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1.
Cell ; 186(21): 4710-4727.e35, 2023 10 12.
Artículo en Inglés | MEDLINE | ID: mdl-37774705

RESUMEN

Polarized cells rely on a polarized cytoskeleton to function. Yet, how cortical polarity cues induce cytoskeleton polarization remains elusive. Here, we capitalized on recently established designed 2D protein arrays to ectopically engineer cortical polarity of virtually any protein of interest during mitosis in various cell types. This enables direct manipulation of polarity signaling and the identification of the cortical cues sufficient for cytoskeleton polarization. Using this assay, we dissected the logic of the Par complex pathway, a key regulator of cytoskeleton polarity during asymmetric cell division. We show that cortical clustering of any Par complex subunit is sufficient to trigger complex assembly and that the primary kinetic barrier to complex assembly is the relief of Par6 autoinhibition. Further, we found that inducing cortical Par complex polarity induces two hallmarks of asymmetric cell division in unpolarized mammalian cells: spindle orientation, occurring via Par3, and central spindle asymmetry, depending on aPKC activity.


Asunto(s)
Proteínas Adaptadoras Transductoras de Señales , Polaridad Celular , Técnicas Citológicas , Mitosis , Animales , Citoesqueleto/metabolismo , Mamíferos/metabolismo , Microtúbulos/metabolismo , Proteína Quinasa C/metabolismo , Proteínas Adaptadoras Transductoras de Señales/metabolismo
2.
Annu Rev Cell Dev Biol ; 35: 309-336, 2019 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-31590583

RESUMEN

Cell polarity in plants operates across a broad range of spatial and temporal scales to control processes from acute cell growth to systemic hormone distribution. Similar to other eukaryotes, plants generate polarity at both the subcellular and tissue levels, often through polarization of membrane-associated protein complexes. However, likely due to the constraints imposed by the cell wall and their extremely plastic development, plants possess novel polarity molecules and mechanisms highly tuned to environmental inputs. Considerable progress has been made in identifying key plant polarity regulators, but detailed molecular understanding of polarity mechanisms remains incomplete in plants. Here, we emphasize the striking similarities in the conceptual frameworks that generate polarity in both animals and plants. To this end, we highlight how novel, plant-specific proteins engage in common themes of positive feedback, dynamic intracellular trafficking, and posttranslational regulation to establish polarity axes in development. We end with a discussion of how environmental signals control intrinsic polarity to impact postembryonic organogenesis and growth.


Asunto(s)
Polaridad Celular , Células Vegetales/fisiología , Animales , División Celular , Pared Celular/química , Células Eucariotas/citología , Células Vegetales/química , Células Vegetales/enzimología , Proteínas de Plantas/metabolismo , Proteínas de Unión al GTP rho/metabolismo
3.
Annu Rev Genet ; 57: 181-199, 2023 11 27.
Artículo en Inglés | MEDLINE | ID: mdl-37552892

RESUMEN

Germ cells are the only cell type that is capable of transmitting genetic information to the next generation, which has enabled the continuation of multicellular life for the last 1.5 billion years. Surprisingly little is known about the mechanisms supporting the germline's remarkable ability to continue in this eternal cycle, termed germline immortality. Even unicellular organisms age at a cellular level, demonstrating that cellular aging is inevitable. Extensive studies in yeast have established the framework of how asymmetric cell division and gametogenesis may contribute to the resetting of cellular age. This review examines the mechanisms of germline immortality-how germline cells reset the aging of cells-drawing a parallel between yeast and multicellular organisms.


Asunto(s)
División Celular Asimétrica , Saccharomyces cerevisiae , División Celular Asimétrica/genética , Saccharomyces cerevisiae/genética , Células Germinativas , Células Madre
4.
Annu Rev Cell Dev Biol ; 32: 47-75, 2016 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-27576120

RESUMEN

Land plants can grow to tremendous body sizes, yet even the most complex architectures are the result of iterations of the same developmental processes: organ initiation, growth, and pattern formation. A central question in plant biology is how these processes are regulated and coordinated to allow for the formation of ordered, 3D structures. All these elementary processes first occur in early embryogenesis, during which, from a fertilized egg cell, precursors for all major tissues and stem cells are initiated, followed by tissue growth and patterning. Here we discuss recent progress in our understanding of this phase of plant life. We consider the cellular basis for multicellular development in 3D and focus on the genetic regulatory mechanisms that direct specific steps during early embryogenesis.


