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Hemochromatosis mutations in the general population: iron overload progression rate.

The progression rate of iron overload in hereditary hemochromatosis in individuals in the general population is unknown. We therefore examined in the general population iron overload progression rate in C282Y homozygotes. Using a cohort study of the Danish general population, The Copenhagen City Heart Study, we genotyped 9174 individuals. The 23 C282Y homozygotes identified were matched to 2 subjects each of 5 other HFE genotypes with respect to sex, age, and alcohol consumption. As a function of biologic age, transferrin saturation increased from 50% to 70% from 25 to 85 years of age and from 70% to 80% from 35 to 80 years of age in female and male C282Y homozygotes, respectively. Equivalently, ferritin levels increased from 100 to 500 microg/L and decreased from 800 to 400 microg/L in female and male C282Y homozygotes. As a function of 25 years follow-up irrespective of age, transferrin saturation and ferritin levels increased slightly in male and female C282Y homozygotes. None of the C282Y homozygotes developed clinically overt hemochromatosis. In conclusion, individuals in the general population with C282Y homozygosity at most demonstrate modest increases in transferrin saturation and ferritin levels, and clinically overt hemochromatosis is rare. Therefore, C282Y homozygotes identified during population screening, and not because of clinically overt hemochromatosis, at most need to be screened for manifestations of hemochromatosis every 10 to 20 years.

Adult↗

Hereditary hemochromatosis: an opportunity for gene therapy.

Levels of body iron should be tightly controlled to prevent the formation of oxygen radicals, lipoperoxidation, genotoxicity, and the production of cytotoxic cytokines, which result in damage to a number of organs. Enterocytes in the intestinal villae are involved in the apical uptake of iron from the intestinal lumen: iron is further exported from the cells into the circulation. The apical divalent metal transporter-1 (DMT1) transports ferrous iron from the lumen into the cells, while the basolateral transporter ferroportin extrudes iron from the enterocytes into the circulation. Patients with hereditary hemochromatosis display an accelerated transepithelial uptake of iron, which leads to body iron accumulation that results in cirrhosis, hepatocellular carcinoma, pancreatitis, and cardiomyopathy. Hereditary hemochromatosis, a recessive genetic condition, is the most prevalent genetic disease in Caucasians, with a prevalence of one in 300 subjects. The majority of patients with hereditary hemochromatosis display mutations in the gene coding for HFE, a protein that normally acts as an inhibitor of transepithelial iron transport. We discuss the different control points in the homeostasis of iron and the different mutations that exist in patients with hereditary hemochromatosis. These control sites may be influenced by gene therapeutic approaches; one general therapy for hemochromatosis of different etiologies is the inhibition of DMT1 synthesis by antisense-generating genes, which has been shown to markedly inhibit apical iron uptake by intestinal epithelial cells. We further discuss the most promising strategies to develop gene vectors and deliver them into enterocytes.

Adenoviridae↗

[The usefulness of the detection of Cys282Tyr and His63Asp mutations in the diagnosis of hereditary hemochromatosis].

BACKGROUND: Hemochromatosis is a hereditary disease the diagnosis and early therapy of which is particularly relevant to prevent the appearance of complications. In 1996, the gene responsible for this condition was identified and was named HFE. OBJECTIVE: To determine the prevalence of Cys282Tyr (C282Y) and His63Asp (H63D) mutations in the HFE gene in a group of patients with the confirmed diagnosis of hereditary hemochromatosis, as well as in a control group of 174 healthy individuals. MATERIALS AND METHODS: Twenty-two patients with the diagnosis of primary hemochromatosis who were on treatment with periodic phlebotomies were studied. All patients had the following parameters measured: serum iron, ferritin, transferrin saturation, serology for hepatitis viruses B and C, liver function tests, abdominal echography and liver biopsy. A control group of 174 healthy individuals, who had their serotype analyzed, was also studied. RESULTS: Eighteen (81.8%) of patients with hemochromatosis were homozygous for the C282Y mutation. One patient was homozygous for the H63D mutation and in other patient no mutation was found. Among individuals in the control group, the allelic frequency of the C282Y mutation was 2.3%, whereas the allelic frequency of the H63D mutation was 19.8%. CONCLUSIONS: The results obtained in our study support the evident association between the C282Y mutation in the HFE gene and hereditary hemochromatosis in our environment.

