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Molecular mechanisms of thyroid dysgenesis.

Thyroid dysgenesis (TD) is the most prevalent form of congenital hypothyroidism. Ttf-1, Ttf-2, Pax8 and the Tshr are expressed at early stages of thyroid development and are implicated in thyroid ontogeny. Mutations in these genes have been found in some cases of TD. The prevalence of familial forms of TD is significantly higher than expected if the disease was only sporadic, allowing to postulate a genetic basis of the disease. Linkage analysis and mutational screening of the four above-mentioned genes in familial forms of TD showed their exclusion as contributors to the disease in some families, implicating genetic heterogeneity and involving other genetic mechanisms. Strategies to uncover new genes involved in TD are therefore needed. We underscore differences in the temporal expression patterns during the human thyroid development with those in animal models. Further, the extrathyroid expression of these genes during human development enables to define the gene-specific malformations that may be present in patients bearing mutations. The data gathered on molecular thyroid development enable precise genetic counselling of affected families. By increasing our knowledge of thyroid development, we hope to uncover new perspectives of genetic screening and eventually of early in utero treatment.

Congenital Abnormalities↗

Absence of mutations in the gene encoding thyroid transcription factor-1 (TTF-1) in patients with thyroid dysgenesis.

Thyroid transription factor-1 (TTF-1) is a homeodomain-containing nuclear transcription factor, important in regulation of the thyroid-specific genes thyroglobulin (Tg), thyroperoxidase (TPO), and thyrotropin receptor (TSHR). TTF-1 is an early biochemical marker of thyroid differentiation, essential for thyroid development and maintenance of the thyroid differentiated state. It is possible that mutations in titf1 gene encoding TTF-1 could result in failure of the thyroid gland to develop. Single strand conformation polymorphism (SSCP) was used to detect the presence of titf1 gene mutation in a group of 15 patients with congenital hypothyroidism. The etiology of the congenital hypothyroidism included thyroid agenesis (9), sublingual ectopic thyroid (4), and severe hypoplasia (2). The analysis did not identify any titf1 gene mutation, among these patients. These results rule out the presence of titf1 mutations, at least in the coding region, in our thyroid dysgenesis patients. Mutations in titf1 coding region may be an extremely rare event, and was not detected in our small sample size or, alternatively, such a mutant might even be viable since TTF-1 plays an important role in lung, brain, and pituitary development.

DNA↗

Familial form of thyroid dysgenesis: report of thyroid hemiagenesis with accompanying Graves' disease in a woman whose daughter has thyroid agenesis.

The subject is a 44-year-old female with thyroid hemiagenesis, who initially presented with hyperthyroidism. Thyroid peroxide antibody and thyroglobulin antibody levels were high. The scintiscan study and sonographic findings were compatible with thyroid hemiagenesis with accompanying Graves' disease. In reviewing her family history, her daughter was found to have thyroid agenesis, and other thyroid disorders were found in 2 female family members.

Adult↗

A mouse model for hereditary thyroid dysgenesis and cleft palate.

Alteration of thyroid gland morphogenesis (thyroid dysgenesis) is a frequent human malformation. Among the one in three to four thousand newborns in which congenital hypothyroidism is detected, 80% have either an ectopic, small and sublingual thyroid, or have no thyroid tissue. Most of these cases appear sporadically, although a few cases of recurring familial thyroid dysgenesis have been described. The lack of evidence for hereditary thyroid dysgenesis may be due to the severity of the hypothyroid phenotype. Neonatal screening and early thyroid hormone therapy have eliminated most of the clinical consequences of hypothyroidism such that the heritability of this condition may become apparent in the near future. We have recently cloned cDNA encoding a forkhead domain-containing transcription factor, TTF-2, and have located the position of the gene, designated Titf2, to mouse chromosome 4 (ref. 3). Titf2 is expressed in the developing thyroid, in most of the foregut endoderm and in craniopharyngeal ectoderm, including Rathke's pouch. Expression of Titf2 in thyroid cell precursors is down-regulated as they cease migration, suggesting that this factor is involved in the process of thyroid gland morphogenesis. Here we show that Titf2-null mutant mice exhibit cleft palate and either a sublingual or completely absent thyroid gland. Thus, mutation of Titf2-/- results in neonatal hypothyroidism that shows similarity to thyroid dysgenesis in humans.

Animals↗

Analysis of the PAX8 gene in congenital hypothyroidism caused by different forms of thyroid dysgenesis in a father and daughter.

