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Mutations causing aspartylglucosaminuria (AGU): a lysosomal accumulation disease.

This article provides a review of the mutations reported so far in the lysosomal storage disease aspartylglucosaminuria (AGU). The clinical symptoms, biochemical findings, and diagnostic possibilities of the disease are introduced. The prevalence and biological consequences of the found mutations are then described, as well as the availability of a new rapid DNA test suitable for carrier screening. This test will be especially applicable in the genetically isolated Finnish population, where the carrier frequency of AGU was found to be as high as 1:36. Finally, future prospects dealing with the foreseeable therapeutic interventions of the disease are discussed.

Acetylglucosamine↗

MEMS-based sample preparation for molecular diagnostics.

Completion of the Human Genome Project is driving the rapid development of molecular diagnostics in the laboratory. To accelerate the penetration of genetic tests and other nucleic acid-based tests into clinical markets, simple, compact, automatic sample-preparation systems for molecular diagnostics must be developed. Microelectromechanical systems (MEMS) is a promising approach for the development of automated sample preparation for the clinical laboratory or point-of-care setting. This review discusses MEMS-based components that could be applied to the different stages of the sample-preparation process such as cell separation, nucleic acid purification, and nucleic acid amplification. Examples of functional component integration are given. Issues discussed include partitioning of functions between the instrument and disposable unit, methods of propulsion of fluids and particles, vapor and liquid barriers, and sample size. Although further evaluation and development are needed to provide practical solutions to some of these issues, we conclude that MEMS-based components might contribute to some components in a sample-preparation system consisting of modular instruments and disposable units, but will not provide a generic or a totally integrated solution.

DNA, Bacterial↗

Behavioral genetics of thermosensation and hygrosensation in Drosophila.

Whereas temperature and humidity are critical variables affecting physiology, behavior, and evolution, the genetic and neuronal underpinnings of thermosensation and hygrosensation remain poorly understood. We have initiated a behavioral-genetic investigation of these sensory systems in Drosophila. Behavioral tests are described for the rapid screening of mutants defective in thermosensation and hygrosensation. We demonstrate the strong responses of normal flies to temperature and humidity. Two mutants were found with defects in thermosensation, only one of which is also defective in hygrosensation, indicating that they involve different sensory mechanisms. Ablation experiments further separate these sensory systems by showing that thermoreceptors are housed in the third antennal segment, whereas hygroreceptors are located more distally in the antennal arista.

Animals↗

Genetic information in the workplace. Implications for occupational health surveillance.

Rapid progress in understanding the human genome has made individual genetic information accessible through genetic testing. Different types of genetic testing may be encountered in the workplace. Genetic screening examines individuals for specific inherited characteristics. Genetic monitoring evaluates individuals for acquired modifications to their genetic material. A recent survey provides evidence that some employers are conducting genetic testing of their employees and using the genetic information they obtain to make employment related decisions. Occupational and environmental health nurses must be prepared to meet the challenges presented by the complex issues related to genetic information in the workplace.

Algorithms↗

Commercial molecular diagnostics in the U.S.: The Human Genome Project to the clinical laboratory.

Molecular diagnosis is the detection of pathogenic mutations in DNA and RNA samples to aid in detection, diagnosis, subclassification, prognosis, and monitoring response to therapy. Principles underlying nucleic-based diagnosis originate from localization, identification, and characterization of genes responsible for human disease. Clinical molecular genetics is now part of the mainstream of medical care in the United States. All commercial clinical reference laboratories now have a molecular genetic diagnostic unit, many of which are in contractual agreement with third party payers to provide services. Gene discovery provides valuable insight into the mechanisms of disease processes and gene-based markers will enable clinicians to study disease predisposition, as well as improved methods for diagnoses, prognosis, and monitoring of therapy. The broad range of mutation spectrum and type performed in the clinical laboratory requires the use of multiple technologies rather than a single typing platform. Platform choice depends on such diverse factors as local expertise, test volume, economies of scale, R&D budget, and royalties. Test validation is a major hurdle and positive control samples are often not readily available. Oversight and the regulatory environment for clinical molecular genetics laboratories in the United States are evolving rapidly. Several government agencies and private organizations are currently involved in revision of specific laboratory standards, including the Secretary's Advisory Committee on Genetic Testing (SACGT), Food and Drug Administration (FDA), Center for Disease Control (CDC), College of American Pathologists (CAP), American College of Medical Genetics (ACMG), and the individual states.

DNA Mutational Analysis↗

Rapid FMR1-protein analysis of fetal blood: an enhancement of prenatal diagnostics.

