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1.
J Neurosci ; 40(18): 3549-3563, 2020 04 29.
Artigo em Inglês | MEDLINE | ID: mdl-32273485

RESUMO

The tuberal hypothalamus is comprised of the dorsomedial, ventromedial, and arcuate nuclei, as well as parts of the lateral hypothalamic area, and it governs a wide range of physiologies. During neurogenesis, tuberal hypothalamic neurons are thought to be born in a dorsal-to-ventral and outside-in pattern, although the accuracy of this description has been questioned over the years. Moreover, the intrinsic factors that control the timing of neurogenesis in this region are poorly characterized. Proneural genes, including Achate-scute-like 1 (Ascl1) and Neurogenin 3 (Neurog3) are widely expressed in hypothalamic progenitors and contribute to lineage commitment and subtype-specific neuronal identifies, but the potential role of Neurogenin 2 (Neurog2) remains unexplored. Birthdating in male and female mice showed that tuberal hypothalamic neurogenesis begins as early as E9.5 in the lateral hypothalamic and arcuate and rapidly expands to dorsomedial and ventromedial neurons by E10.5, peaking throughout the region by E11.5. We confirmed an outside-in trend, except for neurons born at E9.5, and uncovered a rostrocaudal progression but did not confirm a dorsal-ventral patterning to tuberal hypothalamic neuronal birth. In the absence of Neurog2, neurogenesis stalls, with a significant reduction in early-born BrdU+ cells but no change at later time points. Further, the loss of Ascl1 yielded a similar delay in neuronal birth, suggesting that Ascl1 cannot rescue the loss of Neurog2 and that these proneural genes act independently in the tuberal hypothalamus. Together, our findings show that Neurog2 functions as a classical proneural gene to regulate the temporal progression of tuberal hypothalamic neurogenesis.SIGNIFICANCE STATEMENT Here, we investigated the general timing and pattern of neurogenesis within the tuberal hypothalamus. Our results confirmed an outside-in trend of neurogenesis and uncovered a rostrocaudal progression. We also showed that Neurog2 acts as a classical proneural gene and is responsible for regulating the birth of early-born neurons within the ventromedial hypothalamus, acting independently of Ascl1 In addition, we revealed a role for Neurog2 in cell fate specification and differentiation of ventromedial -specific neurons. Last, Neurog2 does not have cross-inhibitory effects on Neurog1, Neurog3, and Ascl1 These findings are the first to reveal a role for Neurog2 in hypothalamic development.


Assuntos
Fatores de Transcrição Hélice-Alça-Hélice Básicos/biossíntese , Hipotálamo Médio/citologia , Hipotálamo Médio/metabolismo , Proteínas do Tecido Nervoso/biossíntese , Neurogênese/fisiologia , Neurônios/metabolismo , Animais , Fatores de Transcrição Hélice-Alça-Hélice Básicos/genética , Feminino , Hipotálamo Médio/embriologia , Camundongos , Camundongos Transgênicos , Proteínas do Tecido Nervoso/genética , Gravidez
2.
Development ; 145(19)2018 10 01.
Artigo em Inglês | MEDLINE | ID: mdl-30201687

RESUMO

Neural progenitors undergo temporal identity transitions to sequentially generate the neuronal and glial cells that make up the mature brain. Proneural genes have well-characterised roles in promoting neural cell differentiation and subtype specification, but they also regulate the timing of identity transitions through poorly understood mechanisms. Here, we investigated how the highly related proneural genes Neurog1 and Neurog2 interact to control the timing of neocortical neurogenesis. We found that Neurog1 acts in an atypical fashion as it is required to suppress rather than promote neuronal differentiation in early corticogenesis. In Neurog1-/- neocortices, early born neurons differentiate in excess, whereas, in vitro, Neurog1-/- progenitors have a decreased propensity to proliferate and form neurospheres. Instead, Neurog1-/- progenitors preferentially generate neurons, a phenotype restricted to the Neurog2+ progenitor pool. Mechanistically, Neurog1 and Neurog2 heterodimerise, and while Neurog1 and Neurog2 individually promote neurogenesis, misexpression together blocks this effect. Finally, Neurog1 is also required to induce the expression of neurogenic factors (Dll1 and Hes5) and to repress the expression of neuronal differentiation genes (Fezf2 and Neurod6). Neurog1 thus employs different mechanisms to temper the pace of early neocortical neurogenesis.


