The role of sigma factor competition in bacterial adaptation under prolonged starvation

被引:7
|
作者
Nandy, Pabitra [1 ,2 ]
机构
[1] Natl Ctr Biol Sci NCBS TIFR, Bangalore, Karnataka, India
[2] Max Planck Inst Evolutionary Biol, Plon, Germany
来源
MICROBIOLOGY-SGM | 2022年 / 168卷 / 05期
关键词
LTSP; slow growth; SPANC; sigma factor competition; SMALL-COLONY VARIANTS; LONG-TERM SURVIVAL; ESCHERICHIA-COLI; STATIONARY-PHASE; RNA-POLYMERASE; GROWTH ADVANTAGE; STAPHYLOCOCCUS-AUREUS; MUTATION FREQUENCY; STRINGENT RESPONSE; STRESS RESISTANCE;
D O I
10.1099/mic.0.001195
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The study of adaptive microbial evolution in the laboratory can illuminate the genetic mechanisms of gaining fitness under a pre- defined set of selection factors. Laboratory evolution of bacteria under long- term starvation has gained importance in recent years because of its ability to uncover adaptive strategies that overcome prolonged nutrient limitation, a condition often encountered by natural microbes. In this evolutionary paradigm, bacteria are maintained in an energy- restricted environment in a growth phase called long- term stationary phase (LTSP). This phase is characterized by a stable, viable population size and highly dynamic genetic changes. Multiple independent iterations of LTSP evolution experiments have given rise to mutants that are slow- growing compared to the ancestor. Although the antagonistic regulation between rapid growth and the stress response is well- known in bacteria (especially Escherichia coli), the growth deficit of many LTSP- adapted mutants has not been explored in detail. In this review, I pinpoint the trade- off between growth and stress response as a dominant driver of evolutionary strategies under prolonged starvation. Focusing on mainly E. coli- based research, I discuss the various affectors and regulators of the competition between sigma factors to occupy their targets on the genome, and assess its effect on growth advantage in stationary phase (GASP). Finally, I comment on some crucial issues that hinder the progress of the field, including identification of novel metabolites in nutrient- depleted media, and the importance of using multidisciplinary research to resolve them.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Role of sigma factor E in regulation of Salmonella Agf expression
    Yoo, Ah Young
    Yu, Jong Earn
    Yoo, Hyejin
    Lee, Tae Ho
    Lee, Woon Ho
    Oh, Jeong-Ii
    Kang, Ho Young
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2013, 430 (01) : 131 - 136
  • [22] Sigma Factor SigB Is Crucial to Mediate Staphylococcus aureus Adaptation during Chronic Infections
    Tuchscherr, Lorena
    Bischoff, Markus
    Lattar, Santiago M.
    Noto Llana, Mariangeles
    Pfoertner, Henrike
    Niemann, Silke
    Geraci, Jennifer
    Van de Vyver, Helene
    Fraunholz, Martin J.
    Cheung, Ambrose L.
    Herrmann, Mathias
    Voelker, Uwe
    Sordelli, Daniel O.
    Peters, Georg
    Loeffler, Bettina
    PLOS PATHOGENS, 2015, 11 (04)
  • [23] A fattening factor to quantify the accumulation ability of microorganisms under N-starvation
    Di Caprio, Fabrizio
    NEW BIOTECHNOLOGY, 2022, 66 : 70 - 78
  • [24] Comparative analyses imply that the enigmatic sigma factor 54 is a central controller of the bacterial exterior
    Francke, Christof
    Kormelink, Tom Groot
    Hagemeijer, Yanick
    Overmars, Lex
    Sluijter, Vincent
    Moezelaar, Roy
    Siezen, Roland J.
    BMC GENOMICS, 2011, 12
  • [25] Stringent Starvation Protein SspA and Iron Starvation Sigma Factor PvdS Coordinately Regulate Iron Uptake and Prodiginine Biosynthesis in Pseudoalteromonas sp. R3
    Zha, Fanglan
    Wei, Ning
    Liu, Zhuangzhuang
    Zhou, Luosai
    Ding, Mengdan
    Meng, Qiu
    Zhu, Tingheng
    Yin, Jianhua
    Cao, Xueqiang
    Yu, Zhiliang
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2022, 88 (22)
  • [26] Transcriptional control of the pvdS iron starvation sigma factor gene by the master regulator of sulfur metabolism CysB in Pseudomonas aeruginosa
    Imperi, Francesco
    Tiburzi, Federica
    Fimia, Gian Maria
    Visca, Paolo
    ENVIRONMENTAL MICROBIOLOGY, 2010, 12 (06) : 1630 - 1642
  • [27] A Role for Mycobacterium tuberculosis Sigma Factor C in Copper Nutritional Immunity
    Grosse-Siestrup, Benjamin T.
    Gupta, Tuhina
    Helms, Shelly
    Tucker, Samantha L.
    Voskuil, Martin I.
    Quinn, Frederick D.
    Karls, Russell K.
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (04) : 1 - 18
  • [28] Special Issue: Role of Bacterial Chromatin in Environmental Sensing, Adaptation and Evolution
    Dame, Remus T.
    MICROORGANISMS, 2021, 9 (11)
  • [29] Transcription factor shapes chromosomal conformation and regulates gene expression in bacterial adaptation
    Chen, Mao
    Wu, Bo
    Huang, Yuhuan
    Wang, Weiting
    Zheng, Yudi
    Shabbir, Samina
    Liu, Panting
    Dai, Yonghua
    Xia, Mengli
    Hu, Guoquan
    He, Mingxiong
    NUCLEIC ACIDS RESEARCH, 2024, 52 (10) : 5643 - 5657
  • [30] Characterizing the interplay between multiple levels of organization within bacterial sigma factor regulatory networks
    Qiu, Yu
    Nagarajan, Harish
    Embree, Mallory
    Shieu, Wendy
    Abate, Elisa
    Juarez, Katy
    Cho, Byung-Kwan
    Elkins, James G.
    Nevin, Kelly P.
    Barrett, Christian L.
    Lovley, Derek R.
    Palsson, Bernhard O.
    Zengler, Karsten
    NATURE COMMUNICATIONS, 2013, 4