Parsing the functions of the tumor suppressor tumor protein p53 (TP53) is complex due to the multiple isoforms it encodes. ∆40p53, an N-terminally truncated p53 isoform and the only translational isoform, modulates full-length p53 (FLp53) activity and independently regulates targets such as the miR-186-5p/transcriptional repressor protein YY1 axis. To identify additional miRNAs regulated by ∆40p53, we performed small RNA sequencing. We found that ectopic overexpression of ∆40p53, but not FLp53, significantly downregulated miR-4671-5p. Expression of both isoforms at varying ratios revealed that miR-4671-5p may be modulated by FLp53 in a ∆40p53-dependent manner. In silico analysis identified N-sulfoglucosamine sulfohydrolase (SGSH) as a potential miR-4671-5p target. SGSH expression showed an inverse correlation with miR-4671-5p in cancer datasets and had prognostic significance. SGSH mRNA and protein levels were reduced upon miR-4671-5p overexpression or si∆40p53 treatment, confirming regulatory linkage. Functionally, miR-4671-5p overexpression induced intra-S-phase cell cycle arrest, implicating SGSH in cell cycle regulation. These results reveal a previously unknown ∆40p53/miR-4671-5p/SGSH axis that, when dysregulated, induces intra-S-phase cell cycle arrest and may contribute to cancer outcomes. Our findings highlight the distinct regulatory role of ∆40p53, independent of FLp53, in maintaining cellular and metabolic homeostasis via miRNA-mediated mechanisms.
Cellular senescence is a complex biological response to sublethal damage. The RNA-binding protein HNRNPK was previously found to decrease prominently during senescence in human diploid fibroblasts. Here, analysis of the mechanisms leading to reduced HNRNPK abundance revealed that in cells undergoing senescence, HNRNPK mRNA levels declined transcriptionally and full-length HNRNPK protein was progressively lost, while the abundance of a truncated HNRNPK increased. The ensuing loss of full-length HNRNPK enhanced cell cycle arrest along with increased DNA damage. Analysis of the RNAs enriched after HNRNPK ribonucleoprotein immunoprecipitation (RIP) revealed a prominent target of HNRNPK, CDC20 mRNA, encoding a protein critical for progression through the G2/M phase of the cell division cycle. Silencing HNRNPK markedly decreased the levels of CDC20 mRNA via reduced transcription and stability of CDC20 mRNA, leading to lower CDC20 protein levels; conversely, overexpressing HNRNPK increased CDC20 production. Depletion of either HNRNPK or CDC20 impaired cell proliferation, with a concomitant reduction in the levels of CDK1, a key kinase for progression through G2/M. Given that overexpressing CDC20 in HNRNPK-silenced cells partly alleviated growth arrest, we propose that the reduction in HNRNPK levels in senescent cells contributed to inhibiting proliferation at least in part by suppressing CDC20 production.
Cellular senescence is a dynamic biological process triggered by sublethal cell damage and driven by specific changes in gene expression programs. We recently identified ANKRD1 (ankyrin repeat domain 1) as a protein strongly elevated after triggering senescence in fibroblasts. Here, we set out to investigate the mechanisms driving the elevated production of ANKRD1 in the early stages of senescence. Our results indicated that the rise in ANKRD1 levels after triggering senescence using etoposide (Eto) was the result of moderate increases in transcription and translation, and robust mRNA stabilization. Antisense oligomer (ASO) pulldown followed by mass spectrometry revealed a specific interaction of the RNA-binding protein RBMS1 with ANKRD1 mRNA that was confirmed by ribonucleoprotein immunoprecipitation analysis. RBMS1 abundance decreased in the nucleus and increased in the cytoplasm during Eto-induced senescence; in agreement with the hypothesis that RBMS1 may participate in post-transcriptional stabilization of ANKRD1 mRNA, silencing RBMS1 reduced, while overexpressing RBMS1 enhanced ANKRD1 mRNA half-life after Eto treatment. A segment proximal to the ANKRD1 coding region was identified as binding RBMS1 and conferring RBMS1-dependent increased expression of a heterologous reporter. We propose that RBMS1 increases expression of ANKRD1 during the early stages of senescence by stabilizing ANKRD1 mRNA.
CVB3 infection is associated with the development of end-stage heart diseases. Lack of effective anti-viral treatments and vaccines for CVB3 necessitates comprehensive understanding of the molecular players during CVB3 infection. miRNAs have emerged as promising targets for anti-viral strategies. Here, we demonstrate that miR-22-3p binds to 5′ UTR and inhibits viral RNA translation at the later stage of infection to promote viral RNA replication. Conversely, as host response, it targets PCDH1, a proviral factor, to discourage viral propagation. miR-22-3p also influences CVB3 tissue tropism. Deciphering the multifaced role of miR-22-3p during CVB3 infection unravels the necessary molecular insights, which can be exploited for novel intervening strategies to curb infection and restrict viral pathogenesis.
