Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 6 de 6
Filter
Add more filters










Database
Language
Publication year range
1.
Dev Biol ; 466(1-2): 1-11, 2020 10 01.
Article in English | MEDLINE | ID: mdl-32800756

ABSTRACT

The distal nephron and collecting duct segments of the mammalian kidney consist of intercalated cell types intermingled among principal cell types. Notch signaling ensures that a sufficient number of cells select a principal instead of an intercalated cell fate. However, the precise mechanisms by which Notch signaling patterns the distal nephron and collecting duct cell fates is unknown. Here we observed that Hes1, a direct target of Notch signaling pathway, is required within the mouse developing collecting ducts for repression of Foxi1 expression, an essential intercalated cell specific transcription factor. Interestingly, inactivation of Foxi1 in Hes1-deficient collecting ducts rescues the deficiency in principal cell fate selection, overall urine concentrating deficiency, and reduces the occurrence of hydronephrosis. However, Foxi1 inactivation does not rescue the reduction in expression of all principal cell genes in the Hes1-deficient kidney collecting duct cells that select the principal cell fate. Additionally, suppression of Notch/Hes1 signaling in mature principal cells reduces principal cell gene expression without activating Foxi1. We conclude that Hes1 is a Notch signaling target that is essential for normal patterning of the collecting ducts with intermingled cell types by repressing Foxi1, and for maintenance of principal cell gene expression independent of repressing Foxi1.


Subject(s)
Forkhead Transcription Factors/metabolism , Gene Expression Regulation, Developmental , Kidney/embryology , Receptors, Notch/metabolism , Signal Transduction , Transcription Factor HES-1/deficiency , Animals , Forkhead Transcription Factors/genetics , Mice , Mice, Mutant Strains , Receptors, Notch/genetics , Transcription Factor HES-1/metabolism
2.
Stem Cells ; 38(6): 756-768, 2020 06.
Article in English | MEDLINE | ID: mdl-32129527

ABSTRACT

The transcriptional repressor Hairy Enhancer of Split 1 (HES1) plays an essential role in the development of many organs by promoting the maintenance of stem/progenitor cells, controlling the reversibility of cellular quiescence, and regulating both cell fate decisions. Deletion of Hes1 in mice results in severe defects in multiple organs and is lethal in late embryogenesis. Here we have investigated the role of HES1 in hematopoiesis using a hematopoietic lineage-specific Hes1 knockout mouse model. We found that while Hes1 is dispensable for steady-state hematopoiesis, Hes1-deficient hematopoietic stem cells (HSCs) undergo exhaustion under replicative stress. Loss of Hes1 upregulates the expression of genes involved in PPARγ signaling and fatty acid metabolism pathways, and augments fatty acid oxidation (FAO) in Hes1 f/f Vav1Cre HSCs and progenitors. Functionally, PPARγ targeting or FAO inhibition ameliorates the repopulating defects of Hes1 f/f Vav1Cre HSCs through improving quiescence in HSCs. Lastly, transcriptome analysis reveals that disruption of Hes1 in hematopoietic lineage alters expression of genes critical to HSC function, PPARγ signaling, and fatty acid metabolism. Together, our findings identify a novel role of HES1 in regulating stress hematopoiesis and provide mechanistic insight into the function of HES1 in HSC maintenance.


Subject(s)
Hematopoietic Stem Cells/metabolism , Transcription Factor HES-1/deficiency , Animals , Cell Differentiation , Mice
3.
J Neurosci ; 40(7): 1501-1513, 2020 02 12.
Article in English | MEDLINE | ID: mdl-31949107

