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Imprinting of IGF2, insulin-dependent diabetes, immune function, and apoptosis: a hypothesis.

Parental genomic imprinting is the phenomenon in which the behavior of a gene is modified, depending on the sex of the transmitting parent [Peterson and Sapienza (1993): Annu Rev Genet 27:7-31]. Recent observations have revealed that the inheritance patterns, age-of-onset, severity, and etiology of certain human diseases can be explained by aberrations in the establishment or the maintenance of the imprint. Examples include the Prader-Willi, Angelman, and Beckwith-Wiedemann syndromes [Nicholls (1994): Am J Hum Genet 54:733-740], malignancy [Sapienza (1990): Biochim Biophys Acta 1072:51-61; Feinberg (1993): Nat Genet 4:110-113], and insulin-dependent diabetes mellitus (IDDM) [Julier et al. (1994) Nature 354:155-159; Bennett et al. (1995) Nat Genet 9:284-292]. We review the evidence that implicates an imprinted gene in the INS-IGF2 region of chromosome 11p15 in the etiology of IDDM (referred to as the IDDM2 locus) and show that in human fetal pancreas, INS is not imprinted, thus providing an argument against INS as the candidate gene. We also examine imprinting effects on the expression of IGF2 in components of the human immune system believed to be important in IDDM and show imprinted expression in fetal thymus as early as 15 weeks gestation. We demonstrate further that in the circulating mononuclear cells of two individuals, lectin-stimulated IGF2 transcription was biallelic, indicating relaxation of imprinting, whereas in one individual, transcription was monoallelic. Finally, we review the current available data supporting a role for insulin-like growth factor-II (IGF-II) in the immune system and, more specifically, discuss the evidence supporting a role for the IGFs in the prevention of apoptosis. These data have led us to formulate a novel hypothesis that could mechanistically explain the involvement of the IDDM2 locus in the pathogenesis of IDDM.

Apoptosis↗

Preferrential rearrangement in normal rabbits of the 3' VHa allotype gene that is deleted in Alicia mutants; somatic hypermutation/conversion may play a major role in generating the heterogeneity of rabbit heavy chain variable region sequences.

The rabbit is unique in having well-defined allotypes in the variable region of the heavy chain. Products of the VHa locus, (with alleles a1, a2, and a3), account for the majority of the serum immunoglobulins. A small percentage of the serum immunoglobulins are a-negative. In 1986, Kelus and Weiss described a mutation that depressed the expression of the Ig VH a2 genes in an a1/a2 rabbit. From this animal the Alicia rabbit strain was developed and the mutation was termed ali. We previously showed, using Southern analysis and the transverse alternating field electrophoresis technique, that the difference between the ali rabbit and normal is a relatively small deletion including some of the most 3' VH genes. The most JH proximal 3' VH1 genes in DNA from normal rabbits of a1, a2 and a3 haplotypes encode a1, a2 and a3 molecules respectively, and it has been suggested that these genes are responsible for allelic inheritance of VHa allotypes. The present study suggests that the 3' end of the VH locus probably plays a key role in regulation of VH gene expression in rabbits because VH gene(s) in this region are the target(s) of preferential VDJ rearrangements. This raises the possibility that mechanisms such as somatic gene conversion and hypermutation are at work to generate the antibody repertoire in this species. Our data support the view that the 3' VH1 gene may be the preferred target for rearrangement in normal rabbits, and for the normal chromosome in heterozygous ali animals. However, homozygous ali rabbits with a deletion that removed the a2-encoding VH1 on both chromosomes do survive, rearrange other VH genes and produce normal levels of immunoglobulins as well as a significant percentage of B cells which bear the a2 allotype. This challenges the view that one VH gene, VH1, is solely responsible for the inheritance pattern of VHa allotypes.

Animals↗

Nearly all hereditary paragangliomas in the Netherlands are caused by two founder mutations in the SDHD gene.

Hereditary paragangliomas or glomus tumors are usually benign slow-growing tumors in the head and neck region. The inheritance pattern of hereditary paraganglioma is autosomal dominant with imprinting. Recently, we have identified the SDHD gene encoding subunit D of the mitochondrial respiratory chain complex II as one of the genes involved in hereditary paragangliomas. Here, we demonstrate that two founder mutations, Asp92Tyr and Leu139Pro, are responsible for paragangliomas in 24 and 6 of the 32 independently ascertained Dutch paraganglioma families, respectively. These two mutations were also detected among 20 of 55 isolated patients. Ten of the isolated patients had multiple paragangliomas, and in eight of these SDHD germline mutations were found, indicating that multicentricity is a strong predictive factor for the hereditary nature of the disorder in isolated patients. In addition, we demonstrate that the maternally derived wild-type SDHD allele is lost in tumors from mutation-carrying patients, indicating that SDHD functions as a tumor suppressor gene.

