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1.
J Biol Chem ; 288(14): 10061-10072, 2013 Apr 05.
Article in English | MEDLINE | ID: mdl-23417678

ABSTRACT

The role of DNA methylation in the regulation of catabolic genes such as MMP13 and IL1B, which have sparse CpG islands, is poorly understood in the context of musculoskeletal diseases. We report that demethylation of specific CpG sites at -110 bp and -299 bp of the proximal MMP13 and IL1B promoters, respectively, detected by in situ methylation analysis of chondrocytes obtained directly from human cartilage, strongly correlated with higher levels of gene expression. The methylation status of these sites had a significant impact on promoter activities in chondrocytes, as revealed in transfection experiments with site-directed CpG mutants in a CpG-free luciferase reporter. Methylation of the -110 and -299 CpG sites, which reside within a hypoxia-inducible factor (HIF) consensus motif in the respective MMP13 and IL1B promoters, produced the most marked suppression of their transcriptional activities. Methylation of the -110 bp CpG site in the MMP13 promoter inhibited its HIF-2α-driven transactivation and decreased HIF-2α binding to the MMP13 proximal promoter in chromatin immunoprecipitation assays. In contrast to HIF-2α, MMP13 transcriptional regulation by other positive (RUNX2, AP-1, ELF3) and negative (Sp1, GATA1, and USF1) factors was not affected by methylation status. However, unlike the MMP13 promoter, IL1B was not susceptible to HIF-2α transactivation, indicating that the -299 CpG site in the IL1B promoter must interact with other transcription factors to modulate IL1B transcriptional activity. Taken together, our data reveal that the methylation of different CpG sites in the proximal promoters of the human MMP13 and IL1B genes modulates their transcription by distinct mechanisms.


Subject(s)
CpG Islands , DNA Methylation , Gene Expression Regulation, Enzymologic , Interleukin-1beta/metabolism , Matrix Metalloproteinase 13/metabolism , Promoter Regions, Genetic , Cartilage/metabolism , Chondrocytes/metabolism , Epigenesis, Genetic , Gene Expression Profiling , Humans , Interleukins/metabolism , Models, Genetic , Osteoarthritis/metabolism , Plasmids/metabolism , Point Mutation , Sequence Analysis, DNA , Transcriptional Activation
2.
J Surg Res ; 103(2): 134-40, 2002 Apr.
Article in English | MEDLINE | ID: mdl-11922726

ABSTRACT

The nitrate form of the Group III transitional element gallium (GN) increases expression of specific structural components of the provisional wound matrix (i.e., collagen type I, fibronectin) in human dermal fibroblasts. To evaluate the potential of GN as a therapeutic option in management of cutaneous trauma, GN-treated partial thickness porcine wounds and experimentally "injured" human keratinocyte (NHK) monolayer cultures were compared with mirror image control (i.e., saline-treated) sites. GN suppressed cell proliferation in both models, as determined by reduced Ki-67 reactivity and significant lengthening of keratinocyte cell cycle transit times, while effectively promoting reepithelialization. The primary effect of GN was apparently to promote cell migration, as neither epidermal thickness nor epidermal differentiation was altered as a result of GN exposure in vivo or in vitro. Significantly enhanced epidermal reepithelialization was associated with alterations in expression of several keratinocyte integrin subunits. GN induced a significant increase in alpha5 expression. alpha5beta1 switching is a characteristic of the motile phenotype in the setting of cutaneous injury. Concomitantly, GN treatment also induced a dramatic (70%) decrease in the expression of the alpha3 subunit; alpha3beta1 binds laminin 5 and is associated with hemidesmosome formation and reestablishment of a nonmotile phenotype. Taken together, the GN-induced changes in integrin expression favor acellular migration. While the molecular mechanism of GN action on resident cells of the skin remains to be defined, these data suggest that GN administration which represses MMP activity in the wound and increases matrix synthesis also accelerates NHK motility and, thereby, may be a useful therapeutic agent for wound repair.


Subject(s)
Cell Movement/drug effects , Gallium/pharmacology , Integrins/analysis , Keratinocytes/chemistry , Wound Healing/drug effects , Animals , Cell Culture Techniques , Cell Differentiation/drug effects , Cell Division/drug effects , Collagen Type I/analysis , Epidermal Cells , Fibronectins/analysis , Flow Cytometry , Gallium/therapeutic use , Humans , Keratinocytes/drug effects , Ki-67 Antigen/analysis , Skin/injuries , Swine
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