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Dibus, N.

Publications and source records attributed to Dibus, N..

2 recordsLinked to original sources

Matters Arising: FBXO38 does not control PD-1 stability

SKP1-CUL1-F-box protein (SCF) ubiquitin ligases are versatile protein complexes that mediate the ubiquitination of substrates, which are recognized by their F-box-domain- containing subunits1. One of these substrate receptors is FBXO38. Its gene has been found to be mutated in several families with early-onset distal hereditary motor neuronopathy2. SCFFBXO38 ubiquitin ligase controls the stability of ZXDB, a nuclear factor associated with the centromeric chromatin protein CENP-B3. Moreover, the loss of FBXO38 results in growth retardation and defect in spermatogenesis characterized by deregulation of the Sertoli cell transcription program and centromere integrity4. A report by Meng et al. proposed that SCFFBXO38 regulates the protein levels of the PD-1 inhibitory receptor (also known as CD279, PDCD1) in T cells5. Here, we have re-addressed the conclusions by Meng et al. using Fbxo38KO/KO mice and cell systems. We have found no evidence indicating that FBXO38 controls the abundance and stability of PD-1.

cell biology↗

Tumor suppressor Hypermethylated in Cancer 1 represses expression of cell cycle regulator E2F7 in human primary cells

Hypermethylated in Cancer 1 (HIC1) is an established tumor suppressor, which is frequently inactivated in various cancers. In colorectal carcinoma (CRC), silencing of HIC1 has been recognized as one of the important events in malignant tumor progression. Strikingly, CRC patients with high HIC1 expression have a worse prognosis than patients with relatively low HIC1 mRNA levels. To analyze the function of HIC1, we performed expression profiling of human primary fibroblasts after downregulation of HIC1 by RNA interference. We show that HIC1 deficiency triggers a p53-dependent response and that disruption of the HIC1 gene in human colon cells delays cell cycle progression under serum deficiency conditions. Moreover, treatment with etoposide, a DNA-damaging agent, significantly impairs the proliferation rate and dynamics of damaged DNA repair in HIC1-deficient compared with wild-type cells. One of the genes upregulated in HIC1-depleted cells encodes cell cycle regulator E2F7. E2F7 is an atypical member of the E2F family, which functions primarily as a transcriptional repressor, and its downregulation is essential for proper cell cycle progression and expression of genes involved in DNA repair. We demonstrated that E2F7 is indeed the target of transcriptional repression mediated by HIC1. Moreover, our results suggest that the phenotypic manifestations associated with loss of the HIC1 gene, in particular the changes in cell cycle progression and slowed repair of damaged DNA, are caused by dysregulation of E2F7 expression. Finally, we observed an inverse relationship between HIC1 and E2F7 in a panel of CRC. Importantly, CRC patients who express relatively high levels of E2F7 have a remarkably better prognosis than patients with intermediate or low levels of E2F7 expression.

cancer biology↗