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[A new method of molecular testing in the differential diagnosis of hereditary hemochromatosis].

Hereditary hemochromatosis is an autosomal, recessive disorder of the iron metabolism. The hemochromatosis gene (HFE) was previously located on chromosome 6 and recently identified by positional cloning. A point mutation, C282Y, was found to be present in the HFE gene in homozygous form in 64 to 100% of patients with established hemochromatosis. The relationship of a second polymorphic variant of the HFE gene, H63D to the formation of iron overload is debated. Although hemochromatosis is one of the most common inherited disorders among Caucasians, in the absence of specific signs it is rarely diagnosed. In order to obtain comparable epidemiological data for Hungary, we tested 1271 and 277 randomly selected, unrelated, healthy subjects for C282Y and H63D respectively. In addition C282Y testing was carried out in 58 patients suffering from liver cirrhosis, and in 191 individuals with suspected hemochromatosis. For C282Y and H63D mutation analyses polymerase chain reaction technique followed by Rsa I and Bcl I restriction enzyme digestion was used. We developed an alternative method for the detection of C282Y based on an amplification-generated Kpn I restriction site. The allele frequencies were 3.8% and 12.3% for C282Y and H63D respectively in the normal Hungarian population. There was no significant difference in C282Y allele frequencies between liver disease patients (1.7%) and the normal population. We identified 15 homozygous and 25 heterozygous individuals among 191 individuals with suspected hemochromatosis. The C282Y and the H63D allele frequencies in the normal Hungarian population were found to be similar to the allele frequencies observed in other European populations, indicating that there is a large number of individuals susceptible for iron overload in Hungary (1:700). Mutation analysis is a novel, non-invasive method in the diagnostics of hereditary hemochromatosis, which increasingly becomes part of the routine clinical work.

Alleles↗

Hepatic zinc in hemochromatosis.

Since an intestinal absorptive interaction between iron and zinc has been described in animals and humans, the possibility of increased accumulation of zinc as well as iron in the liver was studied in patients with hereditary hemochromatosis. Hepatic zinc was determined by atomic absorption spectrophotometry in liver biopsy specimens from 21 homozygotes for hemochromatosis, 21 normal liver samples from autopsies, and 15 cases of cirrhosis unrelated to iron overload. Mean hepatic zinc concentrations in the three groups were compared by one-way analysis of variance. Hemochromatosis patients had hepatic iron determinations by atomic absorption spectrophotometry, and iron absorption studies using 59Fe and total body counting had been previously documented in 18 of the 21 hemochromatosis patients. The mean hepatic zinc was significantly increased at 25.9 +/- 26.7 mumol/g (dry weight) in the hemochromatosis patients, as compared to 4.99 +/- 1.51 mumol/g in the control patients (p less than 0.05), and 2.13 +/- 1.13 mumol/g in the cirrhosis patients without iron overload (p less than 0.05). Hepatic zinc concentration was elevated in hemochromatosis patients who had either normal histology, fibrosis, and cirrhosis. Hepatic zinc concentration was not directly related to patient age, hepatic iron concentration, or iron absorption. In conclusion, hepatic zinc was increased approximately fivefold in patients with hemochromatosis. This finding suggests the concomitant hepatic accumulation of zinc as well as iron in this disorder, possibly by means of increased intestinal absorption of zinc and hepatic sequestration.

Adult↗

[Arthropathy as an early symptom of hemochromatosis. Overview of the literature and 7 case reports].

In seven patients with hemochromatosis, arthropathy was an early symptom, or first clinical symptom, of the hemochromatosis. In all seven patients, serum iron, transferrin saturation, and parameters of storage iron (serum ferritin, Desferal-test) were clearly elevated. In 5 patients hemochromatosis was associated with the HLA loci A3 and B7. Bone scan proved a sensitive detection method for hemochromatosis arthropathy. In one case joint involvement was detected by bone scan prior to clinical symptoms. Parameters of iron metabolism correlated well with other organ manifestations of hemochromatosis. In contrast, joint involvement did not correlate with parameters of iron metabolism or severity of hemosiderosis of other organs, and was not relieved by phlebotomy. These 7 cases confirm that joint symptoms can be an early or leading symptom of hemochromatosis, can lead to early therapy and thereby prevent major organ damage. It remains undecided, however, whether the arthropathy is a consequence of iron storage or an independent disease which is genetically associated with hemochromatosis.