Assuntos
Fatores de Transcrição Hélice-Alça-Hélice Básicos/metabolismo , Neocórtex/embriologia , Neocórtex/metabolismo , Proteínas do Tecido Nervoso/metabolismo , Neurogênese , Neurônios/metabolismo , Animais , Fatores de Transcrição Hélice-Alça-Hélice Básicos/genética , Diferenciação Celular/genética , Proliferação de Células/genética , Autorrenovação Celular/genética , Embrião de Mamíferos/citologia , Regulação da Expressão Gênica no Desenvolvimento , Camundongos Transgênicos , Proteínas do Tecido Nervoso/genética , Células-Tronco Neurais/citologia , Células-Tronco Neurais/metabolismo , Neurogênese/genética , Neuroglia/citologia , Neuroglia/metabolismo , Neurônios/citologia , Ligação Proteica , Fatores de Tempo , Transcrição Gênica
3.
Mol Cell ; 46(4): 495-506, 2012 May 25.
Artigo em Inglês | MEDLINE | ID: mdl-22503102

RESUMO

The double-stranded RNA binding protein Staufen1 (Stau1) is involved in diverse gene expression pathways. For Stau1-mediated mRNA decay (SMD) in mammals, Stau1 binds to the 3' untranslated region of target mRNA and recruits Upf1 to elicit rapid mRNA degradation. However, the events downstream of Upf1 recruitment and the biological importance of SMD remain unclear. Here we show that SMD involves PNRC2, decapping activity, and 5'-to-3' exonucleolytic activity. In particular, Upf1 serves as an adaptor protein for the association of PNRC2 and Stau1. During adipogenesis, Stau1 and PNRC2 increase in abundance, Upf1 becomes hyperphosphorylated, and consequently SMD efficiency is enhanced. Intriguingly, downregulation of SMD components attenuates adipogenesis in a way that is rescued by downregulation of an antiadipogenic factor, Krüppel-like factor 2 (KLF2), the mRNA of which is identified as a substrate of SMD. Our data thus identify a biological role for SMD in adipogenesis.


Assuntos
Adipogenia/genética , Adipogenia/fisiologia , Proteínas do Citoesqueleto/metabolismo , Estabilidade de RNA/genética , Estabilidade de RNA/fisiologia , Proteínas de Ligação a RNA/metabolismo , Regiões 3' não Traduzidas , Células 3T3-L1 , Animais , Sítios de Ligação/genética , Células COS , Chlorocebus aethiops , Regulação para Baixo , Células HEK293 , Células HeLa , Humanos , Fatores de Transcrição Kruppel-Like/genética , Fatores de Transcrição Kruppel-Like/metabolismo , Camundongos , Modelos Biológicos , RNA Helicases , RNA Interferente Pequeno/genética , Receptores Citoplasmáticos e Nucleares/metabolismo , Transativadores/metabolismo
4.
Proc Natl Acad Sci U S A ; 114(25): E4934-E4943, 2017 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-28584103

RESUMO

A derepression mode of cell-fate specification involving the transcriptional repressors Tbr1, Fezf2, Satb2, and Ctip2 operates in neocortical projection neurons to specify six layer identities in sequence. Less well understood is how laminar fate transitions are regulated in cortical progenitors. The proneural genes Neurog2 and Ascl1 cooperate in progenitors to control the temporal switch from neurogenesis to gliogenesis. Here we asked whether these proneural genes also regulate laminar fate transitions. Several defects were observed in the derepression circuit in Neurog2-/-;Ascl1-/- mutants: an inability to repress expression of Tbr1 (a deep layer VI marker) during upper-layer neurogenesis, a loss of Fezf2+/Ctip2+ layer V neurons, and precocious differentiation of normally late-born, Satb2+ layer II-IV neurons. Conversely, in stable gain-of-function transgenics, Neurog2 promoted differentiative divisions and extended the period of Tbr1+/Ctip2+ deep-layer neurogenesis while reducing Satb2+ upper-layer neurogenesis. Similarly, acute misexpression of Neurog2 in early cortical progenitors promoted Tbr1 expression, whereas both Neurog2 and Ascl1 induced Ctip2. However, Neurog2 was unable to influence the derepression circuit when misexpressed in late cortical progenitors, and Ascl1 repressed only Satb2. Nevertheless, neurons derived from late misexpression of Neurog2 and, to a lesser extent, Ascl1, extended aberrant subcortical axon projections characteristic of early-born neurons. Finally, Neurog2 and Ascl1 altered the expression of Ikaros and Foxg1, known temporal regulators. Proneural genes thus act in a context-dependent fashion as early determinants, promoting deep-layer neurogenesis in early cortical progenitors via input into the derepression circuit while also influencing other temporal regulators.