Alleles↗

An aviator with cardiomyopathy and genetic susceptibility to hereditary hemochromatosis: a case report.

A 44-yr-old male pilot was diagnosed with non-ischemic cardiomyopathy, possibly as a complication of hereditary hemochromatosis, 8 yr after an acquired left bundle branch block was discovered on a routine ECG. Biochemical testing returned high levels of iron and percentage transferrin saturation, and genetic testing for hemochromatosis was remarkable for a heterozygous H63D mutation in the HFE gene on chromosome 6. Hereditary hemochromatosis should be considered in the differential diagnosis when a patient presents with cardiomyopathy and genetic testing for HFE gene variants influencing iron overload is now available as a clinical adjunct for diagnosis and patient management issues. Cardiomyopathy and symptomatic hemochromatosis are aeromedically disqualifying conditions in the U.S. Air Force; however, early identification of hereditary hemochromatosis susceptibility with biochemical or genetic diagnostic tests, followed by education in primary and secondary prevention, will prevent a significant proportion of the possible sequelae.

Adult↗

[Molecular genetic diagnostics and screening of hereditary hemochromatosis].

BACKGROUND: Hereditary hemochromatosis is considered one of the most common hereditary diseases in population of Caucasian origin. In recent years, a candidate gene for HLA-linked hemochromatosis, HFE, has been cloned, and a single G-to-A mutation resulting in a cysteine-to-tyrosine substitution (C282Y) has been identified in up to 80% of study patients with type 1 hereditary hemochromatosis. The purpose of the paper was to confirm the importance of genetic testing for HFE mutations in making the diagnosis of hemochromatosis and find out a suitable diagnostic algorithm for the indication of this form of diagnostics in patients suspected of hereditary hemochromatosis. PATIENTS AND METHODS: The examination of C282Y mutation was conducted in 500 subjects. The most frequent indications for DNA analysis were hepatopathy of unknown ethiology, liver cirrhosis, diabetes mellitus, bronze skin pigmentation in connection with high serum iron concentration, elevated transferrin saturation and elevated serum ferritin levels. RESULTS: In our group of patients, 29 homozygotes and 75 heterozygotes for C282Y mutation were identified, 10 patients carried both C282Y and H63D mutations of HFE gene (compound heterozygotes), whereas in 386 subjects the mutation was not found. The genotype-phenotype correlation showed that 22 homozygotes had liver affection proved by imaging and/or histologic methods. Except the liver disorders, the most common symptoms of these patients were type 2 diabetes mellitus or glucose tolerance disorder (10 patients), arthritis or joint pain (9 patients) and cardiovascular disorders, such as cardiomyopathy (2 patients). Bronze skin pigmentation was present in 9 homozygotes. Transferin saturation values were significantly higher in homozygotes for C282Y mutation as compared to C282Y heterozygotes (p < 0.001), C282Y/H63D compound heterozygotes (p < 0.05) or wild type subjects (p < 0.001) respectively. Also serum ferritin levels were significantly higher in homozygotes for C282Y mutation as compared to C282Y heterozygotes (p < 0.001), C282Y/H63D compound heterozygotes (p < 0.001) and wild type subjects (p < 0.001) respectively. CONCLUSIONS: Our observations confirm that DNA analysis significantly contributes to differential diagnostics of this severe, but in early recognition curable disease. Early detection and phlebotomy treatment prior to the onset of cirrhosis can reduce morbidity and normalize life expectancy. It is readily identified through biochemical testing for iron overload using serum transferrin saturation and genetic testing for C282Y homozygosity. DNA analysis is recommended in patients whose transferrin saturation is 45% or more on a repeated test. General population screening has been waived in preference to targeting high-risk groups such as first-degree relatives of affected individuals and those with secondary iron overload, especially patients with chronic liver disorders and chronic anemia. This screening strategy is likely to continue until uncertainties regarding the natural history of the disease, age-related penetrance, and management of asymptomatic individuals are clarified.

Adolescent↗

Neonatal hemochromatosis: genetic counseling based on retrospective pathologic diagnosis.

