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L K Beitel

Publications and source records attributed to L K Beitel.

At least 19 recordsLinked to original sources

Variable expressivity and mutation databases: The androgen receptor gene mutations database.

For over 50 years genetics has presumed that variations in phenotypic expression have, for the most part, been the result of alterations in genotype. The importance and value of mutation databases has been based on the premise that the same gene or allelic variation in a specific gene that has been proven to determine a specific phenotype, will always produce the same phenotype. However, recent evidence has shown that so called "simple" Mendelian disorders or monogenic traits are often far from simple, exhibiting phenotypic variation (variable expressivity) that cannot be explained solely by a gene or allelic alteration. The AR gene mutations database now lists 25 cases where different degrees of androgen insensitivity are caused by identical mutations in the androgen receptor gene. In five of these cases the phenotypic variability is due to somatic mosaicism, that is, somatic mutations that occur in only certain cells of androgen-sensitive tissue. Recently, a number of other cases of variable expressivity have also been linked to somatic mosaicism. The impact of variable expressivity due to somatic mutations and mosaicism on mutation databases is discussed. In particular, the effect of an organism exhibiting genetic heterogeneity within its tissues, and the possibility of an organism's genotype changing over its lifetime, are considered to have important implications for mutation databases in the future.

Androgen-Insensitivity Syndrome↗

Somatic mosaicism and variable expressivity.

For more than 50 years geneticists have assumed that variations in phenotypic expression are caused by alterations in genotype. Recent evidence shows that 'simple' mendelian disorders or monogenic traits are often far from simple, exhibiting phenotypic variation (variable expressivity) that cannot be explained entirely by a gene or allelic alteration. In certain cases of androgen insensitivity syndrome caused by identical mutations in the androgen receptor gene, phenotypic variability is caused by somatic mosaicism, that is, somatic mutations that occur only in certain androgen-sensitive cells. Recently, more than 30 other genetic conditions that exhibit variable expressivity have been linked to somatic mosaicism. Somatic mutations have also been identified in diseases such as prostate and colorectal cancer. Therefore, the concept of somatic mutations and mosaicism is likely to have far reaching consequences for genetics, in particular in areas such as genetic counseling.

Animals↗

The polymorphic CAG repeat of the androgen receptor gene: a potential role in breast cancer in women over 40.

Previous investigations into the relationship of CAG-repeat lengths in the androgen receptor (AR) gene to female breast cancer (BC) have yielded somewhat confusing results. Decreased AR transactivational activity lowers androgen:estrogen balance, and may thereby effect functional hyperestrogenicity. This may promote the pathogenesis of BC. To elucidate whether longer CAG repeats of the AR gene (AR), which correlate with lower transactivational activity of the AR, are associated with BC in women over 40, we examined the distribution of CAG-repeat lengths in BC tissue from this population. The BC tissue was histologically graded as: Grade 1, well differentiated (WD); Grade 2, moderately differentiated (MD); and Grade 3, poorly-differentiated (PD). Analysis showed significant differences as compared to controls when CAG lengths greater than 21 were examined, and that alleles with > or = 26 repeats were 2.4-fold more frequent in BC samples than in constitutional samples from a normal population. A significant shift to greater CAG-repeat lengths, appeared in WD and MD tumors only. Our results give some indication as to the progression of BC by suggesting that hypotransactive ARs with long polyglutamine (polyGln) tracts may have a role in the initiation and/or progression of BC. PD tumors tended to have shorter than normal CAG-repeat lengths. In this case it is hypothesized that the ARs have now become hypertransactive, possibly coinciding with the estrogen resistance that is associated with PD tumors. Whether this shift is of germline or somatic origin was not clear, though the appearance in 14% of the BC samples of a third CAG-repeat length indicates that it may be somatic.

Adult↗

Interactions between androgen and estrogen receptors and the effects on their transactivational properties.

The physiological interplay of androgen and estrogen action in endocrine tissues is well recognized. The biochemical processes responsible for this interplay have yet to be fully defined. We have demonstrated that the androgen receptor (AR) and estrogen receptor-alpha (ERalpha) can interact directly using the yeast and mammalian two-hybrid systems. These interactions occurred between the C-terminal ERalpha ligand-binding domain and either the N-terminal AR transactivational domain or the full-length AR. Estrogen receptor-beta (ERbeta) did not interact with the AR. DNA cotransfection studies employing AR, ERalpha and ERbeta expression vectors and AR- or ER-reporter gene constructs were used to identify and measure potential functional effects of AR-ER interaction. Coexpression of ERalpha with AR decreased AR transactivation by 35%; coexpression of AR with ERalpha decreased ERalpha transactivation by 74%. Coexpression of AR and ERbeta did not significantly modulate AR or ERbeta transactivation. In summary, we have shown that specific domains of AR and ERalpha physically interact and have demonstrated the functional consequences of such interaction. These results may help explain the nature of the physiological interplay between androgens and estrogens.

