Non-autonomous regulation of a graded, PKA-mediated transcriptional activation signal for cell patterning

被引:0
|
作者
Balint-Kurti, P [1 ]
Ginsburg, GT [1 ]
Liu, JC [1 ]
Kimmel, AR [1 ]
机构
[1] NIDDK, Cellular & Dev Biol Lab, MMDS, NIH, Bethesda, MD 20892 USA
来源
DEVELOPMENT | 1998年 / 125卷 / 20期
关键词
cAMP protein kinases; Dictyostelium; gene expression; rZIP; cell patterning;
D O I
暂无
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The pseudoplasmodium or migrating slug of Dictyostelium is composed of non-terminally differentiated cells, organized along an anteroposterior axis. Cells in the anterior region of the slug define the prestalk compartment, whereas most of the posterior zone consists of prespore cells, We now present evidence that the cAMP-dependent protein kinase (PKA) and the RING domain/leucine zipper protein rZIP interact genetically to mediate a transcriptional activation gradient that regulates the differentiation of prespore cells within the posterior compartment of the slug. PKA is absolutely required for prespore differentiation. In contrast, rZIP negatively regulates prespore patterning; rzpA(-) cells, which lack rZIP, have reduced prestalk differentiation and a corresponding increase in prespore-specific gene expression. Using cell-specific markers and chimaeras of wild-type and rzpA-cells, we show that rZIP functions non-autonomously to establish a graded, prespore gene activation signal but autonomously to localize prespore expression. Overexpression of either the catalytic subunit or a dominant-negative regulatory subunit of PKA further demonstrates that PKA lies within the intracellular pathway that mediates the extracellular signal and regulates prespore patterning. Finally, we show that a 5'-distal segment within a prespore promoter that is responsive to a graded signal is also sensitive to PKA and rZIP: indicating that it acts directly at the level of prespore-specific gene transcription for regulation.
引用
收藏
页码:3947 / 3954
页数:8
相关论文
共 50 条
  • [1] Regulation of Transcriptional Activity of Merkel Cell Polyomavirus Large T-Antigen by PKA-Mediated Phosphorylation
    Falquet, Mar
    Prezioso, Carla
    Ludvigsen, Maria
    Bruun, Jack-Ansgar
    Passerini, Sara
    Sveinbjornsson, Baldur
    Pietropaolo, Valeria
    Moens, Ugo
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (01)
  • [2] Cell Non-Autonomous Regulation of Neural Sialylation
    Scott, Hilary
    Mertsalov, Ilya
    Caster, Courtney
    Islam, Rafique
    Panin, Vlad
    GLYCOBIOLOGY, 2016, 26 (12) : 1395 - 1395
  • [3] Cell non-autonomous regulation of health and longevity
    Miller, Hillary A.
    Dean, Elizabeth S.
    Pletcher, Scott D.
    Leiser, Scott F.
    ELIFE, 2020, 9
  • [4] MECHANISMS OF CELL NON-AUTONOMOUS LONGEVITY REGULATION
    Leiser, Scott
    Choi, Hyo
    Miller, Hillary
    Bhat, Ajay
    Howington, Marshall
    Dean, Elizabeth
    Huang, Shijiao
    INNOVATION IN AGING, 2021, 5 : 680 - 681
  • [5] Cell Non-autonomous Proteostasis Regulation in Aging and Disease
    Ferreira, Joao Vasco
    da Rosa Soares, Ana
    Pereira, Paulo
    FRONTIERS IN NEUROSCIENCE, 2022, 16
  • [6] PKA-mediated transcriptional regulation of the Mediterranean mussel ABCB1 gene involved in the Multixenobiotic Resistance system
    Zellitti, S. Frar
    Valbonesi, P.
    Fabbri, E.
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-MOLECULAR & INTEGRATIVE PHYSIOLOGY, 2012, 163 (01): : S29 - S29
  • [7] Non-autonomous regulation of cell growth in Drosophila follicular epithelium
    Row, S.
    Deng, W.
    MOLECULAR BIOLOGY OF THE CELL, 2018, 29 (26)
  • [8] Cell-autonomous and -non-autonomous roles of CTLA-4 in immune regulation
    Wing, Kajsa
    Yamaguchi, Tomoyuki
    Sakaguchi, Shimon
    TRENDS IN IMMUNOLOGY, 2011, 32 (09) : 428 - 433
  • [9] Cell non-autonomous regulation of cerebrovascular aging processes by the somatotropic axis
    Bickel, Marisa A. A.
    Csik, Boglarka
    Gulej, Rafal
    Ungvari, Anna
    Nyul-Toth, Adam
    Conley, Shannon M. M.
    FRONTIERS IN ENDOCRINOLOGY, 2023, 14
  • [10] Both Cell-Autonomous and Cell Non-Autonomous Functions of GAP-43 are Required for Normal Patterning of the Cerebellum In Vivo
    Yiping Shen
    Rashmi Mishra
    Shyamala Mani
    Karina F. Meiri
    The Cerebellum, 2008, 7 : 451 - 466