DNA Mutational Analysis↗

Allelotype of head and neck paragangliomas: allelic imbalance is confined to the long arm of chromosome 11, the site of the predisposing locus PGL.

Paragangliomas of the head and neck region are usually slow growing, benign tumors. A considerable fraction has a positive family history, and the predisposing locus, PGL, has recently been assigned to 11q22-q23. The inheritance pattern of the disease suggests that PGL undergoes maternal genomic imprinting. We have investigated 26 tumor samples from 22 patients with head and neck paragangliomas for the occurrence of loss of heterozygosity (LOH) on all non-acrocentric autosome arms. LOH was found only on chromosome 11, with a marked clustering on the distal half of the q-arm. However, in many cases the resulting allelic imbalance relative to normal DNA was weak, suggesting that only part of the tumor showed this abnormality. In all eight cases where we were able to determine the parental origin, the allele undergoing loss was maternally derived. Clonality analysis with a polymorphic marker for the X-chromosome indicated that two of three informative female cases were polyclonal, although a number of tumors carry aneuploid stemlines in DNA flow cytometry. We conclude that either tumor heterogeneity or polyclonality may explain the partial allele loss events seen in certain cases.

Alleles↗

A strategy for multipoint ordering: example of the 11p markers.

The complete likelihood analysis is required to obtain the evidence for the gene order. Since the number of candidate orders increases rapidly with the number of loci and the complete analysis requires considerable computer time, a method for rapidly screening order is required. To this end, we used the program MAP83 for the initial investigation of order. This method provided a subset of orders to be further investigated by the complete likelihood method. We used PAP for these subsequent analyses. The advantage of algorithms such as MAP83 is that the basic unit of analysis is the set of pairwise LOD scores which are routinely calculated at the beginning of a linkage analysis. However, the magnitude of the log likelihood differences between orders can only be suggestive for two reasons. First, the usual assumptions for MAP83 regarding independence of the recombination fraction estimate are not met by these data and, therefore, no attempt can be made to interpret the log likelihood differences statistically. Secondly, pairwise information precludes identifying the specific inheritance pattern of each gamete, thus the information content of obligatory multiple recombinants is lost. For example, the order HBBC-ADJ-HRAS1-INS requires five double recombinants for the Utah data while the order HBBC-ADJ-INS- HRAS1 does not require any (White et al, 1985). The support for the former order over the latter is a log likelihood difference of 3.73 for the complete likelihood analysis when the HBBC locus is ignored.(ABSTRACT TRUNCATED AT 250 WORDS)

Chromosome Mapping↗

Performance of the nonparametric linkage analysis using GENEHUNTER for a complicated genetic disease.

The nonparametric linkage (NPL) analysis of the GENEHUNTER program was applied to one set of the simulated data of Problem 2, GAW11. We conducted a straightforward screening of the genome to evaluate the performance of the NPL test, with respect to its ability to detect linkage on specific disease loci. Our findings indicate that disease genes were detected with relatively good power, despite the presence of a complex inheritance pattern. We found that the NPL test varies depending on penetrance rates and gene frequencies, however, we conclude that it is a useful tool for linkage analysis.

Alleles↗

Familial osteodysplasia.

A family with characteristics that have striking similarities to the syndrome of familial osteodysplasia is reported. The inheritance pattern appears to be autosomal dominant. The typical facies has a lack of vertical facial development and a functional prognathism caused by overclosure of the mandible and opening of the gonial angle. Midfacial hypoplasia and a pointed chin are characteristic. Alveolar and sutural bone growth in the face is diminished and associated with partial dental agenesis. Variable cranial digital markings and possible synostosis are also seen. These typical facial changes are associated with other bony and systemic abnormalities. The long bones have a flask shape and occasionally have increased cortical thickness. The superior pubic ramus is often thin and scoliosis is common. The dermatoglyphic pattern demostrates a distal triradius and small whorl abnormalities. The most significant laboratory values are an increased erythrocyte sedimentation rate and C3 complement found on the erythrocytes. The plasma fibrinogen level was low in all family members.

Adult↗

Characterization of germline mutations of the gene encoding Bruton's tyrosine kinase in families with X-linked agammaglobulinemia.

Bruton's tyrosine kinase (Btk) has been identified as the protein responsible for the primary immunodeficiency X-linked agammaglobulinemia (XLA) and has been described as a new member of Src-related cytoplasmic protein tyrosine kinases. We have recently characterized the structure of the entire gene encoding Btk and developed a polymerase chain reaction (PCR)-based assay to detect germline mutations within it. In this report we describe six mutations, five of which are novel, of the Btk gene in patients with XLA and demonstrate the inheritance pattern of the defect within the families of the affected individuals. The mutations found include two nonsense and two missense mutations, a single base deletion at an intron acceptor splice site, and a 16-bp insertion. A single strand conformation polymorphism was also found in the 5' end of intron 8 with the same assay. This technique has provided a powerful tool for direct analysis of the Btk gene for the diagnosis of XLA and carrier detection. The identification of new mutations may eventually reveal the role of Btk in the signaling pathways involved in B-cell development.

