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Featured researches published by Connie Buran.


Environmental Health Perspectives | 2006

Neural tube defects and folate pathway genes : Family-based association tests of gene-gene and gene-environment interactions

Abee L. Boyles; Ashley V. Billups; Kristen L. Deak; Deborah G. Siegel; Lorraine Mehltretter; Susan Slifer; Alexander G. Bassuk; John A. Kessler; Michael C. Reed; H. Frederik Nijhout; Timothy M. George; David S. Enterline; John R. Gilbert; Marcy C. Speer; Joanna Aben; A. Alysworth; Joann Bodurtha; Timothy Brei; Connie Buran; Bermans J. Iskandar; Joy Ito; Nicole Lasarsky; Philip Mack; Elli Meeropol; Joanne Mackey; David G. McLone; W. J. Oakes; Cynthia M. Powell; Kathleen Sawin; Michael Walker

Background Folate metabolism pathway genes have been examined for association with neural tube defects (NTDs) because folic acid supplementation reduces the risk of this debilitating birth defect. Most studies addressed these genes individually, often with different populations providing conflicting results. Objectives Our study evaluates several folate pathway genes for association with human NTDs, incorporating an environmental cofactor: maternal folate supplementation. Methods In 304 Caucasian American NTD families with myelomeningocele or anencephaly, we examined 28 polymorphisms in 11 genes: folate receptor 1, folate receptor 2, solute carrier family 19 member 1, transcobalamin II, methylenetetrahydrofolate dehydrogenase 1, serine hydroxymethyl-transferase 1, 5,10-methylenetetrahydrofolate reductase (MTHFR), 5-methyltetrahydrofolate-homo-cysteine methyltransferase, 5-methyltetrahydrofolate-homocysteine methyltransferase reductase, betaine-homocysteine methyltransferase (BHMT), and cystathionine-beta-synthase. Results Only single nucleotide polymorphisms (SNPs) in BHMT were significantly associated in the overall data set; this significance was strongest when mothers took folate-containing nutritional supplements before conception. The BHMT SNP rs3733890 was more significant when the data were stratified by preferential transmission of the MTHFR rs1801133 thermolabile T allele from parent to offspring. Other SNPs in folate pathway genes were marginally significant in some analyses when stratified by maternal supplementation, MTHFR, or BHMT allele transmission. Conclusions BHMT rs3733890 is significantly associated in our data set, whereas MTHFR rs1801133 is not a major risk factor. Further investigation of folate and methionine cycle genes will require extensive SNP genotyping and/or resequencing to identify novel variants, inclusion of environmental factors, and investigation of gene–gene interactions in large data sets.


Pediatric Neurosurgery | 2000

Genetic studies in neural tube defects

Elizabeth C. Melvin; Timothy M. George; Gordon Worley; Amy Franklin; Joanne Mackey; Kristi D. Viles; Nishu Shah; Courtney R. Drake; David S. Enterline; David G. McLone; Jeffrey S. Nye; W. Jerry Oakes; Colleen McLaughlin; Marion L. Walker; Paula Peterson; Timothy Brei; Connie Buran; Joanna Aben; Bonnie Ohm; Iskandar Bermans; Mazin B. Qumsiyeh; J. M. Vance; Margaret A. Pericak-Vance; Marcy C. Speer

Neural tube defects (NTD) are one of the most common birth defects and are caused by both environmental and genetic factors. The approach to identifying the genes predisposing to NTD, through linkage analysis and candidate gene analysis, is reviewed along with characteristics of a large, nationally ascertained cohort of families. Results from specific assessments of p53, PAX3 and MTHFR failed to suggest that these genes play a major role in NTD development in these families. Advances in genetic laboratory and statistical techniques have made this a prime opportunity for investigation into the causes of complex disorders, such as NTD. However, traditional approaches may prove to be challenging due to the difficulty of ascertaining samplable multiplex families.


Clinical Genetics | 1999

Possible interaction of genotypes at cystathionine β‐synthase and methylenetetrahydrofolate reductase (MTHFR) in neural tube defects

Marcy C. Speer; Jeffrey S. Nye; David G. McLone; Gordon Worley; Elizabeth C. Melvin; Kristi D. Viles; Amy Franklin; Courtney R. Drake; Joanne Mackey; Timothy M. George; David S. Enterline; Herbert E. Fuchs; Robert D. Fitch; Jeffery M. Vance; Margaret A. Pericak-Vance; W. Jerry Oakes; Colleen McLaughlin; Cindy Powell; Arthur S. Aylsworth; Marion L. Walker; Paula Peterson; Timothy Brei; Connie Buran; Bonnie Ohm; Bermans J. Iskandar

Neural tube defects are a common, complex disorder with genetic and environmental components to risk. We investigated the previously reported interaction between homozygosity for the thermolabile variant at the methylenetetrahydrofolate reductase and heterozygosity for the 844ins68 allele at the cystathionine β‐synthase loci in cases with lumbosacral myelomeningocele and their parents. Using control allele frequencies from our sample pooled with those published in the literature, we confirm a marginally significant interaction at these two loci. This finding suggests that additional, larger studies are warranted to investigate this possible interaction in more detail.