Fragile-X syndrome, a frequent cause of inherited mental retardation, is characterised in almost all cases by a CGG-repeat expansion that is located within the FMR-1 gene and that prevents the expression of fragile-X mental retardation protein (FMRP). We describe a test that simultaneously allows the rapid detection of FMRP in fetal lymphocytes and distinguishes these from fetal erythrocytes. Routine molecular genetic methods fail in the rare cases where protein expression is blocked, although there is no repeat expansion. Furthermore, they are unsuitable in cases of advanced pregnancy. Our test proves extremely valuable under both these circumstances.

Female↗

Familial aggregation of dyslexia phenotypes.

There is evidence for genetic contributions to reading disability, but the phenotypic heterogeneity associated with the clinical diagnosis may make identification of the underlying genetic basis difficult. In order to elucidate distinct phenotypic features that may be contributing to the genotypic heterogeneity, we assessed the familial aggregation patterns of Verbal IQ and 24 phenotypic measures associated with dyslexia in 102 nuclear families ascertained through probands in grades 1 through 6 who met the criteria for this disorder. Correlations between relatives were computed for all diagnostic phenotypes, using a generalized estimating equation (GEE) approach. GEE is a recently developed semiparametric method for handling correlated data. The method is robust to model misspecification and flexible in adjusting for the subjects' characteristics and pedigree sizes as well as for the ascertainment process, while estimating the correlations between related subjects. The Nonword Memory (NWM) subtest of a prepublication version of the Comprehensive Test of Phonological Processing (CTOPP) and Phonemic Decoding Efficiency (PDE) subtest of a prepublication version of the Test of Word Reading Efficiency (TOWRE) showed correlation patterns in relatives that are strongly supportive of a genetic basis. The Wechsler Scale Digit Span, the Word Attack subtest of the Woodcock Reading Mastery Test--Revised, and the Spelling subtest of the Wide Range Achievement Test--Third Edition had slightly weaker evidence of a genetic basis. Five additional phenotypes (the Spelling subtest of the Wechsler Individual Achievement Test, the Accuracy, Rate, and Comprehension subtests of the Gray Oral Reading Test--Third Edition, and Rapid Automatized Naming of Letters and Numbers) gave suggestive evidence of such a pattern. The results cross-validate in that evidence for a pattern consistent with a genetic basis was obtained for two measures of phonological short-term memory (CTOPP Nonword Memory and WISCIII or WAIS-R Digit Span), for two measures of phonological decoding (WRMT-R Word Attack and TOWRE Phonemic Decoding Efficiency), and for two measures of spelling from dictation (WRAT-3 Spelling and, to a lesser extent, WIAT Spelling). These measures are thus good candidates for more sophisticated segregation analyses that can formulate models for incorporation into linkage analyses.

Adult↗

Effects of mutations in the human immunodeficiency virus type 1 Gag gene on RNA packaging and recombination.

Human immunodeficiency virus type 1 (HIV-1) recombination occurs during reverse transcription when parts of the two co-packaged RNAs are used as templates for DNA synthesis. It was previously hypothesized that HIV-1 Gag polyproteins preferentially encapsidate the RNA from which they were translated (cis-packaging hypothesis). This hypothesis implies that mutants encoding Gag that cannot efficiently package viral RNA are selected against at two levels: these mutants do not generate infectious virus, and these mutants are not efficiently rescued by the wild-type virus because the mutant RNAs are packaged at much lower levels than are those of the wild-type genome. Therefore, genetic information encoded by gag mutants can be rapidly lost in the viral population. To test this prediction of the cis-packaging hypothesis, we examined several gag mutants by measuring the efficiencies of the mutant RNAs in being packaged in trans in the presence of wild-type virus and determining the rates of recombination between gag mutants and wild-type viruses. We observed that the viral RNAs from the nucleocapsid zinc finger or the capsid truncation mutant were packaged efficiently in trans, and these mutant viruses also frequently recombined with the wild-type viruses. In contrast, viral RNAs from mutants containing a 6-nucleotide substitution encompassing the gag AUG were not efficiently encapsidated, resulting in a low rate of recombination between the mutants and wild-type viruses. Further analyses revealed that other, more subtle mutations changing the gag AUG and abolishing Gag translation did not interfere with efficient encapsidation of the mutant RNA. Our results indicated that neither the gag AUG sequence nor Gag translation is essential for viral RNA encapsidation, and Gag can package both wild-type and gag mutant RNAs with similar efficiencies. Therefore, we propose that HIV-1 RNA encapsidation occurs mainly in trans, and most gag mutants can be rescued by wild-type virus; therefore, they are unlikely to face the aforementioned double-negative selection.