Asunto(s)
Morfogénesis , Semillas/embriología , Tipificación del Cuerpo , Nicho de Células Madre
5.
Mol Cell ; 82(13): 2401-2414.e9, 2022 07 07.
Artículo en Inglés | MEDLINE | ID: mdl-35597236

RESUMEN

Activated CD8+ T lymphocytes differentiate into heterogeneous subsets. Using super-resolution imaging, we found that prior to the first division, dynein-dependent vesicular transport polarized active TORC1 toward the microtubule-organizing center (MTOC) at the proximal pole. This active TORC1 was physically associated with active eIF4F, required for the translation of c-myc mRNA. As a consequence, c-myc-translating polysomes polarized toward the cellular pole proximal to the immune synapse, resulting in localized c-myc translation. Upon division, the TORC1-eIF4A complex preferentially sorted to the proximal daughter cell, facilitating asymmetric c-Myc synthesis. Transient disruption of eIF4A activity at first division skewed long-term cell fate trajectories to memory-like function. Using a genetic barcoding approach, we found that first-division sister cells often displayed differences in transcriptional profiles that largely correlated with c-Myc and TORC1 target genes. Our findings provide mechanistic insights as to how distinct T cell fate trajectories can be established during the first division.


Asunto(s)
Linfocitos T CD8-positivos , Factor 4F Eucariótico de Iniciación , Diferenciación Celular , Activación de Linfocitos , Diana Mecanicista del Complejo 1 de la Rapamicina/genética
6.
Annu Rev Cell Dev Biol ; 30: 465-502, 2014.
Artículo en Inglés | MEDLINE | ID: mdl-25000993

RESUMEN

Neural stem and progenitor cells have a central role in the development and evolution of the mammalian neocortex. In this review, we first provide a set of criteria to classify the various types of cortical stem and progenitor cells. We then discuss the issue of cell polarity, as well as specific subcellular features of these cells that are relevant for their modes of division and daughter cell fate. In addition, cortical stem and progenitor cell behavior is placed into a tissue context, with consideration of extracellular signals and cell-cell interactions. Finally, the differences across species regarding cortical stem and progenitor cells are dissected to gain insight into key developmental and evolutionary mechanisms underlying neocortex expansion.


Asunto(s)
Neocórtex/crecimiento & desarrollo , Neurogénesis/fisiología , Animales , División Celular Asimétrica , Compartimento Celular , Linaje de la Célula , Membrana Celular/fisiología , Núcleo Celular/fisiología , Polaridad Celular , Líquido Cefalorraquídeo/fisiología , Humanos , Uniones Intercelulares/fisiología , Ventrículos Laterales/embriología , Lípidos de la Membrana/metabolismo , Microglía/fisiología , Mitosis , Neocórtex/citología , Neocórtex/embriología , Células-Madre Neurales/clasificación , Células-Madre Neurales/fisiología , Células Neuroepiteliales/citología , Células Neuroepiteliales/fisiología , Neuronas/fisiología , Orgánulos/fisiología , Especificidad de la Especie
7.
Proc Natl Acad Sci U S A ; 121(22): e2400008121, 2024 May 28.
Artículo en Inglés | MEDLINE | ID: mdl-38787879

