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Informativity assessment for biallelic single nucleotide polymorphisms.

Common single nucleotide polymorphisms (SNPs) have the potential to provide a widely used means of simple and robust kinship testing. Suitable measures of polymorphism informativity are therefore required in order to guide the search for the most efficient combinations of SNPs. In the context of kinship testing, such measures should preferably be related to Z, the power of excluding false paternity in trios comprising mother, child and alleged father. Since the bulk of SNPs is expected to be biallelic, a Z-related measure of informativity can be defined for SNPs in a particularly elegant manner: allele frequency vectors of sets of n biallelic SNPs that give rise to the same Z value approximate to an n-dimensional sphere around (1/2,...,1/2). Owing to this relationship, it can be shown that the number N of maximally informative SNPs (i.e., of SNPs with allele frequencies 1/2), providing the same Z value as a given set of n SNPs, approximates to 2n times the average gene diversity of the latter. Linear regression analysis of a large number of simulated SNP sets reveals that only a minor linear correction of Nis required for large n. Since Z= 1-(13/16)N, Ncan also be calculated easily for multiallelic markers with known Z. The "equivalent number of maximally informative SNPs", N, is therefore suggested as a measure of marker informativity in the context of kinship testing.

Alleles↗

Accuracy of genotyping for single nucleotide polymorphisms by a microarray-based single nucleotide polymorphism typing method involving hybridization of short allele-specific oligonucleotides.

Advances in technologies for identifying genetic polymorphisms rapidly and accurately will dramatically accelerate the discovery of disease-related genes. Among a variety of newly described methods for rapid typing of single-nucleotide polymorphisms (SNPs), gene detection using DNA microarrays is gradually achieving widespread use. This method involves the use of short (11- to 13-mer) allele-specific oligonucleotides. This method allows simultaneous analysis of many SNPs in DNAs from a large number of individuals, in a single experiment. In this work, we evaluated the accuracy of a new microarray-based short allele-specific oligonucleotide (ASO) hybridization method. There is a 96-well formatted array on a single plate, in which up to 256 spots are included in each well. Fluorescent probes for our experiments were produced by multiplex PCR amplification often target SNP-containing regions. We genotyped 192 individuals across a panel of ten single base variations, which included an insertion/deletion polymorphism. For comparison, we genotyped the same individuals for the same SNPs by the method of single-base extension with fluorescence detection. The typing accuracies of the microarray-based PCR-ASO and single-base extension methods were calculated as 99.9% and 99.1%, respectively, on the basis of genotyping results determined by direct sequencing. We conclude that the microarray-based hybridization method using short ASO probes represents a potential breakthrough technology for typing large numbers of SNPs rapidly and efficiently.

Alleles↗

Simultaneous detection of multiple single nucleotide polymorphism by single-strand-specific nuclease and PNA probe.

The combination of PNA (peptide nucleic acid) and single-strand-specific nuclease have been used for detection of single nucleotide polymorphisms (SNPs). When DNA is perfectly complementary to PNA, it is protected from digestion by the nuclease. If there exists a single-base mismatch between them, however, the DNA is completely digested. These differences are visualized by using 3,3'-diethylthiadicarbocyanine (DiSc2(5)), which changes its color from blue to purple upon binding to PNA/DNA hybrids. In terms of this methodology, homozygous and heterozygous SNPs in apoE gene have been successfully analyzed. Furthermore, the multiplex SNPs are simultaneously genotyped. This technique provides a simple, straightforward, facile, and visual genetic screening, with no need for expensive and complicated equipment.

Base Sequence↗

Common polymorphisms (single-nucleotide polymorphisms SNP+45 and SNP+276) of the adiponectin gene regulate serum adiponectin concentrations and blood pressure in young Finnish men.