Cellular senescence, a state of persistent growth arrest, is closely associated with aging and age-related diseases. Deciphering the heterogeneity within senescent cell populations and identifying therapeutic targets are paramount for mitigating senescence-associated pathologies. In this study, proteins on the surface of cells rendered senescent by replicative exhaustion and by exposure to ionizing radiation (IR) were identified using mass spectrometry analysis, and a subset of them was further studied using single-cell CITE-seq (Cellular Indexing of Transcriptomes and Epitopes by Sequencing) analysis. Based on the presence of proteins on the cell surface, we identified two distinct IR-induced senescent cell populations: one characterized by high levels of CD109 and CD112 (cluster 3), the other characterized by high levels of CD112, CD26, CD73, HLA-ABC, CD54, CD49A, and CD44 (cluster 0). We further found that cluster 0 represented proliferating and senescent cells in the G1 phase of the division cycle, and CITE-seq detection of cell surface proteins selectively discerned those in the senescence group. Our study highlights the heterogeneity of senescent cells and underscores the value of cell surface proteins as tools for distinguishing senescent cell programs and subclasses, paving the way for targeted therapeutic strategies in disorders exacerbated by senescence.
Host factors play essential roles in viral infection, and their interactions with viral proteins are necessary for establishing effective pathogenesis. p53 is a host factor that maintains genomic integrity by controlling cell-cycle progression and cell survival. It is a well-known tumor suppressor protein that gets activated by various stress signals, thereby regulating cellular pathways. The cellular outcomes from different stresses are tightly related to p53 dynamics, including its alterations at gene, mRNA, or protein levels. p53 also contributes to immune responses leading to the abolition of viral pathogens. In turn, the viruses have evolved strategies to subvert p53-mediated host responses to improve their life cycle and pathogenesis. Some viruses attenuate wild-type p53 (WT-p53) function for successful pathogenesis, including degradation and sequestration of p53. In contrast, some others exploit the WT-p53 function through regulation at the transcriptional/translational level to spread infection. One area in which the importance of such host factors is increasingly emerging is the positive-strand RNA viruses that cause fatal viral infections. In this review, we provide insight into all the possible mechanisms of p53 modulation exploited by the positive-strand RNA viruses to establish infection. This article is categorized under: RNA Interactions with Proteins and Other Molecules > Protein-RNA Interactions: Functional Implications Translation > Regulation RNA in Disease and Development > RNA in Disease.
ABSTRACTPrevious research has shown that Δ40p53, the translational isoform of p53, can inhibit cell growth independently of p53 by regulating microRNAs. Here, we explored the role of Δ40p53 in regulating the long non-coding RNA-microRNA-cellular process axis, specifically focusing on LINC00176. Interestingly, LINC00176 levels were predominantly affected by the overexpression/stress-mediated induction and knockdown of Δ40p53 rather than p53 levels. Additional assays revealed that Δ40p53 transactivates LINC00176 transcriptionally and could also regulate its stability. RNA immunoprecipitation experiments revealed that LINC00176 sequesters several putative microRNA targets, which could further titrate several mRNA targets involved in different cellular processes. To understand the downstream effects of this regulation, we ectopically overexpressed and knocked down LINC00176 in HCT116 p53−/− (harboring only Δ40p53) cells, which affected their proliferation, cell viability, and expression of epithelial markers. Our results provide essential insights into the pivotal role of Δ40p53 in regulating the novel LINC00176 RNA-microRNA-mRNA axis independent of FL-p53 and in maintaining cellular homeostasis.
The translational isoform of full-length p53, Δ40p53, modulates the p53 pathway. We previously showed that Δ40p53 regulates miR-186-5p–YY1 axis, independent of p53, to decrease cell proliferation. In this study, we screened small RNA sequences globally to identify miRNAs differentially regulated by Δ40p53 and p53. We report that the expression of certain miRNAs is exclusively regulated by Δ40p53. Overexpression of Δ40p53, but not full-length p53, substantially downregulated expression of the novel miR-4671-5p. However, upon over expression of different ratios of Δ40p53 and FLp53, miR-4671-5p levels changed which implies that this novel miRNA is not a direct but a p53 modifiable target. Predicted miR-4671-5p targets included N-sulfoglucosamine sulfohydrolase (SGSH), cyclin-dependent kinases (CDK) 11B and CDK5 regulatory subunit 1 (CDK5R1). Overexpression of miR-4671-5p directly inhibited SGSH and consequently triggered intra-S-phase cell cycle arrest. Δ40p53-miR-4671-5p-SGSH axis emerges as a novel axis capable of regulating cell cycle progression. SGSH gene expression levels have potential prognostic relevance on survival that trends in the opposite direction of miR-4671-5p levels associated with the same cancer types, supporting a possible physiological relevance of the interaction. These results enhance understanding of Δ40p53 functions mediated by miRNAs that help to maintain metabolic and cellular homeostasis independently of FLp53.### Competing Interest StatementThe authors have declared no competing interest.