RESUMEN

Over the course of multiple divisions, cells accumulate diverse nongenetic, somatic damage including misfolded and aggregated proteins and cell wall defects. If the rate of damage accumulation exceeds the rate of dilution through cell growth, a dedicated mitigation strategy is required to prevent eventual population collapse. Strategies for somatic damage control can be divided into two categories, asymmetric allocation and repair, which are not, in principle, mutually exclusive. We explore a mathematical model to identify the optimal strategy, maximizing the total cell number, over a wide range of environmental and physiological conditions. The optimal strategy is primarily determined by extrinsic, damage-independent mortality and the physiological model for damage accumulation that can be either independent (linear) or increasing (exponential) with respect to the prior accumulated damage. Under the linear regime, the optimal strategy is either exclusively repair or asymmetric allocation, whereas under the exponential regime, the optimal strategy is a combination of asymmetry and repair. Repair is preferred when extrinsic mortality is low, whereas at high extrinsic mortality, asymmetric damage allocation becomes the strategy of choice. We hypothesize that at an early stage of life evolution, optimization over repair and asymmetric allocation of somatic damage gave rise to r and K selection strategists.


Asunto(s)
Modelos Biológicos , Evolución Biológica , Selección Genética
8.
J Cell Sci ; 137(5)2024 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-38334041

RESUMEN

Cells have evolved intricate mechanisms for dividing their contents in the most symmetric way during mitosis. However, a small proportion of cell divisions results in asymmetric segregation of cellular components, which leads to differences in the characteristics of daughter cells. Although the classical function of asymmetric cell division (ACD) in the regulation of pluripotency is the generation of one differentiated daughter cell and one self-renewing stem cell, recent evidence suggests that ACD plays a role in other physiological processes. In cancer, tumor heterogeneity can result from the asymmetric segregation of genetic material and other cellular components, resulting in cell-to-cell differences in fitness and response to therapy. Defining the contribution of ACD in generating differences in key features relevant to cancer biology is crucial to advancing our understanding of the causes of tumor heterogeneity and developing strategies to mitigate or counteract it. In this Review, we delve into the occurrence of asymmetric mitosis in cancer cells and consider how ACD contributes to the variability of several phenotypes. By synthesizing the current literature, we explore the molecular mechanisms underlying ACD, the implications of phenotypic heterogeneity in cancer, and the complex interplay between these two phenomena.


Asunto(s)
División Celular Asimétrica , Neoplasias , Humanos , Mitosis/genética , Neoplasias/genética , Células Madre , Diferenciación Celular
9.
J Cell Sci ; 137(5)2024 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-38465513

RESUMEN

Drosophila neural stem cells, or neuroblasts, rapidly proliferate during embryonic and larval development to populate the central nervous system. Neuroblasts divide asymmetrically to create cellular diversity, with each division producing one sibling cell that retains the neuroblast fate and another that differentiates into glia or neurons. This asymmetric outcome is mediated by the transient polarization of numerous factors to the cell cortex during mitosis. The powerful genetics and outstanding imaging tractability of the neuroblast make it an excellent model system for studying the mechanisms of cell polarity. This Cell Science at a Glance article and the accompanying poster explore the phases of the neuroblast polarity cycle and the regulatory circuits that control them. We discuss the key features of the cycle - the targeted recruitment of proteins to specific regions of the plasma membrane and multiple phases of highly dynamic actomyosin-dependent cortical flows that pattern both protein distribution and membrane structure.


Asunto(s)
Proteínas de Drosophila , Células-Madre Neurales , Animales , Drosophila/metabolismo , Proteínas de Drosophila/genética , Proteínas de Drosophila/metabolismo , Células-Madre Neurales/metabolismo , Neuronas/metabolismo , Mitosis , Proteínas de Ciclo Celular/metabolismo , Polaridad Celular/fisiología
10.
Proc Natl Acad Sci U S A ; 120(36): e2303758120, 2023 09 05.
Artículo en Inglés | MEDLINE | ID: mdl-37639582

