Search PubMed⌕ Search

Biomedical subjects

C Eng

Publications and source records attributed to C Eng.

At least 199 records · Page 11Linked to original sources

Catalytic specificity of protein-tyrosine kinases is critical for selective signalling.

How do distinct protein-tyrosine kinases activate specific down-stream events? Src-homology-2 (SH2) domains on tyrosine kinases or targets of tyrosine kinases recognize phosphotyrosine in a specific sequence context and thereby provide some specificity. The role of the catalytic site of tyrosine kinases in determining target specificity has not been fully investigated. Here we use a degenerate peptide library to show that each of nine tyrosine kinases investigated has a unique optimal peptide substrate. We find that the cytosolic tyrosine kinases preferentially phosphorylate peptides recognized by their own SH2 domains or closely related SH2 domains (group I; ref. 3), whereas receptor tyrosine kinases preferentially phosphorylate peptides recognized by subsets of group III SH2 domains. The importance of these findings for human disease is underscored by our observation that a point mutation in the RET receptor-type tyrosine kinase, which causes multiple endocrine neoplasia type 2B, results in a shift in peptide substrate specificity.

Amino Acid Sequence↗

A novel point mutation in the tyrosine kinase domain of the RET proto-oncogene in sporadic medullary thyroid carcinoma and in a family with FMTC.

Germline mutations within one of six codons of the RET proto-oncogene account for the majority of cases of multiple endocrine neoplasia (MEN) type 2A and type 2B and familial medullary thyroid carcinoma (FMTC). MEN 2A and FMTC mutations characterised thus far occur exclusively in the cysteine-rich domain of the extracellular region of RET. We now report a missense mutation in the intracellular tyrosine kinase domain of RET in the germline of a family with FMTC that does not have a cysteine codon mutation. In this family, the mutation, which alters GAG (Glu) to GAC (Asp) at codon 768, segregates with the FMTC phenotype. The same mutation was also detected in sporadic MTC but not in corresponding constitutional DNA, confirming that it is likely to be of pathological significance rather than a rare polymorphism.

Base Sequence↗

Mutation of the RET protooncogene in sporadic medullary thyroid carcinoma.

Medullary thyroid carcinoma (MTC) occurs sporadically or as part of the inherited cancer syndrome multiple endocrine neoplasia (MEN) type 2. In MEN 2A, germline missense mutations are found in one of five cysteine codons within exons 10 and 11 in the extracellular domain of the RET protooncogene. In MEN 2B, germline mutations occur in codon 918 (exon 16) within the catalytic core of the tyrosine kinase domain. To determine if RET mutations similar to those in MEN 2A and 2B play a role in the pathogenesis of sporadic MTC, we analysed 71 sporadic tumours comprising 68 primary tumours and three cell lines, for mutations in RET exons 10, 11, and 16. We found that 23% of sporadic MTC had RET codon 918 mutations, while only 3% had exon 10 mutations, and none had mutations in exon 11. We found no exon 16 mutations in MTC from 14 MEN 2A cases. Thus, exon 10 and 11 mutations, commonly found in familial MTC and MEN 2A, rarely occur in sporadic MTC; somatic mutation of RET codon 918 appears to play a role in the tumourigenesis of a significant minority of sporadic MTC but not MEN 2A tumours. In addition to their biological interest, these findings may have some clinical application in determining whether a patient presenting with isolated MTC is truly sporadic or is part of an inherited cancer syndrome.

Carcinoma, Medullary↗

Presymptomatic genetic screening in families with multiple endocrine neoplasia type 2.

Medullary thyroid carcinoma occurs sporadically or as a part of the inherited cancer syndrome multiple endocrine neoplasia (MEN) type 2. The MEN 2 gene has been identified as the RET proto-oncogene on chromosome 10. In MEN 2A, RET mutations are detectable in one of five cysteine codons within exons 10 and 11 and in MEN 2B in codon 918 (exon 16). Direct DNA testing for RET proto-oncogene mutations is the method of first choice in presymptomatic screening of MEN 2 families. Gene carriers should be offered prophylactic thyroidectomy. The process of DNA analysis for RET proto-oncogene mutations is demonstrated in one family with hereditary medullary thyroid carcinoma. RET mutations were detectable in five of the nine family members at risk.

