Carbon catabolite repression: not only for glucose

被引:0
|
作者
Kobi Simpson-Lavy
Martin Kupiec
机构
[1] Tel Aviv University,School of Molecular Cell Biology and Biotechnology
来源
Current Genetics | 2019年 / 65卷
关键词
Saccharomyces cerevisiae; Yeast; Acetic acid; Glycerol;
D O I
暂无
中图分类号
学科分类号
摘要
Most organisms prefer to utilize glucose as a carbon source. Accordingly, the expression of genes involved in the catabolism of other carbon sources is repressed by the presence of glucose in a process known as (carbon) catabolite repression. However, much less is known about the relationships between “poor” carbon sources. We have recently shown that the enzyme alcohol dehydrogenase of the yeast Saccharomyces cerevisiae (ADH2), required for the utilization of ethanol, is not only inhibited by glucose, but by the acetate imported from the medium or produced by ethanol metabolism. Our study showed that sensing of acetate takes place within the cell, and not in the external medium, and that “poor” carbon sources are also utilized according to a pre-established hierarchy.
引用
收藏
页码:1321 / 1323
页数:2
相关论文
共 50 条
  • [41] SELECTION OF A MUTANT STRAIN OF LIPOMYCES-KONONENKOAE WITH DEXTRANASE SYNTHESIS RESISTANT TO CATABOLITE REPRESSION
    ZINCHENKO, ON
    KRIVOSHEEVA, OV
    LOBANOK, AG
    WORLD JOURNAL OF MICROBIOLOGY & BIOTECHNOLOGY, 1993, 9 (02) : 153 - 155
  • [42] The chromatin remodeler Ino80 regulates yeast stress tolerance and cell metabolism through modulating nitrogen catabolite repression
    Yuan, Bing
    Wang, Wei-Bin
    Wang, Xue-Qing
    Liu, Chen-Guang
    Hasunuma, Tomohisa
    Kondo, Akihiko
    Zhao, Xin-Qing
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2024, 258
  • [43] Distributed control of the glycolytic flux in wild-type cells and catabolite repression mutants of Saccharomyces cerevisiae growing in carbon-limited chemostat cultures
    Cortassa, S
    Aon, MA
    ENZYME AND MICROBIAL TECHNOLOGY, 1997, 21 (08) : 596 - 602
  • [44] L-(+)-Lactic acid production by co-fermentation of cellobiose and xylose without carbon catabolite repression using Enterococcus mundtii QU 25
    Wang, Ying
    Abdel-Rahman, Mohamed Ali
    Tashiro, Yukihiro
    Xiao, Yaotian
    Zendo, Takeshi
    Sakai, Kenji
    Sonomoto, Kenji
    RSC ADVANCES, 2014, 4 (42): : 22013 - 22021
  • [45] Catabolite Repression of Aox in Pichia pastoris Is Dependent on Hexose Transporter PpHxt1 and Pexophagy
    Zhang, Ping
    Zhang, Wenwen
    Zhou, Xiangshan
    Bai, Peng
    Cregg, James M.
    Zhang, Yuanxing
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2010, 76 (18) : 6108 - 6118
  • [46] Examining Escherichia coli glycolytic pathways, catabolite repression, and metabolite channeling using Δpfk mutants
    Hollinshead, Whitney D.
    Rodriguez, Sarah
    Martin, Hector Garcia
    Wang, George
    Baidoo, Edward E. K.
    Sale, Kenneth L.
    Keasling, Jay D.
    Mukhopadhyay, Aindrila
    Tang, Yinjie J.
    BIOTECHNOLOGY FOR BIOFUELS, 2016, 9
  • [47] Effect of sugar catabolite repression in correlation with the structural complexity of the nitrogen source on yeast growth and fermentation
    da Cruz, SH
    Batistote, M
    Ernandes, JR
    JOURNAL OF THE INSTITUTE OF BREWING, 2003, 109 (04) : 349 - 355
  • [48] A common bacterial metabolite elicits prion-based bypass of glucose repression
    Garcia, David M.
    Dietrich, David
    Clardy, Jon
    Jarosz, Daniel F.
    ELIFE, 2016, 5
  • [49] Alleviating glucose repression and enhancing respiratory capacity to increase itaconic acid production
    Xu, Yaying
    Li, Zhimin
    SYNTHETIC AND SYSTEMS BIOTECHNOLOGY, 2023, 8 (01) : 129 - 140
  • [50] A constitutive catabolite repression mutant of a recombinant Saccharomyces cerevisiae strain improves xylose consumption during fermentation
    Gururajan, Vasudevan Thanvanthri
    Gorwa-Grauslund, Marie-F.
    Hahn-Hagerdal, Barbel
    Pretorius, Isak S.
    Otero, Ricardo R. Cordero
    ANNALS OF MICROBIOLOGY, 2007, 57 (01) : 85 - 92