Animals↗

Androgen insensitivity.

The androgen receptor (AR) protein regulates transcription of certain genes. Usually, this activity depends upon a central DNA-binding domain that permits the binding of androgen-AR complexes to regulatory DNA sequences near or in a target gene. The AR also has a C-terminal androgen-binding domain (ABD) and an N-terminal modulatory domain. These domains interact among themselves and with coregulatory, nonreceptor proteins to determine vector control over a gene's transcription rate. The precise roles of these proteins are active research areas. Severe X-linked androgen receptor gene (AR) mutations cause complete androgen insensitivity, mild ones impair virilization with or without infertility, and moderate ones sometimes yield a wide phenotypic spectrum among sibs. Different expressivity may reflect variability of AR-interactive proteins. The family history must identify heterozygous XX females with sparse, delayed, or asymmetric pubic/axillary hair or delayed menarche and infertile XY maternal aunts or uncles. Mutation type and density vary along the length of the AR. N-terminal polyglutamine tract expansion limits AR transactivation, causing a form of mild androgen insensitivity. Analysis of ABD mutations that do not impair androgen binding or impair it selectively will illuminate its intradomain properties. For partial androgen insensitivity and mild androgen insensitivity, pharmacotherapy with certain androgens or other steroids may overcome some dysfunction of certain mutant ARs. Experience with this approach is limited; outcomes have been generally disappointing.

Androgen-Insensitivity Syndrome↗

Update of the androgen receptor gene mutations database.

The current version of the androgen receptor (AR) gene mutations database is described. The total number of reported mutations has risen from 309 to 374 during the past year. We have expanded the database by adding information on AR-interacting proteins; and we have improved the database by identifying those mutation entries that have been updated. Mutations of unknown significance have now been reported in both the 5' and 3' untranslated regions of the AR gene, and in individuals who are somatic mosaics constitutionally. In addition, single nucleotide polymorphisms, including silent mutations, have been discovered in normal individuals and in individuals with male infertility. A mutation hotspot associated with prostatic cancer has been identified in exon 5. The database is available on the internet (http://www.mcgill.ca/androgendb/), from EMBL-European Bioinformatics Institute (ftp.ebi.ac.uk/pub/databases/androgen), or as a Macintosh FilemakerPro or Word file (MC33@musica.mcgill.ca).

3' Untranslated Regions↗

Analysis of exon 1 mutations in the androgen receptor gene.

Eleven mutations in exon 1 of the androgen receptor gene (AR) have been identified in 15 individuals with Androgen Insensitivity syndrome (AIS). Nine of the mutations yield a stop codon directly, or due to a frameshift, in individuals with complete AIS (CAIS). One individual with CAIS had three different mutations in exon 1: one is nominally silent (Glu 211; GAG 995 GAA); two are missense (Pro 390 Arg and Glu 443 Arg). Five unrelated individuals with either CAIS, partial AIS (PAIS) or mild AIS (MAIS) had GAG 995 GAA as their only alteration. This report almost doubles the number of exon 1 mutations stored in the AR Mutation Database, reinforces their highly predominant nonsense character, and identifies Pro 390 and/or Gln 443 as residues that are probably necessary for one or more specific functions of the AR's N-terminal transactivation domain.

Androgen-Insensitivity Syndrome↗

Discordant measures of androgen-binding kinetics in two mutant androgen receptors causing mild or partial androgen insensitivity, respectively.

We have characterized two different mutations of the human androgen receptor (hAR) found in two unrelated subjects with androgen insensitivity syndrome (AIS): in one, the external genitalia were ambiguous (partial, PAIS); in the other, they were male, but small (mild, MAIS). Single base substitutions have been found in both individuals: E772A in the PAIS subject, and R871G in the MAIS patient. In COS-1 cells transfected with the E772A and R871G hARs, the apparent equilibrium dissociation constants (Kd) for mibolerone (MB) and methyltrienolone are normal. Nonetheless, the mutant hAR from the PAIS subject (E772A) has elevated nonequilibrium dissociation rate constants (k(diss)) for both androgens. In contrast, the MAIS subject's hAR (R871G) has k(diss) values that are apparently normal for MB and methyltrienolone; in addition, the R871G hAR's ability to bind MB resists thermal stress better than the hAR from the PAIS subject. The E772A and R871G hARs, therefore, confer the same pattern of discordant androgen-binding parameters in transfected COS-1 cells as observed previously in the subjects' genital skin fibroblasts. This proves their pathogenicity and correlates with the relative severity of the clinical phenotype. In COS-1 cells transfected with an androgen-responsive reporter gene, trans-activation was 50% of normal in cells containing either mutant hAR. However, mutant hAR-MB binding is unstable during prolonged incubation with MB, whereas normal hAR-MB binding increases. Thus, normal equilibrium dissociation constants alone, as determined by Scatchard analysis, may not be indicative of normal hAR function. An increased k(diss) despite a normal Kd for a given androgen suggests that it not only has increased egress from a mutant ligand-binding pocket, but also increased access to it. This hypothesis has certain implications in terms of the three-dimensional model of the ligand-binding domain of the nuclear receptor superfamily.

