L-lyxose) to heptulose. These results demonstrate the potential of TtTK as an enzyme producing a rare sugar of heptulose. KEY POINTS: • Transketolase catalyzes the formation of a 7-carbon sugar phosphate • Structural and biochemical characterizations of thermophilic transketolase were done • The enzyme could produce non-phosphorylated 7-carbon ketoses from sugars.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Transcetolase / Thermus thermophilus Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Transcetolase / Thermus thermophilus Idioma: En Ano de publicação: 2023 Tipo de documento: Article