scholarly journals Loss of epigenetic polarity is a hallmark of hematopoietic stem cell aging

2020 ◽  
Vol 29 (R2) ◽  
pp. R248-R254
Author(s):  
Eva Mejia-Ramirez ◽  
Hartmut Geiger ◽  
M Carolina Florian

Abstract Changes of polarity in somatic stem cells upon aging or disease lead to a functional deterioration of stem cells and consequently loss of tissue homeostasis, likely due to changes in the mode (symmetry versus asymmetry) of stem cell divisions. Changes in polarity of epigenetic markers (or ‘epi-polarity’) in stem cells, which are linked to alterations in chromatin architecture, might explain how a decline in the frequency of epipolar stem cells can have a long-lasting impact on the function of especially aging stem cells. The drift in epipolarity might represent a novel therapeutic target to improve stem cell function upon aging or disease. Here we review basic biological principles of epigenetic polarity, with a special focus on epipolarity and aging of hematopoietic stem cells.

Author(s):  
Tanja Schuster ◽  
Hartmut Geiger

Septins were first described in yeast. Due to extensive research in non-yeast cells, Septins are now recognized across all species as important players in the regulation of the cytoskeleton, in the establishment of polarity, for migration, vesicular trafficking and scaffolding. Stem cells are primarily quiescent cells, and this actively maintained quiescent state is critical for proper stem cell function. Equally important though, stem cells undergo symmetric or asymmetric division, which is likely linked to the level of symmetry found in the mother stem cell. Due to the ability to organize barriers and be able to break symmetry in cells, Septins are thought to have a significant impact on organizing quiescence as well as the mode (symmetric vs asymmetric) of stem cell division to affect self-renewal versus differentiation. Mechanisms of regulating mammalian quiescence and symmetry breaking by Septins are though still somewhat elusive. Within this overview article, we summarize current knowledge on the role of Septins in stem cells ranging from yeast to mice especially with respect to quiescence and asymmetric division, with a special focus on hematopoietic stem cells.


Author(s):  
Sarah Karimi ◽  
Setareh Raoufi ◽  
Zohreh Bagher

Introduction: Aging is a natural phenomenon that is caused by changes in the cells of the body. Theoretically, aging starts from birth and lasts throughout life. These changes affect the function of the cells. Also, in old tissues, the capacity for homeostasis and tissue repair is decline due to destructive changes in specific tissue stem cells, niche of stem cells and systemic factors that regulate stem cell activity. Understanding molecular pathways that disrupt stem cell function during aging is crucial for the development of new treatments for aging-associated diseases. In this article, the symptoms of stem cell aging and the key molecular pathways that are commonly used for the aging of stem cells were discussed. We will consider experimental evidence for all of the mechanisms and evaluate the way that can slow down or even stop the aging process. Finally, we will look at the aging process of three types of stem cells.


Blood ◽  
2006 ◽  
Vol 108 (11) ◽  
pp. 1345-1345
Author(s):  
Erin J. Oakley ◽  
Gary Van Zant

Abstract It is well documented that both quantitative and qualitative changes in the murine hematopoietic stem cell (HSC) population occur with age. In mice, the effect of aging on stem cells is highly strain-specific, thus suggesting genetic regulation plays a role in HSC aging. We have previously mapped a quantitative trait locus (QTL) to murine Chr 2 that is associated with the variation in frequency of HSCs between aged B6 and D2 mice. In C57BL/6 (B6) mice the HSC population steadily increases with age, whereas in DBA/2 mice, this population declines. A QTL regulating the natural variation in lifespan between the two strains was mapped to the same location on mouse Chr 2, thus leading to the hypothesis that stem cell function affects longevity. B6 alleles, associated with expansion of the stem cell pool, are also associated with a ~50% increase in lifespan. Using a congenic mouse model, in which D2 alleles in the QTL interval were introgressed onto a B6 background, genome wide gene expression analyses were performed using sorted lineage negative hematopoietic cells, which are enriched for primitive stem and progenitor cells. Three variables were examined using Affymetrix M430 arrays:the effect of strain--congenic versus background;the effect of age--2 months versus 22 months; andthe effects of 2 Gy of radiation because previous studies indicated that congenic animals were highly sensitive to the effects of mild radiation compared to B6 background animals. Extensive analysis of the expression arrays pointed to a single strong candidate, the gene encoding ribosome binding protein 1 (Rrbp1). Real-time PCR was used to validate the differential expression of Rrbp1 in lineage negative, Sca-1+, c-kit+ (LSK) cells, a population highly enriched for stem and progenitor cells. Further analysis revealed the presence eight non-synonymous, coding single nucleotide polymorphisms (SNPs), and at least one of them because of its location and nature may significantly alter protein structure and function. The Rrbp1 gene consists of 23 exons in mouse and is highly conserved among mammalian species including mouse, human, and canine. The Rrbp1 protein is present on the surface of the rough endoplasmic reticulum where it tethers ribosomes to the membrane, stabilizes mRNA transcripts, and mediates translocation of nascent proteins destined for the cell secretory pathway. It is well established that the interaction of HSCs with microenvironmental niches in the bone marrow is crucial for their maintenance and self-renewal, and that this interaction is mediated in part by the molecular repertoires displayed on the cell surfaces of both HSCs and niche stromal cells. Therefore, we hypothesize that age and strain specific variation in Rrbp1, through its role in the secretory pathway, affects the molecular repertoire at the cell surface of the HSC, thus altering the way stem cells interact with their niches. This altered microenvironmental interaction could have profound effects on fundamental properties relevant to stem cell aging such as pluripotency, self-renewal, and senescence.


