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Hippo, Y.

Publications and source records attributed to Hippo, Y..

3 recordsLinked to original sources

Inhibition of OCT4 Binding at the MYCN Locus Induces Neuroblastoma Cell Death Accompanied by Downregulation of Transcripts with High-Open Reading Frame Dominance

Amplification of MYCN is observed in high-risk neuroblastomas (NBs) and is associated with a poor prognosis. MYCN expression is directly regulated by multiple transcription factors, including OCT4, MYCN, CTCF, and p53 in NB. Our previous study showed that inhibition of p53 binding at the MYCN locus induces NB cell death. However, it remains unclear whether other transcription factors contribute to NB cell survival. In this study, we revealed that the inhibition of OCT4 binding at the MYCN locus, a critical site for the human-specific OCT4-MYCN positive feedback loop, induces caspase-2-mediated cell death in MYCN-amplified NB. We used the CRISPR/deactivated Cas9 (dCas9) technology to specifically inhibit transcription factors from binding to the MYCN locus in the MYCN-amplified NB cell lines CHP134 and IMR32. In both cell lines, the inhibition of OCT4 binding at the MYCN locus reduced MYCN activity. Differentially downregulated transcripts were associated with high-open reading frame (ORF) dominance score, which is associated with the translation efficiency of transcripts. These transcripts were enriched in splicing factors, including MYCN-target genes such as HNRNPA1 and PTBP1. Furthermore, transcripts with high-ORF dominance were significantly associated with genes whose high expression is associated with a poor prognosis of NB. In conclusion, the inhibition of OCT4 binding at the MYCN locus resulted in reduced MYCN activity, which in turn led to the downregulation of high-ORF dominance transcripts and subsequently induced caspase-2-mediated cell death in MYCN-amplified NB cells. Therefore, disruption of the human-specific OCT4-MYCN positive feedback loop may serve as an effective therapeutic strategy for MYCN-amplified NB. Contribution to the fieldNeuroblastoma (NB) is a childhood tumor. Amplification of MYCN is frequently observed in high-risk NBs and is linked to a poor prognosis. Multiple transcription factors, including OCT4, MYCN, CTCF, and p53, regulate MYCN expression by binding to the MYCN locus. This study investigated the contribution of these transcription factors in NB cell survival. We used CRISPR/deactivated Cas9 (dCas9) technology to specifically inhibit transcription factors from binding to the MYCN locus in MYCN-amplified NB cell lines. We found that the inhibition of OCT4 binding at the MYCN locus, a critical site for the human-specific OCT4-MYCN positive feedback loop, reduces MYCN activity and induces NB cell death. A detailed investigation of the molecular mechanisms of cell death revealed that the downregulated transcripts after suppressed MYCN activity were associated with high-open reading frame (ORF) dominance scores, which are associated with translation efficiency of transcripts. These transcripts were enriched in splicing factors, including MYCN-target genes such as HNRNPA1 and PTBP1. Reduced expression of these splicing factors altered the PKM mRNA splicing accompanied by the induction of p53-caspase-2-MDM2-mediated cell death. These findings suggest that disrupting the human-specific OCT4-MYCN positive feedback loop may serve as a promising therapeutic strategy for MYCN-amplified NB.

cancer biology↗

Global changes in open reading frame dominance of RNAs during cancer initiation and progression

Cancer cells express unique RNA transcripts; however, the factors determining their translation have remained unclear. We recently developed open reading frame (ORF) dominance as a measure that correlates with coding potential of RNAs. Upon calculating the ORF dominance of cancer-specific transcripts across 24 human tumor types, 14 exhibited significantly higher ORF dominance in cancer than in normal tissues. In organoid-based mouse genetic models, ORF dominance increased with carcinogenesis. Gene ontology analysis revealed that gene sets with increased ORF dominance were associated with cell proliferation, while those with decreased ORF dominance were linked to DNA damage response. Translatome analyses demonstrated that elevated ORF dominance during carcinogenesis resulted in higher translation frequencies of ribosome-bound RNAs. As cancer progressed, ORF dominance showed that the boundary between coding and noncoding transcripts became blurred prior to distant metastasis, indicating decreased proliferative cell populations and increased generation of RNA isoforms that potentially translate neoantigens before the development of metastatic tumors. These findings suggest that cancer evolution leads to dynamic changes in ORF dominance, resulting in global translational alterations in transcriptomes.

cancer biology↗

Single-cell DNA and RNA sequencing reveals the dynamics of intra-tumor heterogeneity in a colorectal cancer model

Intra-tumor heterogeneity (ITH) encompasses cellular differences in tumors and is related to clinical outcomes, such as drug resistance. However, little is known about the dynamics of ITH, owing to the lack of time-series analysis at the single-cell level. We performed single-cell exome and transcriptome sequencing of 200 cells and investigated how ITH is generated from one single cell in a mouse colorectal cancer model. The ITH of the transcriptome increased after transplantation from cultured organoids, while that of the exome decreased. Mutations generated in the culture did not greatly change at the transplantation at the bulk-cell level. The RNA ITH increase was due to the emergence of new transcriptional subpopulations. In contrast to the initial cells expressing mesenchymal-marker genes, new subpopulations repressed these genes at transplantation. Analyses of colorectal cancer data from The Cancer Genome Atlas revealed a high proportion of metastatic cases in human subjects with expression patterns similar to the new cell subpopulations in mouse. These results suggest that the birth of transcriptional subpopulations may be a key for adaptation to drastic micro-environmental changes when cancer cells have sufficient genetic alterations at later tumor stages. This study revealed an evolutionary dynamics of single-cell RNA and DNA changes in tumor progression, giving insights into the mesenchymal-epithelial transformation of tumor cells at metastasis in colorectal cancer.

genomics↗