scholarly journals Expression of Human Globin Genes in Transgenic Mice Carrying the ?-Globin Gene Cluster with a Mutation CausingG??+Hereditary Persistence of Fetal Hemoglobin

1990 ◽  
Vol 612 (1 Sixth Cooley') ◽  
pp. 167-178 ◽  
Author(s):  
MINORU TANAKA ◽  
JUDITH A. NOLAN ◽  
AJAY K. BHARGAVA ◽  
KIRSTEN ROOD ◽  
FRANCIS S. COLLINS ◽  
...  
Blood ◽  
1991 ◽  
Vol 77 (4) ◽  
pp. 861-867
Author(s):  
M Losekoot ◽  
R Fodde ◽  
EJ Gerritsen ◽  
I van de Kuit ◽  
A Schreuder ◽  
...  

We report two different disorders of the beta-globin gene cluster segregating in a Belgian family: a novel deletion that results in (G) gamma + ((A) gamma delta beta)(0)-thalassemia (thal) and a heterocellular hereditary persistence of foetal hemoglobin of the Swiss type linked to a delta(0)-thal gene (delta (0)-HPFH). Heterozygosity for the heterocellular HPFH brings about a moderate (3.4% to 8.24%) increase of hemoglobin (Hb) F having a G gamma/A gamma ratio of 4:1, whereas carriers of the G gamma + ((A) gamma delta beta)(0)-thal deletion show in their peripheral blood a considerably higher (15%) percentage of Hb F. Both defects interact in the compound heterozygotes for G gamma + ((A) gamma delta beta)(0)-thal and delta(0)-HPFH producing a further increase (up to 24%) of fetal Hb consisting entirely of G gamma chains. Molecular characterization of the (G) gamma + ((A) gamma delta beta)(0)-thal by means of Southern analysis showed that the deletion spans about 50 kb, removing the 3′ end of the A gamma- gene, the psi beta-, delta-, and beta-genes. A number of possible mechanisms leading to the overproduction of Hb F in HPFH and (G) gamma + ((A) gamma delta beta)(0)-thal will be discussed.


2017 ◽  
Vol 44 (5) ◽  
pp. 413-417 ◽  
Author(s):  
Priya Hariharan ◽  
Madhavi Sawant ◽  
Manju Gorivale ◽  
Ruma Manchanda ◽  
Roshan Colah ◽  
...  

Blood ◽  
2008 ◽  
Vol 112 (11) ◽  
pp. 492-492
Author(s):  
Kenneth R Peterson ◽  
Halyna Fedosyuk ◽  
Flavia C Costa

Abstract Hereditary persistence of fetal hemoglobin (HPFH) is a result of mutations that prevent the silencing of the g-globin genes during the adult stage of definitive erythropoiesis. Two types of HPFH are recognized, deletional HPFH and non-deletional HPFH. Mutations in the later class have been identified in the proximal promoters of the Ag- and Gg-globin genes. Individuals homozygous for sickle cell disease or certain b-thalassemia mutations, that have in addition a HPFH mutation, do not suffer the deleterious effects of these diseases. These subjects provide the natural evidence supporting the clinical effort to reactivate fetal hemoglobin as the major treatment for SCD and b-thalassemias. Thus, understanding the molecular mechanisms regulating the g-globin genes is essential for identification of points of therapeutic intervention. Although the number of point mutations causing HPFH has grown over the years, the biochemical mechanisms affected by these alterations remains elusive. In addition, it is unlikely that all potential mutations have been identified in humans. A complete catalog of all potential HPFH point mutations, coupled with knowledge of the transcriptional processes affected by them will be an invaluable step towards effectively treating these diseases. We recently identified a novel T>A HPFH mutation in a GATA site at position -566 of the Ag-globin promoter, the most distal in the promoter to date, that affects binding of a GATA-1-FOG-1-Mi2 repressor complex. Since this study utilized mutated human b-globin locus yeast artificial chromosome (b-YAC) transgenic mice, where a second copy of the Ag-globin gene was introduced near the locus control region, we produced b-YAC transgenic mice containing the -566 mutation at the normally located Ag-globin gene. These mice display a mild HPFH phenotype, an approximately 3% increase in g-globin gene expression, compared to wild-type b-YAC mice. Chromatin immunoprecipitation (ChIP) studies demonstrated that this mutation prevents GATA-1 binding when g-globin is repressed in post-conception day 18 (E18) fetal liver, whereas recruitment was observed in wild-type b-YAC transgenic samples from the same developmental stage. These data are consistent with the presence of a GATA-1-mediated repressor complex at this GATA site when g-globin is not expressed. GATA-1-mediated repression may be a general mechanism of g-globin silencing. To begin testing this hypothesis, we utilized previously generated Ag-globin -117 G>A Greek HPFH b-YAC transgenic mice, which show a 5–8% increase in g-globin synthesis in adult erythropoiesis. Published data suggested that this mutation affects nearby GATA-1 binding. Our ChIP data confirmed these results, however the GATA-1 multi-protein complex that is affected may differ from that recruited to the -566 GATA binding site. Finally, we have developed a cell-based selection that is being used to identify a comprehensive set of Ag-globin HPFH promoter mutations. Chemical inducer of dimerization (CID)-dependent Ag-globin promoter-eGFP b-YAC bone marrow cells were derived from transgenic mice and mutagenized with N-ethyl, N-nitrosourea (ENU). These cells are normally GFP−; treatment with g-globin-inducers or the presence of the -117 Greek HPFH mutation results in GFP+ cells. GFP+ cells were collected by FACS and individual cell clones expanded so that genomic DNA could be isolated. Promoter proximal regions were amplified by four PCR primer sets and subjected to heteroduplex analysis with the corresponding wild-type Ag-globin promoter PCR products as the control amplicons. Twenty three heteroduplexes have been detected among 158 mutant clones screened. Most are clustered in the proximal promoter. These data suggest that we have produced HPFH mutations, likely consisting of those known in human populations, as well as novel sites that affect repressor binding or enhance recruitment of transcriptional activators.


