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L A Farrer

Publications and source records attributed to L A Farrer.

At least 19 recordsLinked to original sources

Monozygotic twins concordant for late-onset probable Alzheimer disease with suspected Alzheimer disease in four sibs.

Probable Alzheimer disease (AD) is described in 79-year-old male twins with monozygosity confirmed by DNA examination. The first twin to be affected began to show signs of intellectual deterioration at age 70. In the other, onset was at age 72. Four of their living sibs (current age range = 75-92) are also suspected to have AD. The possible roles of genetic and environmental factors in the development of AD in this sibship are discussed.

Aged

The Machado-Joseph disease locus is different from the spinocerebellar ataxia locus (SCA1).

Machado-Joseph disease (MJD) is an autosomal dominant neurodegenerative spinocerebellar ataxia that has been described primarily in families of Azorean or Portuguese descent. MJD and chromosome 6p-linked spinocerebellar ataxia (SCA1) are difficult to differentiate clinically, and it has been suggested that they may be allelic variants of the same disorder. We have tested MJD families for linkage to six DNA sequence polymorphisms located on chromosome 6p, including the highly informative dinucleotide repeat, D6S89. Seventeen centimorgans telomeric to and 41 cM centromeric to D6S89, a region that includes the SCA1 locus reported to be within 3 cM of D6S89, have been excluded. These data provide conclusive evidence that MJD and SCA1 are nonallelic.

Alleles

The human cationic amino acid transporter (ATRC1): physical and genetic mapping to 13q12-q14.

The product of the mouse Rec-1 locus is an integral membrane protein that determines susceptibility to infection by murine ecotropic retroviruses. Recently it has been determined that its role in normal cell metabolism is transport of the cationic amino acids, arginine, lysine, and ornithine across the plasma membrane. Southern blot analysis of genomic DNA from a panel of 48 mouse-human somatic cell hybrids assigned the human version of this gene, ATRC1, to chromosome 13. Chromosomal in situ hybridization localized the gene to 13q12-q14. A restriction fragment length polymorphism (RFLP) was detected with TaqI. There were two alleles with frequencies of 0.29 and 0.71. Pairwise linkage analysis established linkage between ATRC1 and ATP1AL1, D13S1, D13S6, D13S10, D13S11, D13S21, D13S22, D13S33, D13S36, and D13S37. Multilocus linkage analysis of five of the loci indicated that the most likely order of loci in this region was D13S11-ATP1AL1-ATRC1-D13S6-D13S33.

Amino Acid Transport Systems, Basic

Waardenburg syndrome (WS) type I is caused by defects at multiple loci, one of which is near ALPP on chromosome 2: first report of the WS consortium.

Previous studies have localized the gene for Waardenburg syndrome (WS) type I to the distal portion of chromosome 2q, near the ALPP locus. We pooled linkage data obtained from 41 WS type I and 3 WS type II families which were typed for six polymorphic loci on chromosome 2q in order to refine the location of the WS locus (WS1) and evaluate the extent of genetic heterogeneity. In the course of this work, we developed diagnostic criteria for genetic and phenotypic studies. Our findings, based on two-locus and multilocus analysis using a linkage map established from reference pedigrees, suggest that there are two or more mutations causing WS, one of which (i.e., WS1) is located on chromosome 2q, between the ALPP and FN1 loci, at distances of 7.8 cM and 11.2 cM for each marker, respectively. The results also indicate that WS1 is responsible for the illness in approximately 45% of all families in this sample. However, the odds favoring this position over a location between ALPP and SAG are only 2:1 when alternate assumptions about the proportion of linked families are considered. We conclude that a more saturated map of this region of chromosome 2q, including highly polymorphic markers, will be needed to accurately distinguish linked families and, ultimately, isolate the mutant gene.

Alkaline Phosphatase

Gene localization by linkage analysis.

Traditional genetic approaches have led to the identification of defects underlying an impressive array of diseases. Genetic terminology, Mendel's laws, chromosomes and linkage, statistical methods for linkage analysis, genetic markers, multilocus mapping, strategies in linkage studies, linkage heterogeneity, and the future of linkage analysis are discussed in this article. The molecular basis for most disorders, however, cannot be gleaned because there is no identifiable primary metabolic disorder.