Female↗

Diagnosis of hemochromatosis in young subjects: predictive accuracy of biochemical screening tests.

The reliability of serum iron, transferrin saturation, and serum ferritin in the detection of early iron overload in hemochromatosis was determined in 120 young (less than 35 yr old) relatives whose genetic susceptibility for the disease was determined by HLA typing of families. Serum ferritin and transferrin saturation demonstrated high levels of sensitivity and specificity, whereas serum iron concentration was an unreliable test in the detection of hemochromatosis. In hemochromatosis homozygotes there was an excellent correlation between serum ferritin and mobilized body iron (r = 0.92), 1 microgram/L of serum ferritin corresponding to approximately 7.5 mg of body iron stores. For a given age, serum ferritin values were higher in homozygotes compared with heterozygotes or homozygous-normal subjects and increased by approximately 65 micrograms/L X yr, reflecting the progressive accumulation of iron in hemochromatosis homozygotes. All hemochromatosis subjects with either hepatic fibrosis or cirrhosis had serum ferritin concentrations greater than 700 micrograms/L. We conclude that the combination of serum ferritin and transferrin saturation is a reliable screening regimen for the detection of hemochromatosis and for predicting the level of body iron stores in young hemochromatosis subjects.

Adolescent↗

Hereditary hemochromatosis: gene discovery and its implications for population-based screening.

OBJECTIVE: To evaluate the role of genetic testing in screening for hereditary hemochromatosis to help guide clinicians, policymakers, and researchers. PARTICIPANTS: An expert panel was convened on March 3, 1997, by the Centers for Disease Control and Prevention (CDC) and the National Human Genome Research Institute (NHGRI), with expertise in epidemiology, genetics, hepatology, iron overload disorders, molecular biology, public health, and the ethical, legal, and social implications surrounding the discovery and use of genetic information. EVIDENCE: The group reviewed evidence regarding the clinical presentation, natural history, and genetics of hemochromatosis, including current data on the candidate gene for hemochromatosis (HFE) and on the ethical and health policy implications of genetic testing for this disorder. CONSENSUS PROCESS: Consensus was achieved by group discussion confirmed by a voice vote. A draft of the consensus statement was prepared by a writing committee and subsequently reviewed and revised by all members of the expert group over a 1-year period. CONCLUSIONS: Genetic testing is not recommended at this time in population-based screening for hereditary hemochromatosis, due to uncertainties about prevalence and penetrance of HFE mutations and the optimal care of asymptomatic people carrying HFE mutations. In addition, use of a genetic screening test raises concerns regarding possible stigmatization and discrimination. Tests for HFE mutations may play a role in confirming the diagnosis of hereditary hemochromatosis in persons with elevated serum iron measures, but even this use is limited by uncertainty about genotype-phenotype correlations. To address these questions, the expert group accorded high priority to population-based research to define the prevalence of HFE mutations, age and sex-related penetrance of different HFE genotypes, interactions between HFE genotypes and environmental modifiers, and psychosocial outcomes of genetic screening for hemochromatosis.

Female↗

Compound heterozygotes for hemochromatosis gene mutations: may they help to understand the pathophysiology of the disease?

Two mutations have been described on the gene considered to be responsible for genetic hemochromatosis, the HLA-H or HFE gene. The C282Y mutation is a disease-causing mutation in most cases of genetic hemochromatosis, but involvment of the H63D substitution in the pathogenesis of the disease is unclear. Compound heterozygotes for both substitutions could help to determine whether or not the second mutation is a worsening factor when associate in trans with the C282Y mutant. We found twenty nine compound heterozygotes during DNA analysis of patients referred to our laboratory for the screening of those mutations. Clinical and biological data were obtainable for 23 of them. Compound heterozygotes could be divided into two groups: subjects with or without iron overload. Five (22%) individuals had normal ferritin levels, whereas 18 had elevated ferritin concentrations (78%). Among those 18 patients, 7 (30% of the total) had clinical and biological criteria of genetic hemochromatosis. Eleven had iron overload without all the criteria of genetic hemochromatosis. Such a high proportion of genetic hemochromatosis is not found in heterozygotes for the C282Y mutation alone neither in our series nor in the literature. Compound heterozygotes for the C282Y and the H63D mutations may have a higher risk of iron overload or genetic hemochromatosis than single heterozygotes for the C282Y mutation. We propose a schematic theoretical representation that could explain this fact at the protein level. Further fundamental studies on the protein, and clinical follow up of compound heterozygotes could help to ascertain this hypothesis.

