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Biology subjects

Brody, L. C.

Publications and source records attributed to Brody, L. C..

4 recordsLinked to original sources

Excess folic acid exposure increases uracil misincorporation into DNA in a tissue-specific manner in a mouse model of reduced methionine synthase expression

BackgroundFolate and vitamin B12 (B12) are cofactors in folate-mediated one-carbon metabolism (FOCM), a metabolic network that supports synthesis of nucleotides (including thymidylate, or dTMP) and methionine. FOCM impairments such as a deficiency or imbalance of cofactors can perturb dTMP synthesis, causing uracil misincorporation into DNA. ObjectiveThe purpose of this study was to determine how reduced expression of the B12-dependent enzyme methionine synthase (MTR) and excess dietary folic acid interact to affect folate distribution and markers of genome stability in mouse tissues. MethodsHeterozygous Mtr knockout mice (Mtr+/-) model the FOCM-specific effects of B12 deficiency. Folate accumulation and vitamer distribution, genomic uracil levels, and phosphorylated histone {gamma}H2AX immunostaining were measured in male Mtr+/+ and Mtr+/- mice weaned to either a folate-sufficient control (C) diet (2 mg/kg folic acid) or a high folic acid (HFA) diet (20 mg/kg folic acid) for 7 weeks. ResultsExposure to the HFA diet led to tissue-specific patterns of folate accumulation, with plasma, colon, kidney, and skeletal muscle exhibiting increased folate concentrations compared to control. Liver total folate did not differ. Though unmetabolized folic acid (UMFA) increased 10-fold in mouse plasma with HFA diet, UMFA accounted for less than 0.2% of total folate in liver and colon tissue. Exposure to HFA diet resulted in a shift in folate distribution in colon tissue with higher 5-methyl-THF and lower formyl-THF than in control mice. Mtr heterozygosity did not impact folate accumulation or distribution in any tissue. Mice on HFA diet exhibited higher uracil in genomic DNA and {gamma}H2AX foci in colon. Similar differences were not seen in liver. ConclusionsThis study demonstrates that folic acid, even when consumed at high doses, does not meaningfully accumulate in mouse tissues, although high-dose folic acid shifts folate distribution and increases uracil accumulation in genomic DNA in colon tissue.

biochemistry↗

Vitamin B12 status and folic acid supplementation influence mitochondrial heteroplasmy levels in mice as they age.

One-carbon metabolism is a complex network of metabolic reactions that are essential for cellular function including DNA synthesis. Vitamin B12 and folate are micronutrients that are utilized in this pathway and their deficiency can result in the perturbation of one-carbon metabolism and subsequent perturbations in DNA replication and repair. This effect has been well characterized in nuclear DNA but to date, mitochondrial DNA (mtDNA) has not been investigated extensively. Mitochondrial variants have been associated with several inherited and age-related disease states; therefore, the study of factors that impact heteroplasmy are important for advancing our understanding of the mitochondrial genomes impact on human health. Heteroplasmy studies require robust and efficient mitochondrial DNA enrichment to carry out in-depth mtDNA sequencing. Many of the current methods for mtDNA enrichment can introduce biases and false positive results. Here we use a method that overcomes these limitations and have applied it to assess mitochondrial heteroplasmy in mouse models of altered one-carbon metabolism. Vitamin B12 deficiency was found to cause increased levels of mitochondrial DNA heteroplasmy across all tissues that were investigated. Folic acid supplementation also contributed to elevated mitochondrial DNA heteroplasmy across all mouse tissues investigated. Heteroplasmy analysis of human data from the Framingham Heart Study suggested a potential sex-specific effect of folate and vitamin B12 status on mitochondrial heteroplasmy. This is a novel relationship that may have broader consequences for our understanding of one-carbon metabolism, mitochondrial related disease and the influence of nutrients on DNA mutation rates. Significance StatementUsing a sensitive method for mitochondrial heteroplasmy analysis, we show that both vitamin B12 and folic acid can impact mitochondrial DNA mutation. This effect requires further investigation of the potential impact on humans.

molecular biology↗

Mito-SiPE: A sequence-independent, PCR-free mitochondrial DNA enrichment method for ultra-deep sequencing that minimises amplification and alignment artifacts.

BackgroundDeep sequencing is often used to measure somatic variation in the mitochondrial genome. Selective enrichment methods, such as PCR amplification or probe hybridization/capture are commonly used. These methods can introduce bias and are prone to contamination by nuclear-mitochondrial sequences (NUMTs); elements that can introduce artefacts into analyses such as an assessment of mitochondrial heteroplasmy. ResultsHere, we demonstrate a method to obtain ultra-deep (>80,000X) sequencing coverage of the mitochondrial genome by selectively purifying the intact organelle itself using differential centrifugation and alkaline lysis. We applied this approach to seven different mouse tissues. Isolation of mitochondria yields a preparation of highly enriched mtDNA. We compared this method to the commonly used PCR-based method. Mito-SiPE avoids false-heteroplasmy calls that occur when long-range PCR amplification is used for mtDNA enrichment. DiscussionWe have described a modified version of a long-established protocol for purifying mtDNA and have quantified the increased level of mitochondrial DNA post-enrichment in 7 different mouse tissues. This method will enable researchers to identify changes in low-frequency heteroplasmy without introducing PCR biases or NUMT contamination that are falsely identified as heteroplasmy when long-range PCR is used.

genomics↗

Newfoundland and Labrador: A mosaic founder population of an Irish and British diaspora from 300 years ago.

The founder population of Newfoundland and Labrador (NL) is a unique genetic resource, in part due to geographic and cultural isolation, where historical records describe a migration of European settlers primarily from Ireland and England to NL in the 18th and 19th centuries. Whilst its historical isolation, and increase prevalence of certain monogenic disorders, have been appreciated, the fine-scale genetic structure and ancestry of the population has not been well described. Understanding the genetic background on which functional, disease causing, genetic variation resides on would aid informed genetic mapping efforts in the Province. Here, we leverage dense genome-wide SNP data on 1,807 NL individuals to reveal fine-scale genetic structure in NL that is clustered around coastal communities and correlated with Christian denomination. We show that the majority of NL European ancestry can be traced back to the south-east and south-west of Ireland and England, respectively. We date a substantial population size bottleneck approximately 10-15 generations ago in NL, associated with increased haplotype sharing and autozygosity. Our results elucidate novel insights into the population history of NL and demonstrate evidence of a population conducive to further genetic studies and biomarker discovery. Significance StatementNewfoundland and Labrador (NL) has been identified as a founder population, though evidence of its magnitude and subsequent isolation is unclear. Here, analysis of 1,807 NL individuals demonstrates population structure associated with geographical isolation in coastal communities and religious denomination (Catholic or Protestant Christian). Further, NL European ancestry primarily descends from settlers from south-east Ireland and south-west England. This history is associated with increased sharing of longer haplotypes in NL, and NL-specific drift in some communities more than others, providing strong evidence of a founder event occurring about 10-15 generations ago. This study elucidates the detailed population structure of NL and shows enrichment for otherwise low frequency functional variants due to genetic drift useful for potential future biomarker discovery studies.

genetics↗