Amino Acid Sequence↗

The Androgen Receptor Gene Mutations Database.

The current version of the androgen receptor (AR) gene mutations database is described. The total number of reported mutations has risen from 272 to 309 in the past year. We have expanded the database: (i) by giving each entry an accession number; (ii) by adding information on the length of polymorphic polyglutamine (polyGln) and polyglycine (polyGly) tracts in exon 1; (iii) by adding information on large gene deletions; (iv) by providing a direct link with a completely searchable database (courtesy EMBL-European Bioinformatics Institute). The addition of the exon 1 polymorphisms is discussed in light of their possible relevance as markers for predisposition to prostate or breast cancer. The database is also available on the internet (http://www.mcgill. ca/androgendb/ ), from EMBL-European Bioinformatics Institute (ftp. ebi.ac.uk/pub/databases/androgen ), or as a Macintosh FilemakerPro or Word file (MC33@musica.mcgill.ca).

Computer Communication Networks↗

Codon-usage variants in the polymorphic (GGN)n trinucleotide repeat of the human androgen receptor gene.

The human androgen receptor gene (hAR) has a long, polymorphic trinucleotide (GGN; glycine)n repeat in the 3' portion of its first exon, with n = 10-31. Owing to technical difficulties that have precluded routine sequencing of this region, it is widely unknown that N represents T, G or C, and that the usual sense codon sequence of the GGN tract is (GGT)3GGG(GGT)2(GGC)4-25. Furthermore, on 4 of 61 X chromosomes, we observed that the internal GGT sequence was present three or four times instead of twice. Strikingly, each of the three alleles with an internal (GGT)3, and only these three, also had a (GGC)20 repeat. The size or composition of a (GGN)n repeat was not correlated with the length of the accompanying (CAG)nCAA repeat in the 5' portion of exon one. Hence, codon-usage variants of the GGN tract may be used to seek associations with particular diseases, as diagnostic aids in families with androgen insensitivity whose AR mutations have not yet been identified, or as internal controls for observations on intergenerational contractions or expansions of the (CAG)nCAA tract in a given hAR allele.

Alleles↗

Characterization of normal and point-mutated human androgen receptors expressed in the baculovirus system.

The baculovirus system is able to generate large amounts of a protein, permitting detailed analysis of structure-function relations. We have used this system to overexpress and characterize normal human androgen receptors (hAR) and mutant hARs from humans with complete or partial androgen insensitivity. Maximum specific binding of [3H]mibolerone (MB) in recombinant baculovirus-infected Spodoptera frugiperda (Sf9) cells varied from 15 to 40 pmol/mg protein, about 1000-fold higher than in genital skin fibroblasts, and peaked 48-72 h after infection. In contrast, Coomassie blue staining and Western blotting revealed maximum accumulation of 100-120 kDa hAR proteins 96 h post-infection. Normal and mutant hARs were specifically photo-affinity-labeled with [3H]methyltrienolone (MT), and had normal steroid-binding selectivity: the order of competition was androgen > estrogen > progestin > glucocorticoid. Normal hAR was phosphorylated in Sf9 cells, reacted with antibodies against phosphoserine and phosphothreonine after purification using testosterone-biotin, and transactivated a transfected androgen response element-luciferase reporter in infected Sf9 cells. Two mutant hARs had increased rates of dissociation from MB and MT that were in accord with the associated degree of clinical androgen insensitivity: complete, Pro903Ser > partial, Leu820Val; the third, Ile663Asn, was not abnormal. Our data extend the characterization of normal hAR produced by baculovirus-infected Sf9 cells, and demonstrate, for the first time, that point-mutated hARs so produced can display distinctive biochemical phenotypes.

Amino Acid Sequence↗

Complete androgen insensitivity due to mutations in the probable alpha-helical segments of the DNA-binding domain in the human androgen receptor.

