Sperm-Specific Glyceraldehyde-3-Phosphate Dehydrogenase-An Evolutionary Acquisition of Mammals

被引:9
|
作者
Muronetz, V. I. [1 ,2 ]
Kuravsky, M. L. [1 ]
Barinova, K. V. [1 ,2 ]
Schmalhausen, E. V. [1 ]
机构
[1] Moscow MV Lomonosov State Univ, Belozersky Inst Physicochem Biol, Moscow 119991, Russia
[2] Moscow MV Lomonosov State Univ, Fac Bioengn & Bioinformat, Moscow 119991, Russia
基金
俄罗斯基础研究基金会; 俄罗斯科学基金会;
关键词
glyceraldehyde-3-phosphate dehydrogenase; sperm-specific glyceraldehyde-3-phosphate dehydrogenase; GAPDH; evolution of GAPDH; stability of GAPDH; sperm motility; glycolysis; melanoma cells; oncomarker; NAD-binding; GLYCERAIDEHYDE-3-PHOSPHATE DEHYDROGENASE; 3-PHOSPHOGLYCERATE KINASE; GLYCOLYTIC-ENZYMES; ALZHEIMERS-DISEASE; THERMAL-STABILITY; STRUCTURAL BASIS; CREATINE-KINASE; PROTEIN; BINDING; ASSOCIATION;
D O I
10.1134/S0006297915130040
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
This review is focused on the mammalian sperm-specific glyceraldehyde-3-phosphate dehydrogenase (GAPDS). GAPDS plays the major role in the production of energy required for sperm cell movement and does not perform non-glycolytic functions that are characteristic of the somatic isoenzyme of glyceraldehyde-3-phosphate dehydrogenase. The GAPDS sequence is composed of 408 amino acid residues and includes an additional N-terminal region of 72 a.a. that binds the protein to the sperm tail cytoskeleton. GAPDS is present only in the sperm cells of mammals and lizards, possibly providing them with certain evolutionary advantages in reproduction. In this review, studies concerning the problems of GAPDS isolation, its catalytic properties, and its structural features are described in detail. GAPDS is much more stable compared to the somatic isoenzyme, perhaps due to the necessity of maintaining the enzyme function in the absence of protein expression. The site-directed mutagenesis approach revealed the two GAPDS-specific proline residues, as well as three salt bridges, which seem to be the basis of the increased stability of this protein. As distinct from the somatic isoenzyme, GAPDS exhibits positive cooperativity in binding of the coenzyme NAD(+). The key role in transduction of structural changes induced by NAD(+) is played by the salt bridge D311-H124. Disruption of this salt bridge cancels GAPDS cooperativity and twofold increases its enzymatic activity instead. The expression of GAPDS was detected in some melanoma cells as well. Its role in the development of certain pathologies, such as cancer and neurodegenerative diseases, is discussed.
引用
收藏
页码:1672 / 1689
页数:18
相关论文
共 50 条
  • [41] Glyceraldehyde-3-phosphate dehydrogenase is overexpressed in colorectal cancer onset
    Míriam Tarrado-Castellarnau
    Santiago Diaz-Moralli
    Ibrahim H. Polat
    Rebeca Sanz-Pamplona
    Cristina Alenda
    Víctor Moreno
    Antoni Castells
    Marta Cascante
    Translational Medicine Communications, 2 (1)
  • [42] Glyceraldehyde-3-phosphate dehydrogenase present in extracellular vesicles from Leishmania major suppresses host
    Das, Priya
    Mukherjee, Aditi
    Adak, Subrata
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2021, 297 (04)
  • [43] Mechanism of glyceraldehyde-3-phosphate dehydrogenase inactivation by tyrosine nitration
    Palamalai, Vikram
    Miyagi, Masaru
    PROTEIN SCIENCE, 2010, 19 (02) : 255 - 262
  • [44] Structural Insights into RNA Recognition Properties of Glyceraldehyde-3-phosphate Dehydrogenase 3 from Saccharomyces cerevisiae
    Shen, Hui
    Wang, Hong
    Liu, Qiao
    Liu, Huihui
    Teng, Maikun
    Li, Xu
    IUBMB LIFE, 2014, 66 (09) : 631 - 638
  • [45] Post-Translational Modifications of the Sulfhydryl Group of the Cysteine Residue of Glyceraldehyde-3-phosphate Dehydrogenase
    Muronetz, V. I.
    Medvedeva, M. V.
    Schmalhausen, E. V.
    MOSCOW UNIVERSITY CHEMISTRY BULLETIN, 2024, 79 (02) : 115 - 120
  • [46] Biochemical characterization of glyceraldehyde-3-phosphate dehydrogenase from Thermococcus kodakarensis KOD1
    Jia, Baolei
    Le Thuy Linh
    Lee, Sangmin
    Bang Phuong Pham
    Liu, Jinliang
    Pan, Hongyu
    Zhang, Shihong
    Cheong, Gang-Won
    EXTREMOPHILES, 2011, 15 (03) : 337 - 346
  • [47] Changes in functioning of glyceraldehyde-3-phosphate dehydrogenase during synucleinopathies
    Melnikova, A. K.
    Medvedeva, M., V
    Evstafyeva, D. B.
    Kuravsky, M. L.
    JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 2018, 50 (06) : 563 - 563
  • [48] Engineering glyceraldehyde-3-phosphate dehydrogenase for switching control of glycolysis in Escherichia coli
    Cho, Han-Saem
    Seo, Sang Woo
    Kim, Young Mi
    Jung, Gyoo Yeol
    Park, Jong Moon
    BIOTECHNOLOGY AND BIOENGINEERING, 2012, 109 (10) : 2612 - 2619
  • [49] Subcellular alteration of glyceraldehyde-3-phosphate dehydrogenase in Alzheimer's disease fibroblasts
    Mazzola, JL
    Sirover, MA
    JOURNAL OF NEUROSCIENCE RESEARCH, 2003, 71 (02) : 279 - 285
  • [50] Interaction of glyceraldehyde-3-phosphate dehydrogenase and heme: The relevance of its biological function
    Huang, Yi
    Zhang, Pengfei
    Yang, Zhen
    Wang, Peipei
    Li, Hailing
    Gao, Zhonghong
    ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2017, 619 : 54 - 61