RESUMEN

In Arabidopsis thaliana, brassinosteroid (BR) signaling and stomatal development are connected through the SHAGGY/GSK3-like kinase BR INSENSITIVE2 (BIN2). BIN2 is a key negative regulator of BR signaling but it plays a dual role in stomatal development. BIN2 promotes or restricts stomatal asymmetric cell division (ACD) depending on its subcellular localization, which is regulated by the stomatal lineage-specific scaffold protein POLAR. BRs inactivate BIN2, but how they govern stomatal development remains unclear. Mapping the single-cell transcriptome of stomatal lineages after triggering BR signaling with either exogenous BRs or the specific BIN2 inhibitor, bikinin, revealed that the two modes of BR signaling activation generate spatiotemporally distinct transcriptional responses. We established that BIN2 is always sensitive to the inhibitor but, when in a complex with POLAR and its closest homolog POLAR-LIKE1, it becomes protected from BR-mediated inactivation. Subsequently, BR signaling in ACD precursors is attenuated, while it remains active in epidermal cells devoid of scaffolds and undergoing differentiation. Our study demonstrates how scaffold proteins contribute to cellular signal specificity of hormonal responses in plants.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Brasinoesteroides , División Celular Asimétrica , Glucógeno Sintasa Quinasa 3 , Transducción de Señal , Diferenciación Celular , Arabidopsis/genética , Proteínas Quinasas/genética , Proteínas de Arabidopsis/genética
11.
Semin Cell Dev Biol ; 134: 90-102, 2023 Jan 30.
Artículo en Inglés | MEDLINE | ID: mdl-35317961

RESUMEN

Brown algae are a group of multicellular, heterokont algae that have convergently evolved developmental complexity that rivals that of embryophytes, animals or fungi. Early in development, brown algal zygotes establish a basal and an apical pole, which will become respectively the basal system (holdfast) and the apical system (thallus) of the adult alga. Brown algae are interesting models for understanding the establishment of cell polarity in a broad evolutionary context, because they exhibit a large diversity of life cycles, reproductive strategies and, importantly, their zygotes are produced in large quantities free of parental tissue, with symmetry breaking and asymmetric division taking place in a highly synchronous manner. This review describes the current knowledge about the establishment of the apical-basal axis in the model brown seaweeds Ectocarpus, Dictyota, Fucus and Saccharina, highlighting the advantages and specific interests of each system. Ectocarpus is a genetic model system that allows access to the molecular basis of early development and life-cycle control over apical-basal polarity. The oogamous brown alga Fucus, together with emerging comparative models Dictyota and Saccharina, emphasize the diversity of strategies of symmetry breaking in determining a cell polarity vector in brown algae. A comparison with symmetry-breaking mechanisms in land plants, animals and fungi, reveals that the one-step zygote polarisation of Fucus compares well to Saccharomyces budding and Arabidopsis stomata development, while the two-phased symmetry breaking in the Dictyota zygote compares to Schizosaccharomyces fission, the Caenorhabditis anterior-posterior zygote polarisation and Arabidopsis prolate pollen polarisation. The apical-basal patterning in Saccharina zygotes on the other hand, may be seen as analogous to that of land plants. Overall, brown algae have the potential to bring exciting new information on how a single cell gives rise to an entire complex body plan.


Asunto(s)
Arabidopsis , Phaeophyceae , Animales , Cigoto , Phaeophyceae/genética , Phaeophyceae/metabolismo , Polaridad Celular , División Celular , Plantas
12.
J Biol Chem ; 300(6): 107339, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38705388

RESUMEN

During sporulation, Bacillus subtilis forms an asymmetric septum, dividing the cell into two compartments, a mother cell and a forespore. The site of asymmetric septation is linked to the membrane where FtsZ and SpoIIE initiate the formation of the Z-ring and the E-ring, respectively. These rings then serve as a scaffold for the other cell division and peptidoglycan synthesizing proteins needed to build the septum. However, despite decades of research, not enough is known about how the asymmetric septation site is determined. Here, we identified and characterized the interaction between SpoIIE and RefZ. We show that these two proteins transiently colocalize during the early stages of asymmetric septum formation when RefZ localizes primarily from the mother cell side of the septum. We propose that these proteins and their interplay with the spatial organization of the chromosome play a role in controlling asymmetric septum positioning.