Thyroid dysgenesis occurs sporadically with only rare familial presentation. We report a father and daughter with congenital hypothyroidism caused by different forms of thyroid dysgenesis. The father had a severely hypoplastic thyroid gland in a normal location, whereas the daughter had an ectopic thyroid gland in a sublingual position. Her brother had a hypoplastic thyroid but was euthyroid. The involvement of the candidate gene, PAX8, as the cause of thyroid dysgenesis in this family was partially excluded by linkage analysis, and the possibility of a de novo mutation excluded by sequencing.

Adult↗

Polymorphism of the polyalanine tract of thyroid transcription factor-2 gene in patients with thyroid dysgenesis.

OBJECTIVE: One of the thyroid-specific transcription factors, thyroid transcription factor-2 (TTF-2), performs a crucial role in the development of the thyroid gland. We performed genetic analysis of the TITF2 gene (encoding TTF-2) in patients with thyroid dysgenesis. METHODS: By direct sequencing of the PCR products of TITF2, we screened the genomic DNA from 46 patients with thyroid dysgenesis (five had agenesis, six had hypoplasia, 15 had ectopy, and 20 were undetermined). We also studied the transcriptional activities of TITF2 by co-expressing the luciferase gene directed by the human thyroglobulin gene promoter. RESULTS: Human TITF2 consists of a forkhead domain, a polyalanine tract, and unique C-terminal residues. In one of the patients with an ectopic sublingual thyroid, we found a polyalanine tract of 11 alanine residues on one chromosome instead of the 14 alanine residues found in normal controls. In one patient with hypoplasia, the polyalanine tract consisted of 12 heterozygous alanine residues. The reduced polyalanine tracts were not detected in 101 normal individuals. However, the expression study showed that the transcriptional activities of TITF2 with reduced polyalanine-tract lengths were equal to that of TITF2 with an unreduced polyalanine tract. CONCLUSION: These results suggest that the polymorphism of the polyalanine tract of TITF2 is not a frequent cause of developmental defects of the human thyroid gland.

Base Sequence↗

Discordance of monozygotic twins for thyroid dysgenesis: implications for screening and for molecular pathophysiology.

Since the advent of biochemical screening for congenital hypothyroidism, the majority of monozygotic twins reported with thyroid dysgenesis have been discordant, and most were missed on neonatal screening, presumably due to fetal blood mixing. We hypothesized that there may be bias leading to preferential reporting of discordant twins and/or of false negative screening results. Therefore, we performed a systematic search for twins in two congenital hypothyroidism screening centers, Quebec and Brussels, that use a primary TSH approach. In Quebec, 10 pairs of twins were identified, all discordant for congenital hypothyroidism due to thyroid dysgenesis (4 monozygotic and 4 dizygotic pairs) and dyshormonogenesis (2 dizygotic pairs). The 6 pairs identified in the Brussels database were also all discordant for congenital hypothyroidism due to thyroid dysgenesis (1 monozygotic and 3 dizygotic pairs) and dyshormonogenesis (2 dizygotic pairs). The median increase in TSH between screening and diagnosis was 7-fold in the monozygotic twins vs. 2-fold in matched singletons (P = 0.02), suggesting fetal blood mixing between the twins. In summary, discordance for thyroid dysgenesis is the rule in monozygotic twins, and fetal blood mixing may result in delayed or missed diagnoses. We therefore conclude that 1) a second sample for congenital hypothyroidism screening at 14 d of age should be considered for all same-sex twins; and 2) thyroid dysgenesis generally results from epigenetic phenomena, early somatic mutations, or postzygotic stochastic events.

Adult↗

Thyroid hemiagenesis is a rare variant of thyroid dysgenesis with a familial component but without Pax8 mutations in a cohort of 22 cases.

Thyroid hemiagenesis is a rare form of thyroid dysgenesis of which some familial cases have been reported, including one associated with a heterozygous mutation in the Pax8 gene. However, the physiopathology remains not well known. The objectives of this study were 1) to describe the clinical features, 2) to look for familial clustering, and 3) to search for Pax8 mutations in a relatively large cohort of affected patients. A family history of thyroid dysgenesis was found in nine patients (40%), whose affected relatives had ectopic thyroid (n = 4), athyreosis (n = 1), thyroid hemiagenesis (n = 2), or thyroglossal duct cysts (n = 2). Screening for Pax8 mutations identified abnormal migration profiles by SSCP analysis in 3 patients, but direct sequencing did not show coding region mutations in any of the 22 patients. In conclusion, this study provides the first evidence that thyroid hemiagenesis can occur as a familial disorder associated with any form of thyroid dysgenesis. This finding supports both a common underlying mechanism to the various abnormalities in thyroid development and a role for genetic factors; however, our results from Pax8 analysis suggest that this gene may not be a key factor.