Chromosome Mapping

Inverse relationship between age at onset of Huntington disease and paternal age suggests involvement of genetic imprinting.

It is well recognized that age at onset of Huntington disease (HD) is strongly influenced by the sex of the affected parent, and this has lead to suggestions that genetic imprinting or maternal specific factors may play a role in the expression of the disease. This study evaluated maternal and paternal ages, birth order, parental age at onset, and sex of the affected parent and grandparent in 1,764 patients in the National HD Roster by using linear-regression techniques which incorporated a weighted least-squares approach to accommodate the correlation among siblings. It was found that paternal age is negatively associated with age at onset of HD, particularly among subjects who inherit the mutant gene from grandfathers. Apparent associations between age at onset and birth order and between age at onset and maternal age were not significant after adjustment for paternal age. The paternal age effect is strongest among juvenile-onset cases and individuals with anticipation of greater than or equal to 10 years, although it is detectable across the entire age-at-onset distribution. The tendency for older fathers, including those not transmitting the HD gene, to have affected offspring with early-onset disease may be consistent with a gene imprinting mechanism involving DNA methylation. Because paternal age in unaffected fathers is also a significant determinant of age at onset, methylation in this context might involve HD modifier genes or the normal HD allele.

Adolescent

A test of the hypothesis that age at onset in Huntington disease is controlled by an X-linked recessive modifier.

Data from the Research Roster for Huntington Disease Patients and Families were used to assess the hypothesis that juvenile onset in Huntington disease is determined by an X-linked recessive modifying gene in the affected parent. The observed proportion of affected fathers to affected mothers who had such offspring was not compatible with this hypothesis. Furthermore, neither the excess of affected grandfathers nor the existence of juvenile-onset and adult-onset cases within a sibship would be predicted by this model. We also rejected a more general hypothesis that a major change in gene expression across generations, measured by the presence of juvenile onset and/or major anticipation, is determined by an X-linked modifier. However, the inheritance of a propensity toward juvenile onset via the affected male line could be due to an abnormal pattern of paternal genomic imprinting.

Adolescent

Association of decreased paternal age and late-onset Alzheimer's disease. An example of genetic imprinting?

Several studies have identified advanced maternal age as a risk factor for Alzheimer's disease. This study evaluated maternal and paternal age at birth of 237 patients with Alzheimer's disease, each of whom was matched to five control subjects based on sex, year of birth, survival age, and location of residence. It was found that decreased paternal age substantially increased the susceptibility to the common form of Alzheimer's disease that occurs after the age of 67 years, whereas advanced maternal age had a negligible effect on risk of Alzheimer's disease. The higher incidence of late-onset Alzheimer's disease among persons born to younger fathers is consistent with a genetic imprinting mechanism involving DNA methylation. The proposed model postulates a role for environmental agents in the pathogenesis of Alzheimer's disease and accounts for families that show an aggregation of cases but no apparent pattern of inheritance.

Adult

A contiguous linkage map of chromosome 13q with 39 distinct loci separated on average by 5.1 centimorgans.

A fine-structure linkage map of chromosome 13q is presented. This map contains 39 continuously linked loci defined by genotypes generated from the CEPH family DNAs with 56 probe and enzyme combinations. An alpha-satellite probe for sequences on chromosome 13 was included, resulting in a complete map of 13q with 39 distinct loci. The map spans 1.715 M in males and 2.099 M in females and the mean genetic distance between adjacent loci is 5.1 cM. Although there was generally a several-fold excess of female recombination in the interstitial portion of 13q, an excess of recombination in males was observed at both ends of this chromosomal arm. This map should be useful for the localization of any additional marker, gene, or disease locus of interest on chromosome 13q.

Chromosome Mapping

Patterns of inheritance of the symptoms of Huntington's disease suggestive of an effect of genomic imprinting.

