Search PubMed⌕ Search

Biomedical subjects

J G Mears

Publications and source records attributed to J G Mears.

29 records · Page 2Linked to original sources

Disorders of human hemoglobin.

Studies of the human hemoglobin system have provided new insights into the regulation of expression of a group of linked human genes, the gamma-delta-beta-globin gene complex in man. In particular, the thalassemia syndromes and related disorders of man are inherited anemias that provide mutations for the study of the regulation of globin gene expression. New methods, including restriction enzyme analysis and cloning of cellular DNA, have made it feasible to define more precisely the structure and organization of the globin genes in cellular DNA. Deletions of specific globin gene fragments have already been found in certain of these disorders and have been applied in prenatal diagnosis.

Chromosome Aberrations↗

The organization of the gamma-delta-beta gene complex in normal and thalassemia cells.

Restriction enzyme digestion analysis and direct human globin gene cloning have permitted analysis of the physical arrangement of nucleotide sequences within and surrounding the human globin genes. With these methods it has been shown that the linear arrangement 5' to 3' of the globin genes is G gamma-A gamma-delta-beta. The G gamma and A gamma genes are separated by about 3.5 kilobases (kb), while the A gamma and delta genes are 15 kb apart, and the delta and beta 6.5 kb apart. Each of these genes contains a large intervening sequence (IVS) of approximately 1 kb in precisely the same position between condons 104 and 105. In addition, each of these genes has a small IVS between codons 30 and 31. In homozygous delta beta thalassemia DNA, there is deletion of all of the normal delta and beta gene fragments. However, a new fragment 4.2 kb in size containing the 5' end of the delta globin gene is retained. Retention of this fragment in delta beta thalassemia, but not in HPFH is consistent with a role for sequences in this region for limiting gamma globin gene expression. Studies to date suggest that the beta + and beta 0 thalassemias will be due to a heterogeneous group of DNA defects affecting either beta globin gene transcription or beta mRNA processing. In most cases of beta + and beta 0 thalassemia DNA analyzed, there is no detectable deletion of beta or delta genes. In three India beta 0 patients, deletion of the 3' end of the beta gene has been found. Analysis of cloned beta globin genes from a patient with beta + thalasseia shows differences from normal in the fragments generated by restriction enzymes which cut frequently. Whether these differences are responsible for the defect in thalassemia or are polymorphisms unrelated to thalassemia remains to be determined.

Base Sequence↗

Isolation and characterization of cloned human fetal globin genes.

Three clones containing both the human G gamma and A gamma globlin genes have been isolated and characterized from a library of DNA fragments generated by partial Eco RI digestion of cellular DNA using charon 4A phage as vector. Two of the clones (NY 2 and 3) are identical and have an insert of 14.0 kb. The third clone (NY 1) has a 15.4 kb insert by virtue of an extra 1.4 kb Eco RI fragment at its 5' most end. This clone also has a Kpn I site not present in the other two suggesting it is the product of the gamma gene on the opposite chromosome. Restriction analysis of the three clones indicates that the G gamma and A gamma genes are linked on a single continuous piece of DNA and are separated by 3.5 kb and each contains at least one large intervening sequence of 0.85 kg between the Bam HI and Eco RI sites. These findings in cloned DNA provide direct evidence for linkage and organization of the gamma genes in man.

Base Sequence↗

Defects in DNA and globin messenger RNA in homozygotes for hemoglobin Lepore.

Globin messenger RNA (mRNA) isolated from three patients homozygous for hemoglobin Lepore is shown to have a marked reduction of the amount of beta-like globin mRNA (Lepore-globin mRNA sequences) compared with alpha-globin mRNA by molecular hybridization. The relative amounts of alpha- and Lepore mRNA are similar to the amounts of alpha- and Lepore globin synthesized in intact cells and by isolated mRNA in a cell-free system. It is also demonstrated that Lepore-globin mRNA can completely hybridize to full-length or nearly full-length beta-globin specific complementary DNA and protect it from nuclease digestion, indicating close homology between the delta-mRNA sequences present in Lepore mRNA and the beta-complementary-DNA probe. We have also quantitated the numbers of beta-like globin gene sequences in genomic Lepore DNA by molecular hybridization and demonstrated a reduction in their number consistent with the Lepore gene being a delta beta-gene fusion product.

Adolescent↗

Heterogeneity of DNA fragments associated with the sickle-globin gene.

We have examined the genetic polymorphism previously reported to be associated with the sickle-cell (beta s) gene. The polymorphism involves an alteration of the DNA sequence 3' to the beta-globin gene as detected with the restriction endonuclease, Hpa I. In normal individuals, the beta-globin gene is contained within a DNA fragment of 7.6 kilobases (kb), whereas 87% of individuals with sickle-cell anemia have been reported to have the beta s-gene associated with a 13.0-kb Hpa I fragment. We have studied this polymorphism in 31 New York Black individuals homozygous for sickle-cell anemia to ascertain its genetic and biochemical significance and to evaluate its potential use in the prenatal diagnosis of sickle-cell disease. Our results show only a 58% association of the beta s-gene and the 13.0-kb Hpa I fragment, as well as the presence of additional variants involving the Hpa I site. In addition, the 13.0-kb fragment is also found associated with the beta c- and beta A-genes. Thus, the Hpa I polymorphism probably represents a change in DNA not specifically associated with the beta s-gene, and appears to antedate the beta s-and beta c-mutations.

Anemia, Sickle Cell↗

Organization of human delta--and beta-globin genes in cellular DNA and the presence of intragenic inserts.

We have analyzed human cellular DNA for its delta--and beta-globin gene sequence content by separation of restriction enzyme fragments by agarose gel electrophoresis; transfer of the DNA fragments to nitrocellulose filters; hybridization of filters with 32P--beta-globin cDNA; and analysis by autoradiography. A short cDNA has been used to identify specifically the 3' end of the genes and to orient the fragments. A comparison of the globin gene fragments generated by normal and Lepore DNA has been used to distinguish fragments representing DNA sequences between the delta and beta genes and those containing sequences flanking either 5' to the delta gene or 3' to the beta gene. The results indicate that unique restriction fragments are presented in normal DNA and absent in Lepore DNA, and allow preliminary ordering of these fragments on a restriction enzyme map. In addition, the Lepore, delta--and beta-globin genes have been found to contain at least one inserted nucleotide sequence of about 1000 bases which is not represented in mature globin mRNA.

Cell Line↗

Changes in restricted human cellular DNA fragments containing globin gene sequences in thalassemias and related disorders.

Human cellular DNA fragments from cells of normal subjects and patients with thalassemia obtained by restriction enzyme digestion were analyzed for their globin gene content. The fragments were separated on agarose gels, transferred to nitrocellulose filters, hybridized to globin [(32)P]cDNA, and radioautographed. One to ten picograms of globin gene sequences were detectable. With EcoRI digestion, eight to nine cellular DNA fragments were found to contain globin genes. Three of these contained beta-like gene sequences assayed with beta globin cDNA probe. One beta-like fragment was absent in DNA from a homozygous subject for hemoglobin Lepore. Two of the three beta gene-containing fragments present in normal DNA were absent in DNA from a patient with hereditary persistence of fetal hemoglobin. The same two fragments containing beta-like genes were absent from deltabeta thalassemic DNA and one new fragment containing beta-like genes was found. Together with results obtained by hybridization of these DNAs in solution, the data are consistent with deletion of specific restriction human DNA fragments in subjects with these disorders and a greater deletion of beta-like gene sequences in subjects with hereditary persistence of fetal hemoglobin than in those with deltabeta thalassemia.

Base Sequence↗