| Literature DB >> 29597309 |
Atul Ranjan1, Tomoo Iwakuma2,3.
Abstract
The tumor suppressor p53 induces cell cycle arrest and/or apoptosis by transactivating numerous downstream target genes and also translocating to the mitochondrial outer membrane.Entities:
Mesh:
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Year: 2018 PMID: 29597309 PMCID: PMC5979425 DOI: 10.3390/ijms19041015
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Summary of papers in the Special Issue “Emerging Non-Canonical Functions and Regulation of p53”.
| Group | Title | Summary | Reference |
|---|---|---|---|
| (1) Novel mechanisms regulating the expression and activities of p53 and its family members, p63 and p73 | Molecular Mechanisms of p53 Deregulation in Cancer: An Overview in Multiple Myeloma | In multiple myeloma, there are multiple ways to reduce p53 activity, including DNA methylation, miRNAs, and high levels of MDM2. | [ |
| Expression levels of p53 are directly or indirectly altered by several miRNAs, while p53 regulates expression of multiple effector miRNAs. | [ | ||
| Targeting IRES-Mediated p53 Synthesis for Cancer Diagnosis and Therapeutics | There are IRES sequences in the 5′-UTR of the | [ | |
| Mechanisms of p53 Functional De-Regulation: Role of the IκB-α/p53 Complex | The BCR-ABL/IκB complex prevents p53 translocation into the nucleus in CML. | [ | |
| Essential Roles of E3 Ubiquitin Ligases in p53 Regulation | Levels of p53 are regulated by multiple ubiquitin ligases which could be used as biomarkers or targeted for cancer therapy. | [ | |
| The Regulation of Tumor Suppressor p63 by the Ubiquitin-Proteasome System | Several ubiquitin ligases target p63 and/or ∆p63 for degradation, of which HECT-containing E3 ligases (Itch/AIP4, Nedd4, and WWP1) do not induce degradation of p53. | [ | |
| (2) p53 proteoforms and binding potential of p53 to local DNA structures | p53 Proteoforms and Intrinsic Disorder: An Illustration of the Protein Structure–Function Continuum Concept | PTMs, alternative splicing, alternative promoter usage, alternative initiation of protein translation, and mutations of p53 can generate diverse structures and functions of p53. | [ |
| Recognition of Local DNA Structures by p53 Protein | Wild-type p53 binds to consensus target sequences in linear B-DNA as well as in cruciform DNA structure. Moreover, wild-type p53 and mutant p53 could bind to other local DNA structures including quadruplexes, triplexes, DNA loops, bulged DNA, and hemicatenane DNA by acting as DNA topology-modulating factors. | [ | |
| (3) Novel oncogenic pathways and stemness regulated by p53 | Mutant p53 Protein and the Hippo Transducers YAP and TAZ: A Critical Oncogenic Node in Human Cancers | The Hippo pathway prevents nuclear translocation of oncogenic proteins, YAP and TAZ. Generally, association of YAP with wild-type p53 suppresses tumorigenesis, whereas its interaction with mutant p53 promotes tumor progression. | [ |
| Emerging Non-Canonical Functions and Regulation by p53: p53 and Stemness | Wild-type p53, its isoforms, mutant p53, and their regulatory networks play roles in stemness of normal and CSCs. Restoring p53 function in CSCs could be a novel therapeutic strategy for cancer. | [ | |
| (4) Roles of p53 in non-canonical cell death | Non-Canonical Cell Death Induced by p53 | p53 is involved in not only caspase-dependent cell death, but also non-canonical cell death including CIA, ferroptosis, necroptosis, autophagic cell death, mitotic catastrophe, paraptosis, pyroptosis, and efferocytosis. | [ |
| (5) Roles of p53 in glucose, lipid, and nucleotide metabolism | Emerging Roles of p53 family members in Glucose Metabolism | Wild-type p53, mutant p53, and its family members play vital roles in glucose metabolism, which possibly contributes to tumor suppression or progression. | [ |
| p53 as a Regulator of Lipid Metabolism in Cancer | Wild-type p53 inhibits the fatty acid synthesis and lipid accumulation, whereas mutant p53 enhances these processes. Also, mutant p53 upregulates mevalonate pathway enzymes. | [ | |
| Control of Nucleotide Metabolism Enables Mutant p53’s Oncogenic Gain-of-Function Activity | Mutant p53 transactivates multiple nucleotide metabolism genes involved in both the nucleotide de novo synthesis and salvage pathways by associating with ETS2 in their promoter regions. | [ | |
| (6) Roles of p53 in immunity | Immunomodulatory Function of the Tumor Suppressor p53 in Host Immune Response and the Tumor Microenvironment | Status of p53 in cancer cells, as well as that in tumor microenvironment, can affect host immune response. | [ |
| The Double Role of p53 in Cancer and Autoimmunity and Its Potential as Therapeutic Target | p53 plays a role in inflammation and autoimmune conditions. Reactivating p53 could not only suppress tumor progression, but also induce anti-tumor inflammatory response. | [ |