Asunto(s)
Bacillus subtilis , Proteínas Bacterianas , Esporas Bacterianas , Bacillus subtilis/metabolismo , Bacillus subtilis/fisiología , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Esporas Bacterianas/metabolismo , División Celular , Proteínas del Citoesqueleto/metabolismo , Proteínas del Citoesqueleto/genética
13.
Development ; 149(4)2022 02 15.
Artículo en Inglés | MEDLINE | ID: mdl-35112131

RESUMEN

Stem cells enter and exit quiescence as part of normal developmental programs and to maintain tissue homeostasis in adulthood. Although it is clear that stem cell intrinsic and extrinsic cues, local and systemic, regulate quiescence, it remains unclear whether intrinsic and extrinsic cues coordinate to control quiescence and how cue coordination is achieved. Here, we report that Notch signaling coordinates neuroblast intrinsic temporal programs with extrinsic nutrient cues to regulate quiescence in Drosophila. When Notch activity is reduced, quiescence is delayed or altogether bypassed, with some neuroblasts dividing continuously during the embryonic-to-larval transition. During embryogenesis before quiescence, neuroblasts express Notch and the Notch ligand Delta. After division, Delta is partitioned to adjacent GMC daughters where it transactivates Notch in neuroblasts. Over time, in response to intrinsic temporal cues and increasing numbers of Delta-expressing daughters, neuroblast Notch activity increases, leading to cell cycle exit and consequently, attenuation of Notch pathway activity. Quiescent neuroblasts have low to no active Notch, which is required for exit from quiescence in response to nutrient cues. Thus, Notch signaling coordinates proliferation versus quiescence decisions.


Asunto(s)
Proteínas de Drosophila/metabolismo , Receptores Notch/metabolismo , Transducción de Señal , Animales , Ciclo Celular , Drosophila/crecimiento & desarrollo , Drosophila/metabolismo , Proteínas de Drosophila/genética , Embrión no Mamífero/citología , Embrión no Mamífero/metabolismo , Desarrollo Embrionario/genética , Péptidos y Proteínas de Señalización Intracelular/genética , Péptidos y Proteínas de Señalización Intracelular/metabolismo , Células-Madre Neurales/citología , Células-Madre Neurales/metabolismo , Neuronas/citología , Neuronas/metabolismo , Proteínas Nucleares/genética , Proteínas Nucleares/metabolismo , Proteínas Serina-Treonina Quinasas/genética , Proteínas Serina-Treonina Quinasas/metabolismo
14.
EMBO Rep ; 24(4): e55607, 2023 04 05.
Artículo en Inglés | MEDLINE | ID: mdl-36852890

RESUMEN

A functional centrosome is vital for the development and physiology of animals. Among numerous regulatory mechanisms of the centrosome, ubiquitin-mediated proteolysis is known to be critical for the precise regulation of centriole duplication. However, its significance beyond centrosome copy number control remains unclear. Using an in vitro screen for centrosomal substrates of the APC/C ubiquitin ligase in Drosophila, we identify several conserved pericentriolar material (PCM) components, including the inner PCM protein Spd2. We show that Spd2 levels are controlled by the interphase-specific form of APC/C, APC/CFzr , in cultured cells and developing brains. Increased Spd2 levels compromise neural stem cell-specific asymmetric PCM recruitment and microtubule nucleation at interphase centrosomes, resulting in partial randomisation of the division axis and segregation patterns of the daughter centrosome in the following mitosis. We further provide evidence that APC/CFzr -dependent Spd2 degradation restricts the amount and mobility of Spd2 at the daughter centrosome, thereby facilitating the accumulation of Polo-dependent Spd2 phosphorylation for PCM recruitment. Our study underpins the critical role of cell cycle-dependent proteolytic regulation of the PCM in stem cells.