Blood ◽  
2008 ◽  
Vol 112 (11) ◽  
pp. 611-611
Author(s):  
Erin J. Oakley ◽  
Hartmut Geiger ◽  
Gary Van Zant

Abstract It is well documented that both quantitative and qualitative changes in the murine hematopoietic stem cell (HSC) population occur with age. We have previously mapped a quantitative trait locus (QTL) to murine chromosome 2 that is associated with the variation in frequency of HSCs between aged C57BL/6 (B6) and DBA/2 (D2) mice. In B6 mice the HSC population steadily increases with age, whereas in D2 mice, this population declines. A QTL regulating the natural variation in lifespan between the two strains was mapped to the same location on mouse Chr 2, thus leading to the hypothesis that stem cell function affects longevity. B6 alleles of this locus, associated with expansion of the stem cell pool, are also associated with a ~50% increase in lifespan. In the present study, we characterize a congenic mouse model which was generated by introgressing D2 alleles in the QTL onto a B6 background. Using a surrogate assay to mimic aging, we analyzed the cell cycle, apoptotic and self-renewal capabilities of congenic and B6 HSCs and show that D2 alleles in the QTL affect the apoptotic and self-renewal capabilities of HSCs. Next, we used oligonucleotide arrays to compare the differential expression of B6 and congenic cells using a population enriched for primitive stem and progenitor cells. Three variables were examined using Affymetrix M430 arrays: the effect of strain—congenic versus background; the effect of age—2 months versus 22 months; and the effects of 2 Gy of irradiation because previous studies indicated that congenic animals were highly sensitive to the effects of mild radiation compared to B6 background animals. Extensive analysis of the expression arrays pointed to a strong candidate, the gene encoding Retinoblastoma like protein 1, otherwise known as p107. The B6 allele is associated with increased p107 expression in old HSCs therefore p107 in this context is a positive regulator of stem cell number in aged mice. Real-time PCR was used to validate the differential expression of p107 in lineage negative and lineage negative Sca-1+, c-kit+ (LSK) cells. Detailed sequence analysis of the gene revealed the presence of 4 non-synonymous, coding region single nucleotide polymorphisms (SNPs) between B6 and D2 mice, which may contribute to the differential expression of the gene and function of the protein. Perhaps most importantly, we show that overexpression of p107 in congenic HSCs increases day 21, day 28, and day 35 CAFC numbers in vivo by 2- to 4-fold, therefore confirming its role as a positive regulator of primitive progenitor populations including HSCs. These studies uncover a novel role for p107 and provide additional clues in the complex regulation of stem cell aging.


2020 ◽  
Author(s):  
Jette Lengefeld ◽  
Chia-Wei Cheng ◽  
Pema Maretich ◽  
Marguerite Blair ◽  
Hannah Hagen ◽  
...  

AbstractStem cells are remarkably small in size. Whether small size is important for stem cell function is unknown. We find that murine hematopoietic stem cells (HSCs) enlarge under conditions known to decrease stem cell function. This decreased fitness of large HSCs is due to reduced proliferative potential. Preventing HSC enlargement by inhibiting macromolecule biosynthesis or reducing large HSCs size by shortening G1 averts the loss of stem cell potential under conditions causing stem cell exhaustion. Finally, we show that a fraction of murine and human HSCs enlarge during aging. Preventing this age-dependent enlargement improves HSC function. We conclude that small cell size is important for stem cell function in vivo and propose that stem cell enlargement contributes to their functional decline during aging.One Sentence SummarySize increase drives stem cell aging.


