scholarly journals Ultrastructure and Differentiation in Chara Sp. II. Mitosis

1967 ◽  
Vol 20 (5) ◽  
pp. 883 ◽  
Author(s):  
JD Pickett-Heaps

The ultrastructure of some dividing cells of Chara are described. No centrioles have ever been detected in vegetative cells. Asymmetric cell division, forming a predetermined pattern of cells, was apparently not preceded by any characteristic grouping of cell organelles. The nucleoli became dispersed during pre-prophase, and most of the nucleolar material appeared intimately associated with the chromosomes throughout division, although some seemed excluded from the nucleus at late telophase. Polar zones of endoplasmic reticulum were formed in early prophase, and attachment of microtubules to daughter chromosomes slightly preceded the formation of a very precisely aligned metaphase plate. The chromosome arms were also apparently all aligned in the plane of this plate.

2017 ◽  
Vol 28 (11) ◽  
pp. 1530-1538 ◽  
Author(s):  
Anthony S. Eritano ◽  
Arturo Altamirano ◽  
Sarah Beyeler ◽  
Norma Gaytan ◽  
Mark Velasquez ◽  
...  

Asymmetric cell division is the primary mechanism to generate cellular diversity, and it relies on the correct partitioning of cell fate determinants. However, the mechanism by which these determinants are delivered and positioned is poorly understood, and the upstream signal to initiate asymmetric cell division is unknown. Here we report that the endoplasmic reticulum (ER) is asymmetrically partitioned during mitosis in epithelial cells just before delamination and selection of a proneural cell fate in the early Drosophila embryo. At the start of gastrulation, the ER divides asymmetrically into a population of asynchronously dividing cells at the anterior end of the embryo. We found that this asymmetric division of the ER depends on the highly conserved ER membrane protein Jagunal (Jagn). RNA inhibition of jagn just before the start of gastrulation disrupts this asymmetric division of the ER. In addition, jagn-deficient embryos display defects in apical-basal spindle orientation in delaminated embryonic neuroblasts. Our results describe a model in which an organelle is partitioned asymmetrically in an otherwise symmetrically dividing cell population just upstream of cell fate determination and updates previous models of spindle-based selection of cell fate during mitosis.


1997 ◽  
Vol 110 (17) ◽  
pp. 1979-1988 ◽  
Author(s):  
H. Bousbaa ◽  
L. Correia ◽  
G.J. Gorbsky ◽  
C.E. Sunkel

The progression of cells from metaphase to anaphase is thought to be regulated by a checkpoint that delays entry into anaphase until all chromosomes reach a stable bi-polar attachment at the metaphase plate. Previous work has suggested that the 3F3/2 kinetochore phosphoepitopes are involved in this checkpoint system. We show that the 3F3/2 centromere phosphoepitopes are present in Kc cells, third instar larval neuroblasts and isolated chromosomes of Drosophila melanogaster. In tissue culture cells and neuroblasts isolated from third instar larvae, centromere labelling is detected from early prophase to the metaphase-anaphase transition but absent once cells center anaphase. During anaphase, the antibody stains the spindle mid zone and during telophase the midbody is labelled until cells separate. In both cell types, the 3F3/2 antibody stains the centrosome from prophase to late telophase. The 3F3/2 staining is retained in Kc cells and third instar larval neuroblasts arrested at the prometaphase state with microtubule inhibitors. Also, two mitotic mutants that show abnormal spindle morphology retain the centromere labelling in a metaphase-like configuration, suggesting that they activate the metaphase-anaphase checkpoint. Finally, mitotic chromosomes isolated in the presence of a phosphatase inhibitor show phosphoepitopes at the primary constriction on the surface of each chromatid, however, chromosomes isolated in the absence of a phosphatase inhibitor do not. Incubation of these chromosomes with ATP causes the rephosphorylation of the phosphoepitopes at the centromere.


2018 ◽  
Vol 217 (11) ◽  
pp. 3785-3795 ◽  
Author(s):  
Zsolt G. Venkei ◽  
Yukiko M. Yamashita

The asymmetric cell division of stem cells, which produces one stem cell and one differentiating cell, has emerged as a mechanism to balance stem cell self-renewal and differentiation. Elaborate cellular mechanisms that orchestrate the processes required for asymmetric cell divisions are often shared between stem cells and other asymmetrically dividing cells. During asymmetric cell division, cells must establish asymmetry/polarity, which is guided by varying degrees of intrinsic versus extrinsic cues, and use intracellular machineries to divide in a desired orientation in the context of the asymmetry/polarity. Recent studies have expanded our knowledge on the mechanisms of asymmetric cell divisions, revealing the previously unappreciated complexity in setting up the cellular and/or environmental asymmetry, ensuring binary outcomes of the fate determination. In this review, we summarize recent progress in understanding the mechanisms and regulations of asymmetric stem cell division.


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.


2012 ◽  
Vol 40 (1) ◽  
pp. 119-123 ◽  
Author(s):  
Jeremy T. Smyth ◽  
James W. Putney

Store-operate Ca2+ channels gate Ca2+ entry into the cytoplasm in response to the depletion of Ca2+ from endoplasmic reticulum Ca2+ stores. The major molecular components of store-operated Ca2+ entry are STIM (stromal-interacting molecule) 1 (and in some instances STIM2) that serves as the endoplasmic reticulum Ca2+ sensor, and Orai (Orai1, Orai2 and Orai3) which function as pore-forming subunits of the store-operated channel. It has been known for some time that store-operated Ca2+ entry is shut down during cell division. Recent work has revealed complex mechanisms regulating the functions and locations of both STIM1 and Orai1 in dividing cells.


