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1.
Mol Cell ; 81(4): 859-869.e8, 2021 02 18.
Artigo em Inglês | MEDLINE | ID: mdl-33352108

RESUMO

Active DNA demethylation via ten-eleven translocation (TET) family enzymes is essential for epigenetic reprogramming in cell state transitions. TET enzymes catalyze up to three successive oxidations of 5-methylcytosine (5mC), generating 5-hydroxymethylcytosine (5hmC), 5-formylcytosine (5fC), or 5-carboxycytosine (5caC). Although these bases are known to contribute to distinct demethylation pathways, the lack of tools to uncouple these sequential oxidative events has constrained our mechanistic understanding of the role of TETs in chromatin reprogramming. Here, we describe the first application of biochemically engineered TET mutants that unlink 5mC oxidation steps, examining their effects on somatic cell reprogramming. We show that only TET enzymes proficient for oxidation to 5fC/5caC can rescue the reprogramming potential of Tet2-deficient mouse embryonic fibroblasts. This effect correlated with rapid DNA demethylation at reprogramming enhancers and increased chromatin accessibility later in reprogramming. These experiments demonstrate that DNA demethylation through 5fC/5caC has roles distinct from 5hmC in somatic reprogramming to pluripotency.


Assuntos
5-Metilcitosina/metabolismo , Reprogramação Celular , Proteínas de Ligação a DNA/metabolismo , Embrião de Mamíferos/metabolismo , Elementos Facilitadores Genéticos , Epigênese Genética , Fibroblastos/metabolismo , Proteínas Proto-Oncogênicas/metabolismo , Animais , Proteínas de Ligação a DNA/genética , Dioxigenases , Embrião de Mamíferos/citologia , Fibroblastos/citologia , Células HEK293 , Humanos , Camundongos , Camundongos Knockout , Mutação , Células NIH 3T3 , Proteínas Proto-Oncogênicas/genética
2.
Am J Physiol Gastrointest Liver Physiol ; 316(3): G350-G365, 2019 03 01.
Artigo em Inglês | MEDLINE | ID: mdl-30629468

RESUMO

Difficulty in imaging the vertebrate intestine in vivo has hindered our ability to model nutrient and protein trafficking from both the lumenal and basolateral aspects of enterocytes. Our goal was to use live confocal imaging to increase understanding of intestinal trafficking of dietary cholesterol and apolipoprotein A-I (APOA-I), the main structural component of high-density lipoproteins. We developed a novel assay to visualize live dietary cholesterol trafficking in the zebrafish intestine by feeding TopFluor-cholesterol (TF-cholesterol), a fluorescent cholesterol analog, in a lipid-rich, chicken egg yolk feed. Quantitative microscopy of transgenic zebrafish expressing fluorescently tagged protein markers of early, recycling, and late endosomes/lysosomes provided the first evidence, to our knowledge, of cholesterol transport in the intestinal endosomal-lysosomal trafficking system. To study APOA-I dynamics, transgenic zebrafish expressing an APOA-I fluorescent fusion protein (APOA-I-mCherry) from tissue-specific promoters were created. These zebrafish demonstrated that APOA-I-mCherry derived from the intestine accumulated in the liver and vice versa. Additionally, intracellular APOA-I-mCherry localized to endosomes and lysosomes in the intestine and liver. Moreover, live imaging demonstrated that APOA-I-mCherry colocalized with dietary TF-cholesterol in enterocytes, and this colocalization increased with feeding time. This study provides a new set of tools for the study of cellular lipid biology and elucidates a key role for endosomal-lysosomal trafficking of intestinal cholesterol and APOA-I. NEW & NOTEWORTHY A fluorescent cholesterol analog was fed to live, translucent larval zebrafish to visualize intracellular cholesterol and apolipoprotein A-I (APOA-I) trafficking. With this model intestinal endosomal-lysosomal cholesterol trafficking was observed for the first time. A new APOA-I fusion protein (APOA-I-mCherry) expressed from tissue-specific promoters was secreted into the circulation and revealed that liver-derived APOA-I-mCherry accumulates in the intestine and vice versa. Intestinal, intracellular APOA-I-mCherry was observed in endosomes and lysosomes and colocalized with dietary cholesterol.


