GENE-NUTRIENT INTERACTIONS IN NEURAL TUBE DEFECTS
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1.Deoxyuracil in DNA and disease: Genomic signal or managed situation?
- 关键词:
- DNA repair; Thymidylate; dUTPase; Folate deficiency; Neural tubedefects; Uracil in DNA;NEURAL-TUBE DEFECTS; SINGLE-STRANDED-DNA; THYMIDINE KINASE 1;FOLATE-DEFICIENCY; THYMIDYLATE SYNTHASE; FOLIC-ACID; MISMATCH REPAIR;URACIL MISINCORPORATION; DEOXYRIBONUCLEIC-ACID; MEGALOBLASTIC-ANEMIA
Genomic instability is implicated in the etiology of several deleterious health outcomes including megaloblastic anemia, neural tube defects, and neurodegeneration. Uracil misincorporation and its repair are known to cause genomic instability by inducing DNA strand breaks leading to apoptosis, but there is emerging evidence that uracil incorporation may also result in broader modifications of gene expression, including: changes in transcriptional stalling, strand break-mediated transcriptional upregulation, and direct promoter inhibition. The factors that influence uracil levels in DNA are cytosine deamination, de novo thymidylate (dTMP) biosynthesis, salvage dTMP biosynthesis, dUTPase, and DNA repair. There is evidence that the nuclear localization of the enzymes in these pathways in mammalian cells may modify and/or control the levels of uracil accumulation into nuclear DNA. Uracil sequencing technologies demonstrate that uracil in DNA is not distributed stochastically across the genome, but instead shows patterns of enrichment. Nuclear localization of the enzymes that modify uracil in DNA may serve to change these patterns of enrichment in a tissue-specific manner, and thereby signal the genome in response to metabolic and/or nutritional state of the cell.
...2.Folate nutrition and blood-brain barrier dysfunction
- 关键词:
- FOLIC-ACID; URACIL MISINCORPORATION; PSYCHIATRIC-DISORDERS;L-METHYLFOLATE; GENOMIC DNA; DEFICIENCY; TRANSPORT; GENE;SUPPLEMENTATION; SCHIZOPHRENIA
Mammals require essential nutrients from dietary sources to support normal metabolic, physiological and neuronal functions, to prevent diseases of nutritional deficiency as well as to prevent chronic disease. Disease and/or its treatment can modify fundamental biological processes including cellular nutrient accretion, stability and function in cells. These effects can be isolated to a specific diseased organ in the absence of whole-body alterations in nutrient status or biochemistry. Loss of blood-brain barrier function, which occurs in in-born errors of metabolism and in chronic disease, can cause brain-specific folate deficiency and contribute to disease co-morbidity. The role of brain folate deficiency in neuropsychiatric disorders is reviewed, as well as emerging diagnostic and nutritional strategies to identify and address brain folate deficiency in blood-brain barrier dysfunction.
...3.Targeting nuclear thymidylate biosynthesis
- 关键词:
- Nuclear thymidylate synthesis; Antifolate; Folate-mediated one-carbonmetabolism; Sumoylation; Thymidylate synthase;SQUAMOUS-CELL CARCINOMA; BASE EXCISION-REPAIR; NEURAL-TUBE DEFECTS;DIHYDROFOLATE-REDUCTASE; DNA-DAMAGE; DIHYDROPYRIMIDINE DEHYDROGENASE;THYMIDINE-PHOSPHORYLASE; SYNTHASE GENE; 5-FLUOROURACIL SUBSTITUTION;PROTEIN EXPRESSION
Thymidylate (dTMP) biosynthesis plays an essential and exclusive function in DNA synthesis and proper cell division, and therefore has been an attractive therapeutic target. Folate analogs, known as antifolates, and nucleotide analogs that inhibit the enzymatic action of the de novo thymidylate biosynthesis pathway and are commonly used in cancer treatment. In this review, we examine the mechanisms by which the antifolate 5-fluorouracil, as well as other dTMP synthesis inhibitors, function in cancer treatment in light of emerging evidence that dTMP synthesis occurs in the nucleus. Nuclear localization of the de novo dTMP synthesis pathway requires modification of the pathway enzymes by the small ubiquitin-like modifier (SUMO) protein. SUMOylation is required for nuclear localization of the de novo dTMP biosynthesis pathway, and disruption in the SUMO pathway inhibits cell proliferation in several cancer models. We summarize evidence that the nuclear localization of the dTMP biosynthesis pathway is a critical factor in the efficacy of antifolate-based therapies that target dTMP synthesis. (C) 2016 Elsevier Ltd. All rights reserved.
...4.Time to Think About Nutrient Needs in Chronic Disease
- 关键词:
- RANDOMIZED CONTROLLED-TRIAL; FOLIC-ACID; MORTALITY; THERAPY
