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1.
Curr Biol ; 34(10): 2085-2093.e6, 2024 05 20.
Artigo em Inglês | MEDLINE | ID: mdl-38670094

RESUMO

Proper chromosome segregation in meiosis I relies on the formation of connections between homologous chromosomes. Crossovers between homologs provide a connection that allows them to attach correctly to the meiosis I spindle. Tension is transmitted across the crossover when the partners attach to microtubules from opposing poles of the spindle. Tension stabilizes microtubule attachments that will pull the partners toward opposite poles at anaphase. Paradoxically, in many organisms, non-crossover partners segregate correctly. The mechanism by which non-crossover partners become bioriented on the meiotic spindle is unknown. Both crossover and non-crossover partners pair their centromeres early in meiosis (prophase). In budding yeast, centromere pairing is correlated with subsequent correct segregation of the partners. The mechanism by which centromere pairing, in prophase, promotes later correct attachment of the partners to the metaphase spindle is unknown. We used live cell imaging to track the biorientation process of non-crossover chromosomes. We find that centromere pairing allows the establishment of connections between the partners that allows their later interdependent attachment to the meiotic spindle using tension-sensing biorientation machinery. Because all chromosome pairs experience centromere pairing, our findings suggest that crossover chromosomes also utilize this mechanism to achieve maximal segregation fidelity.


Assuntos
Centrômero , Segregação de Cromossomos , Meiose , Saccharomyces cerevisiae , Centrômero/metabolismo , Segregação de Cromossomos/fisiologia , Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Fuso Acromático/metabolismo , Fuso Acromático/fisiologia , Pareamento Cromossômico , Cromossomos Fúngicos/genética , Microtúbulos/metabolismo
2.
EMBO J ; 43(7): 1244-1256, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38424239

RESUMO

During mitosis, motor proteins and microtubule-associated protein organize the spindle apparatus by cross-linking and sliding microtubules. Kinesin-5 plays a vital role in spindle formation and maintenance, potentially inducing twist in the spindle fibers. The off-axis power stroke of kinesin-5 could generate this twist, but its implications in microtubule organization remain unclear. Here, we investigate 3D microtubule-microtubule sliding mediated by the human kinesin-5, KIF11, and found that the motor caused right-handed helical motion of anti-parallel microtubules around each other. The sidestepping ratio increased with reduced ATP concentration, indicating that forward and sideways stepping of the motor are not strictly coupled. Further, the microtubule-microtubule distance (motor extension) during sliding decreased with increasing sliding velocity. Intriguingly, parallel microtubules cross-linked by KIF11 orbited without forward motion, with nearly full motor extension. Altering the length of the neck linker increased the forward velocity and pitch of microtubules in anti-parallel overlaps. Taken together, we suggest that helical motion and orbiting of microtubules, driven by KIF11, contributes to flexible and context-dependent filament organization, as well as torque regulation within the mitotic spindle.


Assuntos
Cinesinas , Microtúbulos , Humanos , Cinesinas/metabolismo , Microtúbulos/metabolismo , Fuso Acromático/fisiologia , Proteínas Associadas aos Microtúbulos/metabolismo , Mitose
3.
Reprod Sci ; 31(5): 1420-1428, 2024 May.
Artigo em Inglês | MEDLINE | ID: mdl-38294668

RESUMO

Oocyte cryopreservation is offered to women of various age groups for both health and social reasons. Oocytes derived from either controlled ovarian stimulation or in vitro maturation (IVM) are cryopreserved via vitrification. As maternal age is a significant determinant of oocyte quality, there is limited data on the age-related susceptibility of oocytes to the vitrification-warming procedure alone or in conjunction with IVM. In the present study, metaphase II oocytes obtained from 2, 6, 9, and 12 month old Swiss albino mice either by superovulation or IVM were used. To understand the association between maternal age and oocyte cryotolerance, oocytes were subjected to vitrification-warming and compared to non vitrified sibling oocytes. Survived oocytes were evaluated for mitochondrial potential, spindle integrity, relative expression of spindle checkpoint protein transcripts, and DNA double-strand breaks. Maturation potential and vitrification-warming survival were significantly affected (p < 0.001 and p < 0.05, respectively) in ovulated oocytes from the advanced age group but not in IVM oocytes. Although vitrification-warming significantly increased spindle abnormalities in ovulated oocytes from advanced maternal age (p < 0.01), no significant changes were observed in IVM oocytes. Furthermore, Bub1 and Mad2 transcript levels were significantly higher in vitrified-warmed IVM oocytes (p < 0.05). In conclusion, advanced maternal age can have a negative impact on the cryosusceptibility of ovulated oocytes but not IVM oocytes in mice.


