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Zsolt Ronai

Publications and source records attributed to Zsolt Ronai.

17 recordsLinked to original sources

Relationship between copy number of genes (C4A, C4B) encoding the fourth component of complement and the clinical course of hereditary angioedema (HAE).

In order to study if in patients with hereditary angioedema (HAE), copy number of the two genes (C4A and C4A) encoded in the central region of main histocompatibility complex (MHC) influences the diagnostically important C4 serum concentration as well as the clinical course of the disease, we determined copy number of the complement C4A and C4B genes in DNA samples of 95 HAE patients and 246 healthy controls. Distribution of both the C4A and C4B copy numbers significantly (p=0.0183 and 0.0318, respectively) differed between the two groups, the most marked difference we observed was the lower frequency of the high (3 or 4) C4A copy numbers in the patients. As it expected, the dosage of both C4A and C4B genes positively correlated to the longitudinally measured serum C4 concentrations. Moreover, we found an unexpected clinical correlation with the dosage of the C4B gene. The course of the disease was milder in the 9/95 patients carrying 3 or 4 copies of C4B gene, compared to the rest of patients, i.e. diagnosis was established at significantly (p=0.0052) older age (36.0 (31.0-39.5)) years versus 20.5 (7.5-31.5 years), bi-yearly attack rate was significantly (p=0.0145) lower (1.0 (0.0-11.0)) versus 11.0 (3.5-21.5), and the over-all activity of the classical pathway and the enzyme-inhibitor activity of the C1-inhibitor (C1-INH) was closer to the normal values. These observations indicate that high copy number of the C4B gene can be a protective factor against disease severity in HAE and therefore its determination is warranted.

Adolescent↗

Multicapillary electrophoresis analysis of single-nucleotide sequence variations in the deoxycytidine kinase gene.

BACKGROUND: Investigation of the genetic background of complex traits is the focus of recent interest, as several common diseases or the individual response to treatments of various illnesses have not yet been explored. These studies require the development and implementation of reliable and large-scale genotyping methods. In this report, we introduce an efficient technique based on PCR-restriction fragment length sequence variation technique for the analysis of the -360CG and -201CT single-nucleotide sequence variations in the deoxycytidine kinase gene. METHODS: A multicapillary gel electrophoresis instrument was used for the size determination of the generated DNA fragments. A healthy Hungarian population of 100 individuals was investigated to determine allele and genotype frequencies for the 2 sequence variations of interest. RESULTS: We found that the occurrence of the minor allele is rather low, i.e., the frequency of both the -360G and -201T variants is 1%. CONCLUSIONS: Our technique can readily facilitate the analysis of these important sequence variations in other ethnic groups to clarify the role of these sequence variations in conjunction with arabinosylcytosine treatment in acute myeloid leukemia.

Deoxycytidine Kinase↗

Validation of a tentative microsatellite marker for the dopamine D4 receptor gene by capillary gel electrophoresis.

Two to four-basepair-short tandem repeats (i.e. microsatellites) are broadly utilized as genetic markers for mapping disease loci in whole genome search analyses. Based on their close vicinity on chromosome 11, the D11S1984 microsatellite was anticipated as a tentative marker for the dopamine D4 receptor gene. A capillary gel electrophoresis based genotype analysis method and an in-house made computational tool was developed for the analysis of the D11S1984 microsatellite marker to examine a healthy Hungarian population of n=106. The data obtained did not suggest significant linkage between the D11S1984 marker and the DRD4 gene.

Electrophoresis, Capillary↗

Real-time PCR quantification of human complement C4A and C4B genes.