Assuntos
Fatores de Transcrição Hélice-Alça-Hélice Básicos/metabolismo , Neocórtex/metabolismo , Proteínas do Tecido Nervoso/metabolismo , Animais , Axônios/metabolismo , Diferenciação Celular/fisiologia , Feminino , Masculino , Camundongos , Neurogênese/fisiologia , Neurônios/metabolismo , Proteínas Repressoras/metabolismo
5.
Nucleic Acids Res ; 41(2): 1319-28, 2013 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-23234702

RESUMO

In mammals, nonsense-mediated mRNA decay (NMD) functions in post-transcriptional gene regulation as well as mRNA surveillance. A key NMD factor, Upf1, becomes hyperphosphorylated by SMG1 kinase during the recognition of NMD substrates. Hyperphosphorylated Upf1 interacts with several factors including SMG5, SMG6, SMG7 and PNRC2 to trigger rapid mRNA degradation. However, the possible cross-talk among these factors and their selective use during NMD remain unknown. Here, we show that PNRC2 is preferentially complexed with SMG5, but not with SMG6 or SMG7, and that downregulation of PNRC2 abolishes the interaction between SMG5 and Dcp1a, a component of the decapping complex. In addition, tethering experiments reveal the function of Upf1, SMG5 and PNRC2 at the same step of NMD and the requirement of SMG6 for Upf1 for efficient mRNA degradation. Intriguingly, microarray results reveal the significant overlap of SMG5-dependent NMD substrates more with PNRC2-dependent NMD substrates than with SMG7-dependent NMD substrates, suggesting the functional dominance of SMG5-PNRC2, rather than SMG5-SMG7, under normal conditions. The results provide evidence that, to some extent, endogenous NMD substrates have their own binding preference for Upf1-interacting adaptors or effectors.


Assuntos
Proteínas de Transporte/metabolismo , Degradação do RNAm Mediada por Códon sem Sentido , Receptores Citoplasmáticos e Nucleares/metabolismo , Transativadores/metabolismo , Animais , Células COS , Células HEK293 , Células HeLa , Humanos , RNA Helicases , RNA Mensageiro/metabolismo , Telomerase/metabolismo
6.
Biochim Biophys Acta ; 1829(12): 1276-87, 2013 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-24185201

RESUMO

Suppressor of morphogenesis in genitalia 1 (SMG1), a member of the phosphatidylinositol 3-kinase-related kinase family, is involved in nonsense-mediated mRNA decay (NMD). SMG1 phosphorylates Upf1, a key NMD factor. Subsequently, hyperphosphorylated Upf1 associates with SMG5-7 or proline-rich nuclear receptor coregulatory protein (PNRC2) to elicit rapid mRNA degradation. Upf1 is also known to be involved in staufen 1 (Stau1)-mediated mRNA decay (SMD), which is closely related to NMD. However, the biological and molecular roles of SMG1 in SMD remain unknown. Here, we provide evidence that SMG1 is involved in SMD. The immunoprecipitation results show that SMG1 is complexed with Stau1, Upf1, and Dcp1a. Downregulation of SMG1 or overexpression of a kinase-inactive mutant of SMG1 inhibits SMD efficiency. In addition, downregulation of SMG1 inhibits rapid degradation elicited by artificially tethered Stau1 or Upf1 downstream of the normal termination codon. Furthermore, Stau1 and Upf1 colocalize in processing bodies in an SMG1-dependent manner. We also find that the level of SMG1 increases during adipogenesis. Accordingly, downregulation of SMG1 causes the reduction in the level of Upf1 phosphorylation and delays adipogenesis, suggesting the functional involvement of SMG1 in adipogenesis via SMD.


Assuntos
Adipogenia/fisiologia , Proteínas do Citoesqueleto/metabolismo , Endorribonucleases/metabolismo , Fosfatidilinositol 3-Quinases/metabolismo , Estabilidade de RNA/genética , Proteínas de Ligação a RNA/metabolismo , Transativadores/metabolismo , Células 3T3-L1 , Animais , Western Blotting , Proteínas do Citoesqueleto/genética , Regulação para Baixo , Endorribonucleases/genética , Células HEK293 , Células HeLa , Humanos , Técnicas Imunoenzimáticas , Imunoprecipitação , Camundongos , Fosfatidilinositol 3-Quinases/genética , Fosforilação , Proteínas Serina-Treonina Quinases , RNA Helicases , RNA Mensageiro/genética , Proteínas de Ligação a RNA/genética , Reação em Cadeia da Polimerase em Tempo Real , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Transativadores/genética
7.
Front Mol Neurosci ; 14: 642016, 2021.
Artigo em Inglês | MEDLINE | ID: mdl-33658912