Cell Line↗

A genetic algorithm for the identification of conformationally invariant regions in protein molecules.

Understanding macromolecular function often relies on the comparison of different structural models of a molecule. In such a comparative analysis, the identification of the part of the molecule that is conformationally invariant with respect to a set of conformers is a critical step, as the corresponding subset of atoms constitutes the reference for subsequent analysis for example by least-squares superposition. A method is presented that categorizes atoms in a molecule as either conformationally invariant or flexible by automatic analysis of an ensemble of conformers (e.g. crystal structures from different crystal forms or molecules related by non-crystallographic symmetry). Different levels of coordinate precision, both for different models and for individual atoms, are taken explicitly into account via a modified form of Cruickshank's DPI [Cruickshank (1999), Acta Cryst. D55, 583-601] and are propagated into error-scaled difference distance matrices [Schneider (2000), Acta Cryst. D56, 715-721]. All pairwise error-scaled difference distance matrices are then analysed simultaneously using a genetic algorithm. The algorithm has been tested on several well known examples and has been found to converge rapidly to reasonable results using a standard set of parameters. In addition to the description of the algorithm, a criterion is suggested for testing the identity of two three-dimensional models within experimental error without any explicit superposition.

Algorithms↗

[Rapid genetic screening of Leber's hereditary optic neuropathy with mtDNA G11778A mutation by AS-PCR with whole blood].

OBJECTIVE: Rapid Genetic Screening of Leber's hereditary optic neuropathy (LHON) with mtDNA G11778A mutation by allele-specific polymerase chain reaction (AS-PCR) with whole blood. METHODS: Whole blood with anticoagulant was used as a template of AS-PCR for the analysis of LHON with mtDNA G11778A point mutation. The amplified DNA fragment was directly observed by electrophoretogram with ethidium bromide stained. RESULTS: The accuracy was 100% by using this method in 24 blood samples tested, and the specific of PCR of which used whole blood as template was better than one of the purified mtDNA. The reliability of the method for screening of LHON with mtDNA G11778A mutation was checked by double-blind test in 22 blood samples. CONCLUSION: This method does not need purified DNA from blood and only required one step of PCR. Thus, it is very simple, rapid and accurate for the clinical genetic screening of LHON with mtDNA G11778A point mutation.

DNA, Mitochondrial↗

A rapid population expansion retains genetic diversity within European rabbits in Australia.

The well documented historical translocations of the European rabbit (Oryctolagus cuniculus) offer an excellent framework to test the genetic effects of reductions in effective population size. It has been proposed that rabbits went through an initial bottleneck at the time of their establishment in Australia, as well as multiple founder events during the rabbit's colonization process. To test these hypotheses, genetic variation at seven microsatellite loci was measured in 252 wild rabbits from five populations across Australia. These populations were compared to each other and to data from Europe. No evidence of a genetic bottleneck was observed with the movement of 13 rabbits from Europe to Australia when compared to French data. Within Australia the distribution of genetic diversity did not reflect the suggested pattern of sequential founder effects. In fact, the current pattern of genetic variation in Australia is most likely a result of multiple factors including mutation, genetic drift and geographical differentiation. The absence of reduced genetic diversity is almost certainly a result of the rabbit's rapid population expansion at the time of establishment in Australia. These results highlight the importance of population growth following a demographic bottleneck, which largely determines the severity of genetic loss.

Animals↗

Genetic segregation of random amplified polymorphic DNA in diploid cultivated alfalfa.

Polymerase chain reaction was used, with single 10-mer primers of arbitrary sequence, to amplify random regions of genomic DNA from a diploid cultivated alfalfa backcross population. Segregation of the random amplified polymorphic DNA (RAPD) fragments was analysed to determine if RAPD markers are suitable for use as genetic markers. Of the 19 primers tested, 13 amplified a total of 37 polymorphic fragments, of which 28 (76%) segregated as dominant Mendelian traits. RAPD markers appear useful for the rapid development of genetic information in species like alfalfa where little information currently exists or is difficult to obtain.

Base Sequence↗

Rapid methods in studies on the genetic changes induced by chemicals.

Eight new compounds of the quaternary ammonium salts group were investigated for mutagenicity. Tests were carried out on onion roots (Allium test) and on bacteria (Ames' test) to examine the mitosis disturbances. None of the compounds produced mutagenic activity in the bacterial test, whereas in the Allium test two compounds produced a strong effect on mitotic cell division.

Animals↗

Founder populations and their uses for breast cancer genetics.

