A genetic framework controlling the differentiation of intestinal stem cells during regeneration in Drosophila

被引:52
|
作者
Zhai, Zongzhao [1 ]
Boquete, Jean-Philippe [1 ]
Lemaitre, Bruno [1 ]
机构
[1] Ecole Polytech Fed Lausanne, Sch Life Sci, Global Hlth Inst, Stn 19, Lausanne, Switzerland
来源
PLOS GENETICS | 2017年 / 13卷 / 06期
关键词
TRANSCRIPTION FACTOR; MIDGUT HOMEOSTASIS; POSTERIOR MIDGUT; ADULT MIDGUT; E-CADHERIN; NOTCH; PROLIFERATION; DIVISION; MAINTENANCE; ADHESION;
D O I
10.1371/journal.pgen.1006854
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The speed of stem cell differentiation has to be properly coupled with self-renewal, both under basal conditions for tissue maintenance and during regeneration for tissue repair. Using the Drosophila midgut model, we analyze at the cellular and molecular levels the differentiation program required for robust regeneration. We observe that the intestinal stem cell (ISC) and its differentiating daughter, the enteroblast (EB), form extended cell-cell contacts in regenerating intestines. The contact between progenitors is stabilized by cell adhesion molecules, and can be dynamically remodeled to elicit optimal juxtacrine Notch signaling to determine the speed of progenitor differentiation. Notably, increasing the adhesion property of progenitors by expressing Connectin is sufficient to induce rapid progenitor differentiation. We further demonstrate that JAK/STAT signaling, Sox21a and GATAe form a functional relay to orchestrate EB differentiation. Thus, our study provides new insights into the complex and sequential events that are required for rapid differentiation following stem cell division during tissue replenishment.
引用
收藏
页数:27
相关论文
共 50 条
  • [1] Advances in Controlling Differentiation of Adult Stem Cells for Peripheral Nerve Regeneration
    Uz, Metin
    Das, Suprem R.
    Ding, Shaowei
    Sakaguchi, Donald S.
    Claussen, Jonathan C.
    Mallapragada, Surya K.
    ADVANCED HEALTHCARE MATERIALS, 2018, 7 (14)
  • [2] Escargot maintains stemness and suppresses differentiation in Drosophila intestinal stem cells
    Korzelius, Jerome
    Naumann, Svenja K.
    Loza-Coll, Mariano A.
    Chan, Jessica S. K.
    Dutta, Devanjali
    Oberheim, Jessica
    Glaesser, Christine
    Southall, Tony D.
    Brand, Andrea H.
    Jones, D. Leanne
    Edgar, Bruce A.
    EMBO JOURNAL, 2014, 33 (24): : 2967 - 2982
  • [3] Regulation and plasticity of intestinal stem cells during homeostasis and regeneration
    Beumer, Joep
    Clevers, Hans
    DEVELOPMENT, 2016, 143 (20): : 3639 - 3649
  • [4] Mathematical modelling and experiments for the proliferation and differentiation of Drosophila intestinal stem cells II
    Kuwamura, Masataka
    Maeda, Kousuke
    Adachi-Yamada, Takashi
    JOURNAL OF BIOLOGICAL DYNAMICS, 2012, 6 (02) : 267 - 276
  • [5] The origin of intestinal stem cells in Drosophila
    Micchelli, Craig A.
    DEVELOPMENTAL DYNAMICS, 2012, 241 (01) : 85 - 91
  • [6] Intestinal Stem Cells in Mammals and Drosophila
    Casali, Andreu
    Batlle, Eduard
    CELL STEM CELL, 2009, 4 (02) : 124 - 127
  • [7] How is differentiation of pluripotent stem cells regulated during planarian regeneration?
    Agata, K.
    Yazawa, S.
    Umesono, Y.
    DIFFERENTIATION, 2010, 80 : S9 - S9
  • [8] The Hippo pathway regulates intestinal stem cell proliferation during Drosophila adult midgut regeneration
    Shaw, Rachael L.
    Kohlmaier, Alexander
    Polesello, Cedric
    Veelken, Cornelia
    Edgar, Bruce A.
    Tapon, Nicolas
    DEVELOPMENT, 2010, 137 (24): : 4147 - 4158
  • [9] Drosophila Sulf1 is required for the termination of intestinal stem cell division during regeneration
    Takemura, Masahiko
    Nakato, Hiroshi
    JOURNAL OF CELL SCIENCE, 2017, 130 (02) : 332 - 343
  • [10] white regulates proliferative homeostasis of intestinal stem cells during ageing in Drosophila
    Sasaki, Ayaka
    Nishimura, Takashi
    Takano, Tomomi
    Naito, Saki
    Yoo, Sa Kan
    NATURE METABOLISM, 2021, 3 (04) : 546 - +