We describe different single-amino acid aberrations in the DNA-binding domain (DBD) of the human androgen receptor (hAR) in three families with complete androgen insensitivity. No additional alteration was found in the translated portion of each mutant gene. In one family, an in-frame 3 nt deletion removes codon 581-(or 582) and, thereby, one of two phenylalanines that invariably occupy adjacent positions in the N-terminal alpha-helical region of the DBD in the steroid/thyroid/vitamin D receptor superfamily. In the second, an in-frame 3 nt loss deletes Arg614, an invariant residue in the C-terminal alpha-helix of the DBD. In the third, a G-->A transition causes Arg614His. Following transient transfection of COS cells with each mutant AR plasmid, there is a normal concentration of specific androgen-binding activity that has a reduced ability to bind two types of androgen response element (ARE), and to transregulate an androgen-responsive human growth hormone reporter gene. In genital skin fibroblasts with delta Phe581 or Arg614His, androgen-binding, AR protein and AR mRNA are markedly reduced; in gonadal fibroblasts with delta Arg614, AR mRNA may be reduced. Our data substantiate the primary contributions of Phe581 and Arg614 to normal hAR-ARE binding, and expose important secondary effects of the mutations affecting each residue.

Amino Acid Sequence↗

Substitution of arginine-839 by cysteine or histidine in the androgen receptor causes different receptor phenotypes in cultured cells and coordinate degrees of clinical androgen resistance.

We aim to correlate point mutations in the androgen receptor gene with receptor phenotypes and with clinical phenotypes of androgen resistance. In two families, the external genitalia were predominantly female at birth, and sex-of-rearing has been female. Their androgen receptor mutation changed arginine-839 to histidine. In a third family, the external genitalia were predominantly male at birth, and sex-of-rearing has been male: their codon 839 has mutated to cysteine. In genital skin fibroblasts, both mutant receptors have a normal androgen-binding capacity, but they differ in selected indices of decreased affinity for 5 alpha-dihydrotestosterone or two synthetic androgens. In transiently cotransfected androgen-treated COS-1 cells, both mutant receptors transactivate a reporter gene subnormally. The His-839 mutant is less active than its partner, primarily because its androgen-binding activity is more unstable during prolonged exposure to androgen. Adoption of a nonbinding state explains a part of this instability. In four other steroid receptors, another dibasic amino acid, lysine, occupies the position of arginine-839 in the androgen receptor. Androgen receptors with histidine or cysteine at position 839 are distinctively dysfunctional and appear to cause different clinical degrees of androgen resistance.

Adult↗

Substitution of valine-865 by methionine or leucine in the human androgen receptor causes complete or partial androgen insensitivity, respectively with distinct androgen receptor phenotypes.

We have identified two different single nucleotide missense substitutions at valine-865 in exon 7 of the human androgen receptor (AR) gene in two families with androgen resistance. Val-->methionine is associated with the complete syndrome; Val-->leucine is associated with the partial form. In genital skin fibroblasts, both alterations yield a normal maximum binding capacity, but an increased apparent equilibrium dissociation constant for all androgens tested. In genital skin fibroblasts, Val865-Met A-R complexes have increased rate constants of dissociation with 5 alpha-dihydrotestosterone, and the nonmetabolized ligands methyltrienolone or mibolerone (MB); their Val865-Leu counterparts have increased rates with methyltrienolone and MB, but not with 5 alpha-dihydrotestosterone. In transiently transfected COS-1 or PC-3 cells, Met865 AR is more severely impaired than Leu865 AR in transactivating two different androgen-responsive reporter constructs, thereby correlating with clinical phenotype. In COS-1 cells exposed to MB for 74 h, this relative impairment correlates with the relative instability of the MB-binding activity of each mutant AR, suggesting that their respective intrinsic transcriptional regulatory competence is normal. Notably, these mutant ARs lose significantly more MB-binding activity than immunoreactivity, suggesting that prolonged MB exposure induces them to adopt a nonbinding state. The position homologous to Val865 in the AR is occupied by Leu or Met in the three steroid receptors closely related to the AR. This indicates the structural subtlety that underlies the steroid-binding activity of different steroid receptors.

Amino Acid Sequence↗

Androgen resistance due to mutation of the androgen receptor.