Adult↗

Immunohistochemistry of the Hfe protein in patients with hereditary hemochromatosis, iron deficiency anemia, and normal controls.

In 1996 two mutations in Hfe, the gene affected in hereditary hemochromatosis, were identified as C282Y (c.845G. A) and H63D (c.187C. G). Immunohistochemical studies have localized the protein product of Hfe to the deep crypts of the duodenum, the maximum site of iron absorption. To date, there are no published data on the cellular location and regulation of Hfe in patients with hemochromatosis who are homozygous for C282Y. The aim of this study was to identify the cellular localization of Hfe in genotyped individuals and to study possible regulation of this protein by the mutations described in the Hfe gene locus and iron deficiency. Duodenal biopsy specimens and serum for iron, ferritin, and transferrin saturation were taken from controls (n = 10) and patients with hereditary hemochromatosis (n = 10) and iron deficiency anemia (n = 10). All participants were genotyped for C282Y and H63D mutations. Expression of Hfe in the duodenum was demonstrated by immunohistochemistry. Hfe was expressed in the deep crypts of the duodenum in all three groups in a perinuclear fashion. Hfe staining was weaker in the hemochromatosis and iron deficiency patients (mean transferrin saturation 69.6%, SD 23% and 15%, SD 11%, respectively) when compared to controls (mean transferrin saturation 33.1%, SD 15%). There was no difference in the intensity of Hfe staining within the hemochromatosis group who were iron overloaded when compared to their iron-depleted counterparts. In summary, Hfe is expressed strongly in the deep crypts of the small intestine of normal subjects. Homozygosity for C282Y and conditions of iron deficiency result in a downregulation of Hfe. Furthermore, Hfe is not regulated by therapeutic iron depletion in patients with hemochromatosis who are homozygous for the C282Y mutation.

Anemia, Iron-Deficiency↗

HLA haplotype A*03-B*07 in hemochromatosis probands with HFE C282Y homozygosity: frequency disparity in men and women and lack of association with severity of iron overload.

Before the discovery of HFE, reports suggested that hemochromatosis patients with the ancestral haplotype (or some element thereof) have more severe iron overload than those without the haplotype. We performed univariate and multivariate analyses of the relationships of human leukocyte antigen (HLA)-A*03 and HLA haplotype A*03-B*07 to iron measures (serum iron concentration, transferrin saturation, and serum ferritin concentration at diagnosis and units of phlebotomy to achieve iron depletion) in hemochromatosis probands homozygous for HFE C282Y diagnosed in medical care. Iron overload was defined by demonstration of hepatic iron index of > or =1.9 or removal of > or =2.0 g Fe by therapeutic phlebotomy. We tabulated the phenotype frequencies of HLA-A*03 and the frequencies of common HLA haplotypes A*01-B*08, A*02-B*44, A*03-B*07, and A*03-B*14 in three groups of white adults: (1) 141 hemochromatosis probands with C282Y homozygosity; (2) 195 index cases with IgG subclass deficiency (IgGSD) or common variable immunodeficiency (CVID), disorders typically linked to Ch6p, and (3) 750 control subjects. Among probands, 86 men and 42 women had iron overload. Frequencies of HLA-A and -B alleles in probands did not depart significantly from Hardy-Weinberg equilibrium. The phenotype frequency of A*03 did not differ significantly between men and women in the each of the respective three groups. The frequency of haplotype A*03-B*07 was greater in men than women with hemochromatosis (0.3081 vs. 0.1455; P = 0.0019). The frequency of A*03-B*014 was significantly greater in women than men with hemochromatosis (0.1182 vs. 0.0407, respectively; P = 0.0134). Mean values of most iron measures were not affected by numbers of copies of A*03 or by presence of A*03-B*07 in either men or women in univariate analysis. ANOVA models of sex, age at diagnosis, and all HLA alleles and haplotypes in probands were used to determine effects of these variables on iron measures. ANOVA models revealed that (1) there were no significant predictors for serum iron concentration; (2) B*14 is associated with higher transferrin saturation in women and lower transferrin saturation in men; (3) A*01-B*08 is associated with a trend of higher serum ferritin levels; and (4) A*03-B*14 is associated with exaggeration of the age-associated upward trend in units of phlebotomy to achieve iron depletion. In hemochromatosis probands with HFE C282Y homozygosity, we conclude that (1) disparate frequencies of HLA haplotypes A*03-B*07 and A*03-B*14 occur in men and women and (2) HLA-A*03 and HLA-A*03-B*07 are not independent variables associated with iron overload severity.

