A Molecular Basis for Reciprocal Regulation between Pheromones and Hormones in Response to Dietary Cues in C. elegans

被引:3
|
作者
Park, Saeram [1 ]
Park, Jun Young [1 ]
Paik, Young-Ki [1 ]
机构
[1] Yonsei Univ, Yonsei Proteome Res Ctr, Seoul 03722, South Korea
基金
新加坡国家研究基金会;
关键词
C; elegans; ascaroside; dafachronic acid; pheromone; hormone; development; DAUER FORMATION; LIFE-SPAN; LARVAL DEVELOPMENT; NUCLEAR RECEPTOR; BIOSYNTHESIS; LONGEVITY; DIAPAUSE; SIGNALS; DAF-12; IDENTIFICATION;
D O I
10.3390/ijms21072366
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
Under stressful conditions, the early larvae of C. elegans enter dauer diapause, a non-aging period, driven by the seemingly opposite influence of ascaroside pheromones (ASCRs) and steroid hormone dafachronic acids (DAs). However, the molecular basis of how these small molecules engage in competitive crosstalk in coordination with insulin/IGF-1 signaling (IIS) remains elusive. Here we report a novel transcriptional regulatory pathway that seems to operate between the ASCR and DA biosynthesis under ad libitum (AL) feeding conditions or bacterial deprivation (BD). Although expression of the ASCR and DA biosynthetic genes reciprocally inhibit each other, ironically and interestingly, such dietary cue-mediated modulation requires the presence of the competitors. Under BD, induction of ASCR biosynthetic gene expression required DA, while ASCR suppresses the expression of the DA biosynthetic gene daf-36. The negative regulation of DA by ASCR was IIS-dependent, whereas daf-36 regulation appeared to be independent of IIS. These observations suggest that the presence of ASCR determines the IIS-dependency of DA gene expression regardless of dietary conditions. Thus, our work defines a molecular basis for a novel reciprocal gene regulation of pheromones and hormones to cope with stressful conditions during development and aging.
引用
收藏
页码:1 / 12
页数:12
相关论文
共 30 条
  • [21] The molecular and neural regulation of ultraviolet light phototaxis and its food-associated learning behavioral plasticity in C. elegans
    Ozawa, Kazuki
    Shinkai, Yoichi
    Kako, Koichiro
    Fukamizu, Akiyoshi
    Doi, Motomichi
    NEUROSCIENCE LETTERS, 2022, 770
  • [22] The C. elegans gene pme-5:: molecular cloning and role in the DNA-damage response of a tankyrase orthologue
    Gravel, C
    Stergiou, L
    Gagnon, SN
    Desnoyers, S
    DNA REPAIR, 2004, 3 (02) : 171 - 182
  • [23] Cilia structure and intraflagellar transport differentially regulate sensory response dynamics within and between C. elegans chemosensory neurons
    Philbrook, Alison
    O'Donnell, Michael P.
    Grunenkovaite, Laura
    Sengupta, Piali
    PLOS BIOLOGY, 2024, 22 (11)
  • [24] C. elegans Expressing Human β2-Microglobulin: A Novel Model for Studying the Relationship between the Molecular Assembly and the Toxic Phenotype
    Diomede, Luisa
    Soria, Cristina
    Romeo, Margherita
    Giorgetti, Sofia
    Marchese, Loredana
    Mangione, Patrizia Palma
    Porcari, Riccardo
    Zorzoli, Irene
    Salmona, Mario
    Bellotti, Vittorio
    Stoppini, Monica
    PLOS ONE, 2012, 7 (12):
  • [25] Proteasome regulation of the chromodomain protein MRG-1 controls the balance between proliferative fate and differentiation in the C. elegans germ line
    Gupta, Pratyush
    Leahul, Lindsay
    Wang, Xin
    Wang, Chris
    Bakos, Brendan
    Jasper, Katie
    Hansen, Dave
    DEVELOPMENT, 2015, 142 (02): : 291 - 302
  • [26] Conserved and divergent aspects of Robo receptor signaling and regulation between Drosophila Robo1 and C. elegans SAX-3
    Daiber, Trent
    VanderZwan-Butler, Christine J.
    Bashaw, Greg J.
    Evans, Timothy A.
    GENETICS, 2021, 217 (03)
  • [27] Functional characterization of the interaction between oxidative and xenobiotic stress response proteins SKN-1/Nrf and WDR-23 in C. elegans
    Leung, Chi Kwan
    Choe, Keith Patrick
    FASEB JOURNAL, 2012, 26
  • [28] Differences between Molecular Mechanisms Involved in the Regulation of Haptoglobin Gene Expression during the Acute Phase Response and Dietary Restriction
    Uskokovic, A.
    Arambasic, J.
    Bogojevic, D.
    Ivanovic-Matic, S.
    Mihailovic, M.
    Dinic, S.
    Grigorov, I.
    FOLIA BIOLOGICA, 2009, 55 (03) : 107 - 115
  • [29] Metformin Induces a Dietary Restriction-Like State and the Oxidative Stress Response to Extend C. elegans Healthspan via AMPK, LKB1, and SKN-1
    Onken, Brian
    Driscoll, Monica
    PLOS ONE, 2010, 5 (01):
  • [30] Interaction between the ins/IGF-1 and p38 MAPK signaling pathways in molecular compensation of sod genes and modulation related to intracellular ROS levels in C. elegans
    Yanase, Sumino
    Yasuda, Kayo
    Ishii, Naoaki
    BIOCHEMISTRY AND BIOPHYSICS REPORTS, 2020, 23