RESUMO

Historically, the mammalian brain was thought to lack stem cells as no new neurons were found to be made in adulthood. That dogma changed ∼25 years ago with the identification of neural stem cells (NSCs) in the adult rodent forebrain. However, unlike rapidly self-renewing mature tissues (e.g., blood, intestinal crypts, skin), the majority of adult NSCs are quiescent, and those that become 'activated' are restricted to a few neurogenic zones that repopulate specific brain regions. Conversely, embryonic NSCs are actively proliferating and neurogenic. Investigations into the molecular control of the quiescence-to-proliferation-to-differentiation continuum in the embryonic and adult brain have identified proneural genes encoding basic-helix-loop-helix (bHLH) transcription factors (TFs) as critical regulators. These bHLH TFs initiate genetic programs that remove NSCs from quiescence and drive daughter neural progenitor cells (NPCs) to differentiate into specific neural cell subtypes, thereby contributing to the enormous cellular diversity of the adult brain. However, new insights have revealed that proneural gene activities are context-dependent and tightly regulated. Here we review how proneural bHLH TFs are regulated, with a focus on the murine cerebral cortex, drawing parallels where appropriate to other organisms and neural tissues. We discuss upstream regulatory events, post-translational modifications (phosphorylation, ubiquitinylation), protein-protein interactions, epigenetic and metabolic mechanisms that govern bHLH TF expression, stability, localization, and consequent transactivation of downstream target genes. These tight regulatory controls help to explain paradoxical findings of changes to bHLH activity in different cellular contexts.

8.
Neuron ; 109(18): 2847-2863.e11, 2021 09 15.
Artigo em Inglês | MEDLINE | ID: mdl-34407390

RESUMO

Asymmetric neuronal expansion is thought to drive evolutionary transitions between lissencephalic and gyrencephalic cerebral cortices. We report that Neurog2 and Ascl1 proneural genes together sustain neurogenic continuity and lissencephaly in rodent cortices. Using transgenic reporter mice and human cerebral organoids, we found that Neurog2 and Ascl1 expression defines a continuum of four lineage-biased neural progenitor cell (NPC) pools. Double+ NPCs, at the hierarchical apex, are least lineage restricted due to Neurog2-Ascl1 cross-repression and display unique features of multipotency (more open chromatin, complex gene regulatory network, G2 pausing). Strikingly, selectively eliminating double+ NPCs by crossing Neurog2-Ascl1 split-Cre mice with diphtheria toxin-dependent "deleter" strains locally disrupts Notch signaling, perturbs neurogenic symmetry, and triggers cortical folding. In support of our discovery that double+ NPCs are Notch-ligand-expressing "niche" cells that control neurogenic periodicity and cortical folding, NEUROG2, ASCL1, and HES1 transcript distribution is modular (adjacent high/low zones) in gyrencephalic macaque cortices, prefiguring future folds.


Assuntos
Diferenciação Celular/fisiologia , Neocórtex/embriologia , Neocórtex/fisiologia , Neurogênese/fisiologia , Neurônios/fisiologia , Animais , Células Cultivadas , Feminino , Humanos , Macaca fascicularis , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Camundongos Transgênicos , Células NIH 3T3 , Neocórtex/citologia , Gravidez , Imagem com Lapso de Tempo/métodos
9.
Brain Res ; 1705: 48-65, 2019 02 15.
Artigo em Inglês | MEDLINE | ID: mdl-29544733

RESUMO

The formation of functional neural circuits in the vertebrate central nervous system (CNS) requires that appropriate numbers of the correct types of neuronal and glial cells are generated in their proper places and times during development. In the embryonic CNS, multipotent progenitor cells first acquire regional identities, and then undergo precisely choreographed temporal identity transitions (i.e. time-dependent changes in their identity) that determine how many neuronal and glial cells of each type they will generate. Transcription factors of the basic-helix-loop-helix (bHLH) family have emerged as key determinants of neural cell fate specification and differentiation, ensuring that appropriate numbers of specific neuronal and glial cell types are produced. Recent studies have further revealed that the functions of these bHLH factors are strictly regulated. Given their essential developmental roles, it is not surprising that bHLH mutations and de-regulated expression are associated with various neurological diseases and cancers. Moreover, the powerful ability of bHLH factors to direct neuronal and glial cell fate specification and differentiation has been exploited in the relatively new field of cellular reprogramming, in which pluripotent stem cells or somatic stem cells are converted to neural lineages, often with a transcription factor-based lineage conversion strategy that includes one or more of the bHLH genes. These concepts are reviewed herein.