Epidemiologic studies have shown that serum level of adiponectin, a circulating protein secreted by adipocytes, predicts the risk of type 2 diabetes and cardiovascular events. Two single-nucleotide polymorphisms (SNPs) at the adiponectin locus (T45G or G276T) of the adiponectin gene (APM1) have been associated with insulin resistance, low serum adiponectin levels, and diabetes. In the present study, the association of these polymorphisms with serum adiponectin level and insulin resistance-associated risk factors was investigated. To this aim, SNP+45 and SNP+276 of APM1 were genotyped in 252 young Finnish men. Serum adiponectin level (p < 0.001) and diastolic blood pressure (p = 0.031) were significantly higher in subjects with the T276T genotype of APM1 compared to those with the G276T or G276G genotypes. Mean diastolic blood pressure among the T276T subjects was 80 mmHg and that in subjects with the G276G and G276T genotypes below 75 mmHg. An interaction between triglycerides, diastolic blood pressure, quantitative insulin sensitivity check index, and SNP276 with regard to serum adiponectin level was found. After adjustment for other covariates, the interaction between triglycerides and SNP276 remained statistically significant (p = 0.009). Among subjects with the T276T genotype, an increase in triglyceride level was associated with a decrease in adiponectin concentration. This result was not observed in other genotype groups. SNP+45 was not significantly related to serum adiponectin concentration, but high-density lipoprotein (HDL) cholesterol tended to be higher in subjects with the T45T genotype (p = 0.051) compared to subjects with the X45G genotype. In conclusion, the T276T genotype of the adiponectin gene was associated with elevated serum adiponectin level and diastolic blood pressure among young Finnish men.

Adiponectin↗

Heated oligonucleotide ligation assay (HOLA): an affordable single nucleotide polymorphism assay.

Most single nucleotide polymorphism (SNP) detection requires expensive equipment and reagents. The oligonucleotide ligation assay (OLA) is an inexpensive SNP assay that detects ligation between a biotinylated "allele-specific detector" and a 3' fluorescein-labeled "reporter" oligonucleotide. No ligation occurs unless the 3' detector nucleotide is complementary to the SNP nucleotide. The original OLA used chemical denaturation and neutralization. Heated OLA (HOLA) instead uses a thermal stable ligase and cycles of denaturing and hybridization for ligation and SNP detection. The cost per genotype is approximately US$1.25 with two-allele SNPs or approximately US$1.75 with three-allele SNPs. We illustrate the development of HOLA for SNP detection in the Early Trypsin and Abundant Trypsin loci in the mosquito Aedes aegypti (L.) and at the a-glycerophosphate dehydrogenase locus in the mosquito Anopheles gambiae s.s.

Aedes↗

The relationship between 5-fluorouracil sensitivity and single nucleotide polymorphisms of the orotate phosphoribosyl transferase gene in colorectal cancer.

Orotate phosphoribosyl transferase (OPRT) is an enzyme playing an important role in exertion of the effect of 5-fluorouracil (5-FU). A type of gene polymorphism, single nucleotide polymorphism (SNP), is considered to be a factor affecting individual differences in exertion of drug effects, and its analysis has recently made progress. We investigated the correlation between SNP of OPRT and 5-FU sensitivity in colon and rectal cancers. The subjects were 31 patients with colorectal cancer who underwent surgical excision between December 2003 and July 2004 at our department. Of SNP of OPRT, 638G/C, 1050T/A, and 1336A/G located in the coding region were analyzed by invader assay. The growth inhibition rate (% IR) of colorectal cancer by 5-FU was obtained by the CDDST method, and 5-FU sensitivity was compared among strains (wild-, homo-, and hetero-types) of each polymorphism. There was no relationship between the strains and 5-FU sensitivity in any of the SNPs. The investigated SNPs of OPRT may have no major influence on 5-FU sensitivity. However, there are many unknown factors in the relationship between SNP of OPRT and 5-FU sensitivity, and SNP analysis of other regions is necessary.

Aged↗

Promoter activity of human tissue inhibitor of metalloproteinase 2 gene with novel single nucleotide polymorphisms.

OBJECTIVE: The single nucleotide polymorphism (SNP) -418G > C in the TIMP2 gene promoter region has been shown to be associated with in chronic obstructive pulmonary disease (COPD). The purpose of this study was to search for novel single nucleotide polymorphism (SNP) in the TIMP2 promoter region around the -418G > C locus, and to investigate whether any of these SNP, including -418G > C, had an influence on TIMP2 transcription activity. METHODOLOGY: DNA sequencing was performed on a 689 base-pair polymerase chain reaction fragment of the promoter region. The novel SNP were characterized and genotype analysis was performed for COPD and control subjects. A reporter gene assay was performed using the wild-type promoter (-418G/-177C/+34C) and the mutant-type promoter (-418C/-177T/+34A). RESULTS: Nine novel SNP were identified. The SNP -177C > T and +34C > A were in complete linkage disequilibrium with -418G > C. The other seven SNP were not associated with COPD. No significant difference was detected in the reporter gene assay between the activities of the wild-type and the mutant-type promoters. CONCLUSIONS: The SNP -418G > C, -177C > T and +34C > A, might not themselves be functional from a transcriptional point of view in the development of COPD, but may be in linkage disequilibrium with other functional polymorphisms.

