scholarly journals Synthetic pluripotent bacterial stem cells

2018 ◽  
Author(s):  
Sara Molinari ◽  
David L. Shis ◽  
James Chappell ◽  
Oleg A. Igoshin ◽  
Matthew R. Bennett

AbstractA defining property of stem cells is their ability to differentiate via asymmetric cell division, in which a stem cell creates a differentiated daughter cell but retains its own phenotype. Here, we describe a synthetic genetic circuit for controlling asymmetrical cell division in Escherichia coli. Specifically, we engineered an inducible system that can bind and segregate plasmid DNA to a single position in the cell. Upon division, the co-localized plasmids are kept by one and only one of the daughter cells. The other daughter cell receives no plasmid DNA and is hence irreversibly differentiated from its sibling. In this way, we achieved asymmetric cell division though asymmetric plasmid partitioning. We also characterized an orthogonal inducible circuit that enables the simultaneous asymmetric partitioning of two plasmid species – resulting in pluripotent cells that have four distinct differentiated states. These results point the way towards engineering multicellular systems from prokaryotic hosts.

Blood ◽  
2010 ◽  
Vol 116 (21) ◽  
pp. 571-571
Author(s):  
William T. Tse ◽  
Livana Soetedjo ◽  
Timothy Lax ◽  
Lei Wang ◽  
Patrick J. Kennedy

Abstract Abstract 571 Asymmetric cell division, a proposed mechanism by which hematopoietic progenitor/stem cells (HPSC) maintain a balance between self-renewal and differentiation, has rarely been observed. Here we report the surprising finding that cultured mouse primary HPSC routinely generate pairs of daughter cells with 2 distinct phenotypes after a single round of cell division. Mouse bone marrow cells were cultured on chamber slides in the presence of stem cell factor (SCF). BrdU was added overnight to label dividing cells, and the cells were examined by immunofluorescence microscopy on day 2–4 of culture. In each BrdU+c-Kit+ divided cell doublet, c-Kit was invariably expressed in only 1 of the 2 daughter cells. In contrast, the other daughter cell was negative for c-Kit but positive for the asymmetric cell fate determinant Numb and mature myeloid markers Mac1, Gr1, M-CSFR and F4/80. Similarly, in each BrdU+Sca1+ cell doublet, 1 daughter cell was positive for the stem cell markers Sca1, c-Kit, CD150 and CD201, whereas the other cell was negative for these markers but positive for Numb and the mature myeloid markers. Analysis of 400 such doublets showed that the probability of HPSC undergoing asymmetric division was 99.5% (95% confidence interval 98–100%), indicating that asymmetric division in HPSC is in fact not rare but obligatory. In other model systems, it has been shown that activation of the atypical protein kinase C (aPKC)-Par6-Par3 cell polarity complex and realignment of the microtubule cytoskeleton precede asymmetric cell division. We asked whether similar steps are involved in the asymmetric division of HPSC. We found that c-Kit receptors, upon stimulation by SCF, rapidly capped at an apical pole next to the microtubule-organizing center, followed by redistribution to the same pole of the aPKC-Par6-Par3 complex and microtubule-stabilizing proteins APC, β-catenin, EB1 and IQGAP1. Strikingly, after cell division, the aPKC-Par6-Par3 complex and other polarity markers all partitioned only into the c-Kit+/Sca1+ daughter cell and not the mature daughter cell. The acetylated and detyrosinated forms of stabilized microtubules were also present only in the c-Kit+/Sca1+ cell, as were the Aurora A and Polo-like kinases, 2 mitotic kinases associated with asymmetric cell division. To understand how c-Kit activation triggers downstream polarization events, we studied the role of lipid rafts, cholesterol-enriched microdomains in the cell membrane that serve as organization centers of signaling complexes. These are enriched in phosphatidylinositol 4,5-bisphosphate and annexin 2, putative attachment sites for the aPKC-Par6-Par3 complex. We found that SCF stimulation led to coalescence of lipid raft components at the site of the c-Kit cap, and treatment with a wide range of inhibitors that blocked lipid raft formation abrogated polarization of the aPKC-Par6-Par3 complex and division of the c-Kit+/Sca1+ cells. Because obligatory asymmetric division in cultured HPSC would prevent a net increase in their number, we sought a way to bypass its mechanism. We tested whether inhibition of protein phosphatase 2A (PP2A), a physiological antagonist of aPKC, would enhance aPKC activity and promote self-renewal of HPSC. Treatment of cultured HPSC with okadaic acid or calyculin, 2 well-characterized PP2A inhibitors, increased the percent of c-Kit+/Sca1+ cells undergoing symmetric division from 0% to 23.3% (p<0.001). In addition, small colonies comprised of symmetrically dividing cells uniformly positive for Sca1, c-Kit, CD150 and CD201 were noted in the culture. To functionally characterize the effect of PP2A inhibition, mouse bone marrow cells were cultured in the absence or presence of PP2A inhibitors and transplanted into irradiated congenic mice in a competitive repopulation assay. At 4–8 weeks post-transplant, the donor engraftment rate increased from ∼1 in mice transplanted with untreated cells to >30% in mice transplanted with PP2A inhibitor-treated cells. This dramatic increase indicates that PP2A inhibition can effectively perturb the mechanism of asymmetric cell division and promote the self-renewal of HPSC. In summary, our data showed that obligatory asymmetric cell division works to maintain a strict balance between self-renewal and differentiation in HPSC and pharmacological manipulation of the cell polarity machinery could potentially be used to expand HPSC for clinical use. Disclosures: No relevant conflicts of interest to declare.