Birth Defects Research Part A-clinical and Molecular Teratology | 2008

Further evidence for a maternal genetic effect and a sex-influenced effect contributing to risk for human neural tube defects.

Kristen L. Deak; Deborah G. Siegel; Timothy M. George; Simon G. Gregory; Allison E. Ashley-Koch; Marcy C. Speer; Joanna Aben; Arthur S. Aylsworth; Cynthia M. Powell; Joanne Mackey; Gordon Worley; Timothy Brei; Connie Buran; Joann Bodurtha; Kathleen Sawin; Mark S. Dias; Philip Mack; Elli Meeropol; Nicole Lasarsky; David G. McLone; Joy Ito; W. Jerry Oakes; Marion L. Walker; Paula Peterson; Bermans J. Iskandar

BACKGROUND Neural tube defects (NTDs), including spina bifida and anencephaly, are the second most common birth defect with an incidence of 1/1000. Genetic factors are believed to contribute to NTD risk and family-based studies can be useful for identifying such risk factors. METHODS We ascertained 1066 NTD families (1467 affected patients), including 307 multiplex NTD families. We performed pedigree analysis to describe the inheritance patterns, pregnancy outcomes, and recurrence risks to relatives of various types. RESULTS Myelomeningocele or spina bifida (66.9%) and cranial defects (17.7%) were the most common NTD subtypes observed. The overall male:female ratio for affected individuals was 0.82, and there were even fewer males among individuals with an upper level NTD (0.62). Among twins, 2 of the 5 monozygotic twins and only 3 of 35 dizygotic twins were concordant, while 27% of the same sex twins were concordant, but none of the different sex twins. The estimated 6.3% recurrence risk to siblings (CI 0.04-0.08) is consistent with previous reports. Families with two or more affected individuals show a higher proportion of female transmitters (p = 0.0002). Additionally, the number of affected relatives in maternal compared to paternal lineages was more than double (p = 0.006). There were significantly more miscarriages, infant deaths, and stillborn pregnancies of the maternal aunts and uncles (p < 0.0001) and of first cousins (p = 0.04). CONCLUSIONS Our data provide several lines of evidence consistent with a maternal effect, as well as a sex-influenced effect, in the etiology of NTDs.


Clinical Genetics | 2003

Updated investigations of the role of methylenetetrahydrofolate reductase in human neural tube defects

Evadnie Rampersaud; Elizabeth C. Melvin; Deborah G. Siegel; Lorraine Mehltretter; Margaret E. Dickerson; Timothy M. George; David S. Enterline; Jeffrey S. Nye; Marcy C. Speer; Joanna Aben; Arthur S. Aylsworth; Cynthia M. Powell; Timothy Brei; Connie Buran; Joann Bodurtha; Kathleen Sawin; Mark S. Dias; Bermans J. Iskandar; Bonnie Ohm; Nicole Lasarsky; David G. McLone; Joy Ito; W. Jerry Oakes; Marion L. Walker; Paula Peterson

Folate supplementation appears to reduce the risk for neural tube defects (NTDs). Methylenetetrahydrofolate reductase (MTHFR) is a candidate gene in the folate metabolism pathway that has been extensively studied in different human populations. We examined the risk associated with having the thermolabile variant (TT) of MTHFR in a study of 175 American Caucasians with NTDs and their families. We found a significant association in patients compared with 195 unrelated controls [odds ratio (OR) = 2.13, 95% confidence interval (95% CI) = 1.11–4.09)], but not in mothers (OR = 1.29, 95% CI = 0.622–2.67) or in fathers (OR = 1.45, 95% CI = 0.681–3.09). We found no evidence for unequal transmission from parents to an affected child (p > 0.10). We failed to find a previously reported association for a combined haplotype for MTHFR and cystathionine β‐synthase, except in subjects with NTDs compared with 559 pooled controls (OR = 2.87, 95% CI = 1.03–8.03). We found no evidence for an association for a novel CA‐repeat polymorphism identified in a gene closely linked to MTHFR (p > 0.10). Our studies continue to suggest that additional candidate genes other than MTHFR may be responsible for an increased risk to NTD in some American Caucasian families. 