BACKGROUND: The fourth component of human complement (C4), an essential factor of the innate immunity, is represented as two isoforms (C4A and C4B) in the genome. Although these genes differ only in 5 nucleotides, the encoded C4A and C4B proteins are functionally different. Based on phenotypic determination, unbalanced production of C4A and C4B is associated with several diseases, such as systemic lupus erythematosus, type 1 diabetes, several autoimmune diseases, moreover with higher morbidity and mortality of myocardial infarction and increased susceptibility for bacterial infections. Despite of this major clinical relevance, only low throughput, time and labor intensive methods have been used so far for the quantification of C4A and C4B genes. RESULTS: A novel quantitative real-time PCR (qPCR) technique was developed for rapid and accurate quantification of the C4A and C4B genes applying a duplex, TaqMan based methodology. The reliable, single-step analysis provides the determination of the copy number of the C4A and C4B genes applying a wide range of DNA template concentration (0.3-300 ng genomic DNA). The developed qPCR was applied to determine C4A and C4B gene dosages in a healthy Hungarian population (N = 118). The obtained data were compared to the results of an earlier study of the same population. Moreover a set of 33 samples were analyzed by two independent methods. No significant difference was observed between the gene dosages determined by the employed techniques demonstrating the reliability of the novel qPCR methodology. A Microsoft Excel worksheet and a DOS executable are also provided for simple and automated evaluation of the measured data. CONCLUSION: This report describes a novel real-time PCR method for single-step quantification of C4A and C4B genes. The developed technique could facilitate studies investigating disease association of different C4 isotypes.

Adult↗

Rapid quantification of human complement component C4A and C4B genes by capillary gel electrophoresis.

Complement component 4 (C4) is an important plasma protein playing a major role in the human defense mechanism against infectious diseases and inflammatory processes. The C4A and C4B genes, encoding the two isoforms of complement 4, are located in the nuclear serine/threonine protein kinase-C4A or B gene-cytochrome 21-hydroxylase-tenascin X module (RP-C4-CYP21-TNX) and manifested by variable copy numbers among individuals between zero to six in the human diploid genome. Quantification of the C4A and C4B genes has great clinical importance since unbalanced production of C4A and C4B proteins might be associated with pathological immune processes. Albeit, high-throughput analysis methods for C4 gene dosage determination are not yet available. Here we present a novel combination of allele-specific PCR and CGE separation for rapid quantification of the C4A and C4B genes where a single-step, single-tube PCR reaction generates two allele-specific (C4A and C4B) and two control amplicons, followed by CGE analysis of the four fragments. The method presented in this paper enables automated and high-throughput gene dosage analysis of large sample cohorts.

Complement C4a↗

Haplotyping by capillary electrophoresis.

The investigation of the genetic background and phenotype structures of complex diseases, such as cardiovascular or psychiatric disorders and tumors, is one of the most scrutinized fields of the post genomic era. Besides the multiplex analysis of genetic markers and polymorphisms throughout the whole genome, more and more attention is focused on the interaction between the etiological factors of these traits. Haplotype determination, rather than multiplex genotyping seems to be one of the first building blocks of this endeavor. This review focuses on the importance and theoretical background of haplotyping, and summarizes the recent examples of novel and emerging haplotyping techniques by capillary gel electrophoresis based DNA fragment analysis, a powerful tool for the examination of the inheritance of complex traits.

DNA↗

Transmission disequilibrium tests confirm the link between DRD4 gene polymorphism and infant attachment.

Following up the results of a previous population association study (Lakatos et al. [2000: Mol Psychiatry 5:633-637; Lakatos et al. [2002: Mol Psychiatry 7:27-31]) by analyses based on parental genetic data confirmed the link between infant attachment and the dopamine D4 receptor (DRD4) gene. Extended transmission disequilibrium tests (ETDT) were performed to determine whether biased transmission of exon III 48 basepair repeat alleles occurred to infants displaying disorganized and secure attachment behavior with their mothers. The overall allele-wise TDTs were significant for both groups (P = 0.038 and 0.020, respectively): a trend for preferential transmission of the seven-repeat allele to disorganized infants was observed (TDT(chi)(2) = 3.27, df = 1, P = 0.071), and there was a significant non-transmission of the same allele to securely attached infants (TDT(chi)(2) = 6.00, df = 1, P = 0.014). Analysis of haplotypes of the exon III repeat and the -521 C/T promoter polymorphisms in family trios showed that the transmission bias in the larger secure group was due to the low-rate transmission of the T.7 haplotype containing both the seven-repeat and the -521 T alleles (TDT(chi)(2) = 4.46, df = 1, P = 0.035). This suggests that not carrying the T.7 haplotype of the DRD4 gene may act as a resilience factor in the optimal development of early attachment.

Adult↗

Linkage analysis and molecular haplotyping of the dopamine D4 receptor gene promoter region.

