Search Results - "Maestro, Miguel Ángel"
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Hnf1α (MODY3) Controls Tissue-Specific Transcriptional Programs and Exerts Opposed Effects on Cell Growth in Pancreatic Islets and Liver
Published in Molecular and Cellular Biology (01-06-2009)“…Article Usage Stats Services MCB Citing Articles Google Scholar PubMed Related Content Social Bookmarking CiteULike Delicious Digg Facebook Google+ Mendeley…”
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2
Pancreas agenesis mutations disrupt a lead enhancer controlling a developmental enhancer cluster
Published in Developmental cell (22-08-2022)“…Sequence variants in cis-acting enhancers are important for polygenic disease, but their role in Mendelian disease is poorly understood. Redundancy between…”
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3
Pancreatic islet enhancer clusters enriched in type 2 diabetes risk-associated variants
Published in Nature genetics (01-02-2014)“…Jorge Ferrer and colleagues have mapped regulatory SNP variants associated in GWAS with type 2 diabetes risk and glycemic traits to large clusters of enhancer…”
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4
TEAD and YAP regulate the enhancer network of human embryonic pancreatic progenitors
Published in Nature cell biology (01-05-2015)“…The genomic regulatory programmes that underlie human organogenesis are poorly understood. Pancreas development, in particular, has pivotal implications for…”
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5
The biliary epithelium gives rise to liver progenitor cells
Published in Hepatology (Baltimore, Md.) (01-10-2014)“…Severe liver diseases are characterized by expansion of liver progenitor cells (LPC), which correlates with disease severity. However, the origin and role of…”
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6
Derepression of Polycomb targets during pancreatic organogenesis allows insulin-producing beta-cells to adopt a neural gene activity program
Published in Genome research (01-06-2010)“…The epigenome changes that underlie cellular differentiation in developing organisms are poorly understood. To gain insights into how pancreatic beta-cells are…”
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7
Pancreatic Exocrine Duct Cells Give Rise to Insulin-Producing β Cells during Embryogenesis but Not after Birth
Published in Developmental cell (01-12-2009)“…A longstanding unsettled question is whether pancreatic β cells originate from exocrine duct cells. We have now used genetic labeling to fate map embryonic and…”
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8
The HASTER lncRNA promoter is a cis-acting transcriptional stabilizer of HNF1A
Published in Nature cell biology (01-10-2022)“…The biological purpose of long non-coding RNAs (lncRNAs) is poorly understood. Haploinsufficient mutations in HNF1A homeobox A ( HNF1A ), encoding a…”
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9
REST is a major negative regulator of endocrine differentiation during pancreas organogenesis
Published in Genes & development (01-09-2021)“…Multiple transcription factors have been shown to promote pancreatic β-cell differentiation, yet much less is known about negative regulators. Earlier…”
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10
Diastereo- and Enantioselective Synthesis of Novel β-Lactam-Containing 1,4-Benzodiazepines through a Ketene−Imine Cycloaddition Reaction
Published in European journal of organic chemistry (01-02-2004)“…Novel tricyclic scaffolds that incorporate a β‐lactam ring fused to the d bond of a 1,4‐benzodiazepine seven‐membered ring have been synthesized in a process…”
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11
Neonatal diabetes mutations disrupt a chromatin pioneering function that activates the human insulin gene
Published in Cell reports (Cambridge) (13-04-2021)“…Despite the central role of chromosomal context in gene transcription, human noncoding DNA variants are generally studied outside of their genomic location…”
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12
Recessive mutations in the INS gene result in neonatal diabetes through reduced insulin biosynthesis
Published in Proceedings of the National Academy of Sciences - PNAS (16-02-2010)“…Heterozygous coding mutations in the INS gene that encodes preproinsulin were recently shown to be an important cause of permanent neonatal diabetes. These…”
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13
Ring1b bookmarks genes in pancreatic embryonic progenitors for repression in adult β cells
Published in Genes & development (01-01-2013)“…Polycomb-mediated gene repression is essential for embryonic development, yet its precise role in lineage-specific programming is poorly understood. Here we…”
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14
Ins1 Cre knock-in mice for beta cell-specific gene recombination
Published in Diabetologia (01-03-2015)Get full text
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15
Better Performance of Monodentate P-Stereogenic Phosphanes Compared to Bidentate Analogues in Pd-Catalyzed Asymmetric Allylic Alkylations
Published in European Journal of Inorganic Chemistry (01-07-2010)“…The cationic allylpalladium complexes 3a–3f, 4a, 4e, 5e of type [Pd(η3‐2‐Me‐C3H4)P2]PF6 were synthesized using a group of monodentate P‐stereogenic phosphanes,…”
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16
Hnf1α (MODY3) Regulates β-Cell-Enriched MafA Transcription Factor Expression
Published in Molecular endocrinology (Baltimore, Md.) (01-02-2011)“…The MODY Hnf1α transcription factor activates endogenous MafA expression in pancreatic β-cells by binding within the Region 3 control domain. The expression…”
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17
Bis(oxazoline) Ligands Containing Four and Five Spacer Atoms: Palladium Complexes and Catalytic Behavior
Published in Organometallics (18-03-2002)“…Chiral bis(oxazoline) ligands with biphenyl (A−E) and diphenyl ether and dibenzofuran (F and G, respectively) backbones were prepared, and their coordination…”
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18
Ins1(Cre) knock-in mice for beta cell-specific gene recombination
Published in Diabetologia (01-03-2015)“…Pancreatic beta cells play a central role in the control of glucose homeostasis by secreting insulin to stimulate glucose uptake by peripheral tissues…”
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19
Allylpalladium Complexes with P-Stereogenic Monodentate Phosphines. Application in the Asymmetric Hydrovinylation of Styrene
Published in Organometallics (10-10-2005)“…A group of P-stereogenic monodentate phosphines S-PPhRR‘ (R = 1-naphthyl, 9-phenanthryl, or o-biphenylyl and R‘ = CH3−, i-C3H8−, and Ph3SiCH2−) have been…”
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20
Synthesis, Characterization, and Magnetic Properties of Self-assembled Compounds Based on Discrete Homotrinuclear Complexes of Cu(II)
Published in Inorganic chemistry (18-06-2001)“…Three new supramolecular entities of Cu(II) were synthesized and characterized: [{Cu(H2O)(tmen)}2{μ-Cu(H2O)(opba)}]2{(ClO4)2}2·2H2O (1),…”
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