Base Pairing↗

MagSNiPer: a new single nucleotide polymorphism typing method based on single base extension, magnetic separation, and chemiluminescence.

We have developed a new method for typing single nucleotide polymorphisms (SNPs), MagSNiPer, based on single base extension, magnetic separation, and chemiluminescence. Single base nucleotide extension reaction is performed with a biotinylated primer whose 3' terminus is contiguous to the SNP site with a tag-labeled ddNTP. Then the primers are captured by magnetic-coated beads with streptavidin, and unincorporated labeled ddNTP is removed by magnetic separation. The magnetic beads are incubated with anti-tag antibody conjugated with alkaline phosphatase. After the removal of excess conjugates by magnetic separation, SNP typing is performed by measuring chemiluminescence. The incorporation of labeled ddNTP is monitored by chemiluminescence induced by alkaline phosphatase. MagSNiPer is a simple and robust SNP typing method with a wide dynamic range and high sensitivity. Using MagSNiPer, we could perform SNP typing with as little as 10(-17) mol of template DNA.

Adult↗

Single-nucleotide polymorphism mapping.

Single-nucleotide polymorphism (SNP) mapping is the easiest and most reliable way to map genes in Caenorhabditis elegans. SNPs are extremely dense and usually have no associated phenotype, making them ideal markers for mapping. SNP mapping has three steps. First, recombinant mutant animals are generated over a polymorphic strain (usually CB4856) using standard genetic techniques. Second, the genotype of these animals at SNP loci is determined using one of a variety of SNP detection technologies. Third, linkage between the mutant and one or more SNPs is used to position the mutant on the chromosome relative to the SNPs. This chapter presents a detailed procedure for generating recombinant animals, for assaying SNPs using restriction enzymes, and for analyzing mapping data.

Animals↗

An efficient procedure for genotyping single nucleotide polymorphisms.

Analysis of single nucleotide polymorphisms (SNPs) has been and will be increasingly utilized in various genetic disciplines, particularly in studying genetic determinants of complex diseases. Such studies will be facilitated by rapid, simple, low cost and high throughput methodologies for SNP genotyping. One such method is reported here, named tetra-primer ARMS-PCR, which employs two primer pairs to amplify, respectively, the two different alleles of a SNP in a single PCR reaction. A computer program for designing primers was developed. Tetra-primer ARMS-PCR was combined with microplate array diagonal gel electrophoresis, gaining the advantage of high throughput for gel-based resolution of tetra-primer ARMS-PCR products. The technique was applied to analyse a number of SNPs and the results were completely consistent with those from an independent method, restriction fragment length polymorphism analysis.

DNA↗

Single-nucleotide polymorphism detection using nanomolar nucleotides and single-molecule fluorescence.

We have exploited three methods for discriminating single-nucleotide polymorphisms (SNPs) by detecting the incorporation or otherwise of labeled dideoxy nucleotides at the end of a primer chain using single-molecule fluorescence detection methods. Good discrimination of incorporated vs free nucleotide may be obtained in a homogeneous assay (without washing steps) via confocal fluorescence correlation spectroscopy or by polarization anisotropy obtained from confocal fluorescence intensity distribution analysis. Moreover, the ratio of the fluorescence intensities on each polarization channel may be used directly to discriminate the nucleotides incorporated. Each measurement took just a few seconds and was done in microliter volumes with nanomolar concentrations of labeled nucleotides. Since the confocal volumes interrogated are approximately 1fL and the reaction volume could easily be lowered to nanoliters, the possibility of SNP analysis with attomoles of reagents opens up a route to very rapid and inexpensive SNP detection. The method was applied with success to the detections of SNPs that are known to occur in the BRCA1 and CFTR genes.

Cystic Fibrosis Transmembrane Conductance Regulato↗

Flow cytometry-based minisequencing: a new platform for high-throughput single-nucleotide polymorphism scoring.