Adult↗

Presymptomatic DNA screening in families with multiple endocrine neoplasia type 2 and familial medullary thyroid carcinoma.

BACKGROUND: Missense mutations of the ret proto-oncogene on chromosome 10q11.2 are the underlying cause of hereditary medullary thyroid carcinoma (MTC), either as familial MTC only (FMTC) or as a part of multiple endocrine neoplasia type 2 syndrome (MEN 2). This study presents our experience with direct presymptomatic DNA screening in MEN 2 and FMTC kindreds. METHODS: Twenty one families with MEN 2 or FMTC were considered in the study. One hundred three individuals had been analyzed; 56 were at risk. The ret mutations were detected by DNA analysis of exons 10, 11, and 16 by using nonradioactive labeling method based on digoxigenin DNA sequencing technique. Serum calcitonin evaluation was carried out in all individuals at risk. Thyroidectomy was performed in those who had to undergo surgery. RESULTS: The ret mutations were identified in all 21 families. In MEN 2A and FMTC families mutations occurred in exons 10 and 11. MEN 2B families had mutations in exon 16. The most frequent mutation in MEN 2A and FMTC affected codon 634. Twenty one gene carriers were identified in unaffected individuals at risk. Ten of 21 gene carriers had elevated calcitonin levels, and 11 had normal levels. MTC or C-cell hyperplasia was found in six gene carriers with pathologic calcitonin values who underwent operation. In a 5-year-old gene carrier with normal calcitonin values C-cell hyperplasia was evident. CONCLUSIONS: Direct predictive DNA analysis allows us to identify MEN 2 or FMTC gene carriers and offer them prophylactic treatment.

Base Sequence↗

Diversity of RET proto-oncogene mutations in familial and sporadic Hirschsprung disease.

Hirschsprung disease (HSCR) is a common congenital malformation (1 in 5,000 live births) due to the absence of autonomic ganglia in the terminal hindgut, and resulting in intestinal obstruction in neonates. Recently, a dominant gene for familial HSCR has been mapped to chromosome sub-band 10q11.2 and the disease has been ascribed to mutations in a tyrosine kinase receptor gene mapping to this region, the RET proto-oncogene. Studying the 20 exons of the RET gene by a combination of denaturating gradient gel electrophoresis and single strand conformation polymorphism in a large series of HSCR patients (45 sporadic cases and 35 familial forms), we found mutations of the RET gene in 50% of familial HSCR, regardless of the length of the aganglionic segment. The mean penetrance of the mutant allele in familial HSCR was significantly higher in males (72%) than in females (51%). Most interestingly, mutations at the RET locus accounted for at least 1/3 of sporadic HSCR in our series. These mutations were scattered along the length of the gene. Finally, among the mutations identified in sporadic cases (16/45), seven proved to be de novo mutations suggesting that new mutations at the RET locus significantly contribute to sporadic HSCR. Taken together, the low penetrance of the mutant gene, the lack of genotype-phenotype correlation, the sex-dependent effect of RET mutations and the variable clinical expression of the disease support the existence of one or more modifier genes in familial HSCR.

Base Sequence↗

RET mutations in multiple endocrine neoplasia type 2 and Hirschsprung disease.

Mutations in the RET proto-oncogene have been found in a large proportion of families affected by the multiple endocrine neoplasia type 2 syndrome and in familial and sporadic Hirschsprung disease. This review discusses the role of the RET receptor tyrosine kinase in the etiology of these dominantly inherited disorders of neural crest development. In addition, the role of genetic screening is considered in the identification and clinical management of individuals at risk for these diseases.

Drosophila Proteins↗

No mutation at codon 918 of the RET gene in a family with multiple endocrine neoplasia type 2B.

Multiple endocrine neoplasia type 2B (MEN 2B) is a rare cancer syndrome which is inherited in an autosomal dominant manner. The molecular basis of this condition has recently been defined as a mutation of codon 918 of exon 16 of the RET proto-oncogene. The mutation in codon 918 has been described in 69 out of 72 families with MEN 2B. We have studied a brother and sister who undoubtedly have the features of MEN 2B as evidenced by medullary thyroid carcinoma, phaeochromocytoma, mucosal neuromas and skeletal abnormalities. Neither of these patients has the classic gene mutation at codon 918 of exon 16 of the RET proto-oncogene, and although exons 2-20 have also been sequenced, no abnormality has been found. DNA analysis is a sensitive method of screening families for the MEN 2 syndromes. The absence of the mutation at codon 918 in a phenotypically normal individual would refute the diagnosis of MEN 2B, but in an individual with some of the features of MEN 2B would make the clinician reconsider the diagnosis. This family demonstrates that, although it is rare, the absence of the mutation in codon 918 of exon 16 of the RET proto-oncogene does not always exclude the diagnosis of MEN 2B. In such families routine biochemical screening for medullary thyroid carcinoma and phaeochromocytoma must be maintained for all individuals at genetic risk.

