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PUM1 Promotes HCC Cell Proliferation and Inhibits Mitochondria‑mediated Apoptosis, Accompanied by Activation of the PI3K–AKT Pathway

Source: PubMed Central Open Access, NCBI / U.S. National Library of Medicine

Journal of Hepatocellular CarcinomaLast synced 8/31/2026Status: syncedPMID: 42668997 pmidDOI: 10.2147/JHC.S622310

Background Belonging to the RNA-binding protein family, Pumilio RNA binding family member 1 (PUM1) modulates gene expression post-transcriptionally through the recognition of particular motifs within the 3′ untranslated region of its target transcripts. The present investigation seeks to elucidate PUM1’s contribution to HCC pathogenesis and advancement, while also probing the molecular mechanisms that underpin its function. Methods Publicly available datasets were employed to examine PUM1 transcript abundance in hepatocellular carcinoma, along with its relationship to clinicopathological parameters and prognostic outcomes. PUM1 protein levels were subsequently corroborated in clinical HCC specimens via immunoblotting and immunohistochemical staining. To explore the biological functions of PUM1, we established HCCLM3 cell lines with PUM1 overexpression and knockdown. We then evaluated proliferation via EdU, colony formation, and CCK‑8 assays; apoptosis via TUNEL and flow cytometry; mitochondrial membrane integrity and calcium balance using JC‑1, Mito‑Tracker, and Rhod‑2; and oxygen species (ROS) accumulation via MitoSOX and DCFH‑DA. The downstream molecular pathways were further examined by Western blotting. Results HCC tissues exhibit markedly upregulated PUM1 levels, a feature tightly correlated with poor prognosis. In vitro, PUM1 preserved mitochondrial membrane integrity and calcium homeostasis in HCC cells, while suppressing the accumulation of reactive oxygen species (RO

Abstract

Background Belonging to the RNA-binding protein family, Pumilio RNA binding family member 1 (PUM1) modulates gene expression post-transcriptionally through the recognition of particular motifs within the 3′ untranslated region of its target transcripts. The present investigation seeks to elucidate PUM1’s contribution to HCC pathogenesis and advancement, while also probing the molecular mechanisms that underpin its function. Methods Publicly available datasets were employed to examine PUM1 transcript abundance in hepatocellular carcinoma, along with its relationship to clinicopathological parameters and prognostic outcomes. PUM1 protein levels were subsequently corroborated in clinical HCC specimens via immunoblotting and immunohistochemical staining. To explore the biological functions of PUM1, we established HCCLM3 cell lines with PUM1 overexpression and knockdown. We then evaluated proliferation via EdU, colony formation, and CCK‑8 assays; apoptosis via TUNEL and flow cytometry; mitochondrial membrane integrity and calcium balance using JC‑1, Mito‑Tracker, and Rhod‑2; and oxygen species (ROS) accumulation via MitoSOX and DCFH‑DA. The downstream molecular pathways were further examined by Western blotting. Results HCC tissues exhibit markedly upregulated PUM1 levels, a feature tightly correlated with poor prognosis. In vitro, PUM1 preserved mitochondrial membrane integrity and calcium homeostasis in HCC cells, while suppressing the accumulation of reactive oxygen species (ROS). Additionally, PUM1 inhibited programmed cell death and promoted cell proliferation. These biological activities were closely associated with the PI3K–AKT signaling pathway. Conversely, knockdown of PUM1 significantly impaired HCC cell proliferation and induced apoptosis. Conclusion PUM1 promotes HCC cell proliferation and suppresses mitochondria‑mediated apoptosis, effects that are closely associated with activation of the PI3K–AKT pathway.

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