Single-nucleotide polymorphisms (SNPs) are the most abundant type of human genetic variation. These variable sites are present at high density in the genome, making them powerful tools for mapping and diagnosing disease-related alleles. We have developed a sensitive and rapid flow cytometry-based assay for the multiplexed analysis of SNPs based on polymerase-mediated primer extension, or minisequencing, using microspheres as solid supports. The new method involves subnanomolar concentrations of sample in small volumes ( approximately 10 microl) which can be analyzed at rates of one sample per minute or faster, without a wash step. Further, genomic analysis using multiplexing microsphere arrays (GAMMArrays), enables the simultaneous analysis of dozens, and potentially hundreds of SNPs per sample. We have tested the new method by genotyping the Glu69 variant from the HLA DPB1 locus, a SNP associated with chronic beryllium disease, as well as HLA DPA1 alleles using the multiplexed method. The results demonstrate the sensitivity and accuracy of flow cytometry-based minisequencing, a powerful new tool for genome- and global-scale SNP analysis.

Base Sequence↗

A general approach to single-nucleotide polymorphism discovery.

Single-nucleotide polymorphisms (SNPs) are the most abundant form of human genetic variation and a resource for mapping complex genetic traits. The large volume of data produced by high-throughput sequencing projects is a rich and largely untapped source of SNPs (refs 2, 3, 4, 5). We present here a unified approach to the discovery of variations in genetic sequence data of arbitrary DNA sources. We propose to use the rapidly emerging genomic sequence as a template on which to layer often unmapped, fragmentary sequence data and to use base quality values to discern true allelic variations from sequencing errors. By taking advantage of the genomic sequence we are able to use simpler yet more accurate methods for sequence organization: fragment clustering, paralogue identification and multiple alignment. We analyse these sequences with a novel, Bayesian inference engine, POLYBAYES, to calculate the probability that a given site is polymorphic. Rigorous treatment of base quality permits completely automated evaluation of the full length of all sequences, without limitations on alignment depth. We demonstrate this approach by accurate SNP predictions in human ESTs aligned to finished and working-draft quality genomic sequences, a data set representative of the typical challenges of sequence-based SNP discovery.

Algorithms↗

The predicted impact of coding single nucleotide polymorphisms database.

Nonsynonymous single nucleotide polymorphisms (nsSNP) have the potential to affect the structure or function of expressed proteins and are, therefore, likely to represent modifiers of inherited susceptibility. We have classified and catalogued the predicted functionality of nsSNPs in genes relevant to the biology of cancer to facilitate sequence-based association studies. Candidate genes were identified using targeted search terms and pathways to interrogate the Gene Ontology Consortium database, Kyoto Encyclopedia of Genes and Genomes database, Iobion's Interaction Explorer PathwayAssist Program, National Center for Biotechnology Information Entrez Gene database, and CancerGene database. A total of 9,537 validated nsSNPs located within annotated genes were retrieved from National Center for Biotechnology Information dbSNP Build 123. Filtering this list and linking it to 7,080 candidate genes yielded 3,666 validated nsSNPs with minor allele frequencies > or =0.01 in Caucasian populations. The functional effect of nsSNPs in genes with a single mRNA transcript was predicted using three computational tools-Grantham matrix, Polymorphism Phenotyping, and Sorting Intolerant from Tolerant algorithms. The resultant pool of 3,009 fully annotated nsSNPs is accessible from the Predicted Impact of Coding SNPs database at http://www.icr.ac.uk/cancgen/molgen/MolPopGen_PICS_database.htm. Predicted Impact of Coding SNPs is an ongoing project that will continue to curate and release data on the putative functionality of coding SNPs.

Algorithms↗

Neighboring-nucleotide effects on single nucleotide polymorphisms: a study of 2.6 million polymorphisms across the human genome.

We investigated substitution patterns and neighboring-nucleotide effects for 2,576,903 single nucleotide polymorphisms (SNPs) publicly available through the National Center for Biotechnology Information (NCBI). The proportions of substitutions were A/G, 32.77%; C/T, 32.81%; A/C, 8.98%; G/T, 9.06%; A/T, 7.46%; and C/G, 8.92%. The two nucleotides immediately neighboring the variable site showed major deviation from genome-wide and chromosome-specific expectations, although lesser biases extended as far as 200 bp. On the 5' side, the biases for A, C, G, and T were 1.43%, 4.91%, -1.70%, and -4.62%, respectively. These biases were -4.44%, -1.59%, 5.05%, and 0.99%, respectively, on the 3' side. The neighboring-nucleotide patterns for transitions were dominated by the hypermutability effects of CpG dinucleotides. Transitions were more common than transversions, and the probability of a transversion increased with increasing A + T content at the two adjacent sites. Neighboring-nucleotide biases were not consistent among chromosomes, with Chromosomes 19 and 22 standing out as different from the others. These data provide genome-wide information about the effects of neighboring nucleotides on mutational and evolutionary processes giving rise to contemporary patterns of nucleotide occurrence surrounding SNPs.