Adolescent↗

Low frequency of germline mutations in the RET proto-oncogene in patients with apparently sporadic medullary thyroid carcinoma.

BACKGROUND AND OBJECTIVES: Medullary thyroid carcinoma (MTC) occurs both sporadically and in the autosomal dominantly inherited multiple endocrine neoplasia (MEN) type 2 syndromes. The distinction between true sporadic MTC and a new mutation familial case is important for future clinical management of both the patient and family. The susceptibility gene for MEN 2 is the RET proto-oncogene. Systematic analysis for germline mutations of the RET proto-oncogene was performed in a series of 67 patients with apparently sporadic MTC to determine whether they were true sporadic cases or unsuspected de novo MEN 2 cases. DESIGN AND PATIENTS: Sixty-seven unselected patients with sporadic MTC were randomly ascertained from clinic patients from four centres. The diagnosis of MTC was confirmed by histopathology. Germline DNA was extracted from peripheral blood leucocytes or from paraffin-embedded tissue and subsequently used for polymerase chain reaction amplification. MEASUREMENTS: Polymerase chain reaction based RET mutation analysis was performed by direct double-stranded cycle sequencing of exons 10, 11, 13 and 16, within which the majority of MEN2 mutations have been shown to occur. RESULTS: In this series, there was one proven case of germline mutation in RET codon 620, which previously has been shown to be responsible for MEN 2, thus indicating heritable disease. No germline mutation in codon 918, typical of MEN 2B, was found. CONCLUSIONS: A figure of 1.5% germline mutations in 67 apparently sporadic MTC is lower than the incidence of familial disease reported in previous series involving clinical and biochemical screening. The presence of a germline mutation in the RET proto-oncogene in a patient with MTC indicates heritable disease. The absence of germline RET exon 10, 11, 13 or 16 mutation appears to rule out MEN 2A to a high probability, although the presence of a familial form of MTC other than classical MEN 2A cannot be excluded conclusively.

Adolescent↗

Molecular genetic diagnosis of von Hippel-Lindau disease in familial phaeochromocytoma.

Inherited predisposition to phaeochromocytoma is seen in multiple endocrine neoplasia type 2 syndromes, von Hippel-Lindau (VHL) disease, and neuro-fibromatosis type 1. In addition familial phaeochromocytoma alone has been reported. To investigate the genetic basis for familial phaeochromocytoma alone, we screened three affected kindreds for mutations in the RET proto-oncogene and the VHL tumour suppressor gene. We did not detect MEN 2 associated RET mutations in any family, but missense VHL gene mutations (V155L and R238W) were identified in two kindreds with no clinical evidence of VHL disease. Patients with familial, multiple, or early onset phaeochromocytoma should be investigated for germline VHL and RET gene mutations as the molecular diagnosis of multisystem familial cancer syndromes enables appropriate counselling and screening to be provided.

Adolescent↗

Mutations in the RET proto-oncogene and the von Hippel-Lindau disease tumour suppressor gene in sporadic and syndromic phaeochromocytomas.

Phaeochromocytomas may occur sporadically, or as part of the inherited cancer syndromes multiple endocrine neoplasia (MEN) type 2, von Hippel-Lindau disease (VHL), and, rarely, in type 1 neurofibromatosis. In MEN 2, germline missense mutations have been found in one of eight codons within exons 10, 11, 13, 14, and 16 of the RET proto-oncogene. In VHL, germline mutations within one of the three exons are responsible for the majority of cases. To determine if somatic mutations similar to those seen in the germline in MEN 2 or VHL disease play a role in the pathogenesis of sporadic or familial phaeochromocytomas, we analysed 48 sporadic tumours and tumours from 17 MEN 2 and five VHL patients for mutations in RET exons 9, 10, 11, 13, 14, 15, and 16, and the entire coding sequence of VHL. Five of 48 sporadic phaeochromocytomas had RET mutations within exons 10, 11, and 16. Of these, one was proven to be germline and two were proven to be somatic mutations. Four of 48 had VHL mutations; these included both the bilateral cases in the series (one was proven to be a germline mutation) and two others, of which one was proven somatic.