We report a case of neonatal hemochromatosis in which the genetic counseling was initiated by, and based on, retrospective pathologic diagnosis. Perinatal or neonatal hemochromatosis is beginning to be recognized as a distinct clinical entity and one of the most common causes of perinatal cirrhosis. The exact mechanism of liver damage and the relationship to adult type hemochromatosis have not been fully clarified. The pattern of fibrosis in the liver plus the abundant iron deposition in the liver and other organs separate this entity pathologically from other causes of neonatal liver failure. We report on a case of neonatal hemochromatosis that was diagnosed on retrospective autopsy review of an infant with supposed hereditary tyrosinemia, when the family presented for genetic counseling. This case emphasizes to the genetic counselor and pathologist the need to consider the diagnosis prenatally, after birth, or at death, as failure to do so would result in the inability to identify families at genetic risk for neonatal hemochromatosis or in mislabeling a family with another inborn error.

Female↗

The frequency of hemochromatosis-associated alleles is increased in British patients with sporadic porphyria cutanea tarda.

The cause of the hepatic siderosis and iron overload that is common in porphyria cutanea tarda (PCT) is uncertain. Heterozygosity for genetic hemochromatosis has been supported by some studies of the association between the HLA-A3 antigen and porphyria cutanea tarda but not by others. The hemochromatosis gene is now believed to be located telomeric to HLA-A3 and close to the DNA microsatellite marker D6S1260. We have used this and other microsatellite markers, which together define an ancestral haplotype that is strongly linked to hemochromatosis, to reinvestigate the relationship between these disorders in 41 British patients with sporadic PCT. Fifteen patients carried the hemochromatosis-associated alleles D6S265-1 and D6S105-8. Four of these were homozygous for the ancestral haplotype D6S265-1 : D6S105-8: D6S1260-4. We estimate that approximately 37% of British patients with sporadic PCT carry at least one hemochromatosis gene compared with 10% of the general population.

Adult↗

Mutation analysis in hereditary hemochromatosis.

The DNA of 147 patients of European origin clinically diagnosed with idiopathic hemochromatosis and 193 controls was examined for mutations of the HLA-H gene at nt 845 and nt 187. One hundred twenty-one (82.3%) of the hemochromatosis patients were homozygous and 10 (6.8%) heterozygous for the 845A (C282Y) mutation. All of the homozygous patients were also homozygous for nt 187C, and all 845A heterozygotes had at least one copy of 187C. Thus, the nt 845 and nt 187 mutations were in complete linkage disequilibrium; nt 187 was a C on all chromosomes with the 845A mutation. Eight of the 10 heterozygotes for 845A were heterozygous for 187G(H63D). The excess of heterozygotes at both nt 187 and nt 845 suggested either the presence of as yet undiscovered mutations existing in trans with 845A and in linkage disequilibrium with 187G, or that the 187G itself is a deleterious mutation, which in concert with the 845A can give rise to hemochromatosis. None of the 193 normal controls were homozygous for 845A and 29/193 (15%) were heterozygous for 845A. Although 47/193 (24.3%) of normal controls were heterozygous for the 187G mutation only two of these carried the 845A mutation. If the 187G mutation complemented the 845A mutation with high penetrance in causing hemochromatosis, then the population frequency of the two genes would require that a high proportion of patients with hemochromatosis be heterozygous for 845A and 187G. Instead, the frequency of homozygotes for the 845A mutation was much higher than that of the 845A/187G genotype. Based on our data, the penetrance of the 845A/187G genotype is only 1.5% and based on the data of Feder et al. only 0.5%. In contrast, the penetrance of the homozygous 845A/845A genotype seems to be very high. Thus, screening for this genotype should be very useful.

Alleles↗

Genetic heterogeneity underlies juvenile hemochromatosis phenotype: analysis of three families of northern Greek origin.

Hereditary hemochromatosis is a genetically heterogeneous disease. Common HFE mutations (C282Y and H63D) are related to the majority of hereditary hemochromatosis cases in populations of Northern European ancestry (HFE1). Juvenile hemochromatosis (JH) is a more severe iron overload disorder, usually presenting at the second decade of life. The gene responsible for JH lies on a genetic locus at chromosome 1q. We have performed a genetic linkage study in three families of Northern Greek origin with typical clinical features of JH. In two families results were in accordance with linkage to chromosome 1q. In one family linkage of the disease to the genetic loci at 1q21, 7q22, and 6p22 was excluded. We suggest that more than one gene may underlie the JH phenotype. This genetic type of hemochromatosis may be designated 1q unlinked juvenile hemochromatosis. Family studies are necessary to establish the genetic diagnosis of JH.