OBJECTIVES: Polymorphic regions of the dopamine D4 receptor gene and its promoter region are in the focus of psychogenetic association studies. Besides the accurate phenotype characterization, highly reliable genotyping methods are also of outstanding importance in these works. METHODS: DNA samples of 598 healthy unrelated Caucasian individuals were used to validate the described molecular haplotyping methods and to determine the allele, genotype and haplotype frequencies and the linkage disequilibrium between the polymorphisms of the dopamine D4 receptor promoter region. RESULTS: We described a double genotyping system for the -521CT and -616CG polymorphisms, using a polymerase chain reaction restriction fragment length polymorphism or an allele-specific amplification. Allele and genotype frequencies of the novel -615AG single-nucleotide polymorphism are also determined (-615G=13.21%). For molecular haplotyping of the three single-nucleotide polymorphisms and a 120-bp duplication polymorphism, the allele-specific amplification was combined with restriction digestion. The results of the elaborated haplotyping methods were validated by molecular haplotyping of cloned fragments. CONCLUSIONS: The developed methods have been arranged into an 'economic' protocol that might be extended for higher reliability with a double haplotyping ('full mode'). Despite the close proximity of these sites, only a moderate linkage was found between the -615AG and -616CG (Delta(2)=0.162), between the -616AG and -521CT (Delta(2)=0.0221) and between the -615AG and -521CT single-nucleotide polymorphisms (Delta(2)=0.0346). The 120-bp duplication was shown to be in linkage equilibrium with any of the three single-nucleotide polymorphisms. Applications of these results should accelerate psychogenetic association studies of the dopamine D4 receptor gene.

Base Sequence↗

Genotyping and haplotyping of the dopamine D4 receptor gene by capillary electrophoresis.

In this paper we report on simultaneous genotyping of adjacent polymorphisms (referred to as haplotyping) by combining double-tube allele-specific polymerase chain reaction, restriction fragment length polymorphism and capillary gel electrophoresis analysis of the resulting fragments. Direct molecular haplotyping is of particular importance in the case of double heterozygote samples, since in these instances the haplotype structure cannot be constructed based on genotype data. Our approach provided a powerful tool for coincidental genotype analysis of the 48 base pair (bp) variable number of tandem repeats of the third exon and haplotype investigation of the -616CG and -521CT single nucleotide polymorphisms of the dopamine D4 receptor (DRD4) gene. The linear polyacrylamide sieving matrix was optimized for the size range of the double-stranded DNA fragments of interest varying from 35 to 763 bp. We demonstrated that capillary gel electrophoresis in combination with laser induced fluorescence detection offers a sensitive and accurate tool for automated haplotyping in clinical settings.

Base Sequence↗

Micropreparative capillary gel electrophoresis of DNA: rapid expressed sequence tag library construction.

A capillary gel electrophoresis based automated DNA fraction collection technique was developed to support a novel DNA fragment-pooling strategy for expressed sequence tag (EST) library construction. The cDNA population is first cleaved by BsaJ I and EcoR I restriction enzymes, and then subpooled by selective ligation with specific adapters followed by polymerase chain reaction (PCR) amplification and labeling. Combination of this cDNA fingerprinting method with high-resolution capillary gel electrophoresis separation and precise fractionation of individual cDNA transcript representatives avoids redundant fragment selection and concomitant repetitive sequencing of abundant transcripts. Using a computer-controlled capillary electrophoresis device the transcript representatives were separated by their size and fractions were automatically collected in every 30 s into 96-well plates. The high resolving power of the sieving matrix ensured sequencing grade separation of the DNA fragments (i.e., single-base resolution) and successful fraction collection. Performance and precision of the fraction collection procedure was validated by PCR amplification of the collected DNA fragments followed by capillary electrophoresis analysis for size and purity verification. The collected and PCR-amplified transcript representatives, ranging up to several hundred base pairs, were then sequenced to create an EST library.

Animals↗

Transcription factor binding study by capillary zone electrophoretic mobility shift assay.

Regulation of gene expression through interaction of proteins with specific DNA sequences is a central issue in functional genomics. Capillary electrophoretic mobility shift assay is an efficient novel method for the investigation of sequence specific protein-DNA interactions, allowing rapid and sensitive quantification of the complex formation. In this paper, we present a pilot study on capillary zone electrophoretic mobility shift assay (CZEMSA) to investigate the interaction between the transcription factors of HeLa nuclear extract and Sp1-specific fluorescein-labeled oligonucleotide, using the unlabeled probe as competitor. The mobility shift assay was accomplished by CZE in coated capillaries without polymeric buffer additives. Specificity of the DNA protein complex formation was verified by competition experiments, as well as by supershift assay with an anti-Sp1 antibody. The applied electric field strength did not affect the stability of DNA-protein complex during the electrophoretic analysis, allowing rapid identification and quantification of the protein DNA interaction. A practical application to study the interaction between Oryza sativa MADS-box transcription factor 4 (OsMADS4) and its consensus sequence is also reported.