ABSTRACT

The bHLH transcription factor Hes1 is a key downstream effector for the Notch signaling pathway. During embryogenesis neural progenitors express low levels of Hes1 in an oscillating pattern, whereas glial brain boundary regions (e.g., isthmus) have high, sustained Hes1 levels that suppress neuronal fates. Here, we show that in the embryonic mouse retina, the optic nerve head and stalk express high Hes1, with the ONH constituting a boundary between the neural retina and glial cells that ultimately line the optic stalk. Using two Cre drivers with distinct spatiotemporal expression we conditionally inactivated Hes1, to delineate the requirements for this transcriptional repressor during retinal neurogenesis versus patterning of the optic cup and stalk. Throughout retinal neurogenesis, Hes1 maintains proliferation and blocks retinal ganglion cell formation, but surprisingly we found it also promotes cone photoreceptor genesis. In the postnatal eye, Hes1 inactivation with Rax-Cre resulted in increased bipolar neurons and a mispositioning of Müller glia. Our results indicate that Notch pathway regulation of cone genesis is more complex than previously assumed, and reveal a novel role for Hes1 in maintaining the optic cup-stalk boundary.SIGNIFICANCE STATEMENT The bHLH repressor Hes1 regulates the timing of neurogenesis, rate of progenitor cell division, gliogenesis, and maintains tissue compartment boundaries. This study expands current eye development models by showing Notch-independent roles for Hes1 in the developing optic nerve head (ONH). Defects in ONH formation result in optic nerve coloboma; our work now inserts Hes1 into the genetic hierarchy regulating optic fissure closure. Given that Hes1 acts analogously in the ONH as the brain isthmus, it prompts future investigation of the ONH as a signaling factor center, or local organizer. Embryonic development of the ONH region has been poorly studied, which is surprising given it is where the pan-ocular disease glaucoma is widely believed to inflict damage on RGC axons.


Subject(s)
Eye/embryology , Neurogenesis/physiology , Transcription Factor HES-1/physiology , Animals , Coloboma/genetics , Coloboma/pathology , Ependymoglial Cells/cytology , Eye/growth & development , Gastrulation , Genetic Association Studies , Mice , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Microphthalmos/genetics , Microphthalmos/pathology , Optic Disk/embryology , Optic Disk/pathology , Receptors, Notch/physiology , Retina/abnormalities , Retina/embryology , Retinal Bipolar Cells/cytology , Retinal Cone Photoreceptor Cells/metabolism , Retinal Ganglion Cells/cytology , Signal Transduction , Transcription Factor HES-1/deficiency , Transcription Factor HES-1/genetics
4.
Neurosci Bull ; 36(2): 134-142, 2020 Feb.
Article in English | MEDLINE | ID: mdl-31309426

ABSTRACT

Apoptosis induced by endoplasmic reticulum (ER) stress plays a crucial role in mediating brain damage after ischemic stroke. Recently, Hes1 (hairy and enhancer of split 1) has been implicated in the regulation of ER stress, but whether it plays a functional role after ischemic stroke and the underlying mechanism remain unclear. In this study, using a mouse model of ischemic stroke via transient middle cerebral artery occlusion (tMCAO), we found that Hes1 was induced following brain injury, and that siRNA-mediated knockdown of Hes1 increased the cerebral infarction and worsened the neurological outcome, suggesting that Hes1 knockdown exacerbates ischemic stroke. In addition, mechanistically, Hes1 knockdown promoted apoptosis and activated the PERK/eIF2α/ATF4/CHOP signaling pathway after tMCAO. These results suggest that Hes1 knockdown promotes ER stress-induced apoptosis. Furthermore, inhibition of PERK with the specific inhibitor GSK2606414 markedly attenuated the Hes1 knockdown-induced apoptosis and the increased cerebral infarction as well as the worsened neurological outcome following tMCAO, implying that the protection of Hes1 against ischemic stroke is associated with the amelioration of ER stress via modulating the PERK/eIF2α/ATF4/CHOP signaling pathway. Taken together, these results unveil the detrimental role of Hes1 knockdown after ischemic stroke and further relate it to the regulation of ER stress-induced apoptosis, thus highlighting the importance of targeting ER stress in the treatment of ischemic stroke.


Subject(s)
Endoplasmic Reticulum Stress/genetics , Infarction, Middle Cerebral Artery , Stroke/genetics , Stroke/metabolism , Transcription Factor HES-1/deficiency , Activating Transcription Factor 4/metabolism , Adenine/analogs & derivatives , Adenine/pharmacology , Animals , Apoptosis/genetics , Brain/pathology , Eukaryotic Initiation Factor-2/metabolism , Indoles/pharmacology , Male , Mice , Mice, Inbred C57BL , Signal Transduction , Stroke/pathology , Transcription Factor CHOP/metabolism , eIF-2 Kinase/metabolism
5.
J Exp Med ; 216(6): 1396-1410, 2019 06 03.
Article in English | MEDLINE | ID: mdl-31015298