Assuntos
Criopreservação , Técnicas de Maturação in Vitro de Oócitos , Idade Materna , Oócitos , Vitrificação , Animais , Oócitos/fisiologia , Feminino , Camundongos , Criopreservação/métodos , Proteínas Mad2/metabolismo , Fuso Acromático/fisiologia , Fuso Acromático/metabolismo , Quebras de DNA de Cadeia Dupla , Proteínas Serina-Treonina Quinases/metabolismo , Proteínas Serina-Treonina Quinases/genética , Proteínas de Ciclo Celular/metabolismo , Proteínas de Ciclo Celular/genética , Sobrevivência Celular/fisiologia
4.
PLoS Genet ; 20(1): e1011111, 2024 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-38206959

RESUMO

Meiosis is a highly conserved feature of sexual reproduction that ensures germ cells have the correct number of chromosomes prior to fertilization. A subset of microtubules, known as the spindle, are essential for accurate chromosome segregation during meiosis. Building evidence in mammalian systems has recently highlighted the unexpected requirement of the actin cytoskeleton in chromosome segregation; a network of spindle actin filaments appear to regulate many aspects of this process. Here we show that Drosophila oocytes also have a spindle population of actin that appears to regulate the formation of the microtubule spindle and chromosomal movements throughout meiosis. We demonstrate that genetic and pharmacological disruption of the actin cytoskeleton has a significant impact on spindle morphology, dynamics, and chromosome alignment and segregation during maturation and the metaphase-anaphase transition. We further reveal a role for calcium in maintaining the microtubule spindle and spindle actin. Together, our data highlights potential conservation of morphology and mechanism of the spindle actin during meiosis.


Assuntos
Actinas , Drosophila , Animais , Fuso Acromático/fisiologia , Meiose , Microtúbulos , Oócitos , Citoesqueleto de Actina , Segregação de Cromossomos , Mamíferos
5.
Zygote ; 32(1): 21-27, 2024 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-38047349

RESUMO

Our previous studies have suggested that spastin, which aggregates on spindle microtubules in oocytes, may promote the assembly of mouse oocyte spindles by cutting microtubules. This action may be related to CRMP5, as knocking down CRMP5 results in reduced spindle microtubule density and maturation defects in oocytes. In this study, we found that, after knocking down CRMP5 in oocytes, spastin distribution shifted from the spindle to the spindle poles and errors in microtubule-kinetochore attachment appeared in oocyte spindles. However, CRMP5 did not interact with the other two microtubule-severing proteins, katanin-like-1 (KATNAL1) and fidgetin-like-1 (FIGNL1), which aggregate at the spindle poles. We speculate that, in oocytes, due to the reduction of spastin distribution on chromosomes after knocking down CRMP5, microtubule-kinetochore errors cannot be corrected through severing, resulting in meiotic division abnormalities and maturation defects in oocytes. This finding provides new insights into the regulatory mechanisms of spastin in oocytes and important opportunities for the study of meiotic division mechanisms.


Assuntos
Cinetocoros , Fuso Acromático , Camundongos , Animais , Cinetocoros/metabolismo , Espastina/genética , Espastina/metabolismo , Fuso Acromático/fisiologia , Microtúbulos/metabolismo , Meiose , Oócitos/fisiologia
6.
Dev Cell ; 58(17): 1519-1533.e6, 2023 09 11.
Artigo em Inglês | MEDLINE | ID: mdl-37419117

RESUMO

Planar spindle orientation is critical for epithelial tissue organization and is generally instructed by the long cell-shape axis or cortical polarity domains. We introduced mouse intestinal organoids in order to study spindle orientation in a monolayered mammalian epithelium. Although spindles were planar, mitotic cells remained elongated along the apico-basal (A-B) axis, and polarity complexes were segregated to basal poles, so that spindles oriented in an unconventional manner, orthogonal to both polarity and geometric cues. Using high-resolution 3D imaging, simulations, and cell-shape and cytoskeleton manipulations, we show that planar divisions resulted from a length limitation in astral microtubules (MTs) which precludes them from interacting with basal polarity, and orient spindles from the local geometry of apical domains. Accordingly, lengthening MTs affected spindle planarity, cell positioning, and crypt arrangement. We conclude that MT length regulation may serve as a key mechanism for spindles to sense local cell shapes and tissue forces to preserve mammalian epithelial architecture.