2021 ◽  
Vol 118 (13) ◽  
pp. e2006786118
Author(s):  
Justin Sardi ◽  
Muhammed Burak Bener ◽  
Taylor Simao ◽  
Abigail E. Descoteaux ◽  
Boris M. Slepchenko ◽  
...  

Stem cells divide asymmetrically to generate a stem cell and a differentiating daughter cell. Yet, it remains poorly understood how a stem cell and a differentiating daughter cell can receive distinct levels of niche signal and thus acquire different cell fates (self-renewal versus differentiation), despite being adjacent to each other and thus seemingly exposed to similar levels of niche signaling. In the Drosophila ovary, germline stem cells (GSCs) are maintained by short range bone morphogenetic protein (BMP) signaling; the BMP ligands activate a receptor that phosphorylates the downstream molecule mothers against decapentaplegic (Mad). Phosphorylated Mad (pMad) accumulates in the GSC nucleus and activates the stem cell transcription program. Here, we demonstrate that pMad is highly concentrated in the nucleus of the GSC, while it quickly decreases in the nucleus of the differentiating daughter cell, the precystoblast (preCB), before the completion of cytokinesis. We show that a known Mad phosphatase, Dullard (Dd), is required for the asymmetric partitioning of pMad. Our mathematical modeling recapitulates the high sensitivity of the ratio of pMad levels to the Mad phosphatase activity and explains how the asymmetry arises in a shared cytoplasm. Together, these studies reveal a mechanism for breaking the symmetry of daughter cells during asymmetric stem cell division.


2015 ◽  
Vol 112 (38) ◽  
pp. 11977-11982 ◽  
Author(s):  
Jing Yang ◽  
Mark A. McCormick ◽  
Jiashun Zheng ◽  
Zhengwei Xie ◽  
Mitsuhiro Tsuchiya ◽  
...  

