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1.
J Neurochem ; 148(4): 531-549, 2019 02.
Artículo en Inglés | MEDLINE | ID: mdl-30447010

RESUMEN

Excitotoxicity, caused by exaggerated neuronal stimulation by Glutamate (Glu), is a major cause of neurodegeneration in brain ischemia. While we know that neurodegeneration is triggered by overstimulation of Glu-receptors (GluRs), the subsequent mechanisms that lead to cellular demise remain controversial. Surprisingly, signaling downstream of GluRs can also activate neuroprotective pathways. The strongest evidence involves activation of the transcription factor cAMP response element-binding protein (CREB), widely recognized for its importance in synaptic plasticity. Canonical views describe CREB as a phosphorylation-triggered transcription factor, where transcriptional activation involves CREB phosphorylation and association with CREB-binding protein. However, given CREB's ubiquitous cross-tissue expression, the multitude of cascades leading to CREB phosphorylation, and its ability to regulate thousands of genes, it remains unclear how CREB exerts closely tailored, differential neuroprotective responses in excitotoxicity. A non-canonical, alternative cascade for activation of CREB-mediated transcription involves the CREB co-factor cAMP-regulated transcriptional co-activator (CRTC), and may be independent of CREB phosphorylation. To identify cascades that activate CREB in excitotoxicity we used a Caenorhabditis elegans model of neurodegeneration by excitotoxic necrosis. We demonstrated that CREB's neuroprotective effect was conserved, and seemed most effective in neurons with moderate Glu exposure. We found that factors mediating canonical CREB activation were not involved. Instead, phosphorylation-independent CREB activation in nematode excitotoxic necrosis hinged on CRTC. CREB-mediated transcription that depends on CRTC, but not on CREB phosphorylation, might lead to expression of a specific subset of neuroprotective genes. Elucidating conserved mechanisms of excitotoxicity-specific CREB activation can help us focus on core neuroprotective programs in excitotoxicity. Cover Image for this issue: doi: 10.1111/jnc.14494.


Asunto(s)
Proteína de Unión a Elemento de Respuesta al AMP Cíclico/metabolismo , Regulación de la Expresión Génica/fisiología , Ácido Glutámico/toxicidad , Degeneración Nerviosa/metabolismo , Neuroprotección/fisiología , Animales , Caenorhabditis elegans , Proteína de Unión a Elemento de Respuesta al AMP Cíclico/efectos de los fármacos , Modelos Animales de Enfermedad , Activación Enzimática/efectos de los fármacos , Activación Enzimática/fisiología , Necrosis/metabolismo , Neuroprotección/efectos de los fármacos , Neurotoxinas/toxicidad
2.
Glycobiology ; 28(11): 841-848, 2018 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-30084948

RESUMEN

Mucin-type O-glycosylation is an evolutionarily conserved and essential post-translational protein modification that is initiated in the Golgi apparatus by a family of enzymes known as the UDP-GalNAc:polypeptide N-acetylgalactosaminyltransferases (GalNAc-Ts). GalNAc-Ts are type II membrane proteins which contain short N-terminal tails located in the cytoplasm, a transmembrane domain that crosses the Golgi membrane, to which is connected a stem region that tethers the C-terminal catalytic and lectin domains that reside in the Golgi lumen. Although mucin-type O-glycans have been shown to play critical roles in numerous biological processes, little is known about how the GalNAc-Ts are targeted to their site of action within the Golgi complex. Here, we investigate the essential protein domains required for Golgi localization of four representative members of the GalNAc-T family of enzymes. We find that GalNAc-T1 and -T2 require their cytoplasmic tail and transmembrane domains for proper Golgi localization, while GalNAc-T10 requires its transmembrane and luminal stem domains. GalNAc-T7 can use either its cytoplasmic tail or its luminal stem, in combination with its transmembrane domain, to localize to the Golgi. We determined that a single glutamic acid in the GalNAc-T10 cytoplasmic tail inhibits its ability to localize to the Golgi via a cytoplasmic tail-dependent mechanism. We therefore demonstrate that despite their similarity, different members of this enzyme family are directed to the Golgi by more than one set of targeting signals.


Asunto(s)
Aparato de Golgi/metabolismo , N-Acetilgalactosaminiltransferasas/metabolismo , Células Cultivadas , Humanos , Transporte de Proteínas
3.
Genes (Basel) ; 12(11)2021 10 26.
Artículo en Inglés | MEDLINE | ID: mdl-34828310

RESUMEN

The rising frequency of ART-conceived births is accompanied by the need for an improved understanding of the implications of ART on gametes and embryos. Increasing evidence from mouse models and human epidemiological data suggests that ART procedures may play a role in the pathophysiology of certain imprinting disorders (IDs), including Beckwith-Wiedemann syndrome, Silver-Russell syndrome, Prader-Willi syndrome, and Angelman syndrome. The underlying molecular basis of this association, however, requires further elucidation. In this review, we discuss the epigenetic and imprinting alterations of in vivo mouse models and human iPSC models of ART. Mouse models have demonstrated aberrant regulation of imprinted genes involved with ART-related IDs. In the past decade, iPSC technology has provided a platform for patient-specific cellular models of culture-associated perturbed imprinting. However, despite ongoing efforts, a deeper understanding of the susceptibility of iPSCs to epigenetic perturbation is required if they are to be reliably used for modelling ART-associated IDs. Comparing the patterns of susceptibility of imprinted genes in mouse models and IPSCs in culture improves the current understanding of the underlying mechanisms of ART-linked IDs with implications for our understanding of the influence of environmental factors such as culture and hormone treatments on epigenetically important regions of the genome such as imprints.