Blood ◽  
1991 ◽  
Vol 77 (4) ◽  
pp. 861-867 ◽  
Author(s):  
M Losekoot ◽  
R Fodde ◽  
EJ Gerritsen ◽  
I van de Kuit ◽  
A Schreuder ◽  
...  

Abstract We report two different disorders of the beta-globin gene cluster segregating in a Belgian family: a novel deletion that results in (G) gamma + ((A) gamma delta beta)(0)-thalassemia (thal) and a heterocellular hereditary persistence of foetal hemoglobin of the Swiss type linked to a delta(0)-thal gene (delta (0)-HPFH). Heterozygosity for the heterocellular HPFH brings about a moderate (3.4% to 8.24%) increase of hemoglobin (Hb) F having a G gamma/A gamma ratio of 4:1, whereas carriers of the G gamma + ((A) gamma delta beta)(0)-thal deletion show in their peripheral blood a considerably higher (15%) percentage of Hb F. Both defects interact in the compound heterozygotes for G gamma + ((A) gamma delta beta)(0)-thal and delta(0)-HPFH producing a further increase (up to 24%) of fetal Hb consisting entirely of G gamma chains. Molecular characterization of the (G) gamma + ((A) gamma delta beta)(0)-thal by means of Southern analysis showed that the deletion spans about 50 kb, removing the 3′ end of the A gamma- gene, the psi beta-, delta-, and beta-genes. A number of possible mechanisms leading to the overproduction of Hb F in HPFH and (G) gamma + ((A) gamma delta beta)(0)-thal will be discussed.


1997 ◽  
Vol 17 (4) ◽  
pp. 2076-2089 ◽  
Author(s):  
M O Arcasoy ◽  
M Romana ◽  
M E Fabry ◽  
E Skarpidi ◽  
R L Nagel ◽  
...  

Persistent expression of the gamma-globin genes in adults with deletion types of hereditary persistence of fetal hemoglobin (HPFH) is thought to be mediated by enhancer-like effects of DNA sequences at the 3' breakpoints of the deletions. A transgenic mouse model of deletion-type HPFH was generated by using a DNA fragment containing both human gamma-globin genes and HPFH-2 breakpoint DNA sequences linked to the core sequences of the locus control region (LCR) of the human beta-globin gene cluster. Analysis of gamma-globin expression in six HPFH transgenic lines demonstrated persistence of gamma-globin mRNA and peptides in erythrocytes of adult HPFH transgenic mice. Analysis of the hemoglobin phenotype of adult HPFH transgenic animals by isoelectric focusing showed the presence of hybrid mouse alpha2-human gamma2 tetramers as well as human gamma4 homotetramers (hemoglobin Bart's). In contrast, correct developmental regulation of the gamma-globin genes with essentially absent gamma-globin gene expression in adult erythroid cells was observed in two control non-HPFH transgenic lines, consistent with autonomous silencing of normal human gamma-globin expression in adult transgenic mice. Interestingly, marked preferential overexpression of the LCR-distal (A)gamma-globin gene but not of the LCR-proximal (G)gamma-globin gene was observed at all developmental stages in erythroid cells of HPFH-2 transgenic mice. These findings were also associated with the formation of a DNase I-hypersensitive site in the HPFH-2 breakpoint DNA of transgenic murine erythroid cells, as occurs in normal human erythroid cells in vivo. These results indicate that breakpoint DNA sequences in deletion-type HPFH-2 can modify the developmentally regulated expression of the gamma-globin genes.


