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Misfolding, Aggregation, and Disordered Segments in c-Abl and p53 in Human Cancer
Guilherme A P de Oliveira1, Luciana P Rangel2, Danielly C Costa1
1Programa de Biologia Estrutural, Instituto de Bioquímica Médica Leopoldo de Meis, Instituto Nacional de Biologia Estrutural e Bioimagem, Centro Nacional de Ressonância Magnética Nuclear Jiri Jonas, Universidade Federal do Rio de Janeiro , Rio de Janeiro , Brazil.
Abstract:
The current understanding of the molecular mechanisms that lead to cancer is not sufficient to explain the loss or gain of function in proteins related to tumorigenic processes. Among them, more than 100 oncogenes, 20-30 tumor-suppressor genes, and hundreds of genes participating in DNA repair and replication have been found to play a role in the origins of cancer over the last 25 years. The phosphorylation of serine, threonine, or tyrosine residues is a critical step in cellular growth and development and is achieved through the tight regulation of protein kinases. Phosphorylation plays a major role in eukaryotic signaling as kinase domains are found in 2% of our genes. The deregulation of kinase control mechanisms has disastrous consequences, often leading to gains of function, cell transformation, and cancer. The c-Abl kinase protein is one of the most studied targets in the fight against cancer and is a hotspot for drug development because it participates in several solid tumors and is the hallmark of chronic myelogenous leukemia. Tumor suppressors have the opposite effects. Their fundamental role in the maintenance of genomic integrity has awarded them a role as the guardians of DNA. Among the tumor suppressors, p53 is the most studied. The p53 protein has been shown to be a transcription factor that recognizes and binds to specific DNA response elements and activates gene transcription. Stress triggered by ionizing radiation or other mutagenic events leads to p53 phosphorylation and cell-cycle arrest, senescence, or programed cell death. The p53 gene is the most frequently mutated gene in cancer. Mutations in the DNA-binding domain are classified as class I or class II depending on whether substitutions occur in the DNA contact sites or in the protein core, respectively. Tumor-associated p53 mutations often lead to the loss of protein function, but recent investigations have also indicated gain-of-function mutations. The prion-like aggregation of mutant p53 is associated with loss-of-function, dominant-negative, and gain-of-function effects. In the current review, we focused on the most recent insights into the protein structure and function of the c-Abl and p53 proteins that will provide us guidance to understand the loss and gain of function of these misfolded tumor-associated proteins.
Insights
Understanding protein dysfunction in cancer is key. This review explores the structure and function of c-Abl and p53 proteins, focusing on how their misfolding leads to loss or gain of function in tumorigenesis.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Cancer development involves complex molecular mechanisms, including alterations in oncogenes and tumor-suppressor genes.
- Protein kinases regulate critical cellular processes like growth and development through phosphorylation; their deregulation is linked to cancer.
- Tumor suppressors, such as p53, maintain genomic integrity, while oncogenes like c-Abl are implicated in various cancers.
Purpose of the Study:
- To review recent insights into the protein structure and function of c-Abl and p53.
- To elucidate how misfolding of these tumor-associated proteins leads to loss-of-function and gain-of-function mutations.
- To provide guidance for understanding tumorigenic processes driven by altered protein behavior.
Main Methods:
- Review of current scientific literature on c-Abl and p53 protein structure, function, and mutations.
- Analysis of molecular mechanisms underlying protein phosphorylation and its role in cell signaling.
- Examination of studies investigating prion-like aggregation of mutant p53 and its functional consequences.
Main Results:
- Deregulation of protein kinases, including c-Abl, contributes to cell transformation and cancer.
- The tumor suppressor p53, a transcription factor, is frequently mutated in cancer, leading to loss or gain of function.
- Mutant p53 can exhibit prion-like aggregation, resulting in diverse functional effects including dominant-negative and gain-of-function activities.
Conclusions:
- A deeper understanding of c-Abl and p53 protein structure and function is crucial for cancer research.
- Misfolded, tumor-associated proteins like mutant p53 represent significant targets for cancer therapy development.
- Further research into protein misfolding mechanisms can guide the development of novel anti-cancer strategies.
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