Asunto(s)
Drosophila , Células-Madre Neurales , Animales , Centriolos/metabolismo , Centrosoma/metabolismo , Drosophila/fisiología , Mitosis , Ubiquitinas/metabolismo
15.
EMBO Rep ; 24(7): e56404, 2023 Jul 05.
Artículo en Inglés | MEDLINE | ID: mdl-37255015

RESUMEN

We report that preexisting (old) and newly synthesized (new) histones H3 and H4 are asymmetrically partitioned during the division of Drosophila intestinal stem cells (ISCs). Furthermore, the inheritance patterns of old and new H3 and H4 in postmitotic cell pairs correlate with distinct expression patterns of Delta, an important cell fate gene. To understand the biological significance of this phenomenon, we expressed a mutant H3T3A to compromise asymmetric histone inheritance. Under this condition, we observe an increase in Delta-symmetric cell pairs and overpopulated ISC-like, Delta-positive cells. Single-cell RNA-seq assays further indicate that H3T3A expression compromises ISC differentiation. Together, our results indicate that asymmetric histone inheritance potentially contributes to establishing distinct cell identities in a somatic stem cell lineage, consistent with previous findings in Drosophila male germline stem cells.


Asunto(s)
Proteínas de Drosophila , Drosophila , Animales , Drosophila/metabolismo , Histonas/metabolismo , Intestinos , Diferenciación Celular/genética , Proteínas de Drosophila/genética , Proteínas de Drosophila/metabolismo , División Celular/genética
16.
Bioessays ; 45(4): e2300004, 2023 04.
Artículo en Inglés | MEDLINE | ID: mdl-36825672

RESUMEN

Localized mRNA translation is a biological process that allows mRNA to be translated on-site, which is proposed to provide fine control in protein regulation, both spatially and temporally within a cell. We recently reported that Vasa, an RNA-helicase, is a promising factor that appears to regulate this process on the spindle during the embryonic development of the sea urchin, yet the detailed roles and functional mechanisms of Vasa in this process are still largely unknown. In this review article, to elucidate these remaining questions, we first summarize the prior knowledge and our recent findings in the area of Vasa research and further discuss how Vasa may function in localized mRNA translation, contributing to efficient protein regulation during rapid embryogenesis and cancer cell regulation.


Asunto(s)
Desarrollo Embrionario , Biosíntesis de Proteínas , ARN Mensajero/genética , ARN Mensajero/metabolismo , Desarrollo Embrionario/genética , Regulación del Desarrollo de la Expresión Génica
17.
Semin Cell Dev Biol ; 127: 100-109, 2022 07.
Artículo en Inglés | MEDLINE | ID: mdl-34955355

RESUMEN

Cytokinesis is a mechanism that separates dividing cells via constriction of a supramolecular structure, the contractile ring. In animal cells, three modes of symmetry-breaking of cytokinesis result in unilateral cytokinesis, asymmetric cell division, and oriented cell division. Each mode of cytokinesis plays a significant role in tissue patterning and morphogenesis by the mechanisms that control the orientation and position of the contractile ring relative to the body axis. Despite its significance, the mechanisms involved in the symmetry-breaking of cytokinesis remain unclear in many cell types. Classical embryologists have identified that the geometric relationship between the mitotic spindle and cell cortex induces cytokinesis asymmetry; however, emerging evidence suggests that a concerted flow of compressional cell-cortex materials (cortical flow) is a spindle-independent driving force in spatial cytokinesis control. This review provides an overview of both classical and emerging mechanisms of cytokinesis asymmetry and their roles in animal development.


Asunto(s)
Citocinesis , Huso Acromático , Citoesqueleto de Actina , Animales , División Celular , Huso Acromático/metabolismo
18.
Eur J Immunol ; 53(12): e2250225, 2023 12.
Artículo en Inglés | MEDLINE | ID: mdl-36788705

RESUMEN

Establishment of cellular diversity is a basic requirement for the development of multicellular organisms. Cellular diversification can be induced by asymmetric cell division (ACD), during which the emerging two daughter cells unequally inherit lineage specific cargo (including transcription factors, receptors for specific signaling inputs, metabolic platforms, and possibly different epigenetic landscapes), resulting in two daughter cells endowed with different fates. While ACD is strongly involved in lineage choices in mammalian stem cells, its role in fate diversification in lineage committed cell subsets that still exhibit plastic potential, such as T-cells, is currently investigated. In this review, we focus predominantly on the role of ACD in fate diversification of CD8 T-cells. Further, we discuss the impact of differential T-cell receptor stimulation strengths and differentiation history on ACD-mediated fate diversification and highlight a particular importance of ACD in the development of memory CD8 T-cells upon high-affinity stimulation conditions.