Assuntos
Microtúbulos , Fuso Acromático , Animais , Camundongos , Fuso Acromático/fisiologia , Divisão Celular , Microtúbulos/fisiologia , Epitélio , Polaridade Celular/fisiologia , Mamíferos
7.
J Reprod Dev ; 69(1): 1-9, 2023 Feb 08.
Artigo em Inglês | MEDLINE | ID: mdl-36436912

RESUMO

The study of the size of cells and organelles has a long history, dating back to the 1600s when cells were defined. In particular, various methods have elucidated the size of the nucleus and the mitotic spindle in several species. However, little research has been conducted on oocyte size and organelles in mammals, and many questions remain to be answered. The appropriate size is essential to cell function properly. Oocytes have a very large cytoplasm, which is more than 100 times larger than that of general somatic cells in mammals. In this review, we discuss how oocytes acquire an enormous cytoplasmic size and the adverse effects of a large cytoplasmic size on cellular functions.


Assuntos
Meiose , Oócitos , Animais , Citoplasma , Fuso Acromático/fisiologia , Mamíferos
8.
Elife ; 112022 11 08.
Artigo em Inglês | MEDLINE | ID: mdl-36346735

RESUMO

During cell division, the spindle generates force to move chromosomes. In mammals, microtubule bundles called kinetochore-fibers (k-fibers) attach to and segregate chromosomes. To do so, k-fibers must be robustly anchored to the dynamic spindle. We previously developed microneedle manipulation to mechanically challenge k-fiber anchorage, and observed spatially distinct response features revealing the presence of heterogeneous anchorage (Suresh et al., 2020). How anchorage is precisely spatially regulated, and what forces are necessary and sufficient to recapitulate the k-fiber's response to force remain unclear. Here, we develop a coarse-grained k-fiber model and combine with manipulation experiments to infer underlying anchorage using shape analysis. By systematically testing different anchorage schemes, we find that forces solely at k-fiber ends are sufficient to recapitulate unmanipulated k-fiber shapes, but not manipulated ones for which lateral anchorage over a 3 µm length scale near chromosomes is also essential. Such anchorage robustly preserves k-fiber orientation near chromosomes while allowing pivoting around poles. Anchorage over a shorter length scale cannot robustly restrict pivoting near chromosomes, while anchorage throughout the spindle obstructs pivoting at poles. Together, this work reveals how spatially regulated anchorage gives rise to spatially distinct mechanics in the mammalian spindle, which we propose are key for function.


Assuntos
Cinetocoros , Fuso Acromático , Animais , Fuso Acromático/fisiologia , Microtúbulos/fisiologia , Divisão Celular , Mamíferos , Mitose
9.
Proc Natl Acad Sci U S A ; 119(33): e2206398119, 2022 08 16.
Artigo em Inglês | MEDLINE | ID: mdl-35960844

RESUMO

During cell division, cross-linking motors determine the architecture of the spindle, a dynamic microtubule network that segregates the chromosomes in eukaryotes. It is unclear how motors with opposite directionality coordinate to drive both contractile and extensile behaviors in the spindle. Particularly, the impact of different cross-linker designs on network self-organization is not understood, limiting our understanding of self-organizing structures in cells but also our ability to engineer new active materials. Here, we use experiment and theory to examine active microtubule networks driven by mixtures of motors with opposite directionality and different cross-linker design. We find that although the kinesin-14 HSET causes network contraction when dominant, it can also assist the opposing kinesin-5 KIF11 to generate extensile networks. This bifunctionality results from HSET's asymmetric design, distinct from symmetric KIF11. These findings expand the set of rules underlying patterning of active microtubule assemblies and allow a better understanding of motor cooperation in the spindle.


