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Biomedical subjects

Mo K Kang

Publications and source records attributed to Mo K Kang.

3 recordsLinked to original sources

Senescence-associated genes in normal human oral keratinocytes.

The current study was undertaken to identify senescence-associated (SA) genes in cultured normal human oral keratinocytes (NHOK). Primary NHOK were serially subcultured in vitro as dispersed cells in low (0.15 mM) Ca(2+) medium until senescence. The SA genes of NHOK were identified by comparing the expression levels of 3195 human genes between exponentially replicating and senescing cultures. Approximately 5% of the screened genes were upregulated in senescing NHOK by a factor greater than 3 compared with rapidly dividing NHOK culture. Among them, we identified discrete gene groups, i.e., cyclin-dependent kinase inhibitors, G-protein-coupled receptors, apolipoproteins, matrix metalloproteinases, and mitochondrial proteins. To validate the microarray results, we confirmed the enhanced expression of a few selected SA genes, i.e., gpr1, apo-D, apo-E, apo-L, mmp-1, mmp-3, cyb561, cyp1b1, and cyp4b1, by reverse transcription-PCR. These SA genes were upregulated in three independent cultures of NHOK at high population doubling (PD) levels compared with those of low PDs. The enhanced expression of these SA genes was also found in senescing NHOK maintained in 3T3 feeder cell system, as well as in the chemically defined medium containing low Ca(2+). These results indicate that the onset of senescence in NHOK is associated with altered expression of the SA genes, which represent discrete gene groups, independently of the donor variation or culture conditions.

3T3 Cells↗

Absence of hamTERT gene expression is associated with promoter hypermethylation in immortal hamster buccal pouch epithelial cells.

This study describes the first example of spontaneously immortalized, telomerase-negative hamster cells which replicated in the absence of telomere shortening. Primary hamster buccal pouch epithelial (HBPE) cells were subcultured for approximately 10 population doublings (PDs) before they ceased to divide. Among the non-replicating HBPE cells, a colony of proliferating cells had appeared. These cells named HBPE-SI (spontaneously immortalized) replicated with a mean doubling time of 27 h for 120 PDs in culture and are still replicating. Surprisingly, telomerase activity and hamTERT (hamster telomerase gene) expression were not detectable in HBPE-SI, although an exogenous hamTERT promoter showed promoter activity in these cells. HBPE-SI cells replicated in the apparent absence of apparent telomere shortening during their entire in vitro culture, indicating telomerase-independent mode of telomere maintenance. Analysis of the hamTERT promoter in HBPE-SI cells revealed hypermethylation. Exposure of the cells to 5-aza-2'-deoxycytidine (5-aza CdR) restored expression of endogenous hamTERT mRNA. These results indicated that HBPE-SI cells maintained their telomere length in the absence of telomerase activity, and that hamTERT gene expression in these cells was silenced by hypermethylation of the promoter.

Animals↗

The telomeric length and heterogeneity decrease with age in normal human oral keratinocytes.

We have examined the telomere length in NHOK explanted from 28 donors between the ages of 21 and 84 years. Genomic DNA was isolated from exponentially replicating NHOK and digested with HinFI to yield terminal restriction fragments (TRF). The TRF length ranged from 4.1 to 7.0 kbp with a mean of 5.3 +/- 0.8 kbp, which was significantly shorter than that (8.9 +/- 1.0 kbp) of normal human oral fibroblasts (NHOF). The TRF length was inversely correlated to the increase of donor age in NHOK (m=-23 bp per year; r=-0.60; P<0.001). Also, the heterogeneity of TRF length in cultured NHOK decreased with increased donor age (r=-0.38, P<0.05). These data indicated that clonogenic NHOK cells had replicated in situ and showed a progressive shortening of TRF length. The short telomere length and decreased telomeric length heterogeneity in immortalized cells suggested that there is a critical minimum for cell survival.

Adult↗