Assuntos
Apolipoproteína A-I/efeitos adversos , Colesterol na Dieta/metabolismo , Endossomos/metabolismo , Lisossomos/metabolismo , Animais , Transporte Biológico/fisiologia , Colesterol/metabolismo , Enterócitos/metabolismo , Intestinos/fisiologia , Lipoproteínas HDL/metabolismo , Transporte Proteico/fisiologia , Peixe-Zebra
3.
J Leukoc Biol ; 115(4): 589-606, 2024 Mar 29.
Artigo em Inglês | MEDLINE | ID: mdl-38301269

RESUMO

Innate immune cells play essential roles in modulating both immune defense and inflammation by expressing a diverse array of cytokines and inflammatory mediators, phagocytizing pathogens to promote immune clearance, and assisting with the adaptive immune processes through antigen presentation. Rudimentary innate immune "memory" states such as training, tolerance, and exhaustion develop based on the nature, strength, and duration of immune challenge, thereby enabling dynamic transcriptional reprogramming to alter present and future cell behavior. Underlying transcriptional reprogramming are broad changes to the epigenome, or chromatin alterations above the level of DNA sequence. These changes include direct modification of DNA through cytosine methylation as well as indirect modifications through alterations to histones that comprise the protein core of nucleosomes. In this review, we will discuss recent advances in our understanding of how these epigenetic changes influence the dynamic behavior of the innate immune system during both acute and chronic inflammation, as well as how stable changes to the epigenome result in long-term alterations of innate cell behavior related to pathophysiology.


Assuntos
Epigênese Genética , Histonas , Humanos , Histonas/metabolismo , Metilação de DNA , Inflamação/genética , Imunidade Inata
4.
Cell Rep ; 43(3): 113894, 2024 Mar 26.
Artigo em Inglês | MEDLINE | ID: mdl-38442017

RESUMO

Monocytes can develop an exhausted memory state characterized by reduced differentiation, pathogenic inflammation, and immune suppression that drives immune dysregulation during sepsis. Chromatin alterations, notably via histone modifications, underlie innate immune memory, but the contribution of DNA methylation remains poorly understood. Using an ex vivo sepsis model, we show altered DNA methylation throughout the genome of exhausted monocytes, including genes implicated in immune dysregulation during sepsis and COVID-19 infection (e.g., Plac8). These changes are recapitulated in septic mice induced by cecal slurry injection. Methylation profiles developed in septic mice are maintained during ex vivo culture, supporting the involvement of DNA methylation in stable monocyte exhaustion memory. Methylome reprogramming is driven in part by Wnt signaling inhibition in exhausted monocytes and can be reversed with DNA methyltransferase inhibitors, Wnt agonists, or immune training molecules. Our study demonstrates the significance of altered DNA methylation in the maintenance of stable monocyte exhaustion memory.


Assuntos
Monócitos , Sepse , Camundongos , Animais , Metilação de DNA/genética , Exaustão do Sistema Imunitário , Via de Sinalização Wnt
5.
Dev Cell ; 59(8): 1010-1027.e8, 2024 Apr 22.
Artigo em Inglês | MEDLINE | ID: mdl-38569549

RESUMO

Ten-eleven translocation (TET) enzymes iteratively oxidize 5-methylcytosine (5mC) to generate 5-hydroxymethylcytosine (5hmC), 5-formylcytosine, and 5-carboxylcytosine to facilitate active genome demethylation. Whether these bases are required to promote replication-coupled dilution or activate base excision repair during mammalian germline reprogramming remains unresolved due to the inability to decouple TET activities. Here, we generated two mouse lines expressing catalytically inactive TET1 (Tet1-HxD) and TET1 that stalls oxidation at 5hmC (Tet1-V). Tet1 knockout and catalytic mutant primordial germ cells (PGCs) fail to erase methylation at select imprinting control regions and promoters of meiosis-associated genes, validating the requirement for the iterative oxidation of 5mC for complete germline reprogramming. TET1V and TET1HxD rescue most hypermethylation of Tet1-/- sperm, suggesting the role of TET1 beyond its oxidative capability. We additionally identify a broader class of hypermethylated regions in Tet1 mutant mouse sperm that depend on TET oxidation for reprogramming. Our study demonstrates the link between TET1-mediated germline reprogramming and sperm methylome patterning.