Adolescent↗

End-stage liver disease without hemochromatosis associated with elevated hepatic iron index.

BACKGROUND/AIMS: The utility of standard diagnostic tests for hereditary hemochromatosis in end-stage liver disease is unknown. A homozygous mutation (Cys 282 Tyr) has been identified in most patients with hereditary hemochromatosis. We examined whether serum iron studies and hepatic iron measurement distinguish end-stage liver disease patients with Cys 282 Tyr-associated hereditary hemochromatosis. METHODS: Serum iron, total iron binding capacity, and ferritin were measured in 106 cirrhotic patients prior to liver transplantation. Hepatic iron concentration and hepatic iron index were measured from explant liver tissue. Genotyping was performed on explant liver tissue in patients with an elevated hepatic iron index (>1.9). RESULTS: Thirty-three of 106 (31%) patients had elevated serum iron studies suggestive of hereditary hemochromatosis. Only four of 33 (12%) had a mean hepatic iron index >1.9, and none of the four patients was homozygous for Cys 282 Tyr. All four had liver disease due to hepatitis C and/or alcohol. CONCLUSIONS: (i) Serum transferrin saturation and hepatic iron index lack specificity for hereditary hemochromatosis in end-stage liver disease. (ii) Genotyping for Cys 282 Tyr may provide the best method to identify hereditary hemochromatosis in the setting of end-stage liver disease.

Female↗

Increased p53 mutation load in nontumorous human liver of wilson disease and hemochromatosis: oxyradical overload diseases.

Hemochromatosis and Wilson disease (WD), characterized by the excess hepatic deposition of iron and copper, respectively, produce oxidative stress and increase the risk of liver cancer. Because the frequency of p53 mutated alleles in nontumorous human tissue may be a biomarker of oxyradical damage and identify individuals at increased cancer risk, we have determined the frequency of p53 mutated alleles in nontumorous liver tissue from WD and hemochromatosis patients. When compared with the liver samples from normal controls, higher frequencies of G:C to T:A transversions at codon 249 (P < 0.001) and C:G to A:T transversions and C:G to T:A transitions at codon 250 (P < 0.001 and P < 0.005) were found in liver tissue from WD cases, and a higher frequency of G:C to T:A transversions at codon 249 (P < 0.05) also was found in liver tissue from hemochromatosis cases. Sixty percent of the WD and 28% of hemochromatosis cases also showed a higher expression of inducible nitric oxide synthase in the liver, which suggests nitric oxide as a source of increased oxidative stress. A high level of etheno-DNA adducts, formed from oxyradical-induced lipid peroxidation, in liver from WD and hemochromatosis patients has been reported previously. Therefore, we exposed a wild-type p53 TK-6 lymphoblastoid cell line to 4-hydroxynonenal, an unsaturated aldehyde involved in lipid peroxidation, and observed an increase in G to T transversions at p53 codon 249 (AGG to AGT). These results are consistent with the hypothesis that the generation of oxygen/nitrogen species and unsaturated aldehydes from iron and copper overload in hemochromatosis and WD causes mutations in the p53 tumor suppressor gene.

Aldehydes↗

Phlebotomy-mobilized iron as a surrogate for liver iron content in hemochromatosis patients.