Journal of Medical Genetics | 2005

Whole genomewide linkage screen for neural tube defects reveals regions of interest on chromosomes 7 and 10

Evadnie Rampersaud; Alexander G. Bassuk; David S. Enterline; Timothy M. George; Deborah G. Siegel; Elizabeth C. Melvin; Joanna Aben; Jason D. Allen; Arthur S. Aylsworth; Timothy Brei; Joann Bodurtha; Connie Buran; L. E. Floyd; Preston Hammock; Bermans J. Iskandar; Joy Ito; John A. Kessler; N. Lasarsky; Philip Mack; Joanne Mackey; David G. McLone; Elli Meeropol; Lorraine Mehltretter; Laura E. Mitchell; W. J. Oakes; Jeffrey S. Nye; Cynthia M. Powell; K. Sawin; R. Stevenson; Marion L. Walker

Neural tube defects (NTDs) are the second most common birth defects (1 in 1000 live births) in the world. Periconceptional maternal folate supplementation reduces NTD risk by 50–70%; however, studies of folate related and other developmental genes in humans have failed to definitively identify a major causal gene for NTD. The aetiology of NTDs remains unknown and both genetic and environmental factors are implicated. We present findings from a microsatellite based screen of 44 multiplex pedigrees ascertained through the NTD Collaborative Group. For the linkage analysis, we defined our phenotype narrowly by considering individuals with a lumbosacral level myelomeningocele as affected, then we expanded the phenotype to include all types of NTDs. Two point parametric analyses were performed using VITESSE and HOMOG. Multipoint parametric and nonparametric analyses were performed using ALLEGRO. Initial results identified chromosomes 7 and 10, both with maximum parametric multipoint lod scores (Mlod) >2.0. Chromosome 7 produced the highest score in the 24 cM interval between D7S3056 and D7S3051 (parametric Mlod 2.45; nonparametric Mlod 1.89). Further investigation demonstrated that results on chromosome 7 were being primarily driven by a single large pedigree (parametric Mlod 2.40). When this family was removed from analysis, chromosome 10 was the most interesting region, with a peak Mlod of 2.25 at D10S1731. Based on mouse human synteny, two candidate genes (Meox2, Twist1) were identified on chromosome 7. A review of public databases revealed three biologically plausible candidates (FGFR2, GFRA1, Pax2) on chromosome 10. The results from this screen provide valuable positional data for prioritisation of candidate gene assessment in future studies of NTDs.


Human Genetics | 2005

SNPs in the neural cell adhesion molecule 1 gene (NCAM1) may be associated with human neural tube defects

Kristen L. Deak; Abee L. Boyles; Heather Etchevers; Elizabeth C. Melvin; Deborah G. Siegel; Felicia L. Graham; Susan Slifer; David S. Enterline; Timothy M. George; Michel Vekemans; David R. McClay; Alexander G. Bassuk; John A. Kessler; Elwood Linney; John R. Gilbert; Marcy C. Speer; Joanna Aben; Arthur S. Aylsworth; Cynthia M. Powell; Joanne Mackey; Gordon Worley; Timothy Brei; Connie Buran; Joann Bodurtha; Kathleen Sawin; Mark S. Dias; Philip Mack; Elli Meeropol; Nicole Lasarsky; David G. McLone

Neural tube defects (NTDs) are common birth defects, occurring in approximately 1/1,000 births; both genetic and environmental factors are implicated. To date, no major genetic risk factors have been identified. Throughout development, cell adhesion molecules are strongly implicated in cell–cell interactions, and may play a role in the formation and closure of the neural tube. To evaluate the role of neural cell adhesion molecule 1 (NCAM1) in risk of human NTDs, we screened for novel single-nucleotide polymorphisms (SNPs) within the gene. Eleven SNPs across NCAM1 were genotyped using TaqMan. We utilized a family-based approach to evaluate evidence for association and/or linkage disequilibrium. We evaluated American Caucasian simplex lumbosacral myelomeningocele families (n=132 families) using the family based association test (FBAT) and the pedigree disequilibrium test (PDT). Association analysis revealed a significant association between risk for NTDs and intronic SNP rs2298526 using both the FBAT test (P=0.0018) and the PDT (P=0.0025). Using the HBAT version of the FBAT to look for haplotype association, all pairwise comparisons with SNP rs2298526 were also significant. A replication study set, consisting of 72 additional families showed no significant association; however, the overall trend for overtransmission of the less common allele of SNP rs2298526 remained significant in the combined sample set. In addition, we analyzed the expression pattern of the NCAM1 protein in human embryos, and while NCAM1 is not expressed within the neural tube at the time of closure, it is expressed in the surrounding and later in differentiated neurons of the CNS. These results suggest variations in NCAM1 may influence risk for human NTDs.


