Intestinal Amino Acid Availability via PEPT-1 Affects TORC1/2 Signaling and the Unfolded Protein Response

被引:16
|
作者
Geillinger, Kerstin E. [1 ]
Kuhlmann, Katja [2 ]
Eisenacher, Martin [2 ]
Giesbertz, Pieter [1 ]
Meyer, Helmut E. [2 ,3 ]
Daniel, Hannelore [1 ]
Spanier, Britta [1 ]
机构
[1] Tech Univ Munich, Mol Nutr & Biochem Unit, ZIEL Res Ctr Nutr & Food Sci, D-85350 Freising Weihenstephan, Germany
[2] Ruhr Univ Bochum, Med Prote Ctr, D-44780 Bochum, Germany
[3] Leibniz Inst Analyt Wissensch ISAS eV, D-44139 Dortmund, Germany
关键词
Caenorhabditis elegans; unfolded protein response; XBP-1; PEPT-1; TOR; CAENORHABDITIS-ELEGANS; LONGEVITY; DOWNSTREAM; GENE; TOR; INSULIN; DAF-2; MTOR;
D O I
10.1021/pr5002669
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The intestinal peptide transporter PEPT-1 plays an important role in development, growth, reproduction, and stress tolerance in Caenorhabditis elegans, as revealed by the severe phenotype of the pept-1-deficient strain. The reduced number of offspring and increased stress resistance were shown to result from changes in the insulin/IGF-signaling cascade. To further elucidate the regulatory network behind the phenotypic alterations in PEPT1-deficient animals, a quantitative proteome analysis combined with transcriptome profiling was applied. Various target genes of XBP-1, the major mediator of the unfolded protein response, were found to be downregulated at the mRNA and protein levels, accompanied by a reduction of spliced xbp-1 mRNA. Proteome analysis also revealed a markedly reduced content of numerous ribosomal proteins. This was associated with a reduction in the protein synthesis rate in pept-1 C. elegans, a process that is strictly regulated by the TOR (target of rapamycine) complex, the cellular sensor for free amino acids. These data argue for a central role of PEPT-1 in cellular amino acid homeostasis. In PEPT-1 deficiency, amino acid levels dropped systematically, leading to alterations in protein synthesis and in the IRE-1/XBP-1 pathway.
引用
收藏
页码:3685 / 3692
页数:8
相关论文
共 50 条
  • [31] Spatial Activation of TORC1 Is Regulated by Hedgehog and E2F1 Signaling in the Drosophila Eye
    Kim, Wonho
    Jang, Yoon-Gu
    Yang, Jinsung
    Chung, Jongkyeong
    DEVELOPMENTAL CELL, 2017, 42 (04) : 363 - +
  • [32] Pib2-Dependent Feedback Control of the TORC1 Signaling Network by the Npr1 Kinase
    Brito, Ana Sofia
    Diaz, Silvia Soto
    Van Vooren, Pascale
    Godard, Patrice
    Marini, Anna Maria
    Boeckstaens, Melanie
    ISCIENCE, 2019, 20 : 415 - +
  • [33] Different Signaling Mechanisms Are Involved in the Norepinephrine-Stimulated TORC1 and TORC2 Nuclear Translocation in Rat Pinealocytes
    McTague, J.
    Amyotte, N.
    Kanyo, R.
    Ferguson, M.
    Chik, C. L.
    Ho, A. K.
    ENDOCRINOLOGY, 2012, 153 (08) : 3839 - 3849
  • [34] Insulin/IGF signaling and TORC1 promote vitellogenesis via inducing juvenile hormone biosynthesis in the American cockroach
    Zhu, Shiming
    Liu, Fangfang
    Zeng, Huanchao
    Li, Na
    Ren, Chonghua
    Su, Yunlin
    Zhou, Shutang
    Wang, Guirong
    Palli, Subba Reddy
    Wang, Jian
    Qin, Yiru
    Li, Sheng
    DEVELOPMENT, 2020, 147 (20):
  • [35] Target-of-rapamycin complex 1 (Torc1) signaling modulates cilia size and function through protein synthesis regulation
    Yuan, Shiaulou
    Li, Jade
    Diener, Dennis R.
    Choma, Michael A.
    Rosenbaum, Joel L.
    Sun, Zhaoxia
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (06) : 2021 - 2026
  • [36] Extracellular glucose concentration alters functional activity of the intestinal oligopeptide transporter (PepT-1) in Caco-2 cells
    D'Souza, VM
    Buckley, DJ
    Buckley, AR
    Pauletti, GM
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2003, 92 (03) : 594 - 603
  • [37] TORC1 and TORC2 work together to regulate ribosomal protein S6 phosphorylation in Saccharomyces cerevisiae
    Yerlikaya, Seda
    Meusburger, Madeleine
    Kumari, Romika
    Huber, Alexandre
    Anrather, Dorothea
    Costanzo, Michael
    Boone, Charles
    Ammerer, Gustav
    Baranov, Pavel V.
    Loewith, Robbie
    MOLECULAR BIOLOGY OF THE CELL, 2016, 27 (02) : 397 - 409
  • [38] Crystal structure of the Gtr1p-Gtr2p complex reveals new insights into the amino acid-induced TORC1 activation
    Gong, Rui
    Li, Li
    Liu, Yi
    Wang, Ping
    Yang, Huirong
    Wang, Ling
    Cheng, Jingdong
    Guan, Kun-Liang
    Xu, Yanhui
    GENES & DEVELOPMENT, 2011, 25 (16) : 1668 - 1673
  • [39] Tissue-Specific Coupling between Insulin/IGF and TORC1 Signaling via PRAS40 in Drosophila
    Pallares-Cartes, Cristina
    Cakan-Akdogan, Gulcin
    Teleman, Aurelio A.
    DEVELOPMENTAL CELL, 2012, 22 (01) : 172 - 182
  • [40] A PP2A-B55-Mediated Crosstalk between TORC1 and TORC2 Regulates the Differentiation Response in Fission Yeast
    Martin, Ruth
    Portantier, Marina
    Chica, Nathalia
    Nyquist-Andersen, Mari
    Mata, Juan
    Lopez-Aviles, Sandra
    CURRENT BIOLOGY, 2017, 27 (02) : 175 - 188