stem cell metabolism
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JCI Insight ◽  
2021 ◽  
Author(s):  
Melissa L. Erickson ◽  
Zachary W. Patinkin ◽  
Allison M. Duensing ◽  
Dana Dabelea ◽  
Leanne M. Redman ◽  
...  

2021 ◽  
Vol 22 (9) ◽  
pp. 4627
Author(s):  
Makiko Mochizuki-Kashio ◽  
Hiroko Shiozaki ◽  
Toshio Suda ◽  
Ayako Nakamura-Ishizu

Hematopoietic stem cells (HSCs) reside in a hypoxic microenvironment that enables glycolysis-fueled metabolism and reduces oxidative stress. Nonetheless, metabolic regulation in organelles such as the mitochondria and lysosomes as well as autophagic processes have been implicated as essential for the determination of HSC cell fate. This review encompasses the current understanding of anaerobic metabolism in HSCs as well as the emerging roles of mitochondrial metabolism and lysosomal regulation for hematopoietic homeostasis.


2021 ◽  
Vol 28 (3) ◽  
pp. 409-423
Author(s):  
Cesar A. Perez-Ramirez ◽  
Heather R. Christofk

Lab on a Chip ◽  
2021 ◽  
Author(s):  
Simone Perottoni ◽  
Nuno G. B. Neto ◽  
Cesare Di Nitto ◽  
Ruslan I. Dmitriev ◽  
Manuela Teresa Raimondi ◽  
...  

The stem cell niche at the perivascular space plays a role in dictating the fate of stem cells within it. This study predicts in silico and models the perivascular space, in a miniaturised bioreactor, with non-invasive assessment of cell metabolism.


Author(s):  
Fidelia B. Alvina ◽  
Arvin M. Gouw ◽  
Anne Le

AbstractCancer stem cells (CSCs), also known as tumorinitiating cells (TICs), are a group of cells found within cancer cells. Like normal stem cells, CSCs can proliferate, engage in self-renewal, and are often implicated in the recurrence of tumors after therapy [1, 2]. The existence of CSCs in various types of cancer has been proven, such as in acute myeloid leukemia (AML) [3], breast [4], pancreatic [5], and lung cancers [6], to name a few. There are two theories regarding the origin of CSCs. First, CSCs may have arisen from normal stem/progenitor cells that experienced changes in their environment or genetic mutations. On the other hand, CSCs may also have originated from differentiated cells that underwent genetic and/or heterotypic modifications [7]. Either way, CSCs reprogram their metabolism in order to support tumorigenesis.


Cells ◽  
2020 ◽  
Vol 9 (11) ◽  
pp. 2490
Author(s):  
Vagner O. C. Rigaud ◽  
Robert Hoy ◽  
Sadia Mohsin ◽  
Mohsin Khan

Cell-based therapeutics for cardiac repair have been extensively used during the last decade. Preclinical studies have demonstrated the effectiveness of adoptively transferred stem cells for enhancement of cardiac function. Nevertheless, several cell-based clinical trials have provided largely underwhelming outcomes. A major limitation is the lack of survival in the harsh cardiac milieu as only less than 1% donated cells survive. Recent efforts have focused on enhancing cell-based therapeutics and understanding the biology of stem cells and their response to environmental changes. Stem cell metabolism has recently emerged as a critical determinant of cellular processes and is uniquely adapted to support proliferation, stemness, and commitment. Metabolic signaling pathways are remarkably sensitive to different environmental signals with a profound effect on cell survival after adoptive transfer. Stem cells mainly generate energy through glycolysis while maintaining low oxidative phosphorylation (OxPhos), providing metabolites for biosynthesis of macromolecules. During commitment, there is a shift in cellular metabolism, which alters cell function. Reprogramming stem cell metabolism may represent an attractive strategy to enhance stem cell therapy for cardiac repair. This review summarizes the current literature on how metabolism drives stem cell function and how this knowledge can be applied to improve cell-based therapeutics for cardiac repair.


Author(s):  
Marine Barthez ◽  
Zehan Song ◽  
Chih Ling Wang ◽  
Danica Chen

2020 ◽  
Vol 140 (7) ◽  
pp. S19
Author(s):  
I. Avila ◽  
M. Miranda ◽  
J. Esparza ◽  
W.E. Lowry

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