Adult↗

Frequencies of the hereditary hemochromatosis allele in different populations. Comparison of previous phenotypic methods and novel genotypic methods.

AIM: The frequencies of the hereditary hemochromatosis allele were compared for different populations assessed by previous phenotypic methods and the present genotypic methods. METHODS: From a literature survey, the calculated hemochromatosis allele frequencies from 16 studies using phenotypic biochemical markers (threshold levels for transferrin saturation [range, 46%-70%] and serum ferritin [range, 164-700 microg/L]) were compared with allele frequencies of the Cys282Tyr mutation of the hemochromatosis gene reported in 19 genotypic studies. RESULTS: Calculated phenotypic allele frequencies are high in Scandinavia: Iceland, 6.1% to 7.4%; Norway, 5.8%; central Sweden, 6.3% to 6.9%; Denmark, 6.1%. Frequencies are similarly high in Wales, Canada, Utah, South Africa, and Australia (range, 5.2%-9.8%). Frequencies are low in Finland (1.9%) and northern Italy (4.5%). Genotypic allele frequencies of the Cys282Tyr mutation are likewise high in Scandinavia. Frequencies are high in the United Kingdom and northern France and low in Finland, central Germany, northern Italy, and Greece. The phenotypic-genotypic ratios of the hemochromatosis homozygosity frequencies for the same geographic area were calculated. A ratio of 1.0 indicates that the 2 methods give similar results. In 3 studies, the ratio was above 1.0, the highest ratio of 1.67 being reported from Italy. In most studies the ratio was slightly below 1.0 (0.71-0.97). The lowest ratio was found in Finland (0.33). CONCLUSION: In most studies there was good agreement between the hemochromatosis allele frequencies determined by phenotypic and genotypic methods. A high ratio (northern Italy) may indicate that phenotypic selection criteria were too loose and/or that causes of iron overload other than the Cys282Tyr mutation are frequent in the region. A low ratio (in Finland) may indicate phenotypic selection criteria that were too stringent and/or a low penetration rate of the mutation.

Biomarkers↗

Diagnosis of juvenile hemochromatosis in an 11-year-old child combining genetic analysis and non-invasive liver iron quantitation.

UNLABELLED: Juvenile or type2 hemochromatosis is a rare autosomal recessive disorder which leads to severe iron overload early in life. As in the classic adult form of the disease iron toxicity causes liver cirrhosis, cardiomyopathy, and endocrine complications, but the onset of the disease is anticipated in the second to third decades of life. Experience of this disease in children is limited. Molecular diagnosis is unfeasible because the type2 hemochromatosis gene is still unknown, although it is known that the disease locus maps to chromosome 1q. Combining linkage analysis with markers encompassing chromosome 1 locus and a non-invasive method for liver iron quantitation we diagnosed juvenile hemochromatosis in a presymptomatic stage in an 11-year-old Italian child. A regular phlebotomy protocol reduced iron overload preventing all the disease complications. CONCLUSION: Juvenile hemochromatosis patients have severe iron overload within the first years of life, strengthening the greater iron absorption that occurs in this as compared to other types of hemochromatosis. Early detection is essential, because treatment in presymptomatic stages prevents organ damage.

Child↗

A haplotype and linkage disequilibrium analysis of the hereditary hemochromatosis gene region.

Hereditary hemochromatosis is a recessive disease of iron metabolism widely distributed among people of European descent. Most patients have inherited the causative mutation from a single ancestor. In the course of cloning the hemochromatosis gene, genotypes were generated for these samples at 43 microsatellite repeat markers that span the 6.5-Mb hemochromatosis gene region. The data used to reconstruct the ancestral haplotype across the hemochromatosis gene region are presented in this paper. Portions of the ancestral haplotype were present on 85% of patient chromosomes in this sample and ranged in size from approximately 500 kb to greater than 6.5 Mb. Only one marker, D6S2239, was identical by descent on all of the patient chromosomes containing the ancestral mutation. In contrast, only 3 of the 128 control chromosomes, or 2.3%, carried the ancestral mutation and the surrounding ancestral haplotype. To test new methods for gene finding using linkage disequilibrium we analyzed the genotypic data with a multilocus maximum likelihood method (DISMULT) and a single point method (DISLAMB), both written to analyze data generated from multi-allelic markers. The maximum value from DISLAMB analysis occurred at marker D6S2239, which is less than 20 kb from the hemochromatosis gene HFE, consistent with the haplotype analysis. The peak of the multi-point analysis was 700 kb from HFE, possibly due to the nonuniform recombination rates within this large region. The recombination rate appears to be lower than expected centromeric of the HFE gene.