Budding yeast divides asymmetrically, giving rise to a mother cell that progressively ages and a daughter cell with full lifespan. It is generally assumed that mother cells retain damaged, lifespan limiting materials (“aging factors”) through asymmetric division. However, the identity of these aging factors and the mechanisms through which they limit lifespan remain poorly understood. Using a flow cytometry-based, high-throughput approach, we quantified the asymmetric partitioning of the yeast proteome between mother and daughter cells during cell division, discovering 74 mother-enriched and 60 daughter-enriched proteins. While daughter-enriched proteins are biased toward those needed for bud construction and genome maintenance, mother-enriched proteins are biased towards those localized in the plasma membrane and vacuole. Deletion of 23 of the 74 mother-enriched proteins leads to lifespan extension, a fraction that is about six times that of the genes picked randomly from the genome. Among these lifespan-extending genes, three are involved in endosomal sorting/endosome to vacuole transport, and three are nitrogen source transporters. Tracking the dynamic expression of specific mother-enriched proteins revealed that their concentration steadily increases in the mother cells as they age, but is kept relatively low in the daughter cells via asymmetric distribution. Our results suggest that some mother-enriched proteins may increase to a concentration that becomes deleterious and lifespan-limiting in aged cells, possibly by upsetting homeostasis or leading to aberrant signaling. Our study provides a comprehensive resource for analyzing asymmetric cell division and aging in yeast, which should also be valuable for understanding similar phenomena in other organisms.


Blood ◽  
1984 ◽  
Vol 64 (2) ◽  
pp. 393-399 ◽  
Author(s):  
J Suda ◽  
T Suda ◽  
M Ogawa

Abstract Blast cell colonies seen in cultures of spleen cells from 5- fluorouracil-treated mice provide a highly enriched population of primitive hemopoietic progenitors. Our recent studies of the differentiation potentials of the paired daughter cells of these progenitors showed different patterns of differentiation in the colonies produced by the separated daughter cells. In this study, we carried out sequential micromanipulation of paired progenitors followed by cytologic examinations of the colonies derived from these progenitors. Of the total 94 evaluable cultures, consisting of three or more colonies, 52 consisted of macrophage colonies and one consisted of megakaryocyte colonies. In the remaining 41 cultures, diverse combinations of colonies revealing heterogeneous compositions of cell lineages were identified. Presumptive genealogic trees of the differentiation of hemopoietic progenitors constructed for the latter group of cultures suggested that monopotent progenitors may be derived from pluripotent progenitors in two ways: (1) directly during one cell division of pluripotent cells or (2) as a result of progressive lineage restriction during successive division of the pluripotent progenitors. The results also suggested that some of the oligopotent progenitors are capable of limited self-renewal.


Blood ◽  
1984 ◽  
Vol 64 (2) ◽  
pp. 393-399 ◽  
Author(s):  
J Suda ◽  
T Suda ◽  
M Ogawa

Blast cell colonies seen in cultures of spleen cells from 5- fluorouracil-treated mice provide a highly enriched population of primitive hemopoietic progenitors. Our recent studies of the differentiation potentials of the paired daughter cells of these progenitors showed different patterns of differentiation in the colonies produced by the separated daughter cells. In this study, we carried out sequential micromanipulation of paired progenitors followed by cytologic examinations of the colonies derived from these progenitors. Of the total 94 evaluable cultures, consisting of three or more colonies, 52 consisted of macrophage colonies and one consisted of megakaryocyte colonies. In the remaining 41 cultures, diverse combinations of colonies revealing heterogeneous compositions of cell lineages were identified. Presumptive genealogic trees of the differentiation of hemopoietic progenitors constructed for the latter group of cultures suggested that monopotent progenitors may be derived from pluripotent progenitors in two ways: (1) directly during one cell division of pluripotent cells or (2) as a result of progressive lineage restriction during successive division of the pluripotent progenitors. The results also suggested that some of the oligopotent progenitors are capable of limited self-renewal.


Cell Division ◽  
2021 ◽  
Vol 16 (1) ◽  
Author(s):  
Shaan N. Chhabra ◽  
Brian W. Booth