Assuntos
Fatores de Transcrição Hélice-Alça-Hélice Básicos/metabolismo , Neurogênese/fisiologia , Animais , Fatores de Transcrição Hélice-Alça-Hélice Básicos/fisiologia , Diferenciação Celular/genética , Reprogramação Celular/fisiologia , Sistema Nervoso Central/metabolismo , Regulação da Expressão Gênica no Desenvolvimento/genética , Sequências Hélice-Alça-Hélice/fisiologia , Humanos , Células-Tronco Neurais/fisiologia , Doenças Neurodegenerativas/genética , Doenças Neurodegenerativas/metabolismo , Neuroglia/metabolismo , Neurônios/metabolismo , Fatores de Transcrição/metabolismo
10.
Int Rev Cell Mol Biol ; 336: 223-320, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29413892

RESUMO

During fetal and postnatal development, the human brain generates 160 billion neuronal and glial cells, each with precise cellular phenotypes. To effectively manage such a complicated task, intrinsic (e.g., transcription factors) and extrinsic (environmental signals) cues cooperate to regulate the decision by neural progenitors to continue to proliferate or to differentiate. Loss- and gain-of-function studies in the mouse brain have been instrumental in identifying these cues, leading to a fairly well-developed and well-integrated model of neocortical development. This research has revealed that the neurons, astrocytes, and oligodendrocytes that populate the mature neocortex are generated sequentially from neural progenitor pools in both the dorsal (pallial) and ventral (subpallial) telencephalon. Understanding how cellular diversity is established during neocortical development is critical, as appropriate numbers of inhibitory and excitatory neurons, oligodendrocytes, and astrocytes are required for normal neural function. Indeed, an imbalance in excitatory vs inhibitory neurotransmission or alterations in glial cell number are hallmark features of neuropsychological and intellectual disorders such as schizophrenia, bipolar disorder, and autism. Moreover, these fundamental studies are beginning to pave the way for the rational design of neural cell reprogramming strategies, which are of value for the assessment of disease etiology, and for the possible development of novel cell-based therapies. We review herein our current understanding of the intrinsic cues and environmental signals that govern cell fate specification and differentiation decisions during development of neuronal and glial lineages in the murine neocortex.


Assuntos
Diferenciação Celular , Córtex Cerebral/citologia , Animais , Córtex Cerebral/metabolismo , Humanos , Neurogênese , Neurônios/citologia , Neurônios/metabolismo
11.
Autophagy ; 11(1): 75-87, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-25484072

RESUMO

Autophagy is a bulky catabolic process that responds to nutrient homeostasis and extracellular stress signals and is a conserved mechanism in all eukaryotes. When autophagy is induced, cellular components are sequestered within an autophagosome and finally degraded by subsequent fusion with a lysosome. During this process, the ATG12-ATG5 conjugate requires 2 different binding partners, ATG16L1 for autophagosome elongation and TECPR1 for lysosomal fusion. In our current study, we describe the crystal structures of human ATG5 in complex with an N-terminal domain of ATG16L1 as well as an internal AIR domain of TECPR1. Both binding partners exhibit a similar α-helical structure containing a conserved binding motif termed AFIM. Furthermore, we characterize the critical role of the C-terminal unstructured region of the AIR domain of TECPR1. These findings are further confirmed by biochemical and cell biological analyses. These results provide new insights into the molecular details of the autophagosome maturation process, from its elongation to its fusion with a lysosome.


Assuntos
Autofagia , Proteínas Associadas aos Microtúbulos/metabolismo , Fagossomos/metabolismo , Motivos de Aminoácidos , Sequência de Aminoácidos , Animais , Proteína 5 Relacionada à Autofagia , Proteínas Relacionadas à Autofagia , Células COS , Proteínas de Transporte/metabolismo , Chlorocebus aethiops , Humanos , Concentração de Íons de Hidrogênio , Proteínas de Membrana/metabolismo , Proteínas Associadas aos Microtúbulos/química , Modelos Biológicos , Modelos Moleculares , Dados de Sequência Molecular , Complexos Multiproteicos/metabolismo , Mutação/genética , Fagossomos/ultraestrutura , Ligação Proteica , Estrutura Secundária de Proteína , Estrutura Terciária de Proteína , Saccharomyces cerevisiae/metabolismo
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