2012 ◽  
Vol 196 (3) ◽  
pp. 305-313 ◽  
Author(s):  
Jimmy Ouellet ◽  
Yves Barral

Studies on cell division traditionally focus on the mechanisms of chromosome segregation and cytokinesis, yet we know comparatively little about how organelles segregate. Analysis of organelle partitioning in asymmetrically dividing cells has provided insights into the mechanisms through which cells control organelle distribution. Interestingly, these studies have revealed that segregation mechanisms frequently link organelle distribution to organelle growth and formation. Furthermore, in many cases, cells use organelles, such as the endoplasmic reticulum and P granules, as vectors for the segregation of information. Together, these emerging data suggest that the coordination between organelle growth, division, and segregation plays an important role in the control of cell fate inheritance, cellular aging, and rejuvenation, i.e., the resetting of age in immortal lineages.


2001 ◽  
Vol 154 (2) ◽  
pp. 317-330 ◽  
Author(s):  
Eija Jokitalo ◽  
Noemi Cabrera-Poch ◽  
Graham Warren ◽  
David T. Shima

We have examined the fate of Golgi membranes during mitotic inheritance in animal cells using four-dimensional fluorescence microscopy, serial section reconstruction of electron micrographs, and peroxidase cytochemistry to track the fate of a Golgi enzyme fused to horseradish peroxidase. All three approaches show that partitioning of Golgi membranes is mediated by Golgi clusters that persist throughout mitosis, together with shed vesicles that are often found associated with spindle microtubules. We have been unable to find evidence that Golgi membranes fuse during the later phases of mitosis with the endoplasmic reticulum (ER) as a strategy for Golgi partitioning (Zaal, K.J., C.L. Smith, R.S. Polishchuk, N. Altan, N.B. Cole, J. Ellenberg, K. Hirschberg, J.F. Presley, T.H. Roberts, E. Siggia, et al. 1999. Cell. 99:589–601) and suggest that these results, in part, are the consequence of slow or abortive folding of GFP–Golgi chimeras in the ER. Furthermore, we show that accurate partitioning is accomplished early in mitosis, by a process of cytoplasmic redistribution of Golgi fragments and vesicles yielding a balance of Golgi membranes on either side of the metaphase plate before cell division.


1993 ◽  
Vol 71 (3) ◽  
pp. 434-446 ◽  
Author(s):  
Sharon Broadwater ◽  
Joe Scott ◽  
Dawn Field ◽  
Bill Saunders ◽  
Jewel Thomas

This investigation of Bossiella orbigniana (Decaisne) Silva ssp. orbigniana represents the first ultrastructural account of cell division in the order Corallinales. The mitotic process in this alga is differentiated from that of other red algae by a combination of characters. During prometaphase–metaphase the division poles contain unusual membrane arrangements including quantities of smooth-surfaced membranes and elongate extensions of perinuclear rough ER. At anaphase extensive remnants of nucleolar material attach to the chromosomes, trailing them to the poles. After telophase, the distal nucleus continues to move toward the apex resulting in much greater nuclear segregation than accomplished by anaphase alone. Cytokinesis is temporally displaced from mitosis and displaced distally from the metaphase plate. A reevaluation of ultrastructural patterns of red algal cell division suggests that there are two basic types of mitosis, the polar gap type and the polar fenestrations type to which B. orbigniana belongs. These two types are differentiated by a number of characters with the most important being the configuration of the prometaphase–metaphase polar region and spindle origin. Key words: Bossiella, cell division, Corallinales, mitosis, phylogeny, red algae.


1974 ◽  
Vol 15 (2) ◽  
pp. 429-441
Author(s):  
D. HESS ◽  
D. BAYER

Ultrastructural studies of trifluralin-treated cells in lateral root meristems of cotton (Gossypium hirsutum L.) revealed that mitotic disruptions were due to the absence of microtubules. The extent of disruption varied between individual roots and correlated with the presence or absence of microtubules. Where microtubules were absent, cells began division with a normal prophase chromosome cycle. The chromosomes did not line up along a metaphase plate, but coalesced in the cell. If cell division had begun prior to microtubule disappearance the mitotic process was arrested at the stage that had been reached when the disappearance occurred. In some cell divisions randomly oriented microtubules were noted, with mitosis apparently arrested at those stages. Nuclear envelope reformation yielded cells that were polyploid, polymorphonucleate, binucleate, or occasionally multinucleate. If microtubules were present and if their orientation were normal, all stages of mitosis occurred. The range of mitotic disruption observed can be explained by the threshold concentration for microtubule disappearance being very near aqueous saturation of trifluralin.


eLife ◽  
2014 ◽  
Vol 3 ◽  
Author(s):  
Felipe Mora-Bermúdez ◽  
Fumio Matsuzaki ◽  
Wieland B Huttner

Mitotic spindle orientation is crucial for symmetric vs asymmetric cell division and depends on astral microtubules. Here, we show that distinct subpopulations of astral microtubules exist, which have differential functions in regulating spindle orientation and division symmetry. Specifically, in polarized stem cells of developing mouse neocortex, astral microtubules reaching the apical and basal cell cortex, but not those reaching the central cell cortex, are more abundant in symmetrically than asymmetrically dividing cells and reduce spindle orientation variability. This promotes symmetric divisions by maintaining an apico-basal cleavage plane. The greater abundance of apical/basal astrals depends on a higher concentration, at the basal cell cortex, of LGN, a known spindle-cell cortex linker. Furthermore, newly developed specific microtubule perturbations that selectively decrease apical/basal astrals recapitulate the symmetric-to-asymmetric division switch and suffice to increase neurogenesis in vivo. Thus, our study identifies a novel link between cell polarity, astral microtubules, and spindle orientation in morphogenesis.


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