Should the standard model of cellular energy metabolism be reconsidered? Possible coupling between the pentose phosphate pathway, glycolysis and extra-mitochondrial oxidative phosphorylation

被引:5
作者
Morelli, Alessandro Maria [1 ]
Scholkmann, Felix [2 ]
机构
[1] Univ Genoa, Genoa, Italy
[2] Univ Zurich, Univ Hosp Zurich, Dept Neonatol, Biomed Opt Res Lab,Neurophoton & Biosignal Proc Re, Zurich, Switzerland
关键词
Cellular respiration; Glycolysis; Pentose phosphate pathway; Extra-mitochondrial OXPHOS; Endoplasmic reticulum; Cancer metabolism; TRICARBOXYLIC-ACID CYCLE; ATP SYNTHASE; HEXOSE-6-PHOSPHATE DEHYDROGENASE; SUBSTRATE-SPECIFICITY; LACTATE METABOLISM; CANCER METABOLISM; EXTRACELLULAR ATP; IN-VITRO; CELLS; PYRUVATE;
D O I
10.1016/j.biochi.2024.01.018
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 process of cellular respiration occurs for energy production through catabolic reactions, generally with glucose as the first process step. In the present work, we introduce a novel concept for understanding this process, based on our conclusion that glucose metabolism is coupled to the pentose phosphate pathway (PPP) and extra-mitochondrial oxidative phosphorylation in a closed -loop process. According to the current standard model of glycolysis, glucose is first converted to glucose 6 -phosphate (glucose 6-P) and then to fructose 6 -phosphate, glyceraldehyde 3 -phosphate and pyruvate, which then enters the Krebs cycle in the mitochondria. However, it is more likely that the pyruvate will be converted to lactate. In the PPP, glucose 6-P is branched off from glycolysis and used to produce NADPH and ribulose 5 -phosphate (ribulose 5-P). Ribulose 5-P can be converted to fructose 6-P and glyceraldehyde 3P. In our view, a circular process can take place in which the ribulose 5-P produced by the PPP enters the glycolysis pathway and is then retrogradely converted to glucose 6-P. This process is repeated several times until the complete degradation of glucose 6-P. The role of mitochondria in this process is to degrade lipids by beta -oxidation and produce acetyl-CoA; the function of producing ATP appears to be only secondary. This proposed new concept of cellular bioenergetics allows the resolution of some previously unresolved controversies related to cellular respiration and provides a deeper understanding of metabolic processes in the cell, including new insights into the Warburg effect. (c) 2024 The Author(s). Published by Elsevier B.V. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
引用
收藏
页码:99 / 109
页数:11
相关论文
共 154 条
  • [61] PGC-lα mediates mitochondrial biogenesis and oxidative phosphorylation in cancer cells to promote metastasis
    LeBleu, Valerie S.
    O'Connell, Joyce T.
    Herrera, Karma N. Gonzalez
    Wikman, Harriet
    Pantel, Klaus
    Haigis, Marcia C.
    de Carvalho, Fernanda Machado
    Damascena, Aline
    Domingos Chinen, Ludmilla Thome
    Rocha, Rafael M.
    Asara, John M.
    Kalluri, Raghu
    [J]. NATURE CELL BIOLOGY, 2014, 16 (10) : 992 - 1003
  • [62] Mitochondrial oxidative phosphorylation complexes exist in the sarcolemma of skeletal muscle
    Lee, Hyun
    Kim, Seung-Hyeob
    Lee, Jae-Seon
    Yang, Yun-Hee
    Nam, Jwa-Min
    Kim, Bong-Woo
    Ko, Young-Gyu
    [J]. BMB REPORTS, 2016, 49 (02) : 116 - 121
  • [63] Division of labor in transhydrogenase by alternating proton translocation and hydride transfer
    Leung, Josephine H.
    Schurig-Briccio, Lici A.
    Yamaguchi, Mutsuo
    Moeller, Arne
    Speir, Jeffrey A.
    Gennis, Robert B.
    Stout, Charles D.
    [J]. SCIENCE, 2015, 347 (6218) : 178 - 181
  • [64] Lactate and Lactylation in the Brain: Current Progress and Perspectives
    Li, Ruobing
    Yang, Yi
    Wang, Haoyu
    Zhang, Tingting
    Duan, Fangfang
    Wu, Kaidi
    Yang, Siyu
    Xu, Ke
    Jiang, Xicheng
    Sun, Xiaowei
    [J]. CELLULAR AND MOLECULAR NEUROBIOLOGY, 2023, 43 (06) : 2541 - 2555
  • [65] Ultrasensitive sensors reveal the spatiotemporal landscape of lactate metabolism in physiology and disease
    Li, Xi
    Zhang, Yinan
    Xu, Lingya
    Wang, Aoxue
    Zou, Yejun
    Li, Ting
    Huang, Li
    Chen, Weicai
    Liu, Shuning
    Jiang, Kun
    Zhang, Xiuze
    Wang, Dongmei
    Zhang, Lijuan
    Zhang, Zhuo
    Zhang, Zeyi
    Chen, Xianjun
    Jia, Wei
    Zhao, Aihua
    Yan, Xinfeng
    Zhou, Haimeng
    Zhu, Linyong
    Ma, Xinran
    Ju, Zhenyu
    Jia, Weiping
    Wang, Congrong
    Loscalzo, Joseph
    Yang, Yi
    Zhao, Yuzheng
    [J]. CELL METABOLISM, 2023, 35 (01) : 200 - +
  • [66] Li XL, 2022, SIGNAL TRANSDUCT TAR, V7, DOI 10.1038/s41392-022-01151-3
  • [67] Targeting lactate-related cell cycle activities for cancer therapy
    Lin, Jia
    Liu, Geng
    Chen, Lidian
    Kwok, Hang Fai
    Lin, Yao
    [J]. SEMINARS IN CANCER BIOLOGY, 2022, 86 : 1231 - 1243
  • [68] Direct neuronal glucose uptake heralds activity-dependent increases in cerebral metabolism
    Lundgaard, Iben
    Li, Baoman
    Xie, Lulu
    Kang, Hongyi
    Sanggaard, Simon
    Haswell, John D. R.
    Sun, Wei
    Goldman, Siri
    Blekot, Solomiya
    Nielsen, Michael
    Takano, Takahiro
    Deane, Rashid
    Nedergaard, Maiken
    [J]. NATURE COMMUNICATIONS, 2015, 6
  • [69] Aerobic Glycolysis: Meeting the Metabolic Requirements of Cell Proliferation
    Lunt, Sophia Y.
    Vander Heiden, Matthew G.
    [J]. ANNUAL REVIEW OF CELL AND DEVELOPMENTAL BIOLOGY, VOL 27, 2011, 27 : 441 - 464
  • [70] Mitochondrial F1Fo-ATP synthase translocates to cell surface in hepatocytes and has high activity in tumor-like acidic and hypoxic environment
    Ma, Zhan
    Cao, Manlin
    Liu, Yiwen
    He, Yiqing
    Wang, Yingzhi
    Yang, Cuixia
    Wang, Wenjuan
    Du, Yan
    Zhou, Muqing
    Gao, Feng
    [J]. ACTA BIOCHIMICA ET BIOPHYSICA SINICA, 2010, 42 (08) : 530 - 537