We sought to establish the relationship of quantitative hepatic iron measurements and phlebotomy-mobilized iron in a large sample of HFE C282Y homozygotes with a hemochromatosis phenotype. Thus, we analyzed data from 79 unrelated C282Y homozygotes from treatment centers in Rochester, NY and Birmingham, AL who had undergone liver biopsy with measurement of hepatic iron content and who had achieved iron depletion (serum ferritin <25 ng/l) with quantitative phlebotomy. The sample consisted of 57 men and 22 women; their median age at diagnosis was 47 years (range 23-76 years). Sixty-three of 79 (79.7%) had hepatic iron index (HII; μmol/g dry weight of liver divided by age in years) ≥1.9, a conventional phenotypic definition of hemochromatosis. The mean quantity of phlebotomy-mobilized iron (± 1 sd) was 6.4 g (±4.0 g) in men (range 2.0-18.0 g) and 6.2 g (±5.8) in women (range 0.7-22.5 g). There was a significant positive correlation of liver iron levels with phlebotomy-mobilized iron in this patient sample (Pearson coefficient 0.75; R 2 =55.5%). This relationship was also demonstrable when data from males and females were analyzed separately. We calculated a phlebotomy-mobilized iron index (MII: phlebotomy-mobilized iron in mg divided by age in years) using the corresponding regression equations and evaluated its use as a surrogate for HII. Thus, a phlebotomy-mobilized iron of 3.5 g corresponds to liver iron levels of 80 μmol/g dry weight, and a MII of 80 corresponds to HII of 1.9. Forty-six of 79 subjects met all four phenotypic criteria for hemochromatosis (liver iron levels ≥80 μmol/g, HII≥1.9, phlebotomy-mobilized iron ≥3.5 g and MII≥80). Of the 20 subjects with MII<80, 9 had a HII≥1.9. Conversely, 5 of 16 subjects with HII<1.9 had MII≥80 and 8 had phlebotomy-mobilized iron ≥3.5 g. Most patients with a hemochromatosis phenotype and evidence of moderate or severe iron overload (>80%) are homozygous for the common HFE missense mutation C282Y. Thus, clinicians rely increasingly on HFE mutation analysis to diagnose hemochromatosis and on quantitative phlebotomy to estimate the severity of iron overload in many cases. Liver biopsy is now employed in selected patients to visualize fibrosis or cirrhosis and to identify coincidental hepatic disease. We conclude that the use of the MII permits a retrospective estimation of the age-adjusted severity of iron overload that has a diagnostic value similar to that of the HII in hemochromatosis patients with C282Y homozygosity.

Adult↗

Acceptance of neonatal genetic screening for hereditary hemochromatosis by informed parents.

The aim of this study was to assess attitudes to neonatal genetic screening for hereditary hemochromatosis. A total of 135 consecutive, pregnant women and their partners attending a hospital antenatal clinic in the Australian Capital Territory were given detailed written and verbal information about potential risks and benefits of neonatal genetic screening. Issues such as uncertainty of disease expression, confidentiality, genetic discrimination, and storage of genetic data were addressed. Attitudes were assessed by interview and questionnaire. There was a high level of acceptance for neonatal genetic screening in general (99%) and for hemochromatosis in particular (91.5%). There was no association of prior knowledge of hemochromatosis, family history of hemochromatosis, ethnicity, age, education, or occupation class with nonacceptance. Of the subjects, 39.5% reported feeling "a little anxious" about the prospect of screening their infants, although only 5.4% reported feeling "very anxious." Reasons given for nonacceptance of screening included inability of the child to give informed consent, insufficient evidence that diagnosis of hemochromatosis in childhood is beneficial, risk of discrimination on genetic grounds, lack of agreement between partners, and privacy issues. These data suggest that an Australian neonatal genetic screening program for hemochromatosis is likely to be accepted by this and similar groups of subjects, but there should be an opportunity for parents who object to screening to opt out of any such program.

Adolescent↗

Prognostic factors and survival in patients with hereditary hemochromatosis and cirrhosis.