AbstractSomatic stem cells are distinguished by their capacity to regenerate themselves and also to produce daughter cells that will differentiate. Self-renewal is achieved through the process of asymmetric cell division which helps to sustain tissue morphogenesis as well as maintain homeostasis. Asymmetric cell division results in the development of two daughter cells with different fates after a single mitosis. Only one daughter cell maintains “stemness” while the other differentiates and achieves a non-stem cell fate. Stem cells also have the capacity to undergo symmetric division of cells that results in the development of two daughter cells which are identical. Symmetric division results in the expansion of the stem cell population. Imbalances and deregulations in these processes can result in diseases such as cancer. Adult mammary stem cells (MaSCs) are a group of cells that play a critical role in the expansion of the mammary gland during puberty and any subsequent pregnancies. Furthermore, given the relatively long lifespans and their capability to undergo self-renewal, adult stem cells have been suggested as ideal candidates for transformation events that lead to the development of cancer. With the possibility that MaSCs can act as the source cells for distinct breast cancer types; understanding their regulation is an important field of research. In this review, we discuss asymmetric cell division in breast/mammary stem cells and implications on further research. We focus on the background history of asymmetric cell division, asymmetric cell division monitoring techniques, identified molecular mechanisms of asymmetric stem cell division, and the role asymmetric cell division may play in breast cancer.


2013 ◽  
Vol 202 (7) ◽  
pp. 1013-1022 ◽  
Author(s):  
Dorothy A. Lerit ◽  
Nasser M. Rusan

Centrosomes determine the mitotic axis of asymmetrically dividing stem cells. Several studies have shown that the centrosomes of the Drosophila melanogaster central brain neural stem cells are themselves asymmetric, organizing varying levels of pericentriolar material and microtubules. This asymmetry produces one active and one inactive centrosome during interphase. We identify pericentrin-like protein (PLP) as a negative regulator of centrosome maturation and activity. We show that PLP is enriched on the inactive interphase centrosome, where it blocks recruitment of the master regulator of centrosome maturation, Polo kinase. Furthermore, we find that ectopic Centrobin expression influenced PLP levels on the basal centrosome, suggesting it may normally function to regulate PLP. Finally, we conclude that, although asymmetric centrosome maturation is not required for asymmetric cell division, it is required for proper centrosome segregation to the two daughter cells.


2017 ◽  
Author(s):  
Nicolas Loyer ◽  
Jens Januschke

AbstractControlling the orientation of cell division is important in the context of cell fate choices and tissue morphogenesis. However, the mechanisms providing the required positional information remain incompletely understood. Here we use stem cells of the Drosophila larval brain that stably maintain their axis of polarity and division between cell cycles to identify cues that orient cell division. Using live cell imaging of cultured brains, laser ablation and genetics we reveal that these cells use the position of their last-born daughter cell as a polarizing cue. Remarkably, this daughter cell derived signal received at one pole of the stem cell has an effect on the opposite pole influencing where apical will be in the next mitosis, thereby directing the orientation of division. Therefore, in addition to known intrinsic cues, stem cells in the developing fly brain are polarized by an extrinsic signal that acts upstream of apico-basal polarity establishment.


2020 ◽  
Vol 64 (2) ◽  
pp. 223-232 ◽  
Author(s):  
Ben L. Carty ◽  
Elaine M. Dunleavy

Abstract Asymmetric cell division (ACD) produces daughter cells with separate distinct cell fates and is critical for the development and regulation of multicellular organisms. Epigenetic mechanisms are key players in cell fate determination. Centromeres, epigenetically specified loci defined by the presence of the histone H3-variant, centromere protein A (CENP-A), are essential for chromosome segregation at cell division. ACDs in stem cells and in oocyte meiosis have been proposed to be reliant on centromere integrity for the regulation of the non-random segregation of chromosomes. It has recently been shown that CENP-A is asymmetrically distributed between the centromeres of sister chromatids in male and female Drosophila germline stem cells (GSCs), with more CENP-A on sister chromatids to be segregated to the GSC. This imbalance in centromere strength correlates with the temporal and asymmetric assembly of the mitotic spindle and potentially orientates the cell to allow for biased sister chromatid retention in stem cells. In this essay, we discuss the recent evidence for asymmetric sister centromeres in stem cells. Thereafter, we discuss mechanistic avenues to establish this sister centromere asymmetry and how it ultimately might influence cell fate.


Sign in / Sign up

Export Citation Format

Share Document