1993 ◽  
Vol 90 (23) ◽  
pp. 11262-11266 ◽  
Author(s):  
J A Sharpe ◽  
D J Wells ◽  
E Whitelaw ◽  
P Vyas ◽  
D R Higgs ◽  
...  

A 350-bp segment of DNA associated with an erythroid-specific DNase I-hypersensitive site (HS-40), upstream of the alpha-globin gene cluster, has been identified as the major tissue-specific regulator of the alpha-globin genes. However, this element does not direct copy number-dependent or developmentally stable expression of the human genes in transgenic mice. To determine whether additional upstream hypersensitive sites could provide more complete regulation of alpha gene expression we have studied 17 lines of transgenic mice bearing various DNA fragments containing HSs -33, -10, -8, and -4, in addition to HS -40. Position-independent, high-level expression of the human zeta- and alpha-globin genes was consistently observed in embryonic erythroid cells. However, the additional HSs did not confer copy-number dependence, alter the level of expression, or prevent the variable down-regulation of expression in adults. These results suggest that the region upstream of the human alpha-globin genes is not equivalent to that upstream of the beta locus and that although the two clusters are coordinately expressed, there may be differences in their regulation.


1988 ◽  
Vol 8 (2) ◽  
pp. 713-721 ◽  
Author(s):  
M W Rixon ◽  
R E Gelinas

Single base substitutions have been identified in the promoter regions of A gamma-globin genes from individuals with certain types of nondeletion A gamma hereditary persistence of fetal hemoglobin (HPFH). The presence of these mutations is closely associated with the A gamma HPFH phenotype, but proof that they are the nondeletion HPFH determinants is lacking. To test directly whether these base substitutions can result in an increase in A gamma-globin gene transcription, we studied cosmid clones containing the G gamma- through beta-globin gene regions from individuals with Greek-type (G-to-A base substitution at -117) and Chinese-type (C-to-T base substitution at -196) A gamma HPFH in a transient expression assay. When tested as part of a cosmid clone, the Greek HPFH A gamma-globin gene consistently produced about 1.4 times as much RNA as the wild-type A gamma-globin gene when standardized against RNA transcribed from the G gamma genes in cis. The relative strengths of the normal and HPFH A gamma-globin gene promoters were also compared in transient expression assays with plasmids containing the A gamma-globin genes. Pseudo-wild-type A gamma-globin genes containing a short, transcriptionally neutral deletion were used so that two A gamma-globin genes that differed in their promoter sequences could be compared in the same transfection. The plasmid transient expression results indicated a 1.3- to 1.4-fold increase in steady-state RNA levels from the Greek-type A gamma HPFH promoter compared with the wild-type A gamma promoter, while no difference was documented between the Chinese-type A gamma HPFH promoter and the wild-type A gamma promoter.


Blood ◽  
1984 ◽  
Vol 64 (6) ◽  
pp. 1292-1296 ◽  
Author(s):  
FS Collins ◽  
CD Boehm ◽  
PG Waber ◽  
CJ Jr Stoeckert ◽  
SM Weissman ◽  
...  

Abstract Hereditary persistence of fetal hemoglobin (HPFH) is a genetically heterogeneous and clinically benign condition characterized by persistent expression of fetal hemoglobin (Hb F) into adulthood. In the G gamma beta + type, no major deletions in the globin gene cluster occur; adult heterozygotes produce approximately 20% Hb F, which results from overproduction of G gamma chains, with no apparent increase in production from the adjacent A gamma gene. We have recently described a point mutation 202 base pairs 5′ to the cap site of the G gamma gene in an individual with G gamma beta + HPFH. This mutation abolishes a normal ApaI restriction endonuclease site, and thus can be detected by blotting of genomic DNA. We present here further data on the ApaI mutation: (1) It occurs in six of seven families with G gamma beta + HPFH. (2) In three families, detailed haplotype analysis using 11 polymorphic restriction sites in the beta globin cluster has been done. The two that carry the missing ApaI site are identical but the third, which has a normal ApaI pattern, differs from the other two in at least two sites, one of which is a new polymorphic Nco I site between the delta and beta globin genes. This suggests the possibility of a different HPFH mutation in the third family. (3) The haplotype of the G gamma beta + HPFH chromosome carrying the ApaI mutation is different from that of 108 beta A chromosomes of black individuals that have been tested. (4) The G gamma ApaI site is normal in 61 beta A and 109 beta S alleles from non-HPFH black individuals, including 22 who share the same haplotype for the intragenic G gamma, A gamma HindIII polymorphisms. These data add support to the possibility that the -202 mutation is actually causative of the G gamma beta + HPFH phenotype.


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