Asunto(s)
Epigénesis Genética/fisiología , Enfermedades Genéticas Congénitas/genética , Impresión Genómica/fisiología , Técnicas Reproductivas Asistidas/efectos adversos , Animales , Metilación de ADN , Femenino , Enfermedades Genéticas Congénitas/etiología , Humanos , Células Madre Pluripotentes Inducidas/fisiología , Masculino , Ratones , Modelos Animales , Embarazo
4.
Science ; 373(6558): 1040-1046, 2021 08 27.
Artículo en Inglés | MEDLINE | ID: mdl-34446607

RESUMEN

The antitumor efficacy of cancer immunotherapy can correlate with the presence of certain bacterial species within the gut microbiome. However, many of the molecular mechanisms that influence host response to immunotherapy remain elusive. In this study, we show that members of the bacterial genus Enterococcus improve checkpoint inhibitor immunotherapy in mouse tumor models. Active enterococci express and secrete orthologs of the NlpC/p60 peptidoglycan hydrolase SagA that generate immune-active muropeptides. Expression of SagA in nonprotective E. faecalis was sufficient to promote immunotherapy response, and its activity required the peptidoglycan sensor NOD2. Notably, SagA-engineered probiotics or synthetic muropeptides also augmented anti-PD-L1 antitumor efficacy. Taken together, our data suggest that microbiota species with specialized peptidoglycan remodeling activity and muropeptide-based therapeutics may enhance cancer immunotherapy and could be leveraged as next-generation adjuvants.


Asunto(s)
Antígeno B7-H1/antagonistas & inhibidores , Enterococcus/metabolismo , Inhibidores de Puntos de Control Inmunológico/uso terapéutico , Melanoma Experimental/terapia , N-Acetil Muramoil-L-Alanina Amidasa/metabolismo , Peptidoglicano/metabolismo , Animales , Carga Bacteriana , Proteínas Bacterianas/metabolismo , Enterococcus/enzimología , Enterococcus faecalis/metabolismo , Enterococcus faecium/metabolismo , Microbioma Gastrointestinal , Inmunoterapia , Melanoma Experimental/inmunología , Ratones , Ratones Endogámicos C57BL , Proteína Adaptadora de Señalización NOD2/metabolismo , Fragmentos de Péptidos/metabolismo , Probióticos , Transducción de Señal
5.
Nat Genet ; 53(8): 1233-1242, 2021 08.
Artículo en Inglés | MEDLINE | ID: mdl-34326545

RESUMEN

The agouti viable yellow (Avy) allele is an insertional mutation in the mouse genome caused by a variably methylated intracisternal A particle (VM-IAP) retrotransposon. Avy expressivity is sensitive to a range of early-life chemical exposures and nutritional interventions, suggesting that environmental perturbations can have long-lasting effects on the methylome. However, the extent to which VM-IAP elements are environmentally labile with phenotypic implications is unknown. Using a recently identified repertoire of VM-IAPs, we assessed the epigenetic effects of different environmental contexts. A longitudinal aging analysis indicated that VM-IAPs are stable across the murine lifespan, with only small increases in DNA methylation detected for a subset of loci. No significant effects were observed after maternal exposure to the endocrine disruptor bisphenol A, an obesogenic diet or methyl donor supplementation. A genetic mouse model of abnormal folate metabolism exhibited shifted VM-IAP methylation levels and altered VM-IAP-associated gene expression, yet these effects are likely largely driven by differential targeting by polymorphic KRAB zinc finger proteins. We conclude that epigenetic variability at retrotransposons is not predictive of environmental susceptibility.


Asunto(s)
Metilación de ADN , Disruptores Endocrinos/toxicidad , Obesidad/genética , Retroelementos , Animales , Compuestos de Bencidrilo/toxicidad , Metilación de ADN/efectos de los fármacos , Dieta/efectos adversos , Epigénesis Genética , Femenino , Ferredoxina-NADP Reductasa/genética , Ácido Fólico/genética , Ácido Fólico/metabolismo , Deficiencia de Ácido Fólico/genética , Regulación de la Expresión Génica , Masculino , Ratones Endogámicos C57BL , Ratones Mutantes , Mutación , Obesidad/etiología , Fenoles/toxicidad , Embarazo , Efectos Tardíos de la Exposición Prenatal
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