Asunto(s)
División Celular Asimétrica , Linfocitos T CD8-positivos , Animales , Linfocitos T CD8-positivos/metabolismo , Diferenciación Celular , Transducción de Señal , Comunicación Celular , Mamíferos
19.
Development ; 148(1)2021 01 10.
Artículo en Inglés | MEDLINE | ID: mdl-33298463

RESUMEN

Drosophila sensory organ precursors divide asymmetrically to generate pIIa/pIIb cells, the identity of which relies on activation of Notch at cytokinesis. Although Notch is present apically and basally relative to the midbody at the pIIa-pIIb interface, the basal pool of Notch is reported to be the main contributor for Notch activation in the pIIa cell. Intra-lineage signalling requires appropriate apico-basal targeting of Notch, its ligand Delta and its trafficking partner Sanpodo. We have previously reported that AP-1 and Stratum regulate the trafficking of Notch and Sanpodo from the trans-Golgi network to the basolateral membrane. Loss of AP-1 or Stratum caused mild Notch gain-of-function phenotypes. Here, we report that their concomitant loss results in a penetrant Notch gain-of-function phenotype, indicating that they control parallel pathways. Although unequal partitioning of cell fate determinants and cell polarity were unaffected, we observed increased amounts of signalling-competent Notch as well as Delta and Sanpodo at the apical pIIa-pIIb interface, at the expense of the basal pool of Notch. We propose that AP-1 and Stratum operate in parallel pathways to localize Notch and control where receptor activation takes place.


Asunto(s)
Complejo 1 de Proteína Adaptadora/metabolismo , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/citología , Drosophila melanogaster/metabolismo , Factores de Intercambio de Guanina Nucleótido/metabolismo , Receptores Notch/metabolismo , Órganos de los Sentidos/metabolismo , Células Madre/metabolismo , Animales , Linaje de la Célula , Núcleo Celular/metabolismo , Polaridad Celular , Mutación con Ganancia de Función , Penetrancia , Fenotipo
20.
Development ; 148(18)2021 09 15.
Artículo en Inglés | MEDLINE | ID: mdl-34463761

RESUMEN

In many land plants, asymmetric cell divisions (ACDs) create and pattern differentiated cell types on the leaf surface. In the Arabidopsis stomatal lineage, BREAKING OF ASYMMETRY IN THE STOMATAL LINEAGE (BASL) regulates division plane placement and cell fate enforcement. Polarized subcellular localization of BASL is initiated before ACD and persists for many hours after the division in one of the two daughters. Untangling the respective contributions of polarized BASL before and after division is essential to gain a better understanding of its roles in regulating stomatal lineage ACDs. Here, we combine quantitative imaging and lineage tracking with genetic tools that provide temporally restricted BASL expression. We find that pre-division BASL is required for division orientation, whereas BASL polarity post-division ensures proper cell fate commitment. These genetic manipulations allowed us to uncouple daughter-cell size asymmetry from polarity crescent inheritance, revealing independent effects of these two asymmetries on subsequent cell behavior. Finally, we show that there is coordination between the division frequencies of sister cells produced by ACDs, and this coupling requires BASL as an effector of peptide signaling.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Arabidopsis/metabolismo , Arabidopsis/fisiología , División Celular Asimétrica/fisiología , Proteínas de Ciclo Celular/metabolismo , Polaridad Celular/fisiología , Estomas de Plantas/metabolismo , Estomas de Plantas/fisiología , Diferenciación Celular/fisiología , Linaje de la Célula/fisiología , Tamaño de la Célula , Transducción de Señal/fisiología
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