scholarly journals Context-dependent transcriptional regulations of YAP/TAZ in stem cell and differentiation

2022 ◽  
Vol 13 (1) ◽  
Author(s):  
Juan Luo ◽  
Peng Li

AbstractHippo pathway is initially identified as a master regulator for cell proliferation and organ size control, and the subsequent researches show this pathway is also involved in development, tissue regeneration and homeostasis, inflammation, immunity and cancer. YAP/TAZ, the downstream effectors of Hippo pathway, usually act as coactivators and are dependent on other transcription factors to mediate their transcriptional outputs. In this review, we will first provide an overview on the core components and regulations of Hippo pathway in mammals, and then systematically summarize the identified transcriptional factors or partners that are responsible for the transcriptional output of YAP/TAZ in stem cell and differentiation. More than that, we will discuss the potential applications and future directions based on these findings.

2018 ◽  
Vol 10 (422) ◽  
pp. eaar7508
Author(s):  
Christopher Hine

Repeated activation of target of rapamycin (TOR) signaling during tissue regeneration results in impaired stem cell maintenance and promotes aging.


2020 ◽  
Author(s):  
Sherzod A. Tokamov ◽  
Ting Su ◽  
Anne Ullyot ◽  
Richard G. Fehon

AbstractThe Hippo signaling pathway regulates tissue growth in many animals. Multiple upstream components are known to promote Hippo pathway activity, but the organization of these different inputs, the degree of crosstalk between them, and whether they are regulated in a distinct manner is not well understood. Kibra activates the Hippo pathway by recruiting the core Hippo kinase cassette to the apical cortex. Here we show that the Hippo pathway downregulates Kibra levels independently of Yorkie-mediated transcriptional output. We find that the Hippo pathway promotes Kibra degradation via SCFSlimb-mediated ubiquitination, that this effect requires the core kinases Hippo and Warts, and that this mechanism functions independently of other upstream Hippo pathway activators including Crumbs and Expanded. Moreover, Kibra degradation appears patterned across tissue. We propose that Kibra degradation by the Hippo pathway serves as a negative feedback loop to tightly control Kibra-mediated Hippo pathway activation and ensure optimally scaled and patterned tissue growth.


2019 ◽  
Vol 88 (1) ◽  
pp. 577-604 ◽  
Author(s):  
Shenghong Ma ◽  
Zhipeng Meng ◽  
Rui Chen ◽  
Kun-Liang Guan

The Hippo pathway was initially discovered in Drosophila melanogaster as a key regulator of tissue growth. It is an evolutionarily conserved signaling cascade regulating numerous biological processes, including cell growth and fate decision, organ size control, and regeneration. The core of the Hippo pathway in mammals consists of a kinase cascade, MST1/2 and LATS1/2, as well as downstream effectors, transcriptional coactivators YAP and TAZ. These core components of the Hippo pathway control transcriptional programs involved in cell proliferation, survival, mobility, stemness, and differentiation. The Hippo pathway is tightly regulated by both intrinsic and extrinsic signals, such as mechanical force, cell–cell contact, polarity, energy status, stress, and many diffusible hormonal factors, the majority of which act through G protein–coupled receptors. Here, we review the current understanding of molecular mechanisms by which signals regulate the Hippo pathway with an emphasis on mechanotransduction and the effects of this pathway on basic biology and human diseases.


2020 ◽  
pp. jbc.RA120.013297
Author(s):  
Jina Park ◽  
Kyoungho Jun ◽  
Yujin Choi ◽  
Eunju Yoon ◽  
Wonho Kim ◽  
...  

The Hippo pathway controls organ size and tissue homeostasis through the regulation of cell proliferation and apoptosis. However, the exact molecular mechanisms underpinning Hippo pathway regulation is not fully understood. Here, we identify a new component of the Hippo pathway: CORO7, a coronin protein family member that is involved in organization of the actin cytoskeleton. pod1, the Drosophila orthologue of CORO7, genetically interacts with key Hippo pathway genes in Drosophila. In mammalian cells, CORO7 is required for the activation of the Hippo pathway in response to cell-cell contact, serum deprivation, and cytoskeleton damage. CORO7 forms a complex with the core components of the pathway and functions as a scaffold for the Hippo core kinase complex. Collectively, these results demonstrate that CORO7 is a key scaffold controlling the Hippo pathway via modulating protein-protein interactions.


2017 ◽  
Vol 216 (10) ◽  
pp. 3073-3085 ◽  
Author(s):  
Antonis Kourtidis ◽  
Brian Necela ◽  
Wan-Hsin Lin ◽  
Ruifeng Lu ◽  
Ryan W. Feathers ◽  
...  

