135 MTG16 Plays a Critical Role in Intestinal Stem Cell Differentiation and Injury Responses

2014 ◽  
Vol 146 (5) ◽  
pp. S-37-S-38
Author(s):  
Shenika Poindexter ◽  
Rupesh Chaturvedi ◽  
Xi Chen ◽  
Pauline K. Lund ◽  
Mukul K. Mittal ◽  
...  
2021 ◽  
Vol 22 (8) ◽  
pp. 4011
Author(s):  
Brianna Chen ◽  
Dylan McCuaig-Walton ◽  
Sean Tan ◽  
Andrew P. Montgomery ◽  
Bryan W. Day ◽  
...  

Glioblastoma display vast cellular heterogeneity, with glioblastoma stem cells (GSCs) at the apex. The critical role of GSCs in tumour growth and resistance to therapy highlights the need to delineate mechanisms that control stemness and differentiation potential of GSC. Dual-specificity tyrosine phosphorylation-regulated kinase 1A (DYRK1A) regulates neural progenitor cell differentiation, but its role in cancer stem cell differentiation is largely unknown. Herein, we demonstrate that DYRK1A kinase is crucial for the differentiation commitment of glioblastoma stem cells. DYRK1A inhibition insulates the self-renewing population of GSCs from potent differentiation-inducing signals. Mechanistically, we show that DYRK1A promotes differentiation and limits stemness acquisition via deactivation of CDK5, an unconventional kinase recently described as an oncogene. DYRK1A-dependent inactivation of CDK5 results in decreased expression of the stemness gene SOX2 and promotes the commitment of GSC to differentiate. Our investigations of the novel DYRK1A-CDK5-SOX2 pathway provide further insights into the mechanisms underlying glioblastoma stem cell maintenance.


2018 ◽  
Vol 115 (11) ◽  
pp. 2250-2258 ◽  
Author(s):  
Richard Ballweg ◽  
Suengwon Lee ◽  
Xiaonan Han ◽  
Philip K. Maini ◽  
Helen Byrne ◽  
...  

2020 ◽  
Vol 32 (5) ◽  
pp. 889-900.e7
Author(s):  
Marlies C. Ludikhuize ◽  
Maaike Meerlo ◽  
Marc Pages Gallego ◽  
Despina Xanthakis ◽  
Mar Burgaya Julià ◽  
...  

2019 ◽  
Author(s):  
M.C. Ludikhuize ◽  
M. Meerlo ◽  
M. Pages Gallego ◽  
M. Burgaya Julià ◽  
N.T.B. Nguyen ◽  
...  

SummaryDifferential signalling of the WNT and Notch pathways regulates proliferation and differentiation of Lgr5+ crypt-based columnar cells (CBCs) into all cell lineages of the intestine. We have recently shown that high mitochondrial activity in CBCs is key in maintaining stem cell function. Interestingly, while high mitochondrial activity drives CBCs, it is reduced in the adjacent secretory Paneth cells (PCs). This observation implies that during differentiation towards PCs, CBCs undergo a metabolic rewiring involving downregulation of mitochondrial number and activity, through a hitherto unknown mechanism. Here we demonstrate, using intestinal organoids that FoxO transcription factors and Notch signalling functionally interact in determining CBC cell fate. In agreement with the organoid data, combined Foxo1 and 3 deletion in mice increases PC number in the intestine. Importantly, we show that FOXO and Notch signalling converge onto regulation of mitochondrial fission, which in turn provokes stem cell differentiation into the secretory types; Goblet cells and PCs. Finally, mapping intestinal stem cell differentiation based on pseudotime computation of scRNA-seq data further supports the role of FOXO, Notch and mitochondria in determining secretory differentiation. This shows that mitochondria is not only a discriminatory hallmark of CBCs and PCs, but that its status actively determines lineage commitment during differentiation. Together, our work describes a new signalling-metabolic axis in stem cell differentiation and highlights the importance of mitochondria in determining cell fate.


2019 ◽  
Author(s):  
Marlies C. Ludikhuize ◽  
Maaike Meerlo ◽  
Marc Pages Gallego ◽  
Mar Burgaya Julia ◽  
N. T. B. Nguyen ◽  
...  

2013 ◽  
Vol 14 (5) ◽  
pp. R50 ◽  
Author(s):  
Lucas TJ Kaaij ◽  
Marc van de Wetering ◽  
Fang Fang ◽  
Benjamin Decato ◽  
Antoine Molaro ◽  
...  

Development ◽  
2019 ◽  
Vol 147 (1) ◽  
pp. dev181966 ◽  
Author(s):  
Jesse R. Raab ◽  
Deepthi Y. Tulasi ◽  
Kortney E. Wager ◽  
Jeremy M. Morowitz ◽  
Scott T. Magness ◽  
...  

2019 ◽  
Vol 5 (4) ◽  
pp. eaav7959 ◽  
Author(s):  
Ce Zhang ◽  
Hsiung-Lin Tu ◽  
Gengjie Jia ◽  
Tanzila Mukhtar ◽  
Verdon Taylor ◽  
...  

Dynamical control of cellular microenvironments is highly desirable to study complex processes such as stem cell differentiation and immune signaling. We present an ultra-multiplexed microfluidic system for high-throughput single-cell analysis in precisely defined dynamic signaling environments. Our system delivers combinatorial and time-varying signals to 1500 independently programmable culture chambers in week-long live-cell experiments by performing nearly 106 pipetting steps, where single cells, two-dimensional (2D) populations, or 3D neurospheres are chemically stimulated and tracked. Using our system and statistical analysis, we investigated the signaling landscape of neural stem cell differentiation and discovered “cellular logic rules” that revealed the critical role of signal timing and sequence in cell fate decisions. We find synergistic and antagonistic signal interactions and show that differentiation pathways are highly redundant. Our system allows dissection of hidden aspects of cellular dynamics and enables accelerated biological discovery.


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