Transcription factors activated through RIP (regulated intramembrane proteolysis) and RAT (regulated alternative translocation)

被引:24
|
作者
Ye, Jin [1 ]
机构
[1] Univ Texas Southwestern Med Ctr Dallas, Dept Mol Genet, Dallas, TX 75390 USA
基金
美国国家卫生研究院;
关键词
ceramide; endoplasmic reticulum; Golgi; protein translocation; proteolysis; transcription factor; transmembrane domain; transport; RIP; RAT; endoplasmic reticulum (ER); topology; UNSATURATED FATTY-ACIDS; RETICULUM STRESS-RESPONSE; APOLIPOPROTEIN A-IV; ENDOPLASMIC-RETICULUM; ER-STRESS; TRANSMEMBRANE PROTEIN; MEMBRANE-PROTEIN; CHOLESTEROL HOMEOSTASIS; SITE-1; PROTEASE; FACTOR ATF6;
D O I
10.1074/jbc.REV120.012669
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
Transmembrane proteins are membrane-anchored proteins whose topologies are important for their functions. These properties enable regulation of certain transmembrane proteins by regulated intramembrane proteolysis (RIP) and regulated alternative translocation (RAT). RIP enables a protein fragment of a transmembrane precursor to function at a new location, and RAT leads to an inverted topology of a transmembrane protein by altering the direction of its translocation across membranes during translation. RIP mediated by site-1 protease (S1P) and site-2 protease (S2P) is involved in proteolytic activation of membrane-bound transcription factors. In resting cells, these transcription factors remain in the endoplasmic reticulum (ER) as inactive transmembrane precursors. Upon stimulation by signals within the ER, they are translocated from the ER to the Golgi. There, they are cleaved first by S1P and then by S2P, liberating their N-terminal domains from membranes and enabling them to activate genes in the nucleus. This signaling pathway regulates lipid metabolism, unfolded protein responses, secretion of extracellular matrix proteins, and cell proliferation. Remarkably, ceramide-induced RIP of cAMP response element?binding protein 3?like 1 (CREB3L1) also involves RAT. In resting cells, RIP of CREB3L1 is blocked by transmembrane 4 L6 family member 20 (TM4SF20). Ceramide inverts the orientation of newly synthesized TM4SF20 in membranes through RAT, converting TM4SF20 from an inhibitor to an activator of RIP of CREB3L1. Here, I review recent insights into RIP of membrane-bound transcription factors, focusing on CREB3L1 activation through both RIP and RAT, and discuss current open questions about these two signaling pathways.
引用
收藏
页码:10271 / 10280
页数:10
相关论文
共 50 条
  • [41] Physical and functional interaction between the α- and γ-secretases: A new model of regulated intramembrane proteolysis
    Chen, Allen C.
    Kim, Sumin
    Shepardson, Nina
    Patel, Sarvagna
    Hong, Soyon
    Selko, Dennis J.
    JOURNAL OF CELL BIOLOGY, 2015, 211 (06): : 1157 - 1176
  • [42] Regulated Intramembrane Proteolysis and Degradation of Murine Epithelial Cell Adhesion Molecule mEpCAM
    Hachmeister, Matthias
    Bobowski, Karolina D.
    Hogl, Sebastian
    Dislich, Bastian
    Fukumori, Akio
    Eggert, Carola
    Mack, Brigitte
    Kremling, Heidi
    Sarrach, Sannia
    Coscia, Fabian
    Zimmermann, Wolfgang
    Steiner, Harald
    Lichtenthaler, Stefan F.
    Gires, Olivier
    PLOS ONE, 2013, 8 (08):
  • [43] Regulated intramembrane proteolysis of the TGFβ type I receptor conveys oncogenic signals
    Gudey, Shyam Kumar
    Wallenius, Anders
    Landstrom, Marene
    FUTURE ONCOLOGY, 2014, 10 (11) : 1853 - 1861
  • [44] Substrate Requirements for SPPL2b-dependent Regulated Intramembrane Proteolysis
    Martin, Lucas
    Fluhrer, Regina
    Haass, Christian
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (09) : 5662 - 5670
  • [45] Regulated intramembrane proteolysis of FtsL protein and the control of cell division in Bacillus subtilis
    Bramkamp, Marc
    Weston, Louise
    Daniel, Richard A.
    Errington, Jeff
    MOLECULAR MICROBIOLOGY, 2006, 62 (02) : 580 - 591
  • [46] Trafficking of the bZIP transmembrane transcription factor CREB-H into alternate pathways of ERAD and stress-regulated intramembrane proteolysis
    Bailey, Daniel
    Barreca, Cristina
    O'Hare, Peter
    TRAFFIC, 2007, 8 (12) : 1796 - 1814
  • [47] Auxin signaling: Derepression through regulated proteolysis
    Rogg, LE
    Bartel, B
    DEVELOPMENTAL CELL, 2001, 1 (05) : 595 - 604
  • [48] Site-2 proteases in prokaryotes: regulated intramembrane proteolysis expands to microbial pathogenesis
    Makinoshima, Hideki
    Glickman, Michael S.
    MICROBES AND INFECTION, 2006, 8 (07) : 1882 - 1888
  • [49] CD74 is a member of the regulated intramembrane proteolysis-processed protein family
    Becker-Herman, S
    Arie, G
    Medvedovsky, H
    Kerem, A
    Shachar, I
    MOLECULAR BIOLOGY OF THE CELL, 2005, 16 (11) : 5061 - 5069
  • [50] EFFECT OF REGULATED INTRAMEMBRANE PROTEOLYSIS ON MEGALIN EXPRESSION DURING OXIDATIVE STRESS EXPOSURE.
    Kurosaki, Yoshifumi
    Ikarashi, Futoshi
    Imoto, Akemi
    Kawakami, Fumitaka
    Yokoba, Masanori
    Takenaka, Tsuneo
    Katagiri, Masato
    Ichikawa, Takafumi
    Nielsen, Rikke
    Ishii, Naohito
    NEPHROLOGY DIALYSIS TRANSPLANTATION, 2020, 35 : 1298 - 1298