scholarly journals Unraveling the Control of Cell Cycle Periods during Intestinal Stem Cell Differentiation

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 ◽  
...  

2014 ◽  
Vol 146 (5) ◽  
pp. S-37-S-38
Author(s):  
Shenika Poindexter ◽  
Rupesh Chaturvedi ◽  
Xi Chen ◽  
Pauline K. Lund ◽  
Mukul K. Mittal ◽  
...  

2016 ◽  
Vol 30 (4) ◽  
pp. 421-433 ◽  
Author(s):  
Siim Pauklin ◽  
Pedro Madrigal ◽  
Alessandro Bertero ◽  
Ludovic Vallier

2021 ◽  
Vol 19 (1) ◽  
Author(s):  
Meriem Bejaoui ◽  
Farhana Ferdousi ◽  
Yun-Wen Zheng ◽  
Tatsuya Oda ◽  
Hiroko Isoda

AbstractOver the past years, Human Amnion Epithelial Cells (hAECs), a placental stem cell, are gaining higher attention from the scientific community as they showed several advantages over other types of stem cells, including availability, easy accessibility, reduced rejection rate, non-tumorigenicity, and minimal legal constraint. Recently, natural compounds are used to stimulate stem cell differentiation and proliferation and to enhance their disease-treating potential. A polyphenolic compound 3,4,5-Tri-O-Caffeoylquinic Acid (TCQA) has been previously reported to induce human neural stem cell differentiation and may affect melanocyte stem cell differentiation as well. In this study, TCQA was tested on 3D cultured hAECs after seven days of treatment, and then, microarray gene expression profiling was conducted of TCQA-treated and untreated control cells on day 0 and day 7. Analyses revealed that TCQA treatment significantly enriched pigment and neural cells sets; besides, genes linked with neurogenesis, oxidation–reduction process, epidermal development, and metabolism were positively regulated. Interestingly, TCQA stimulated cell cycle arrest-related pathways and differentiation signaling. On the other hand, TCQA decreased interleukins and cytokines expression and this due to its anti-inflammatory properties as a polyphenolic compound. Results were validated to highlight the main activities of TCQA on hAECs, including differentiation, cell cycle arrest, and anti-inflammatory. This study highlights the important role of hAECs in regenerative medicine and the use of natural compounds to regulate their fate.


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 ◽  
...  

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