Blood ◽  
2005 ◽  
Vol 106 (11) ◽  
pp. 1722-1722
Author(s):  
Erin J. Oakley ◽  
Gary Van Zant

Abstract A combination of quantitative trait locus (QTL) mapping and microarray expression profiling was used to identify five novel candidate genes for regulating hematopoietic stem cell aging in two strains of inbred mice, C57BL/6 (B6) and DBA/2 (D2). Despite their ability to self-renew and maintain essentially normal levels of hematopoietic function throughout the lifetime of an organism, it has become increasingly evident that hematopoietic stem cells (HSCs) are subject to qualitative and quantitative changes over time, and that these changes may affect both the rate of aging and longevity of organisms. In mice, the effect of aging on stem cells is highly strain-specific, thus suggesting that genetic regulation plays a role in HSC aging. Our lab has identified a QTL on murine chromosome 2 that is associated with the variation in frequency of HSCs between aged B6 and D2 mice. In B6 mice, the frequency of HSCs increases with age, whereas in D2 mice the population of HSCs decreases as the animals age. Using a congenic mouse model in which the region surrounding the QTL in D2 mice was introgressed onto a B6 background, genome wide gene expression analyses were performed using sorted lineage negative hematopoietic cells, which are enriched for primitive stem and progenitor hematopoietic cells. RNA isolated from lineage negative cells from chromosome 2 congenic and B6 background mice at young and old ages was reverse transcribed, labeled, and hybridized to Affymetrix Murine Genome 430 arrays. Using an overall p-value cut-off of ≤ 0.01, a total of 4,368 transcripts were differentially expressed between background and congenic mice, out of 39,000 transcripts present on the mouse genome chip. Following a ‘QTL to Gene’ strategy, we identified 123 differentially expressed transcripts located in the congenic interval on chromosome 2. We then assessed for hematopoietic tissue specific expression patterns, the presence of single nucleotide polymorphisms (SNPs) in the transcripts, and cis-regulation of transcript expression. Five genes were identified that met these criteria, and thus are considered candidate regulators of hematopoietic stem cell aging. We used real time PCR to validate differential expression of a subset of the identified genes. Interestingly, a majority of the genes are associated with cell cycle control and/or protein targeting and transport processes. Additionally, all five cis-regulated genes were found to be down-regulated in aged congenic mice compared to aged B6 mice, thus suggesting coordinated regulation by a common promoter region(s) located within the chromosome 2 QTL. These findings suggest that stem cell aging is associated with specifc intrinsic cellular events and provide insight into the genetic mechanisms underlying hematopoietic stem cell aging.


Blood ◽  
2018 ◽  
Vol 131 (5) ◽  
pp. 479-487 ◽  
Author(s):  
Gerald de Haan ◽  
Seka Simone Lazare

Abstract Hematopoietic stem cells (HSCs) ensure a balanced production of all blood cells throughout life. As they age, HSCs gradually lose their self-renewal and regenerative potential, whereas the occurrence of cellular derailment strongly increases. Here we review our current understanding of the molecular mechanisms that contribute to HSC aging. We argue that most of the causes that underlie HSC aging result from cell-intrinsic pathways, and reflect on which aspects of the aging process may be reversible. Because many hematological pathologies are strongly age-associated, strategies to intervene in aspects of the stem cell aging process may have significant clinical relevance.


Author(s):  
Xiao Sheng ◽  
Yuedan Zhu ◽  
Juanyu Zhou ◽  
La Yan ◽  
Gang Du ◽  
...  

The dysfunction or exhaustion of adult stem cells during aging is closely linked to tissue aging and age-related diseases. Circumventing this aging-related exhaustion of adult stem cells could significantly alleviate the functional decline of organs. Therefore, identifying small molecular compounds that could prevent the age-related decline of stem cell function is a primary goal in anti-aging research. Caffeic acid (CA), a phenolic compound synthesized in plants, offers substantial health benefits for multiple age-related diseases and aging. However, the effects of CA on adult stem cells remain largely unknown. Using the Drosophila midgut as a model, this study showed that oral administration with CA significantly delayed age-associated Drosophila gut dysplasia caused by the dysregulation of intestinal stem cells (ISCs) upon aging. Moreover, administering CA retarded the decline of intestinal functions in aged Drosophila and prevented hyperproliferation of age-associated ISC by suppressing oxidative stress-associated JNK signaling. On the other hand, CA supplementation significantly ameliorated the gut hyperplasia defect and reduced environmentally induced mortality, revealing the positive effects of CA on tolerance to stress responses. Taken together, our findings report a crucial role of CA in delaying age-related changes in ISCs of Drosophila.


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