PubMed Health⌕ Search

Biomedical subjects

Xiao-Bin Tang

Publications and source records attributed to Xiao-Bin Tang.

2 recordsLinked to original sources

A conserved, extended chromatin opening within alpha-globin locus during development.

Histone modifications play an important role in eukaryotic gene regulation. However, the dynamic alteration of histone modification during development is poorly understood. In addition, the relationship between histone modification and globin gene switching remains unclear. Here, we assessed the dynamic pattern of histone modification (H3 acetylation, H4 acetylation, H3 K4 methylation, and H3 K79 methylation) along the murine alpha-globin locus, as well as along the human alpha-globin locus in transgenic mice, during globin gene switching in vivo. During the switching, histone modification at embryonic zeta-gene and fetal/adult alpha-genes displayed different developmental patterns. The level of histone modification at zeta-gene was developmentally regulated, in accordance with the level of zeta-gene expression, whereas the alpha-genes kept high level of histone modification at both developmental stages, regardless of their expression levels. Histone deacetylase inhibition selectively increased acetylation at the inactive zeta-gene in fetal livers, although it did not reactivate the gene expression. More importantly, an obvious increasing of histone modification level at major regulatory elements and fetal/adult alpha-genes was observed during the switching, suggesting that a conserved, extended chromatin opening within the locus occurs during globin gene switching.

Acetylation↗

No existence of translocus balancer to coordinate the expression and regulation of human hemoglobin genes in transgenic mice study.

All mammals use hemoglobin (Hb) to transport oxygen. Each Hb molecule is a tetramer of two pairs of unlike globin polypeptide chains. Equal amount of subunit globin chains derived from the corresponding alpha- and beta-like genes can always result during development though the two separate gene clusters are located on two different chromosomes and spatially transcribed within different nuclear domains. Disturbance of this balance will result in degradation or precipitation of the excessive globin chains, which is the character of various thalassemic syndromes. In previous studies, we had established two kinds of bacterial artificial chromosome (BAC) mediated transgenic mouse models, which contain respectively the entire human alpha- and beta-globin cluster. Here, we investigated the regulatory relationship between the two clusters by interbreeding these two kinds of transgenic mice. The levels of human alpha- and beta-mRNA in the various hybrid lines reflect the levels in the original transgenic lines that contain either the alpha- or beta-globin cluster alone. The results suggested that there is no apparent cross talk or regulatory interaction between the two human globin clusters in transgenic mice.

Animals↗