Posttranscriptional regulation of glutamate dehydrogenase 2 and phosphoenolpyruvate carboxykinase in Komagataella phaffii

被引:2
|
作者
Dey, Trishna [1 ]
Rangarajan, Pundi N. [1 ]
机构
[1] Indian Inst Sci, Dept Biochem, Bangalore 560012, Karnataka, India
关键词
alpha-ketoglutarate; glutamate; glutamate dehydrogenase 2; Komagataella phaffii; oxaloacetate; phosphoenolpyruvate carboxykinase; AMINO-ACIDS; EXPRESSION; VECTORS;
D O I
10.1002/yea.3704
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The yeast Komagataella phaffii (a.k.a. Pichia pastoris) harbours a unique glutamate utilization pathway in which the cytosolic enzymes glutamate dehydrogenase 2 (GDH2), aspartate aminotransferase 2 (AAT2) and phosphoenolpyruvate carboxykinase (PEPCK) catalyze the sequential conversion of glutamate to alpha-ketoglutarate, oxaloacetate and phosphoenolpyruvate respectively. GDH2 and PEPCK are essential for glutamate catabolism. Their synthesis is induced by autophagy during carbon starvation and are essential for cell survival. Here, we demonstrate that GDH2 and PEPCK reciprocally regulate each other's protein levels during glutamate catabolism such that GDH2 is downregulated in Delta pepck and PEPCK is downregulated in Delta gdh2. We further demonstrate that sequential conversion of glutamate to alpha-ketoglutarate arid oxaloacetate by GDH2 and AAT2, respectively, is essential for PEPCK synthesis in cells metabolizing glutamate. Our studies indicate that translation of GDH2 mRNA is induced by glutamate while oxaloacetate derived from glutamate is likely to be the inducer of PEPCK mRNA translation during glutamate catabolism. Thus, GDH2- and PEPCK-catalyzed reactions are essential for ATP generation and gluconeogenesis respectively during carbon starvation and glutamate catabolism in K. phaffii. We conclude that K. phaffii harbours a unique translational regulatory circuit in which substrates of GDH2 and PEPCK act as inducers of their synthesis, a phenomenon not reported in any yeast species.
引用
收藏
页码:337 / 347
页数:11
相关论文
共 50 条
  • [1] THE COMPLEX REGULATION OF PHOSPHOENOLPYRUVATE CARBOXYKINASE
    LARDY, HA
    MACDONALD, MJ
    FEDERATION PROCEEDINGS, 1980, 39 (06) : 1670 - 1670
  • [2] REGULATION OF GLUCONEOGENESIS AT PHOSPHOENOLPYRUVATE CARBOXYKINASE
    LARDY, H
    HUGHES, PE
    CURRENT TOPICS IN CELLULAR REGULATION, 1984, 24 : 171 - 179
  • [3] Regulation and roles of phosphoenolpyruvate carboxykinase in plants
    Leegood, RC
    Walker, RP
    ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2003, 414 (02) : 204 - 210
  • [4] Phosphoenolpyruvate carboxykinase: Structure, function and regulation
    Walker, RP
    Chen, ZH
    ADVANCES IN BOTANICAL RESEARCH, VOL 38, 2002, 38 : 93 - 189
  • [5] HORMONAL-REGULATION OF PHOSPHOENOLPYRUVATE CARBOXYKINASE
    不详
    NUTRITION REVIEWS, 1986, 44 (05) : 186 - 188
  • [6] Regulation of phosphoenolpyruvate carboxykinase (GTP) gene
    Hanson, RW
    Reshef, L
    ANNUAL REVIEW OF BIOCHEMISTRY, 1997, 66 : 581 - 611
  • [7] Degradation of Methanol Catabolism Enzymes of Formaldehyde Dehydrogenase and Formate Dehydrogenase in Methylotrophic Yeast Komagataella phaffii
    Dmytruk, O. V.
    Bulbotka, N. V.
    Sibirny, A. A.
    CYTOLOGY AND GENETICS, 2020, 54 (05) : 393 - 397
  • [8] Degradation of Methanol Catabolism Enzymes of Formaldehyde Dehydrogenase and Formate Dehydrogenase in Methylotrophic Yeast Komagataella phaffii
    O. V. Dmytruk
    N. V. Bulbotka
    A. A. Sibirny
    Cytology and Genetics, 2020, 54 : 393 - 397
  • [9] An inducible Komagataella phaffii system for protein expression using sorbitol dehydrogenase promoter
    Liu, Bing
    Cong, Wenjie
    Zhao, Yixin
    Zhou, Hualan
    Zhang, Jianguo
    BIOTECHNOLOGY LETTERS, 2023, 45 (5-6) : 667 - 677
  • [10] Retinold regulation of the phosphoenolpyruvate carboxykinase gene in liver
    Shin, DJ
    Odom, DP
    Scribner, KB
    Ghoshal, S
    McGrane, MM
    MOLECULAR AND CELLULAR ENDOCRINOLOGY, 2002, 195 (1-2) : 39 - 54