ABSTRACT

Induction of type I interferons (IFNs) is critical for eliciting competent immune responses, especially antiviral immunity. However, uncontrolled IFN production contributes to pathogenesis of autoimmune and inflammatory diseases. We found that transcription factor Hes1 suppressed production of type I IFNs and expression of IFN-stimulated genes. Functionally, Hes1-deficient mice displayed a heightened IFN signature in vivo, mounted enhanced resistance against encephalomyocarditis virus infection, and showed signs of exacerbated experimental lupus nephritis. Mechanistically, Hes1 did not suppress IFNs via direct transcriptional repression of IFN-encoding genes. Instead, Hes1 attenuated activation of TLR upstream signaling by inhibition of an adaptor molecule, WDFY1. Genome-wide assessment of Hes1 occupancy revealed that suppression of WDFY1 was secondary to direct binding and thus enhancement of expression of VEGF-C by Hes1, making Vegfc a rare example of an Hes1 positively regulated gene. In summary, these results identified Hes1 as a homeostatic negative regulator of type I IFNs for the maintenance of immune balance in the context of antiviral immunity and autoimmune diseases.


Subject(s)
Adaptor Proteins, Signal Transducing/metabolism , Interferon Type I/metabolism , Transcription Factor HES-1/metabolism , Vascular Endothelial Growth Factor C/metabolism , Adaptor Proteins, Signal Transducing/genetics , Animals , Immunity , Lupus Nephritis/immunology , Lupus Nephritis/pathology , Macrophages/metabolism , Mice, Inbred C57BL , Signal Transduction , Swine , Toll-Like Receptor 3/metabolism , Transcription Factor HES-1/deficiency , Transcription, Genetic , Vascular Endothelial Growth Factor C/genetics
6.
Nature ; 544(7649): 245-249, 2017 04 13.
Article in English | MEDLINE | ID: mdl-28379941

ABSTRACT

Normal differentiation and induced reprogramming require the activation of target cell programs and silencing of donor cell programs. In reprogramming, the same factors are often used to reprogram many different donor cell types. As most developmental repressors, such as RE1-silencing transcription factor (REST) and Groucho (also known as TLE), are considered lineage-specific repressors, it remains unclear how identical combinations of transcription factors can silence so many different donor programs. Distinct lineage repressors would have to be induced in different donor cell types. Here, by studying the reprogramming of mouse fibroblasts to neurons, we found that the pan neuron-specific transcription factor Myt1-like (Myt1l) exerts its pro-neuronal function by direct repression of many different somatic lineage programs except the neuronal program. The repressive function of Myt1l is mediated via recruitment of a complex containing Sin3b by binding to a previously uncharacterized N-terminal domain. In agreement with its repressive function, the genomic binding sites of Myt1l are similar in neurons and fibroblasts and are preferentially in an open chromatin configuration. The Notch signalling pathway is repressed by Myt1l through silencing of several members, including Hes1. Acute knockdown of Myt1l in the developing mouse brain mimicked a Notch gain-of-function phenotype, suggesting that Myt1l allows newborn neurons to escape Notch activation during normal development. Depletion of Myt1l in primary postmitotic neurons de-repressed non-neuronal programs and impaired neuronal gene expression and function, indicating that many somatic lineage programs are actively and persistently repressed by Myt1l to maintain neuronal identity. It is now tempting to speculate that similar 'many-but-one' lineage repressors exist for other cell fates; such repressors, in combination with lineage-specific activators, would be prime candidates for use in reprogramming additional cell types.


Subject(s)
Cell Lineage/genetics , Cellular Reprogramming/genetics , Gene Silencing , Nerve Tissue Proteins/metabolism , Neurogenesis/genetics , Neurons/cytology , Neurons/metabolism , Repressor Proteins/metabolism , Transcription Factors/metabolism , Animals , Animals, Newborn , Brain/cytology , Brain/embryology , Brain/metabolism , Cells, Cultured , Chromatin/genetics , Chromatin/metabolism , Fibroblasts/cytology , Fibroblasts/metabolism , Humans , Mice , Nerve Tissue Proteins/deficiency , Organ Specificity/genetics , Protein Domains , Receptors, Notch/deficiency , Repressor Proteins/chemistry , Repressor Proteins/deficiency , Signal Transduction , Transcription Factor HES-1/deficiency , Transcription Factors/deficiency
SELECTION OF CITATIONS
SEARCH DETAIL
...