Drosophila Proteins↗

Specific mutations of the RET proto-oncogene are related to disease phenotype in MEN 2A and FMTC.

We have analysed 118 families with inherited medullary thyroid carcinoma (MTC) for mutations of the RET proto-oncogene. These included cases of multiple endocrine neoplasia types 2A (MEN 2A) and 2B (MEN 2B) and familial MTC (FMTC). Mutations at one of 5 cysteines in the extracellular domain were found in 97% of patients with MEN 2A and 86% with FMTC but not in MEN 2B patients or normal controls. 84% of the MEN2A mutations affected codon 634. MEN 2A patients with a Cys634 to Arg substitution had a greater risk of developing parathyroid disease than those with other codon 634 mutations. Our data show a strong correlation between disease phenotype and the nature and position of the RET mutation, suggesting that a simple, constitutive activation of the RET tyrosine kinase is unlikely to explain the events leading to MEN 2A and FMTC.

Base Sequence↗

Haplotype analysis of MEN 2 mutations.

Multiple endocrine neoplasia type 2 (MEN 2) is a dominantly inherited cancer syndrome which affects thyroid C cells, and with variable frequency, the adrenal medulla, parathyroid and enteric autonomic ganglia. The syndrome is due to germline mutation in the receptor tyrosine kinase gene, RET. We have recently shown an unexpected correlation between one particular RET mutation, cys634-->arg, and the probability of parathyroid involvement in families with MEN 2A. Here we use haplotype analysis in the families to show that this correlation is not explained by a single founder chromosome which carries both the cys634-->arg mutation and a separate allele conferring susceptibility to parathyroid abnormality, but is probably due to the cys634-->arg mutation itself. The results also indicate that new mutations to MEN 2 are not infrequent.

Amino Acid Sequence↗

Diverse phenotypes associated with exon 10 mutations of the RET proto-oncogene.

Mutations of the RET proto-oncogene are the underlying cause of some cases of Hirschsprung disease (HSCR) and the inherited cancer syndromes multiple endocrine neoplasia types 2A (MEN 2A) and 2B (MEN 2B) and familial medullary thyroid carcinoma (FMTC). In HSCR these mutations are dispersed throughout the gene, while in MEN 2A and FMTC, they are tightly clustered in five cysteine codons of the RET extracellular domain. HSCR and MEN 2 are usually distinct but occasional families have been reported with both diseases. In each of five families with HSCR with or without MEN 2A or FMTC, we have identified a nucleotide substitution in one of the five cysteine codons previously associated with MEN 2A or FMTC. In one family, which had HSCR as its only phenotype, we detected a Cys-->Trp mutation at codon 609 which had not been previously observed. In three families, both HSCR and MEN 2A were associated with a single Cys-->Arg mutation at either codon 618 or 620 of RET. In the fifth family, FMTC and HSCR were present but we could not determine whether HSCR arose from mutation of the RET locus. We suggest that specific mutations in cysteine codons 618 and 620 result in MEN 2A or FMTC, but can also predispose to HSCR with low penetrance.

Base Sequence↗

Point mutation within the tyrosine kinase domain of the RET proto-oncogene in multiple endocrine neoplasia type 2B and related sporadic tumours.

The susceptibility loci for the three multiple endocrine neoplasia (MEN) type 2 syndromes have been mapped to the region of chromosome 10q11.2 containing the RET proto-oncogene, which codes for a receptor tyrosine kinase. The majority of MEN 2A and familial medullary thyroid carcinoma results from missense mutations within one of five cysteine codons in the extracellular domain of the RET proto-oncogene. We now report a missense mutation, resulting in the substitution of a threonine for a methionine at codon 918 in the tyrosine kinase catalytic domain, in the germline of 26 of 28 apparently distinct families with MEN 2B. DNA from five of 13 apparently sporadic MTC and one of 12 apparently sporadic phaeochromocytomas harboured a similar mutation, but the corresponding germline DNA was wildtype in each case.

Adenoma↗