ABSTRACT microRNAs play an essential role in gene regulation during virus infections and have major consequences on viral pathogenesis. During RNA virus infections, the host miRNAs can target both host mRNAs and the virus genomic RNA. Using the CVB3 virus as a model, we have investigated how a host miRNA can target viral genomic RNA and act as an antiviral factor limiting the growth of the virus. CVB3 is an RNA virus whose infection causes myocarditis and, eventually, dilated cardiomyopathy. We shortlisted miRNAs with a potential binding site in the CVB3 genomic RNA. Among these, miR-22 was picked for further studies as its binding site was putatively located in a region in the CVB3 5’ UTR, important for recruiting ITAFs and ribosomes for IRES-mediated translation. Using mutational analysis and pull-down assays, we first confirmed the binding of miR-22 on the 5’UTR. This binding negatively regulated the translation of CVB3 RNA. However, miR-22 binding-defective mutant of CVB3 RNA had no effect of miR-22 overexpression and could translate normally. Moreover, cells from which miR-22 was knocked out, showed a higher level of CVB3 infection as compared to the wild type. We have further demonstrated that the binding of miR-22 interferes with the recruitment of several ITAFs (La, PSF, and PTB) on viral mRNA. This abrogates the spatial structure necessary for ribosome recruitment on the CVB3 RNA, ultimately inhibiting its translation. Also, the level of miR-22 increases 4 hours post-infection, presumably after the synthesis of viral 2A protease, to regulate infection in the host cell more effectively. Along with the direct effect on viral RNA, the altered level of miR-22 affects the level of its cellular targets which might contribute to CVB3 infection. To identify the possible players, we obtained a list of miR-22 targets and performed pathway analysis. Several targets were shortlisted among the top hits and their levels upon CVB3 infection were checked. Protocadherin-1 (PCDH-1), a single-pass transmembrane protein, followed an expected trend, and its levels were significantly downregulated upon CVB3 infection in miR-22 dependent manner. miR-22 mediated suppression of PCDH1 levels during CVB3 infection points towards the possible role of miR-22 in either modulating antiviral signaling or in virus entry, in addition to regulating the viral translation.
Chronic hepatitis C virus (HCV) infection is a leading cause of end-stage liver diseases, such as fibrosis, cirrhosis and hepatocellular carcinoma (HCC). Several cellular entities, including paraspeckles and their related components, are involved in viral pathogenesis and cancer progression. NEAT1 lncRNA is a major component of paraspeckles that has been linked to several malignancies. In this study, analysis of the Cancer Genome Atlas (TCGA) database and validation in HCV-induced HCC tissue and serum samples showed significantly high expression of NEAT1 in patients with liver cancer. Moreover, we found that NEAT1 levels increased upon HCV infection. To further understand the mechanism of NEAT1-induced HCC progression, we selected one of its targets, miR-9-5 p, which regulates BGH3 mRNA levels. Interestingly, miR-9-5 p levels were downregulated upon HCV infection, whereas BGH3 levels were upregulated. Additionally, partial NEAT1 knockdown increased miR-9-5 p levels and decreased BGH3 levels, corroborating our initial results. BGH3 levels were also upregulated in HCV-induced HCC and TCGA tissue samples, which could be directly correlated with NEAT1 levels. As a known oncogene, BGH3 is directly linked to HCC progression mediated by NEAT1. We also found that NEAT1 levels remained upregulated in serum samples from patients treated with direct-acting antivirals (DAA), indicating that NEAT1 might be a molecular trigger that promotes HCC development. Collectively, these findings provide molecular insights into HCV-induced HCC progression via the NEAT1-miR-9-BGH3 axis.
We have earlier shown that p53-FL and its translational isoform increment 40p53 are differentially regulated. In this study, we have investigated the cellular effect of increment 40p53 regulation on downstream gene expression, specifically miRNAs. Interestingly, increment 40p53 showed antagonistic regulation of miR-186-5p as compared to either p53 alone or a combination of both the isoforms. We have elucidated the miR-186-5p mediated effect of increment 40p53 in cell proliferation. Upon expression of increment 40p53, we observed a significant decrease in YY1 levels, an established target of miR-186-5p, which is involved in cell proliferation. Further assays with anti-miR-186 established the interdependence of increment 40p53- miR-186-5p-YY1- cell proliferation. The results unravel a new dimension toward the understanding of increment 40p53 functions, which seems to regulate cellular fate independent of p53FL.