Abnormalities, Multiple↗

Additional phenotypic abnormalities with presence of cysts within the empty thyroid area in patients with congenital hypothyroidism with thyroid dysgenesis.

Congenital hypothyroidism (CH) is most frequently caused by thyroid developmental abnormalities, and it has recently been shown to have a familial component with members affected by either CH or asymptomatic thyroid developmental abnormalities. The pathogenesis of the disease is unknown, but it seems possible that a common genetic mechanism underlies these heterogeneous phenotypic expressions. Associations among these anomalies in the same individuals have occasionally been described. The aim of this study was to investigate whether cysts of the thyroglossal duct could be shown by ultrasonography in patients with CH caused by thyroid dysgenesis. Children with CH (n = 57) who were diagnosed by newborn TSH screening were prospectively evaluated by ultrasonography at the age of 10.5 +/- 4.5 yr. The etiology of CH (ectopic thyroid tissue, n = 42; athyreosis, n = 15) was established before treatment initiation on the basis of thyroid radioiodine scanning and the absence of any thyroid tissue in the normal location confirmed by ultrasonography. Cysts were found in 39 patients (68% of cases) with either ectopic thyroid tissue (n = 29) or athyreosis (n = 10). All cysts were located in the empty thyroid area in the left (57%) or right (43%) side and were mostly closer to the midline. Patients had either a single cyst (n = 16 patients) or multiple cysts (n = 23 patients). The cysts were bilateral in 17 of the 39 patients. Most of them were vertically oval or round, with a size ranging in diameter from 2-21 mm (mean, 3.5 +/- 2). In conclusion, the presence of cysts within the empty thyroid area in 68% of patients with CH due to thyroid dysgenesis is a novel observation that is part of the developmental anomaly of this disease. Several explanations can be put forward to explain the presence of these cysts. They might be due to the persistence of the ultimobranchial bodies as a cystic structure or part of the thyroid-forming material, which may migrate along the normal pathway of the usual course of the thyroglossal duct, giving rise to cell residues within the empty thyroid area.

Adolescent↗

Sequence analysis of thyroid transcription factor-1 gene reveals absence of mutations in patients with thyroid dysgenesis but presence of polymorphisms in the 5' flanking region and intron.

Congenital hypothyroidism is caused by several mechanisms. The most common cause worldwide is iodine deficiency, but in iodine-sufficient regions thyroid dysgenesis is the most common cause of congenital hypothyroidism. In the present study we analyzed the thyroid transcription factor-1 (TTF-1) gene in patients with congenital hypothyroidism due to thyroid dysgenesis: three patients with athyrosis, five with ectopy, and one with hypoplasia. Genomic DNA was isolated from peripheral leukocytes, and the TTF-1 gene, including a 5' flanking region, two exons and one intron was amplified by polymerase chain reaction (PCR) with 4 pairs of primers. The PCR products were directly sequenced by the Dye Terminator Cycle Sequencing method. We could not find any mutations specific for the thyroid dysgenesis in the 5' flanking region, two exons and one intron in the TTF-1 gene, but two heterozygous nucleotide substitutions were detected in the intron: a G to A transition at nucleotide 469 (G469A) and a C to A transversion at nucleotide 866 (C866A). The same nucleotide changes were detected in some normal subjects. Allelic frequencies of the polymorphisms G469A and C866A were 23% and 10%, respectively. Another normal polymorphism in the 5' flanking region was a G to T transversion at nucleotide -845 from the transcription start site (G-845T). The allelic frequency of the polymorphism G-845T was 28%. We also found 12 polymorphisms in the 5' flanking region, two in the intron and one in the 3' untranslated region. These polymorphisms were detected in 100% chromosomes. These results suggest that congenital hypothyroidism associated with thyroid dysgenesis is unlikely to be caused by mutations in the TTF-1 gene in which, however, were detected normal polymorphisms in the 5' flanking region, intron and 3' untranslated region.

Adolescent↗

Nineteen years of national screening for congenital hypothyroidism: familial cases with thyroid dysgenesis suggest the involvement of genetic factors.