Agammaglobulinaemia Tyrosine Kinase↗

A homozygous GJA1 gene mutation causes a Hallermann-Streiff/ODDD spectrum phenotype.

Oculodentodigital dysplasia (ODDD) and Hallermann-Streiff syndrome (HSS) share several clinical characteristics. However, while ODDD is a dominantly inherited disorder due to mutations in the connexin 43 gene GJA1, the inheritance pattern of the HSS syndrome is still debated. Overlapping phenotypes have been described. In one of such cases we found a homozygous change at the very conserved R76 codon (c.227G>A, p.R76H), the clinically normal parents being heterozigous carriers of the same mutation. A different base change at the same codon (p.R76S) leads to a complete dominant ODDD phenotype. A case of full-blown HSS phenotype was also analysed but GJA1 mutations were not found. GJA1 homozygous hypomorphic mutations can result in a phenotype in the HSS/ODDD spectrum.

Abnormalities, Multiple↗

Chloroplast transformation by Agrobacterium tumefaciens.

A chimeric gene consisting of the promoter region of the nopaline synthase gene (Pnos) fused to the coding sequence of the chloramphenicol acetyltransferase gene (cat gene) of Tn9 was introduced by co-cultivation in tobacco protoplasts followed by selection with 10 mug/ml chloramphenicol. The chloramphenicol-resistant plants derived from these selected calli were unable to transmit the Cm phenotype through pollen. A typically maternal inheritance pattern was observed. Southern blot analysis showed that the chimeric Pnos-cat gene was present in the chloroplasts of these resistant plants. Furthermore, the chloramphenicol acetyltransferase activity was shown to be associated with the chloroplast fraction. These observations are the first proof that the Agrobacterium Ti-plasmid vectors can be used to introduce genes in chloroplasts.

Journal Article↗

Simultaneous production of triploid and haploid eggs by triploid Squalius alburnoides (Teleostei: Cyprinidae).

The hybrid minnow Squalius alburnoides comprises diploid and polyploid forms with altered modes of reproduction. In the present paper, we report a cross where a triploid female generated both large, triploid and small, haploid eggs simultaneously, which were fertilized with S. pyrenaicus sperm. Although the large eggs were rarer (15%), they originated offspring with higher survivorship, so that tetraploids were dominant among the surviving siblings. The cross yielded apparently all female progeny. Inheritance patterns were inferred using four microsatellite markers and NORs (Nucleolus Organizer Regions) phenotypes, and suggested that haploid eggs were probably produced by an atypical hybridogenesis, in which the elimination of the unmatched genome permitted random segregation and recombination between the homospecific genomes, while the triploid eggs were clonal. The present results suggest that the occurrence of triploid unreduced eggs may be a new route for the natural tetraploidization in the complex.

Animals↗

Chorea-acanthocytosis: clinical and genetic findings in three families from the Arabian peninsula.

Chorea-acanthocytosis is a rare autosomal recessive disorder. Its characteristics are orofacial dyskinesia, hyporeflexia, seizures, aberrant behavior, atrophy of the caudate and putamen, and acanthocytes in the blood with a normal level of lipoproteins. We describe three families with chorea-acanthocytosis. The inheritance pattern was recessive and the average age at onset was 27 years (range, 18-35 years). The presenting symptoms were seizures, aberrant behaviour, chorea, tics, and/or abnormal gait. Phase-contrast and electron microscopy examinations of blood showed 10 to 40% acanthocytes. The lipid profile was normal except that, in one family, no prebetalipoprotein bands corresponding to the fraction of very low-density lipoprotein were seen in high-resolution lipoprotein electrophoresis. Magnetic resonance imaging of the brain showed marked atrophy in the caudate and putamen; 18-fluorodeoxyglucose positron emission tomography scan showed hypometabolism in the striatum. In all three families, the disease was linked to a 6-cM region of chromosome 9q21 flanked by the recombinant markers GATA 89a11 and D9S1843. This finding strongly suggests the involvement of a single locus for this syndrome. Three different homozygous mutations of this gene have been identified. Although the clinical presentation was variable, the genetic studies on these three Saudi Arabian families with chorea-acanthocytosis provide strong evidence for a genetic locus for chorea-acanthocytosis at chromosome 9q21.

Acanthocytes↗

Phenotypic features of Huntington's disease-like 2.

Huntington's disease-like 2 is an autosomal dominantly inherited disorder due to an expansion of trinucleotide repeats. It resembles classic Huntington's disease in clinical phenotype, inheritance pattern, and neuropathological features. We highlight the clinical features of this disorder, including chorea, dystonia, parkinsonism, and cognitive deficits.