Assuntos
5-Metilcitosina , 5-Metilcitosina/análogos & derivados , Metilação de DNA , Proteínas de Ligação a DNA , Impressão Genômica , Oxirredução , Proteínas Proto-Oncogênicas , Espermatozoides , Animais , Masculino , Camundongos , Proteínas Proto-Oncogênicas/metabolismo , Proteínas Proto-Oncogênicas/genética , Proteínas de Ligação a DNA/metabolismo , Proteínas de Ligação a DNA/genética , Espermatozoides/metabolismo , 5-Metilcitosina/metabolismo , Reprogramação Celular/genética , Camundongos Knockout , Camundongos Endogâmicos C57BL
6.
Andrology ; 11(5): 884-890, 2023 07.
Artigo em Inglês | MEDLINE | ID: mdl-36150101

RESUMO

The mammalian genome undergoes extensive epigenetic reprogramming twice during development, once during gestation when primordial germ cells (PGCs) are specified from somatic cells and a second time after fertilization in the preimplantation embryo. PGC differentiation into germ cells involves DNA demethylation and subsequent remethylation. DNA demethylation takes place in two waves in the mouse germline, an early phase where most of the genome is demethylated by replication coupled passive demethylation, and a second phase predominated by active DNA demethylation. Imprinted genes, CpG islands on the inactive X chromosome of females, and germline-specific genes are among those loci that are demethylated late. The Ten-Eleven Translocation (TET) family of 5 mC dioxygenases has emerged as active demethylating enzymes that are critical to achieving a DNA hypomethylated state, with TET1 being the most important for imprinted genes. Here, we discuss DNA methylation dynamics in the mammalian genome, with a particular emphasis on DNA demethylation in the germline and the requirement for TET1 in imprinted gene reprogramming.


Assuntos
Metilação de DNA , Impressão Genômica , Feminino , Animais , Camundongos , Células Germinativas/metabolismo , Genoma , Genômica , Embrião de Mamíferos , Mamíferos/genética
7.
bioRxiv ; 2023 Aug 31.
Artigo em Inglês | MEDLINE | ID: mdl-37693554

RESUMO

Innate immune memory is the process by which pathogen exposure elicits cell-intrinsic states to alter the strength of future immune challenges. Such altered memory states drive monocyte dysregulation during sepsis, promoting pathogenic behavior characterized by pro-inflammatory, immunosuppressive gene expression in concert with emergency hematopoiesis. Epigenetic changes, notably in the form of histone modifications, have been shown to underlie innate immune memory, but the contribution of DNA methylation to this process remains poorly understood. Using an ex vivo sepsis model, we discovered broad changes in DNA methylation throughout the genome of exhausted monocytes, including at several genes previously implicated as major drivers of immune dysregulation during sepsis and Covid-19 infection (e.g. Plac8 ). Methylome alterations are driven in part by Wnt signaling inhibition in exhausted monocytes, and can be reversed through treatment with DNA methyltransferase inhibitors, Wnt agonists, or immune training molecules. Importantly, these changes are recapitulated in septic mice following cecal slurry injection, resulting in stable changes at critical immune genes that support the involvement of DNA methylation in acute and long-term monocyte dysregulation during sepsis.

8.
bioRxiv ; 2023 Feb 21.
Artigo em Inglês | MEDLINE | ID: mdl-36865267

RESUMO

DNA methylation erasure is required for mammalian primordial germ cell reprogramming. TET enzymes iteratively oxidize 5-methylcytosine to generate 5-hyroxymethylcytosine (5hmC), 5-formylcytosine, and 5-carboxycytosine to facilitate active genome demethylation. Whether these bases are required to promote replication-coupled dilution or activate base excision repair during germline reprogramming remains unresolved due to the lack of genetic models that decouple TET activities. Here, we generated two mouse lines expressing catalytically inactive TET1 ( Tet1-HxD ) and TET1 that stalls oxidation at 5hmC ( Tet1-V ). Tet1 -/- , Tet1 V/V , and Tet1 HxD/HxD sperm methylomes show that TET1 V and TET1 HxD rescue most Tet1 -/- hypermethylated regions, demonstrating the importance of TET1’s extra-catalytic functions. Imprinted regions, in contrast, require iterative oxidation. We further reveal a broader class of hypermethylated regions in sperm of Tet1 mutant mice that are excluded from de novo methylation during male germline development and depend on TET oxidation for reprogramming. Our study underscores the link between TET1-mediated demethylation during reprogramming and sperm methylome patterning.

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