Abstract

Nucleoli are prominent nuclear structures assembled and organized around actively transcribed ribosomal DNA (rDNA). The nucleolus has emerged as a platform for the organization of chromatin enriched for repressive histone modifications associated with repetitive DNA. NPM1 is a nucleolar protein required for the maintenance of genome stability. However, the role of NPM1 in nucleolar chromatin dynamics and ribosome biogenesis remains unclear. We found that normal fibroblasts and cancer cells depleted of NPM1 displayed deformed nucleoli and a striking rearrangement of perinucleolar heterochromatin, as identified by immunofluorescence staining of trimethylated H3K9, trimethylated H3K27, and heterochromatin protein 1γ (HP1γ/CBX3). By co-immunoprecipitation we found NPM1 associated with HP1γ and core and linker histones. Moreover, NPM1 was required for efficient tethering of HP1γ-enriched chromatin to the nucleolus. We next tested whether the alterations in perinucleolar heterochromatin architecture correlated with a difference in the regulation of rDNA. U1242MG glioma cells depleted of NPM1 presented with altered silver staining of nucleolar organizer regions, coupled to a modest decrease in H3K9 di- and trimethylation at the rDNA promoter. rDNA transcription and cell proliferation were sustained in these cells, indicating that altered organization of heterochromatin was not secondary to inhibition of rDNA transcription. Furthermore, knockdown of DNA methyltransferase DNMT3A markedly enhanced rDNA transcription in NPM1-depleted U1242MG cells. In summary, this study highlights a function of NPM1 in the spatial organization of nucleolus-associated heterochromatin.

Highlights

  • NPM1 is a nucleolar histone chaperone mutated in cancer

  • heterochromatin protein 1 (HP1)␥ isoform localizes to perinucleolar heterochromatin regions surrounding the nucleolus [29], so we evaluated the localization of HP1␥ in cells depleted of NPM1

  • By immunofluorescence staining and immunoblotting, we found no evidence of major changes in the total cellular levels of H1, H3, H4, H3K9me3, H3K9ac, H3K27me3, H4K20me1, H4-PanAc, and H3K4me3 following NPM1 depletion in U1242MG cells, 34608 JOURNAL OF BIOLOGICAL CHEMISTRY

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Summary

Background

Results: NPM1-deficient cells display rearrangement of perinucleolar heterochromatin, and simultaneous knockdown of NPM1 and DNMT3A enhances transcription of ribosomal DNA. Nucleoli are prominent nuclear structures assembled and organized around actively transcribed ribosomal DNA (rDNA). NPM1 regulates turnover of c-Myc by acting on the F-box protein Fbw7␥, a component of the E3 ligase complex involved in the ubiquitination and proteasome degradation of c-Myc [23] with the consequence that loss of NPM1 stabilizes c-Myc. NPM1 may act as a histone chaperone in the nucleolus, as it binds histones and assembles nucleosomes in vitro [24, 25], but the role of NPM1 in chromatin dynamics and ribosome biogenesis remains poorly understood. We could show that NPM1 associated with components of chromatin including linker histone H1.5 and heterochromatin protein HP1␥. Minor changes in rDNA transcription were detected in NPM1-depleted cells, but silencing of the DNA methyltransferase DNMT3A synergized with loss of NPM1 to drive rDNA transcription

EXPERIMENTAL PROCEDURES
RESULTS
DISCUSSION
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