Numerous founder mutations have been reported in BRCA1 and BRCA2. For genetic screening of a population with a founder mutation, testing can be targeted to the mutation, allowing for a more rapid and less expensive test. In addition, more precise estimates of the prior probability of carrying a mutation and of the likelihood of a mutation carrier developing cancer should be possible. For a given founder mutation a large number of carriers are available, so that focused scientific studies of penetrance, expression, and genetic and environmental modifiers of risk can be performed. Finally, founder populations may be a powerful resource to localize additional breast cancer susceptibility loci, because of the reduction in locus heterogeneity.

Adult↗

Direct genetic correction as a new method for diagnosis and molecular characterization of MHC class II deficiency.

Major histocompatibility complex class II (MHCII) deficiency is a primary immunodeficiency resulting from defects in one of four different MHCII-specific transcription factors-CIITA, RFX5, RFXAP, and RFXANK. Despite this genetic heterogeneity, the phenotypical manifestations are homogeneous. It is frequently difficult to establish a definitive diagnosis of the disease on the basis of clinical and immunological criteria. Moreover, the phenotypical homogeneity precludes unambiguous identification of the regulatory gene that is affected. Identification of the four genes mutated in the disease has now allowed us to develop a rapid and straightforward diagnostic test for new MHCII-deficiency patients. This test is based on direct correction of the genetic defect by transduction of cells from patients with lentiviral vectors encoding CIITA, RFXANK, RFX5, or RFXAP. We have validated this approach by defining the molecular defects in two new patients. The RFXANK vector restored MHCII expression in a T cell line from one patient. The RFXAP vector corrected primary cells (PBL) from a second patient. Molecular analysis confirmed the presence of homozygous mutations in the RFXANK and RFXAP genes, respectively. Direct genetic correction represents a valuable tool for the diagnosis and classification of new MHCII-deficiency patients.

Amino Acid Sequence↗

Using expanded genetic alphabets to simplify high-throughput genetic testing.

DNA is the only chemistry that allows for molecular recognition on demand. Unlike any other molecular recognition chemistry, DNA enables the simple design and rapid synthesis of molecule sets that will recognize each other and self-assemble into nanostructures. In molecular diagnostics, DNA is used to capture complementary sequences in order to decode complex mixes. Expanding DNA chemistry to include additional base pairs enables a more precise manipulation of nanostructures constructed with DNA. MultiCode technology is that type of expanded DNA chemistry. The technology exploits DNA hydrogen bonding patterns that differ from natural DNA, thereby enabling a simple means of transcending problems that are otherwise unsolvable. Made up of additional base pairs (not simply single bases), MultiCode technology is used today to decode sequences in an orthogonal manner to natural DNA. This review will discuss MultiCode technology and specifically focus on how the technology can be used to build molecular testing platforms.

CpG Islands↗

[Genetic testing for cystic fibrosis: evaluation of the Elucigene CF20 kit in blood and buccal cells].

Routine determination of mutations in cystic fibrosis requires accurate, rapid, reliable and low-cost methods, permitting the simultaneous detection of multiple mutations. The Elucigene CF20 kit developped by Cellmark Diagnostics, uses multiplex ARMS, which allows the screening for 20 CFTR gene mutations (deltaF508, G542X, N1303K, 1717-1G>A, G551D, W1282X, R553X, deltaI507, 1078delT, 2183AA>G, 3849+10kbC>T, R1162X, 621+1G>T, R334W, R347P, 3659delC, R117H, S1251N, E60X, A455E ) in a work day without specific instrumentation. The kit distinguishes between homozygotes and heterozygotes for deltaF508, but not for rare mutations. The kit detects from 68 to 92% of defective alleles in Caucasians. We evaluate the kit in a blind study in two independent laboratories. Thirty blood samples and thirty mouthwash samples from CF patients, carriers and unaffected individuals were analysed by the Elucigene CF20 kit. All the samples were previously analysed by denaturing gradient gel electrophoresis and sequencing. The Elucigene CF20 kit consists of three multiplexes. Each mutiplex contains ARMS specific primers for six to eight mutations and two control reactions. The absence of the upper control fragment indicates that a repeat test is required. We demonstrated a first time amplification rate of 98.3%: of the 60 samples tested, one required a reamplification. Results compared with the reference method demonstrated that in all cases where one or more of the 20 mutations detected by the kit were present in the test set, the kit accurately identified them. Reproducibility was assessed by repeating the analysis of a blood and mouthwash sample five times. Cross reactivity between R117C and R117H, R117P and R117H, R347P and R347H, deltaI507 and deltaF508, G551D and R553X were evaluated. Only a cross reactivity between R347P and R347H was observed. The kit is specially useful for first line study of patients and carrier identification.

Amino Acid Substitution↗