Assuntos
Cinesinas , Microtúbulos , Proteínas Oncogênicas , Fuso Acromático , Divisão Celular , Humanos , Cinesinas/química , Cinesinas/fisiologia , Microtúbulos/química , Microtúbulos/fisiologia , Proteínas Oncogênicas/química , Proteínas Oncogênicas/fisiologia , Fuso Acromático/química , Fuso Acromático/fisiologia
10.
FASEB J ; 36(9): e22524, 2022 09.
Artigo em Inglês | MEDLINE | ID: mdl-36006032

RESUMO

As a surveillance mechanism, the activated spindle assembly checkpoint (SAC) potently inhibits the E3 ubiquitin ligase APC/C (anaphase-promoting complex/cyclosome) to ensure accurate chromosome segregation. Although the protein phosphatase 2A (PP2A) has been proposed to be both, directly and indirectly, involved in spindle assembly checkpoint inactivation in mammalian cells, whether it is similarly operating in the fission yeast Schizosaccharomycer pombe has never been demonstrated. Here, we investigated whether fission yeast PP2A is involved in SAC silencing by following the rate of cyclin B (Cdc13) destruction at SPBs during the recovery phase in nda3-KM311 cells released from the inhibition of APC/C by the activated spindle checkpoint. The timing of the SAC inactivation is only slightly delayed when two B56 regulatory subunits (Par1 and Par2) of fission yeast PP2A are absent. Overproduction of individual PP2A subunits either globally in the nda3-KM311 arrest-and-release system or locally in the synthetic spindle checkpoint activation system only slightly suppresses the SAC silencing defects in PP1 deletion (dis2Δ) cells. Our study thus demonstrates that the fission yeast PP2A is not a key regulator actively involved in SAC inactivation.


Assuntos
Schizosaccharomyces , Ciclossomo-Complexo Promotor de Anáfase/genética , Animais , Proteínas de Ciclo Celular/genética , Proteínas de Ciclo Celular/metabolismo , Pontos de Checagem da Fase M do Ciclo Celular , Mamíferos/metabolismo , Proteína Fosfatase 2/genética , Proteína Fosfatase 2/metabolismo , Schizosaccharomyces/genética , Schizosaccharomyces/metabolismo , Fuso Acromático/fisiologia
11.
J Cell Mol Med ; 26(19): 4904-4910, 2022 10.
Artigo em Inglês | MEDLINE | ID: mdl-36029193

RESUMO

Proper spindle orientation is essential for cell fate determination and tissue morphogenesis. Recently, accumulating studies have elucidated several factors that regulate spindle orientation, including geometric, internal and external cues. Abnormality in these factors generally leads to defects in the physiological functions of various organs and the development of severe diseases. Herein, we first review models that are commonly used for studying spindle orientation. We then review a conservative heterotrimeric complex critically involved in spindle orientation regulation in different models. Finally, we summarize some cues that affect spindle orientation and explore whether we can establish a model that precisely elucidates the effects of spindle orientation without interfusing other spindle functions. We aim to summarize current models used in spindle orientation studies and discuss whether we can build a model that disturbs spindle orientation alone. This can substantially improve our understanding of how spindle orientation is regulated and provide insights to investigate this complex event.


Assuntos
Fuso Acromático , Diferenciação Celular , Morfogênese , Fuso Acromático/fisiologia
12.
Trends Cell Biol ; 32(12): 1035-1048, 2022 12.
Artigo em Inglês | MEDLINE | ID: mdl-35717422

RESUMO

Wnt signalling is an essential player in tissue formation, notably in the regulation of stem cell function. Wnt signalling is best known for its roles in G1/S progression. However, a complex Wnt programme that also mediates mitotic progression and asymmetric cell division (ACD) is emerging. Recent developments in this area have provided mechanistic insights as well as tools to engineer or target Wnt signalling for translational and therapeutic purposes. Here, we discuss the bidirectional relationship between Wnt activity and mitosis. We emphasise how various Wnt-dependent mechanisms control spindle dynamics, chromosome segregation, and ACD. Finally, we illustrate how knowledge about these mechanisms has been successfully employed in tissue engineering for regenerative medicine applications.