Birth Defects Research Part A-clinical and Molecular Teratology | 2008

Refinement of 2q and 7p loci in a large multiplex NTD family

Demetra S. Stamm; Deborah G. Siegel; Lorraine Mehltretter; Jessica J. Connelly; Alison Trott; Nathen J. Ellis; Victoria Zismann; Dietrich A. Stephan; Timothy M. George; Michel Vekemans; Allison E. Ashley-Koch; John R. Gilbert; Simon G. Gregory; Marcy C. Speer; Joanna Aben; Arthur S. Aylsworth; Cynthia M. Powell; Joanne Mackey; Gordon Worley; Timothy Brei; Connie Buran; Joann Bodurtha; Kathleen Sawin; Philip Mack; Elli Meeropol; Nicole Lasarsky; David G. McLone; Joy Ito; W. Jerry Oakes; Marion L. Walker

BACKGROUND NTDs are considered complex disorders that arise from an interaction between genetic and environmental factors. NTD family 8776 is a large multigenerational Caucasian family that provides a unique resource for the genetic analysis of NTDs. Previous linkage analysis using a genome-wide SNP screen in family 8776 with multipoint nonparametric mapping methods identified maximum LOD* scores of approximately 3.0 mapping to 2q33.1-q35 and 7p21.1-pter. METHODS We ascertained an additional nuclear branch of 8776 and conducted additional linkage analysis, fine mapping, and haplotyping. Expression data from lymphoblast cell lines were used to prioritize candidate genes within the minimum candidate intervals. Genomic copy number changes were evaluated using BAC tiling arrays and subtelomeric fluorescent in situ hybridization probes. RESULTS Increased evidence for linkage was observed with LOD* scores of approximately 3.3 for both regions. Haplotype analyses narrowed the minimum candidate intervals to a 20.3 Mb region in 2q33.1-q35 between markers rs1050347 and D2S434, and an 8.3 Mb region in 7p21.1-21.3 between a novel marker 7M0547 and rs28177. Within these candidate regions, 16 genes were screened for mutations; however, no obvious causative NTD mutation was identified. Evaluation of chromosomal aberrations using comparative genomic hybridization arrays, subtelomeric fluorescent in situ hybridization, and copy number variant detection techniques within the 2q and 7p regions did not detect any chromosomal abnormalities. CONCLUSIONS This large NTD family has identified two genomic regions that may harbor NTD susceptibility genes. Ascertainment of another branch of family 8776 and additional fine mapping permitted a 9.1 Mb reduction of the NTD candidate interval on chromosome 7 and 37.3 Mb on chromosome 2 from previously published data. Identification of one or more NTD susceptibility genes in this family could provide insight into genes that may affect other NTD families.


Birth Defects Research Part A-clinical and Molecular Teratology | 2005

Analysis of ALDH1A2, CYP26A1, CYP26B1, CRABP1, and CRABP2 in human neural tube defects suggests a possible association with alleles in ALDH1A2

Kristen L. Deak; Margaret E. Dickerson; Elwood Linney; David S. Enterline; Timothy M. George; Elizabeth C. Melvin; Felicia L. Graham; Deborah G. Siegel; Preston Hammock; Lorraine Mehltretter; Alexander G. Bassuk; John A. Kessler; John R. Gilbert; Marcy C. Speer; Joanna Aben; Arthur S. Aylsworth; Cynthia M. Powell; Joanne Mackey; Gordon Worley; Timothy Brei; Connie Buran; Joann Bodurtha; Kathleen Sawin; Mark S. Dias; Philip Mack; Elli Meeropol; Nicole Lasarsky; David G. McLone; Joy Ito; W. Jerry Oakes


American Journal of Medical Genetics | 2002

T locus shows no evidence for linkage disequilibrium or mutation in American Caucasian neural tube defect families

Marcy C. Speer; Elizabeth C. Melvin; Kristi D. Viles; Kim A. Bauer; Evadnie Rampersaud; Courtney R. Drake; Timothy M. George; David S. Enterline; Joanne Mackey; Gordon Worley; John R. Gilbert; Jeffery S. Nye; Joanna Aben; Arthur S. Aylsworth; Cynthia M. Powell; Timothy Brei; Connie Buran; Joann Bodurtha; Kathleen Sawin; Mark S. Dias; Bennans Iskandar; Bonnie Ohm; Nicole Lasarsky; David G. McLone; Joy Ito; W. Jerry Oakes; Marion L. Walker; Paula Peterson

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David G. McLone

Children's Memorial Hospital

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Timothy M. George

University of Texas at Austin

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Arthur S. Aylsworth

University of North Carolina at Chapel Hill

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Cynthia M. Powell

University of North Carolina at Chapel Hill

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Joann Bodurtha

Johns Hopkins University

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