Cumulative evidence demonstrates that most RNAs exhibit specific subcellular distribution. However, the mechanisms regulating this phenomenon and its functional consequences are still under investigation. Here, we reveal that cadherin complexes at the apical zonula adherens (ZA) of epithelial adherens junctions recruit the core components of the RNA-induced silencing complex (RISC) Ago2, GW182, and PABPC1, as well as a set of 522 messenger RNAs (mRNAs) and 28 mature microRNAs (miRNAs or miRs), via PLEKHA7. Top canonical pathways represented by these mRNAs include Wnt/β-catenin, TGF-β, and stem cell signaling. We specifically demonstrate the presence and silencing of MYC, JUN, and SOX2 mRNAs by miR-24 and miR-200c at the ZA. PLEKHA7 knockdown dissociates RISC from the ZA, decreases loading of the ZA-associated mRNAs and miRNAs to Ago2, and results in a corresponding increase of MYC, JUN, and SOX2 protein expression. The present work reveals a mechanism that directly links junction integrity to the silencing of a set of mRNAs that critically affect epithelial homeostasis.


Author(s):  
Eduardo Salas ◽  
Denise L. Reyes ◽  
Amanda L. Woods

Taking into account the increasing level of importance that organizations place on teamwork, understanding the core components of team training programs is more critical than ever. The present chapter begins by introducing the key concepts and operational definitions surrounding team training. Next, team training elements are organized in terms of where they occur over the course of training, beginning with what matters before (e.g., training needs analysis), then during (e.g., design and delivery elements), and finally after (e.g., sustainment) training takes place. This organizational structure is referred to as the lifespan of team training. Examples of preexisting science-based team training programs that have been regarded as highly effective are provided to paint a clearer picture of what these programs look like in terms of design and delivery. Lessons learned from previous training efforts and future directions are also discussed.


Blood ◽  
2011 ◽  
Vol 118 (21) ◽  
pp. 2474-2474
Author(s):  
Eva Schmidt ◽  
Jana Krosl ◽  
Jalila Chagraoui ◽  
Nadine Mayotte ◽  
Caroline Pabst ◽  
...  

Abstract Abstract 2474 Aberrant expression of Hox genes and their cofactors Pbx and Meis1 has been detected in approximately 50% of all human leukemias, and proteins interacting with these homeodomain factors could play a major role in leukemia development. Studies in drosophila showed that hth/MEIS directly interacts with YKI, a component of the Hippo signaling pathway (Peng HW et al., 2009). The core components of this pathway in the mammalian cells are the kinases MST 1 or 2 and LATS 1 or 2, and the downstream transcription cofactors WWTR1 and YAP (homologues of the drosophila Yki). The Hippo pathway has been proposed to play a tumor suppressive role in carcinoma development (Lu L et al. 2010), but little is known about its function in hematopoiesis and leukemia. To address this issue, we first determined the expression levels of the core Hippo pathway constituents in different subpopulations of primitive hematopoietic cells by quantitative RT-PCR. Hematopoietic stem cells (HSC) isolated from day 14.5 fetal liver (FL-HSC, phenotype: CD150+CD48-Lin-), or bone marrow from 3 and 4 week old mice (BM-HSC, phenotype: cKit+CD150+CD48-Lin-) express comparable levels of Lats 1/2 and Mst 1/2. FL-HSC, however, express approximately 3 fold higher levels of Wwtr1 and Yap than the BM-HSC. Expression of all core components of the Hippo pathway was also detected in the Hoxa9+Meis1-induced leukemia named FLA2 in which approximately 70% of cells represent leukemia stem cells (LSC). The role of this pathway in leukemia was assessed using the shRNA-mediated loss of function approach. For each core component, 5 different shRNAs were designed, and 2 achieving ≥40% decrease in the targeted transcript levels were selected for the in vivo experiments. Freshly isolated FLA2 leukemia cells were infected with recombinant retroviruses carrying the control shLuciferase or the targeting shRNA, and green fluorescent protein (GFP), and were transplanted into sub-lethally irradiated recipient mice. The proportions of shRNA transduced (GFP+) cells were determined at the time of transplantation (day 0), and at the time of sacrifice (day 18 ± 2). During this period, the proportions of shWwtr1(GFP+) cells to the leukemic cell populations decreased to 10–20% of the initial day 0 values. Conversely, the Lats1 knockdown leads to > 50% increase over the initial proportion of the GFP+ cells. The combined Lats1+Lats2 knockdown enhanced the competitiveness of the transduced cells compared shLuciferase controls. These significant results (p < 0.05, Mann-Whitney-Test) suggest that LATS kinases act as negative regulators of leukemic cell expansion. To exclude the possibility that this effect is limited to FLA2 leukemia we isolated the CD150+CD48-Lin- stem/progenitor cells from FL, co-infected them first with Hoxa9 and Meis1 cDNA carrying retroviruses, and then knocked down Wwtr1 or Lats1. Similar to observations in FLA2 leukemia model, Lats 1 depletion promoted ∼2-fold increase, and Wwtr 1 reduction >80% decrease in proportions of the transduced (GFP+) cells compared to their initial day 0 levels. Together, our observations suggest that LATS kinases act as negative modulators of Hox/Meis-induced leukemia and indicate a possibility for a specific targeting of the Hox/Meis-activated cellular pathways. Disclosures: No relevant conflicts of interest to declare.


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