The interaction of symptomatology (rigidity/chorea) in Huntington's disease (HD) with age of onset (AO) was examined using data from the Research Roster for Huntington's Disease Patients and Families. It was shown that AO varies between families and between paternal and maternal transmission and that rigidity is associated specifically with very early onset, major anticipation, paternal transmission, and young parental AO. It is proposed that AO depends on the state of methylation of the HD locus, which varies as a familial trait, and as a consequence of 'genomic imprinting' determined by parental transmission. Young familial AO and paternal imprinting interact to produce, occasionally, a major change in gene expression, that is, the early onset/rigid variant.

Adolescent

Predictive testing for Wilson's disease using tightly linked and flanking DNA markers.

We studied DNA polymorphisms for five new chromosome 13 markers in 52 Wilson's disease (WD) families from Europe, North America, and the Middle East. There was significant evidence for linkage between the Wilson's disease locus (WND) and all the marker loci. Multilocus linkage analysis, using a genetic linkage map established from reference pedigrees, suggested that WND is most likely between D13S31 and D13S59, at distances of 0.4 and 1.2 centimorgans, respectively. Our results suggest that the chromosomal location of the Wilson's disease gene is the same in all families from the populations studied. This evidence and the availability of many close, flanking, and polymorphic DNA markers make possible accurate and informative testing of potential carriers and WD homozygotes in families with at least one previously affected child. An advantage of a genetic linkage test over other laboratory methods for prediction of genotype in WD is that a reliable diagnosis can be made at a much earlier stage in life, including prenatally. In addition, DNA testing can be used in place of an invasive liver biopsy procedure to confirm a diagnosis in patients with borderline serum ceruloplasmin levels. Presymptomatic identification will also allow therapeutic intervention to prevent symptoms before irreparable liver or neurologic damage occurs. We describe the implementation of prenatal and preclinical diagnosis for two families with WD.

Chromosome Mapping

Estimation of morbid risk and age at onset with missing information.

Investigators of genetic illnesses are currently employing life-table techniques to estimate the lifetime risk of disease and the age-at-onset distribution. This methodology assumes that onset ages are known for affected individuals and that censoring ages are known for unaffected individuals. We extend these methods to incorporate affected individuals with unknown onset ages and unaffected persons with unknown censoring ages and illustrate how conventional life-table methods can produce seriously biased estimates, particularly of lifetime risk. The methodology is not restricted to genetic illnesses and can be applied to more complex illnesses with unknown etiology. We present an example for Huntington disease, which is generally assumed to be a Mendelian autosomal dominant disease, yielding estimates of lifetime risk of .503 +/- .70 and mean onset age of 47.7 +/- 3.1 years for offspring with a single affected parent. When conventional life-table techniques are employed, these estimates are .238 +/- .032 and 43.2 +/- 2.2.

Age Factors

Segregation analysis reveals evidence of a major gene for Alzheimer disease.

In an attempt to resolve the relative influences of major genes, multifactorial heritability, and cohort effects on the susceptibility to Alzheimer disease (AD), complex segregation analysis was performed on 232 nuclear families. All families were consecutively ascertained through a single proband who was referred for diagnostic evaluation of a memory disorder. The results suggest that susceptibility to AD is determined, in part, by a major autosomal dominant allele with an additional multifactorial component. Single-locus, polygenic, sporadic, and no-transmission models, as well as recessive inheritance of the major effect, were significantly rejected. Excess transmission from the heterozygote was marginally significant and probably reflects the presence of phenocopies or perhaps the existence of two or more major loci for AD. The frequency of the AD susceptibility allele was estimated to be .038, but the major locus accounts for only 24% of the transmission variance, indicating a substantial role for other genetic and nongenetic mechanisms in the causation of AD.

Alzheimer Disease

Genetic linkage studies suggest that Alzheimer's disease is not a single homogeneous disorder.