OBJECTIVES: The survival of treated, noncirrhotic patients with hereditary hemochromatosis is similar to that of the general population. Less is known about the outcome of cirrhotic hereditary hemochromatosis patients. The present study evaluated the survival of patients with hereditary hemochromatosis and cirrhosis. METHODS: From an established hereditary hemochromatosis database, all cirrhotic patients diagnosed from January 1972 to August 2004 were identified. Factors associated with survival were determined using univariate and multivariate regression. Survival differences were assessed using the Kaplan-Meier life table method. RESULTS: Ninety-five patients were identified. Sixty patients had genetic testing, 52 patients (87%) were C282Y homozygotes. Median follow-up was 9.2 years (range 0 to 30 years). Nineteen patients (20%) developed hepatocellular carcinoma, one of whom was still living following transplantation. Cumulative survival for all patients was 88% at one year, 69% at five years and 56% at 20 years. Factors associated with death on multivariate analysis included advanced Child-Pugh score and hepatocellular carcinoma. Patients with hepatocellular carcinoma were older at the time of diagnosis of cirrhosis (mean age 61 and 54.6 years, respectively; P=0.03). The mean age at the time of diagnosis of hepatocellular carcinoma was 70 years (range 48 to 79 years). No other differences were found between the groups. CONCLUSIONS: Patients with hereditary hemochromatosis and cirrhosis are at significant risk of developing hepatocellular carcinoma. These patients are older when diagnosed with carcinoma and may have poorer survival following transplantation than patients with other causes of liver disease. Early diagnosis and treatment of hereditary hemochromatosis by preventing the development of cirrhosis may reduce the incidence of hepatocellular carcinoma in the future.

Adult↗

Iron deficiency due to excessive therapeutic phlebotomy in hemochromatosis.

Thirteen adults (eight men, five women) with hemochromatosis had undergone routine iron depletion therapy but while on maintenance phlebotomies developed iron deficiency which persisted for 25 +/- 13 (mean +/- 1 SD) months before diagnosis. All had symptoms and signs of iron deficiency. Levels of transferrin saturation were 10% +/- 5% (1 SD), and serum ferritin concentrations were 8 +/- 3 ng/mL. Eleven had anemia; eight had hypochromia and microcytosis. Bone marrow specimens obtained in five patients revealed no stainable iron. Medical records indicated that parameters of body iron status were infrequently or incorrectly used for adjusting the frequency of phlebotomies. Two patients developed iron deficiency due to additional blood loss from esophageal varices and bilateral hip replacement, respectively. Ten of the patients were treated with ferrous sulfate, 325 mg daily, for 2-6 weeks when anemia was corrected. In patients who were not given iron, anemia and microcytosis recovered in 8-24 months. We conclude that (i) sustained iron deficiency in hemochromatosis patients should be prevented by monitoring hemoglobin levels and serum ferritin; and (ii) hemoglobin concentrations and values of mean corpuscular hemoglobin may be higher in iron-deficient persons with hemochromatosis than in individuals without hemochromatosis. Symptomatic iron deficiency in hemochromatosis patients may be treated safely with a brief course of ferrous sulfate. Recovery is slower when iron is not given. However, iron supplementation is unnecessary and not recommended for the mild, self-limited anemia and decreased serum iron and ferritin concentrations encountered after initial iron depletion therapy for hemochromatosis.

Adult↗

Kupffer cell iron overload induces intercellular adhesion molecule-1 expression on hepatocytes in genetic hemochromatosis.

The mechanisms underlying iron-induced liver fibrogenesis in patients with genetic hemochromatosis are poorly understood. We studied signs of Kupffer cell activation and inflammatory responses in liver biopsy specimens obtained from 15 patients with untreated and six patients with treated hemochromatosis. Immunohistochemistry was performed on 11 of the untreated and all treated patients. Three of the untreated patients (20%) had cirrhosis and eight (53%) had fibrosis. None had chronic active hepatitis (CAH). Immunohistochemistry indicated that 55% of the untreated patients had sparse intercellular adhesion molecule-1 (ICAM-1) expression by hepatocytes, and all of these had Kupffer cell iron overload. No ICAM-1 expression was seen by hepatocytes in treated patients or healthy controls. ICAM-1 was strongly expressed by hepatocytes from control patients with inflammatory liver disease. HLA-DR reactivity was seen on sinusoidal cells in all groups, but not on hepatocytes except for two of the control patients with CAH. Twenty-seven percent of the untreated hemochromatosis patients displayed moderate infiltration by CD3-positive lymphocytes. Electron microscopy of samples from untreated hemochromatosis patients showed hypertrophic Kupffer cells containing iron-rich remnants of phagocytosed hepatocytes. Fat-storing cells close to iron-laden hepatocytes contained multiple lipid droplets and adjacent collagen fibril bundles. Thus, in patients with untreated genetic hemochromatosis and Kupffer cell iron overload, hepatocytes occasionally express ICAM-1. In regions with heavy iron overload, Kupffer cell hypertrophy and transition of fat-storing cells are seen. Our findings indicate that release of factors from iron-loaded, activated Kupffer cells is of importance for the transformation of fat-storing cells and increased collagen deposition seen in genetic hemochromatosis.