Chromosome Mapping↗

Screening blood donors for hereditary hemochromatosis: decision analysis model based on a 30-year database.

BACKGROUND & AIMS: The high prevalence, morbidity, premature death, and benefit of early diagnosis and treatment make hemochromatosis a prime target for screening in the white population. Decision analysis techniques were used to compare the outcome, utility, and incremental cost savings of a plan to screen voluntary blood donors for hemochromatosis. METHODS: The screening strategy includes sequential testing of serum unsaturated iron-binding capacity, serum transferrin saturation, serum ferritin, and either hepatic iron index or venesections to measure exchangeable body iron. Estimates of prevalence, asymptomatic intervals, probabilities of life-threatening clinical complications, symptom-specific life expectancy, and sensitivity and specificity of screening tests are based on our database of 170 hemochromatosis homozygotes and the published literature. RESULTS: The screening strategy led to an incremental increase in utility of 0.84 quality-adjusted life days with an incremental cost savings of $3.19 per blood donor screened. When the potential of identifying asymptomatic homozygous siblings was included, these values increased to 1.18 quality-adjusted life days and $12.57 per person screened. Screening remained a dominant strategy given a prevalence of hemochromatosis of > 0.0026 or an initial screening test cost of < $8. CONCLUSIONS: Screening blood donors for hemochromatosis has the potential to improve overall societal health status and decrease third-party payer health care costs over the long-term.

Adolescent↗

Hereditary hemochromatosis.

The advent of the genetics era has profoundly changed the way we look at iron related diseases, particularly hemochromatosis. New discoveries have challenged historical concepts about the disease, such as its monogenic nature, intestinal origin or complete phenotypic penetrance. This review presents a new concept of hemochromatosis which stems from the idea that, beyond their genetic diversities, all known hemochromatoses have in common the same metabolic abnormality: the genetically determined failure to prevent unneeded iron from entering the circulatory pool. Inappropriate levels of hepcidin, the iron hormone, appear now as the central pathogenic event in all forms of hemochromatosis: depending on the protein involved, and its effect on hepatic production of hepcidin, the phenotype varies, ranging from massive early-onset iron loading with severe organ disease (e.g., associated with homozygous mutations of hemojuvelin or hepcidin itself) to the milder late-onset phenotype characterizing the classic and highly prevalent HFE-related form or the rare transferrin receptor 2-related form. In vitro and in vivo studies will be needed to dissect the consequences of each hereditary hemochromatosis allele and increase our understanding of the precise contribution of each gene to the hereditary hemochromatosis phenotype.

Cation Transport Proteins↗

Autosomal dominant hereditary hemochromatosis associated with a novel ferroportin mutation and unique clinical features.

Hereditary hemochromatosis is a common disorder of iron metabolism most frequently associated with mutations in the HFE gene. Hereditary hemochromatosis may be caused by other less common genetic mutations including those in the ferroportin gene. Whereas hereditary hemochromatosis associated with HFE mutations is an autosomal recessive disorder, essentially all cases of hereditary hemochromatosis associated with ferroportin mutations follow an autosomal dominant pattern of inheritance, and most cases are notable for the lack of an elevated transferrin saturation and presence of iron deposition in Kupffer cells. This report describes the clinical and laboratory features of a family with hereditary hemochromatosis associated with a previously unrecognized ferroportin mutation (Cys326Ser). Three generations of the family are described. The disease in this family is notable for young age at onset, elevated transferrin saturation values, and hepatocyte iron deposition. The distinct molecular and clinical features reflect the heterogeneous nature of this disease.

Adolescent↗

Increased urinary excretion of 8-iso-prostaglandin F2alpha in patients with HFE-related hemochromatosis: a case-control study.