Alzheimer's disease, a fatal neurodegenerative disorder of unknown aetiology, is usually considered to be a single disorder because of the general uniformity of the disease phenotype. Two recent genetic linkage studies revealed co-segregation of familial Alzheimer disease with the D21S1/S11 and D21S16 loci on chromosome 21. But two other studies, one of predominantly multiplex kindreds with a late age-of-onset, the other of a cadre of kindreds with a unique Volga German ethnic origin, found absence of linkage at least to D21S1/S11. So far it has not been possible to discern whether these conflicting reports reflect aetiological heterogeneity, differences in methods of pedigree selection, effects of confounding variables in the analysis (for example, diagnostic errors, assortative matings), or true non-replication. To resolve this issue, we have now examined the inheritance of five polymorphic DNA markers from the proximal long arm of chromosome 21 in a large unselected series of pedigrees with familial Alzheimer's disease. Our data suggest that Alzheimer's disease is not a single entity, but rather results from genetic defects on chromosome 21 and from other genetic or nongenetic factors.

Alzheimer Disease

The serotonin receptor subtype 2 locus HTR2 is on human chromosome 13 near genes for esterase D and retinoblastoma-1 and on mouse chromosome 14.

Serotonin (5-hydroxytryptamine) functions as a neurotransmitter and a hormone. Its diverse actions are mediated by at least seven distinct cell surface receptor subtypes. The serotonin receptor subtype 2 (gene symbol HTR2) is a G-protein-coupled receptor, expressed primarily in the cerebral cortex, where upon stimulation it stimulates the hydrolysis of inositol phospholipids. We have mapped the HTR2 locus to human chromosome 13 and to mouse chromosome 14 by somatic cell hybrid analysis. Linkage studies in CEPH families, using a PvuII RFLP detected with the HTR2 probe, revealed tight linkage between HTR2 and ESD, the locus for esterase D. The most likely position for HTR2 is between ESD and RB1, the retinoblastoma-1 gene. The homologous loci in mouse, Rb-1 and Esd(Es-10) are on mouse chromosome 14, close to ag, agitans, a recessive neurological mutation. Having mapped Htr-2 to mouse chromosome 14, we predict that it falls into this known conserved gene cluster.

Animals

An alpha satellite DNA polymorphism specific for the centromeric region of chromosome 13.

Alpha satellite DNA is composed of variants of a short consensus sequence that are repeated in tandem arrays in the centromeric heterochromatin of each human chromosome. To define centromeric markers for linkage studies, we screened human genomic DNA for restriction fragment length polymorphisms using a probe detecting alphoid sequences on chromosomes 13 and 21. We describe one such DNA polymorphism. Analysis of linkage of this DNA marker to other polymorphic markers in the CEPH pedigrees demonstrates linkage to markers on the proximal long arm of chromosome 13 and defines the centromeric end of the linkage map of this chromosome.

Blotting, Southern

Wilson's disease in Israel: a genetic and epidemiological study.

Clinical and family history data on persons affected with Wilson disease (WD) living in Israel between 1958 and 1984 were ascertained from the literature, hospital records and neurological and gastroenterological clinics. From this population of 51 families, representing a diversity of Middle Eastern. North African and European backgrounds, blood samples were collected from affected individuals in 21 families, their parents, sibs and other relatives for quantitative determinations of plasma copper and ceruloplasmin, liver tests and DNA analysis. Although the majority of patients have the hepatic form of the disease, hepatic and neurological cases were found among all ethnic groups. In fact, affected sibs in several inbred families who most likely inherited two copies of the same mutant allele had different symptoms. Gene frequencies were calculated for each of the populations taking into account inbreeding, probability of ascertainment, and estimated incidence. Although many of these communities have gene frequencies which are comparable to worldwide estimates, high prevalence of disease is maintained by consanguineous mating patterns. Probabilities of WND genotypes were calculated for 129 unaffected relatives who had an a priori risk of inheriting at least one WND allele using information from 10 DNA markers closely linked to the WND locus. There was no evidence that multiple loci are responsible for the observed clinical variability in this sample of families. Furthermore, studies of serum copper and ceruloplasmin levels in unaffected relatives suggest that phenotypic variability in WD may be due in part to an interaction of the WND locus with other genetic or non-genetic modifiers such as age.

Adolescent