Assuntos
Engenharia Tecidual , Via de Sinalização Wnt , Humanos , Mitose , Segregação de Cromossomos , Divisão Celular Assimétrica , Fuso Acromático/fisiologia
13.
Proc Natl Acad Sci U S A ; 119(26): e2121868119, 2022 06 28.
Artigo em Inglês | MEDLINE | ID: mdl-35727980

RESUMO

Proper orientation of the mitotic spindle plays a crucial role in embryos, during tissue development, and in adults, where it functions to dissipate mechanical stress to maintain tissue integrity and homeostasis. While mitotic spindles have been shown to reorient in response to external mechanical stresses, the subcellular cues that mediate spindle reorientation remain unclear. Here, we used a combination of optogenetics and computational modeling to investigate how mitotic spindles respond to inhomogeneous tension within the actomyosin cortex. Strikingly, we found that the optogenetic activation of RhoA only influences spindle orientation when it is induced at both poles of the cell. Under these conditions, the sudden local increase in cortical tension induced by RhoA activation reduces pulling forces exerted by cortical regulators on astral microtubules. This leads to a perturbation of the balance of torques exerted on the spindle, which causes it to rotate. Thus, spindle rotation in response to mechanical stress is an emergent phenomenon arising from the interaction between the spindle positioning machinery and the cell cortex.


Assuntos
Microtúbulos , Fuso Acromático , Estresse Mecânico , Actomiosina/metabolismo , Simulação por Computador , Citoplasma , Microtúbulos/metabolismo , Optogenética , Fuso Acromático/fisiologia , Proteína rhoA de Ligação ao GTP/metabolismo
14.
Elife ; 112022 03 16.
Artigo em Inglês | MEDLINE | ID: mdl-35293864

RESUMO

During anaphase B, molecular motors slide interpolar microtubules to elongate the mitotic spindle, contributing to the separation of chromosomes. However, sliding of antiparallel microtubules reduces their overlap, which may lead to spindle breakage, unless microtubules grow to compensate sliding. How sliding and growth are coordinated is still poorly understood. In this study, we have used the fission yeast S. pombe to measure microtubule dynamics during anaphase B. We report that the coordination of microtubule growth and sliding relies on promoting rescues at the midzone edges. This makes microtubules stable from pole to midzone, while their distal parts including the plus ends alternate between assembly and disassembly. Consequently, the midzone keeps a constant length throughout anaphase, enabling sustained sliding without the need for a precise regulation of microtubule growth speed. Additionally, we found that in S. pombe, which undergoes closed mitosis, microtubule growth speed decreases when the nuclear membrane wraps around the spindle midzone.


Assuntos
Anáfase , Schizosaccharomyces , Microtúbulos , Mitose , Schizosaccharomyces/genética , Fuso Acromático/fisiologia
15.
Mol Biol Cell ; 33(6): ar61, 2022 05 15.
Artigo em Inglês | MEDLINE | ID: mdl-35235368

RESUMO

Cellular functions such as cell division are remarkably conserved across phyla. However, the evolutionary principles of cellular organization that drive them are less well explored. Thus, an essential question remains: to what extent do cellular parameters evolve without altering the basic functions they sustain? Here we have observed six different nematode species for which the mitotic spindle is positioned asymmetrically during the first embryonic division. Whereas the C. elegans spindle undergoes oscillations during its displacement, the spindle elongates without oscillations in other species. We asked which evolutionary changes in biophysical parameters could explain differences in spindle motion while maintaining a constant output. Using laser microsurgery of the spindle, we revealed that all species are subjected to cortical pulling forces of varying magnitudes. Using a viscoelastic model to fit the recoil trajectories and with an independent measurement of cytoplasmic viscosity, we extracted the values of cytoplasmic drag, cortical pulling forces, and spindle elasticity for all species. We found large variations in cytoplasmic viscosity, whereas cortical pulling forces and elasticity were often more constrained. In agreement with previous simulations, we found that increased viscosity correlates with decreased oscillation speeds across species. However, the absence of oscillations in some species despite low viscosity can only be explained by smaller pulling forces. Consequently, we find that spindle mobility across the species analyzed here is characterized by a tradeoff between cytoplasmic viscosity and pulling forces normalized by the size of the embryo. Our work provides a framework for understanding mechanical constraints on evolutionary diversification of spindle mobility.