Although a few familial forms of congenital hypothyroidism (CH) due to thyroid dysgenesis (TD) have been reported, this disorder is usually considered to be sporadic. Recently, we reported that 2% of CH patients with TD have a positive familial history. The aim of this study was to describe the clinical characteristics of these familial cases and to compare them with sporadic cases. We used the French national population-based registry of the first 19-yr screening program, which included 14,416,428 screened neonates with a 100% recovery rate. Familial history of CH with TD was investigated by means of a questionnaire sent to the pediatricians (n = 592) who provided ongoing clinical care for the 4049 CH patients detected during this period, including 2863 CH cases due to TD. Information was obtained from 73% of these pediatricians who were following up 2472 CH patients with TD (86%). In all, 67 patients with a positive family history of CH with TD were referred, belonging to 32 multiplex families (i.e. including at least 2 affected members). Families were identified with ectopic gland (n = 12), athyreosis (n = 7), or both (n = 13). Comparison of familial with isolated cases showed a similar etiological diagnosis distribution of CH (40% vs. 33% for athyreosis and 60% vs. 67% for ectopic thyroid gland, respectively), whereas a significantly lower predominance of females was found in familial than in isolated cases (1.4 vs. 2.7; P < 0.03). Extrathyroidal congenital malformations were found with a similarly higher incidence in familial and isolated CH populations compared with the general population (respectively, 9% and 8.2% vs. 2.5%). In conclusion, although familial cases represent a minority of cases of congenital hypothyroidism caused by thyroid dysgenesis, they were observed in a significantly higher proportion (>15-fold) than would be expected from chance alone. This familial clustering, including athyreosis and ectopic thyroid gland, strongly suggests that genetic factors could be involved in thyroid dysgenesis with a common underlying mechanism for both etiological groups. Moreover, the high proportion of extrathyroidal congenital malformations in a population affected by CH due to TD suggests that the potential genetic factors involved in thyroid gland organogenesis are also involved in the development of other organs.

Congenital Hypothyroidism↗

Twenty years later: a reevaluation of the contribution of plasma thyroglobulin to the diagnosis of thyroid dysgenesis in infants with congenital hypothyroidism.

BACKGROUND: The definition of the type of thyroid dysgenesis in congenital hypothyroidism (CH), ectopy, or athyreosis is important for monitoring patients and for genetic investigations. We have recently encountered infants who in spite of undetectable Technetium uptake on scintigraphy had biochemical results making athyreosis unlikely. OBJECTIVE: To reevaluate the utility of plasma thyroglobulin (Tg) in this clinical context using new sensitive Tg assays. SUBJECTS AND METHODS: Plasma Tg was retrospectively determined by two immunoassay systems on specimens obtained at diagnosis in 31 hypothyroid infants with thyroid dysgenesis. RESULTS: Scintigraphy led to the diagnosis of ectopy in 19 infants and of athyreosis in 12. Seven (58%) of the infants classified as athyreotic by scintigraphy had detectable plasma Tg (>0.2 microg/l), indicating that they had functional thyroid tissue. CONCLUSIONS: An undetectable plasma Tg should be documented to validate a scintigraphic diagnosis of athyreosis. Conversely, when plasma Tg is undetectable, scintigraphy could be avoided.

Female↗

Linkage and mutational analysis of familial thyroid dysgenesis demonstrate genetic heterogeneity implicating novel genes.

The pathophysiology of thyroid dysgenesis (TD) is not elucidated yet in the majority of cases. The unexpected familial clustering of congenital hypothyroidism due to TD suggests a genetically determined disorder. Four genes have been hitherto involved in thyroid development, including migration and growth. Three of these encode transcription factors (the thyroid transcription factors 1 and 2 (TTF1 or NKX2.1 and TTF2 or FOXE1) and PAX8) while the other encodes the thyrotropin hormone receptor (TSHR). Some mutations have been reported in patients affected by thyroid defects, which supports the relevance of these four genes in TD. However, their involvement in the general TD population remains questionable. Therefore, to document their involvement, we performed a linkage analysis followed by mutational analysis in 19 multiplex TD families. The LOD score results failed to prove linkage between any of the four genes and the TD phenotype, whatever the postulated mode of inheritance. Manual extended haplotypes showed allele sharing among affected individuals of at least one of these four genes in the majority of families. Nevertheless, mutational analysis did not identify mutations in these cases, arguing in favor of identity by descent and not identity by state. Furthermore, as a main result of the present study, extended haplotypes confirmed by mutational analysis showed that the four genes were excluded in five out of the 19 investigated families, demonstrating the relevance of other genes. In conclusion, the present study demonstrates genetic heterogeneity in the TD disorder and suggests the involvement of novel genes.

DNA Mutational Analysis↗

The gene for the thyrotropin receptor (TSHR) as a candidate gene for congenital hypothyroidism with thyroid dysgenesis.