Adult↗

No association between genetic hemochromatosis and alpha1-antitrypsin deficiency.

Genetic hemochromatosis and alpha1-antitrypsin (AAT) deficiency are frequent in white populations. Conflicting data on the association of the two conditions and on the severity of the disease in those in whom these disorders coexist have emerged from analyses of small numbers of patients. To determine if the frequency of AAT deficiency is increased in genetic hemochromatosis, we characterized this protein by isoelectric focusing and DNA analysis in 115 Italian patients with the disease and 290 controls. The frequency of AAT deficiency in patients with genetic hemochromatosis was similar to that in controls (10% and 9%, respectively). The prevalence of cirrhosis in patients with genetic hemochromatosis with MM phenotype was 53%, compared with 58% in those with non-MM phenotype; that of hepatocellular carcinoma, occurring only in cirrhotic patients, was 22% and 28%, respectively. In conclusion, the frequency of AAT deficiency was not increased in our large series of Italian patients with genetic hemochromatosis. Patients in whom the two defects coexisted did not appear to have a more severe disease, but the limited number of subjects with non-MM phenotype does not allow a conclusive evaluation of clinical differences between them and patients with genetic hemochromatosis with MM phenotype.

Adolescent↗

Clinical and family studies in genetic hemochromatosis: microsatellite and HFE studies in five atypical families.

A candidate gene (HFE) has been described for hereditary hemochromatosis on chromosome 6. The study of well-defined atypical hemochromatosis families using genetic markers may increase our understanding of the sensitivity and the specificity of genotyping in hemochromatosis. One hundred and thirteen Canadian families with genetic hemochromatosis were surveyed to find atypical families as possible examples of people with genetic recombinations. All families underwent clinical investigations including iron studies and HLA typing. Each individual was typed at three polymorphic microsatellite loci (D6S105, D6S1260, and D6S299) on chromosome 6. Sixteen subjects were studied for the two missense mutations described for the candidate gene for hemochromatosis (C282Y, H63D). There were eight HLA-identical siblings found in four different families (five men, three women; age range 30-72) with normal transferrin saturation and ferritin levels. There were two patients identified who were homozygous for the C282Y mutation without biochemical evidence of iron overload, and two patients with no evidence of the mutation with significant iron overload. Our conclusions are as follows: 1) finding HLA-identical siblings without iron overload does not confirm a genetic recombination, 2) difficulties in phenotypic definition of disease and the description of new iron overload syndromes that may differ from classical genetic HC cause complicated genetic studies, and 3) finding iron-loaded patients without a C282Y mutation and patients that are homozygous for the C282Y mutation without evidence of iron overload may limit the use of genotyping in population screening for hemochromatosis.

Adult↗

Cancer risk following primary hemochromatosis: a population-based cohort study in Denmark.

A population-based cohort of 120 Danish men, discharged with a hospital diagnosis of primary hemochromatosis from 1977 to 1989, was followed up to 1989 for subsequent cancer risk. Nineteen subjects (including 6 with primary liver cancers) were excluded from the analysis, either because they died within the same month of hemochromatosis diagnosis or because they had cancer prior to diagnosis of hemochromatosis. Among the 101 remaining subjects, 4 primary liver cancers occurred one year or more after the diagnosis of hemochromatosis, far surpassing the expected number based on incidence rates from the Danish population (standardized incidence ratio 92.9, 95% confidence interval 25.0 to 237.9). The excess of liver cancer was associated with cirrhosis and included cholangiocarcinoma as well as hepatocellular carcinoma. Significantly elevated risks were also observed for non-hepatic cancers (13 cases; SIR 3.5, 95% CI 1.9 to 6.0), notably esophageal cancer (2 cases; SIR 42.9, 95% CI 4.8 to 154.9) and skin melanoma (2 cases; SIR 27.8, 95% CI 3.1 to 100.3). The results of this population-based study are in accordance with the hypothesis that patients with primary hemochromatosis have a substantial risk of primary liver cancer. Further studies of hemochromatosis may be useful in clarifying the relation of non-hepatic malignancies to body iron stores in the general population.

Adult↗