The hypothesis according to which iron overload could be harmful has been extensively and controversially discussed in the literature. One underlying pathological mechanism may be elevated oxidative stress. Thus, we studied the correlation between hemochromatosis and an established marker of oxidative stress, 8-iso-prostaglandin F2alpha (8-iso-PGF2alpha, iPF2alpha-III, 15-F2t-IsoP). We enrolled 21 patients with hemochromatosis, positive for the homozygous C282Y mutation in the HFE gene, and 21 healthy controls frequency-matched by age and gender in a case-control study design. The objective was to show that iron overload in HFE-related hemochromatosis is associated with increased oxidative stress assessed through 8-iso-PGF(2alpha) urinary excretion, and that oxidative stress is impacted by iron-removal treatment (phlebotomy). Study parameters were transferrin saturation, 8-iso-PGF(2alpha) urine excretion, transferrin, ferritin, serum iron, and vitamins A and E for all participants. Iron concentration in the liver and non-transferrin-bound iron were measured in patients only. We found a significant difference in 8-iso-PGF2alpha in patients (245 [interquartile range 157-348] pg/mg creatinine) compared with controls (128 [106-191] pg/mg creatinine, P = 0.002). Vitamin A was significantly reduced in cases (0.34 [0.25-1.83] microg/ml compared to 3.00 [2.11-3.39] microg/ml, P < 0.001), while vitamin E did not show a significant difference in cases (14.7 [11.5-18.1] microg/ml) compared with controls (14.9 [13.1-19.2] microg/ml, P = 0.52). After phlebotomy treatment and normalization of the iron parameters in the hemochromatosis group, serum vitamin A levels were significantly increased (1.36 [1.08-1.97] microg/ml, P = 0.035 vs. baseline, P < 0.001 vs. controls) and 8-iso-PGF2alpha urinary excretion was lowered to control levels (146 [117-198] pg/mg creatinine, P = 0.38 vs. controls). In our study, HFE-related hemochromatosis was associated with increased oxidative stress and hypovitaminemia A in C282Y homozygotes. The increased oxidative stress was reversible by normalization of the iron load by phlebotomy. Thus, phlebotomy is an effective and adequate means for reducing oxidative stress in these patients.

Adult↗

Hemochromatosis heart disease: an unemphasized cause of potentially reversible restrictive cardiomyopathy.

Cardiac involvement in hemochromatosis typically results in congestive cardiomyopathy; a restrictive cardiomyopathy due to hemochromatosis is distinctly rare. A restrictive cardiomyopathy, which developed in the patient described in this report, was due to hemochromatosis which mimicked constrictive pericarditis clinically, echocardiographically and hemodynamically, and resulted in a thoracotomy for attempted surgical therapy. The fact that hemochromatosis represents the only cause of a restrictive cardiomyopathy that is potentially reversible by medical therapy makes early recognition of hemochromatosis heart disease important.

Cardiomyopathies↗

A survey of 2,851 patients with hemochromatosis: symptoms and response to treatment.

PURPOSE: Hemochromatosis is a genetic disorder of iron absorption that affects 5 per 1,000 persons and is associated with reduced health and quality of life. We sought to determine the type and frequency of symptoms that patients experienced before the diagnosis and the treatments that they received. METHODS: We mailed a questionnaire to 3,562 patients with hemochromatosis who were located using patient advocacy groups, physicians, blood centers, newsletters, and the Internet. RESULTS: Of the 2,851 respondents, 99% were white and 62% were men. Circumstances that led to diagnosis of hemochromatosis included symptoms (35%), an abnormal laboratory test (45%), and diagnosis of a family member with hemochromatosis (20%). The mean (+/- SD) age of symptom onset was 41 +/- 14 years. Symptoms had been present for an average of 10 +/- 10 years before the diagnosis was made. Among the 58% of patients with symptoms, 65% had physician-diagnosed arthritis and 52% had liver disease. The most common and troublesome symptoms were extreme fatigue (46%), arthralgia (44%), and loss of libido (26%). Physician instructions to patients included treatment with phlebotomy (90%), testing family members (75%), and avoiding iron supplements (65%). CONCLUSIONS: The diagnosis of hemochromatosis in most patients was delayed. Physician education is needed to increase the detection of patients with the disease and to improve its management.

Adolescent↗