Assuntos
Proteínas de Caenorhabditis elegans , Nematoides , Anáfase , Animais , Caenorhabditis elegans , Proteínas de Caenorhabditis elegans/genética , Embrião não Mamífero , Fuso Acromático/fisiologia , Viscosidade
16.
Nat Cell Biol ; 24(2): 155-167, 2022 02.
Artigo em Inglês | MEDLINE | ID: mdl-35102267

RESUMO

During mammalian development, the first asymmetric cell divisions segregate cells into inner and outer positions of the embryo to establish the pluripotent and trophectoderm lineages. Typically, polarity components differentially regulate the mitotic spindle via astral microtubule arrays to trigger asymmetric division patterns. However, early mouse embryos lack centrosomes, the microtubule-organizing centres (MTOCs) that usually generate microtubule asters. Thus, it remains unknown whether spindle organization regulates lineage segregation. Here we find that heterogeneities in cell polarity in the early 8-cell-stage mouse embryo trigger the assembly of a highly asymmetric spindle organization. This spindle arises in an unusual modular manner, forming a single microtubule aster from an apically localized, non-centrosomal MTOC, before joining it to the rest of the spindle apparatus. When fully assembled, this 'monoastral' spindle triggers spatially asymmetric division patterns to segregate cells into inner and outer positions. Moreover, the asymmetric inheritance of spindle components causes differential cell polarization to determine pluripotent versus trophectoderm lineage fate.


Assuntos
Diferenciação Celular , Divisão Celular , Linhagem da Célula , Polaridade Celular , Embrião de Mamíferos/fisiologia , Fuso Acromático/fisiologia , Animais , Proteínas de Ciclo Celular/genética , Proteínas de Ciclo Celular/metabolismo , Embrião de Mamíferos/metabolismo , Desenvolvimento Embrionário , Regulação da Expressão Gênica no Desenvolvimento , Idade Gestacional , Camundongos , Proteínas Associadas aos Microtúbulos/genética , Proteínas Associadas aos Microtúbulos/metabolismo , Fuso Acromático/genética , Fuso Acromático/metabolismo
17.
Science ; 375(6581): eabj3944, 2022 02 11.
Artigo em Inglês | MEDLINE | ID: mdl-35143306

RESUMO

Human oocytes are prone to assembling meiotic spindles with unstable poles, which can favor aneuploidy in human eggs. The underlying causes of spindle instability are unknown. We found that NUMA (nuclear mitotic apparatus protein)-mediated clustering of microtubule minus ends focused the spindle poles in human, bovine, and porcine oocytes and in mouse oocytes depleted of acentriolar microtubule-organizing centers (aMTOCs). However, unlike human oocytes, bovine, porcine, and aMTOC-free mouse oocytes have stable spindles. We identified the molecular motor KIFC1 (kinesin superfamily protein C1) as a spindle-stabilizing protein that is deficient in human oocytes. Depletion of KIFC1 recapitulated spindle instability in bovine and aMTOC-free mouse oocytes, and the introduction of exogenous KIFC1 rescued spindle instability in human oocytes. Thus, the deficiency of KIFC1 contributes to spindle instability in human oocytes.


Assuntos
Proteínas de Ciclo Celular/metabolismo , Cinesinas/deficiência , Oócitos/fisiologia , Oócitos/ultraestrutura , Fuso Acromático/fisiologia , Polos do Fuso/fisiologia , 1-Alquil-2-acetilglicerofosfocolina Esterase/metabolismo , Animais , Bovinos , Complexo Dinactina/metabolismo , Dineínas/metabolismo , Feminino , Humanos , Cinesinas/genética , Cinesinas/metabolismo , Camundongos , Proteínas Associadas aos Microtúbulos/metabolismo , Centro Organizador dos Microtúbulos/fisiologia , Centro Organizador dos Microtúbulos/ultraestrutura , Microtúbulos/metabolismo , Proteínas Recombinantes/metabolismo , Fuso Acromático/ultraestrutura , Polos do Fuso/ultraestrutura , Suínos
18.
Proc Natl Acad Sci U S A ; 119(8)2022 02 22.
Artigo em Inglês | MEDLINE | ID: mdl-35169074