Adult↗

Frontotemporal dementia and parkinsonism linked to chromosome 17 (FTDP-17): PPND family. A longitudinal videotape demonstration.

Frontotemporal dementia and parkinsonism linked to chromosome 17 (FTDP-17), characterized by an autosomal dominant inheritance pattern, has recently been recognized as a distinct entity that can display a confusingly broad clinical phenotype. The pallido-ponto-nigral degeneration (PPND) variant is the prototypical example of the parkinsonism-predominant pattern of FTDP-17. A longitudinal videotape demonstration of the clinical progression of this entity in a single individual, along with brief videotape segments from three additional affected individuals, is presented in order to facilitate recognition of this disorder.

Adult↗

Adult onset familial cervical dystonia: report of a family including monozygotic twins.

We report the first family with adult onset cervical dystonia in which monozygotic twins and multiple family members are affected. In this family, the disease exhibits an autosomal dominant inheritance pattern, and all affected members have only cervical dystonia. Five members have definite cervical dystonia, and five others have possible cervical dystonia. Although identical genotypically, the twins demonstrate some phenotypic variation. Despite long follow-up, no family members have shown progression from focal to generalized dystonia. This family may prove valuable in identifying a gene locus for cervical dystonia and hence determine whether a single gene locus exists for hereditable focal dystonia and generalized dystonia.

Adult↗

Familial cortical myoclonic tremor as a unique form of cortical reflex myoclonus.

Previously it was reported that some patients with tremor had the same electrophysiological findings as those seen in patients with cortical reflex myoclonus, and consequently the tremor was named "cortical tremor." In the present study, we examined six patients from three families with cortical tremor of relatively late onset. The inheritance pattern of cortical tremor was compatible with autosomal dominant trait. Those patients had relatively rhythmic involuntary movements (tremor) in the distal upper and lower limbs, especially during posture and/or fine movements. There was no cerebellar ataxia or dementia, and fits of loss of consciousness occurred only infrequently. Electrophysiologically, they had generalized spikes on electroencephalogram (EEG), giant cortical components of somatosensory evoked potential, an enhanced long-loop reflex (C-reflex), and cortical spikes preceding the rhythmic jerk demonstrable by the jerk-locked back averaging method, thus fulfilling the criteria of cortical reflex myoclonus. Furthermore, they had slow negative EEG shift starting 1-2 s prior to voluntary movements, suggesting that, as opposed to the conventional form of progressive myoclonus epilepsy (PME), the cerebellar efferent input to the motor cortices was normal. These clinical and electrophysiological pictures are distinct from those of familial essential tremor, familial essential myoclonus, or the conventional form of PME, and the term "familial cortical myoclonic tremor" will represent the clinical and electrophysiological features of this unique entity most appropriately.

Adult↗

Genetic basis of Rett syndrome.

The origin of Rett syndrome has long been debated, but several observations have suggested an X-linked dominant inheritance pattern. We and others have pursued an exclusion-mapping strategy using DNA from a small number of familial Rett syndrome cases. This work resulted in the narrowing of the region likely to harbor the mutated gene to Xq27.3-Xqter. After systematic exclusion of several candidate genes, we discovered mutations in MECP2, the gene that encodes the transcriptional repressor, methyl-CpG-binding protein 2. Since then, nonsense, missense, or frameshift mutations have been found in at least 80% of girls affected with classic Rett syndrome. Sixty-four percent of mutations are recurrent C > T transitions at eight CpG dinucleotides mutation hotspots, while the C-terminal region of the gene is prone to recurrent multinucleotide deletions (11%). Most mutations are predicted to result in total or partial loss of function of MeCP2. There is no clear correlation between the type and position of the mutation and the phenotypic features of classic and variant Rett syndrome patients, and XCI appears to be a major determinant of phenotypic severity. Further research focuses on the pathogenic consequences of these mutations along the hypothesis of loss of transcriptional repression of a small number of genes that are essential for neuronal function in the maturing brain.

Chromosomal Proteins, Non-Histone↗

Mitochondrial defects in neurodegenerative disease.

Over the past 12 years, a wide variety of neurodegenerative diseases has been linked to mutations in mitochondrial genes located in either the mitochondrial DNA (mtDNA) or the nuclear DNA (nDNA). These disorders encompass an array of unorthodox inheritance patterns and a plethora of symptoms ranging from lethal neonatal multi-symptom disorders to later onset myopathies, cardiomyopathies, movement disorders, and dementias. The bases for the genetic and phenotypic variability of mitochondrial diseases lie in the multiplicity of the mitochondria genes dispersed across the human genome and the variety of cellular pathways and functions in which the mitochondria play a central role.

Aging↗