According to the central role of the TSH receptor for thyroid function and growth the gene for the TSH receptor is a possible candidate gene for mutations which result in an impairment of thyroid growth and function (Vassart and Dumont 1992). First evidence for the role of TSH receptor defects in the pathogenesis of congenital thyroid disorders was elucidated by the presence of activating germline mutations leading to congenital hyperthyroidism (Duprez et al., 1994). After the finding of partial loss-of-function mutations leading to hyperthyrotropinemia (Sunthornthepvarakul et al., 1995) it was speculated that a more severe phenotype with hypothyroidism and hypoplasia of the gland (thyroid dysgenesis) would be the result, if complete loss-of-function mutations like the isoleucine167 to asparagine mutation would occur in a homozygote or compound heterozygote state. The screening of TSHR gene mutations by SSCP in a well defined cohort of 100 children with congenital hypothyroidism (CH), diagnosed and followed since 1978 in the Childrens Hospital of Berlin, revealed one patient with hypoplasia of the thyroid to be positive for two compound heterozygote inactivating mutations of the TSHR gene, indicating thereby that the clinical approach to define phenotypes of interest could be helpful to understand the fundamental process of thyroid development.

Animals↗

Missense mutation in the transcription factor NKX2-5: a novel molecular event in the pathogenesis of thyroid dysgenesis.

CONTEXT: Congenital hypothyroidism (CH) is a common endocrine disorder with an incidence of 1:3000-4000 at birth. In 80-85% of cases, CH is caused by defects in thyroid organogenesis, resulting in absent, ectopically located, and/or severely reduced gland [thyroid dysgenesis (TD)]. Mutations in genes controlling thyroid development have demonstrated that in a few cases, TD is a Mendelian trait. However, accumulating evidence supports the view that the genetics of TD are complex, possibly with a polygenic/multifactorial basis. A higher prevalence of congenital heart disease has been documented in children with CH than in the general population. Such an association suggests a possible pathogenic role of genes involved in both heart and thyroid development. NKX2-5 encodes a homeodomain-containing transcription factor with a major role in heart development, and mutations affecting this gene have been reported in individuals with congenital heart disease. OBJECTIVE: In the present work we investigated the possible involvement of NKX2-5 mutations in TD. RESULTS: Our results indicate that Nkx2-5(-/-) embryos exhibit thyroid bud hypoplasia, providing evidence that NKX2-5 plays a role in thyroid organogenesis and that NKX2-5 mutations contribute to TD. NKX2-5 mutational screening in 241 patients with TD allowed the identification of three heterozygous missense changes (R25C, A119S, and R161P) in four patients with TD. Functional characterization of the three mutations demonstrated reduced DNA binding and/or transactivation properties, with a dominant-negative effect on wild-type NKX2-5. CONCLUSION: Our results suggest a previously unknown role of NKX2-5 in the pathogenesis of TD.

Congenital Hypothyroidism↗

Resistance to thyroid hormone in a patient with thyroid dysgenesis.

We report a patient with the unusual coincidence of two rare congenital disorders, lingual ectopy of the thyroid gland and resistance to thyroid hormone (RTH), resulting in impaired thyroid hormone production and action, respectively. The proposita had a positive thyrotropin (TSH) newborn screening test (350 mU/L, confirmed) with normal thyroxine (T4) and no clinical signs of hypothyroidism. A scintiscan revealed lingual but no orthotopic thyroid tissue. Levothyroxine (LT4) replacement failed to reduce TSH and was discontinued after four months owing to significantly elevated free T4. Her physical and mental development was unremarkable, and she was considered to be clinically euthyroid throughout childhood, even though she received either no T4 or a dose insufficient to lessen hyperthyrotropinemia. At the age of 15 years, T4 was gradually increased to a supraphysiological dose of 300 microg/d, resulting in the normalization of the serum TSH level, and subjective improvements in her ability to concentrate. The proposita's mother was clinically euthyroid, had a palpable diffuse goiter, and thyroid function tests consistent with RTH. This diagnosis was confirmed by detection of a heterozygous mutation (R320H) in the thyroid hormone receptor-beta (TR-beta) gene found in both the proposita and her mother. Under the high-dose T4 regimen, the patient's TSH and free T4 values resembled those of untreated patients with TRbeta R320H mutation, suggesting that a compensated state could be achieved, at least at the pituitary level. In the proposita, treatment of hyperthyrotropinemia is clearly mandatory because of potential complications inflicted by TSH-stimulated growth of the lingual tissue. To our knowledge, this represents the first report of congenital hypothyroidism secondary to thyroid dysgenesis complicated by coincidental RTH.

Adolescent↗