RESUMO

Cells are filled with macromolecules and polymer networks that set scale-dependent viscous and elastic properties to the cytoplasm. Although the role of these parameters in molecular diffusion, reaction kinetics, and cellular biochemistry is being increasingly recognized, their contributions to the motion and positioning of larger organelles, such as mitotic spindles for cell division, remain unknown. Here, using magnetic tweezers to displace and rotate mitotic spindles in living embryos, we uncovered that the cytoplasm can impart viscoelastic reactive forces that move spindles, or passive objects with similar size, back to their original positions. These forces are independent of cytoskeletal force generators yet reach hundreds of piconewtons and scale with cytoplasm crowding. Spindle motion shears and fluidizes the cytoplasm, dissipating elastic energy and limiting spindle recoils with functional implications for asymmetric and oriented divisions. These findings suggest that bulk cytoplasm material properties may constitute important control elements for the regulation of division positioning and cellular organization.


Assuntos
Citoplasma/fisiologia , Elasticidade/fisiologia , Fuso Acromático/fisiologia , Animais , Fenômenos Biomecânicos/fisiologia , Divisão Celular/fisiologia , Difusão , Cinética , Fenômenos Magnéticos , Microtúbulos , Mitose/fisiologia , Organelas , Ouriços-do-Mar , Viscosidade
19.
Dev Cell ; 57(2): 197-211.e3, 2022 01 24.
Artigo em Inglês | MEDLINE | ID: mdl-35030327

RESUMO

During female meiosis I (MI), spindle positioning must be tightly regulated to ensure the fidelity of the first asymmetric division and faithful chromosome segregation. Although the role of F-actin in regulating these critical processes has been studied extensively, little is known about whether microtubules (MTs) participate in regulating these processes. Using mouse oocytes as a model system, we characterize a subset of MT organizing centers that do not contribute directly to spindle assembly, termed mcMTOCs. Using laser ablation, STED super-resolution microscopy, and chemical manipulation, we show that mcMTOCs are required to regulate spindle positioning and faithful chromosome segregation during MI. We discuss how forces exerted by F-actin on the spindle are balanced by mcMTOC-nucleated MTs to anchor the spindle centrally and to regulate its timely migration. Our findings provide a model for asymmetric cell division, complementing the current F-actin-based models, and implicate mcMTOCs as a major player in regulating spindle positioning.


Assuntos
Centro Organizador dos Microtúbulos/fisiologia , Oócitos/metabolismo , Fuso Acromático/fisiologia , Citoesqueleto de Actina/fisiologia , Actinas/fisiologia , Animais , Divisão Celular Assimétrica/fisiologia , Segregação de Cromossomos/fisiologia , Feminino , Meiose/fisiologia , Camundongos , Camundongos Endogâmicos C57BL , Centro Organizador dos Microtúbulos/metabolismo , Microtúbulos/metabolismo , Microtúbulos/fisiologia , Oócitos/fisiologia , Fuso Acromático/metabolismo
20.
Mol Biol Cell ; 33(2): rt1, 2022 02 01.
Artigo em Inglês | MEDLINE | ID: mdl-35076260

RESUMO

Formation of a bipolar spindle is required for the faithful segregation of chromosomes during cell division. Twenty-five years ago, a transformative insight into how bipolarity is achieved was provided by Rebecca Heald, Eric Karsenti, and colleagues in their landmark publication characterizing a chromatin-mediated spindle assembly pathway in which centrosomes and kinetochores were dispensable. The discovery revealed that bipolar spindle assembly is a self-organizing process where microtubules, which possess an intrinsic polarity, polymerize around chromatin and become sorted by mitotic motors into a bipolar structure. On the 25th anniversary of this seminal paper, we discuss what was known before, what we have learned since, and what may lie ahead in understanding the bipolar spindle.


Assuntos
Montagem e Desmontagem da Cromatina/fisiologia , Cromatina/metabolismo , Fuso Acromático/fisiologia , Animais , Aniversários e Eventos Especiais , Ciclo Celular , Centrossomo , Humanos , Cinetocoros , Microtúbulos/metabolismo , Mitose
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