Base Composition↗

Mass spectrometry-based loss of heterozygosity analysis of single-nucleotide polymorphism loci in paraffin embedded tumors using the MassEXTEND assay: single-nucleotide polymorphism loss of heterozygosity analysis of the protein tyrosine phosphatase receptor type J in familial colorectal cancer.

As the number of identified single-nucleotide polymorphisms (SNPs) increases, high-throughput methods are required to characterize the informative loci in large patient series. We investigated the feasibility of MassEXTEND LOH analysis using Sequenom's MassArray RT software, a mass spectrometry method, as an alternative to determine loss of heterozygosity (LOH). For this purpose, we studied the c.827A>C SNP (1176A>C p.Gln276Pro) in protein tyrosine phosphatase receptor type-J (PTPRJ), which is frequently deleted in human cancers. In sporadic colorectal cancer (CRC), c.827A>C showed allele-specific LOH of the c.827A allele, which is important because LOH of PTPRJ may be an early event during sporadic CRC. To elucidate the impact of this low-penetrance gene on familial CRC, we studied c.827A>C in 222 familial CRC cases and 156 controls. In 6.2% of the A/C genotyped CRC samples, LOH of c.827A was observed with MassEXTEND LOH analysis and confirmed by conventional sequencing. Furthermore, a case with LOH of c.827A showed no LOH in 22 synchronously detected adenomas, including one with malignant transformation. The importance of the PTPRJ- c.827A>C SNP appears to be limited in familial CRC. We conclude that MassEXTEND LOH analysis (using Sequenom's MassARRAY RT software) is a sensitive, high-throughput, and cost-effective method to screen SNP loci for LOH in formalin-fixed paraffin-embedded tissue.

Aged↗

Utilizing genomic DNA purified from clotted blood samples for single nucleotide polymorphism genotyping.

CONTEXT: Linking single nucleotide polymorphisms to disease etiology is expected to result in a substantial increase in the number of genetic tests available and performed at clinical laboratories. Whole blood serves as the most common DNA source for these tests. Because the number of blood samples rises with the number of genetic tests performed, alternative DNA sources will become important. One such alternative source is clotted blood, a by-product of serum extraction. Efficiently using an already procured blood sample would limit the overall number of samples processed by clinical laboratories. OBJECTIVE: To determine if DNA purified from clotted blood can be effectively used for single nucleotide polymorphism genotyping. DESIGN: DNA was purified from the clotted blood of 15 donors. Single nucleotide polymorphism genotyping for the methylenetetrahydrofolate reductase and factor V Leiden mutations was performed with each DNA sample by 2 independent methods. RESULTS: High-quality DNA was obtained from each of the 15 individual clotted blood samples as demonstrated by UV spectrophotometric analysis, gel electrophoresis, and polymerase chain reaction amplification. The DNA was used successfully to obtain genotype data from both the methylenetetrahydrofolate reductase and factor V single nucleotide polymorphism assays for all samples tested. CONCLUSIONS: Clotted blood is a clinically abundant sample type that can be used as a source of high-quality DNA for single nucleotide polymorphism genotyping.

DNA↗

[A method of haplotype analysis for multiple single-nucleotide polymorphisms].

Haplotypes from multiple single nucleotide polymorphisms(SNPs) spaced in longer DNA were constructed by multi-step PCR and DNA sequencing methods. Two allele-specific primers were synthesized and used for long DNA fragments (approximately 10 kb) amplification from human genome DNA. Fragments within these long DNA fragments were amplified by using these PCR products as templates in the second round PCR. The second round PCR products were subsequently sequenced. Haplotype construction was performed based on the character of nucleotides at the 3'-end of the allele-specific primers and the sequencing results from the second round PCR products. The DNA fragment (approximately 16 kb) from promoter to exon 4 of lipoprotein lipase (LPL) gene was amplified by allele-specific primers,and the DNA fragments including exon 2 or exon 3 of LPL gene were amplified and sequenced. A SNP of +13,557G-->A within intron 2 was identified. Four haplotypes including -421 G/ +13557G/ + 15222A, - 421A/ +13557G/ +15222A, -421G/ +13557G/ + 15222G, - 421G/+ 13557A/ +15222A were detected. The method is effective and relatively simple for construction of haplotypes from multiple single nucleotide polymorphisms.

Alleles↗