The androgen receptor (AR) is a 'one-stop' signal transduction system that is the core of the intracellular androgen-response apparatus. It is an androgen-regulated, DNA-binding protein that regulates the expression of certain target genes, primarily at the transcriptional level. Mutations at the X-linked AR locus cause deficient or defective AR activity and, thereby, an extraordinarily wide spectrum of clinical androgen resistance. At one extreme, the affected 46,XY person is an infertile phenotypic female; at the other, he is a phenotypic male who may even be fertile, yet have gynecomastia or other focal signs of postpubertal subvirilization. We have identified 32 proven or putatively pathogenic alterations in the AR gene of 38 androgen-resistant families. This permits heterozygote detection and prenatal diagnosis whenever relevant. Most of the mutations affect the AR's androgen-binding domain, partly because our search has been targetted on those whose genital skin fibroblasts have impaired androgen-binding activities. The AR is a prototypic member of a subfamily that includes the receptors for progesterone, glucocorticoid, and mineralocorticoid. Observations that correlate AR genotype with clinical and receptor phenotypes of androgen resistance will help to generate a fine structure-function map of the AR and its close relatives. Constitutional variation in androgen sensitivity, that may be restricted to an organ (or organ system), could contribute to the pathogenesis of certain diseases whose sex ratio departs significantly from one.

Amino Acid Sequence↗

Sequence requirements for the stimulation of gene amplification by a mammalian genomic element.

HSAG-1 is a 3.4-kb genomic element from a human chronic lymphocytic leukemia--Chinese hamster ovary (CHO) hybrid cell line shown to stimulate the amplification of expression vectors in cis when transfected into a variety of cell lines [McArthur and Stanners, J. Biol. Chem. 266 (1991) 6000-6005]. Subfragments of HSAG-1 were tested for amplification activity by insertion into the vector, pSV2DHFR. The results suggest that multiple positive- and negative-acting elements were present that influenced amplification activity. The deletion of regions believed to contain positive-acting elements decreased or abolished the amplification stimulatory activity of the most active 1.45-kb fragment, supporting this hypothesis. The construction of composite sequences containing multiple positive elements and lacking negative elements, however, failed to enhance the activity; maximum activity was obtained only with the original intact configuration of elements. Two of two CHO HSAG-1-like elements tested had an activity equivalent to HSAG-1, while one of 24 random CHO genomic fragments tested had an activity as high as HSAG-1. The combination of sequence and structural features needed to affect the frequency of gene amplification may therefore be quite common in the mammalian genome.

Animals↗

Elements which stimulate gene amplification in mammalian cells: role of recombinogenic sequences/structures and transcriptional activation.

HSAG-1 is a 3.4 kb mammalian genomic element which has been shown to stimulate the amplification of the pSV2DHFR expression vector in cis when transfected into a variety of cell lines (1). This amplification stimulatory activity requires the interaction of multiple positive acting elements that include sequence features associated with recombination 'hotspots', such as Alu-like repetitive sequences and A/T rich regions (2). We demonstrate here that two other members of the HSAG family of elements, HSAG-2 and HSAG-5, also stimulate vector amplification. By analysis of the HSAG-2 nucleotide sequence and of the amplification activity of HSAG-2 and HSAG-5 subfragments, we show that this activity also involves the interaction of multiple positive acting elements. The autonomous replication of the HSAG containing vectors is not responsible for this effect. We also show that the orientation of HSAG elements in pSV2DHFR has a profound effect on their amplification stimulatory activity, and present evidence that the transcription of these elements in pSV2DHFR is necessary for the effect.

Animals↗

Studies on HSAG, a middle repetitive family of genetic elements which elicit a leukemia-related cellular surface antigen.

HSAG is a family of genetic elements capable of eliciting, in transfected cells, a cellular surface antigen which is correlated with human chronic lymphocytic leukemia (CLL). Its prototype member, HSAG-1, was cloned as a 3.4 kb insert and contains numerous Alu-related elements, including its left hand 1.4 kb antigen-eliciting end. These elements are present in mammalian cells with copy numbers varying from 7,000 to 200,000 per haploid genome, depending on how closely their sequence conforms to the Alu consensus sequence. They are present in the configuration found in HSAG-1, a 3.4 kb EcoRI fragment which is part of a larger unit of at least 12.7 kb, at a frequency of 20-50 per haploid genome, and dispersed around the genome. A second family member, HSAG-2, isolated using a functional assay, was cloned as a 9.5 kb insert and contained a 1.5 kb antigen-eliciting left hand end. As in HSAG-1, the antigen-eliciting portion of the insert also contained Alu-like elements, unlike most of the remainder of the insert. A number of HSAG family members were cloned from a library of human CLL genomic DNA by sequence homology with the antigen-eliciting portion of HSAG-1. Most of these members were also shown to be capable of eliciting antigen. Their only sequence similarity with HSAG-1 appeared to be in their content of numerous Alu-like elements. The evidence thus supports the view that the HSAG functional family consists of clusters of Alu-like elements.

Animals↗