Base Sequence↗

Rapid microwell polymerase chain reaction with subsequent ultrathin-layer gel electrophoresis of DNA.

Large-scale genotyping, mapping and expression profiling require affordable, fully automated high-throughput devices enabling rapid, high-performance analysis using minute quantities of reagents. In this paper, we describe a new combination of microwell polymerase chain reaction (PCR) based DNA amplification technique with automated ultrathin-layer gel electrophoresis analysis of the resulting products. This technique decreases the reagent consumption (total reaction volume 0.75-1 microL), the time requirement of the PCR (15-20 min) and subsequent ultrathin-layer gel electrophoresis based fragment analysis (5 min) by automating the current manual procedure and reducing the human intervention using sample loading robots and computerized real time data analysis. Small aliquots (0.2 microL) of the submicroliter size PCR reaction were transferred onto loading membranes and analyzed by ultrathin-layer gel electrophoresis which is a novel, high-performance and automated microseparation technique. This system employs integrated scanning laser-induced fluorescence-avalanche photodiode detection and combines the advantages of conventional slab and capillary gel electrophoresis. Visualization of the DNA fragments was accomplished by "in migratio" complexation with ethidium bromide during the electrophoresis process also enabling real time imaging and data analysis.

Automation↗

Direct haplotype detection of adjacent polymorphic sites in the regulatory region of the dopamine D4 receptor (DRD4) gene.

A novel method of haplotype identification is discussed allowing simultaneous detection of two adjacent polymorphic sites, a single nucleotide polymorphism (SNP) and a length polymorphism within 1-2 kilobase distance. The method combines allele specific-amplification with high-throughput, automated ultrathin-layer gel electrophoresis analysis of fragment size polymorphism. A typical application is shown for genotyping the -521 C/T single nucleotide polymorphism and the 120 bp duplication in the 5"-upstream region of the dopamine D4 receptor (DRD4) gene. We have also demonstrated that the haplotypes of double heterozygotes for -521 C/T and for the 120 bp duplication can be clearly distinguished, that has only been possible previously by extensive pedigree analysis.

Binding Sites↗

Membrane-mediated ultrafast restriction digestion and subsequent rapid gel microchip electrophoresis of DNA.

Ultrafast, membrane-mediated restriction digestion of DNA molecules followed by rapid gel microchip electrophoresis of the resulting fragments is described. Combination of restriction endonuclease digestion on small pore-size microfibrous membranes with sample loading and electrophoresis analysis in a multilane (up to 96) format resulted in very fast restriction digest based microscale DNA analysis. Complete digestion of several nanogram target DNA was accomplished on the microporous membrane at room temperature just in a few minutes with a single or a combination of various restriction enzymes, using only submicroliter quantities of samples and reagents. The reaction mixture containing membrane also served as sample loading device for the subsequent gel microchip electrophoresis based analysis. This work establishes methods for high-speed, high-throughput DNA analysis, featuring extremely low sample and reagent consumption, and fast restriction digestion in combination with sample loading and rapid gel microchip analysis of the resulting fragments. The entire restriction digestion, sample loading and electrophoresis analysis process required less than 20 min.

Bacteriophage phi X 174↗

High-throughput genotyping by microchip electrophoresis.

Easy applicability of modern microfabrication technology to electrophoresis microchips has initiated a rapidly moving interdisciplinary field in analytical chemistry. Electric field-mediated separations in microfabricated devices are significantly faster than conventional electrophoresis methods and are usually completed in seconds to minutes. The flexibility of fluidic manipulations in electrophoresis microchips allows the use of a variety of separation techniques and conditions. In this study, large-scale genotyping of the repeat polymorphism in the regulatory (promoter) region of the serotonin transporter gene 5-HTT linked polymorphic region (5-HTTLPR) was attempted using polymerase chain reaction (PCR) amplification followed by rapid microchip electrophoresis analysis of the amplicons.

DNA↗