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Regulation of p53: intricate loops and delicate balances
Moshe Oren1, Alexander Damalas, Tanya Gottlieb
1Department of Molecular Cell Biology, The Weizmann Institute of Science, P.O. Box 26, Rehovot, Israel. moshe.oren@weizmann.ac.il
Abstract:
The p53 tumor suppressor protein provides a major anti-cancer defense mechanism, as underscored by the fact that the p53 gene is the most frequent target for genetic alterations in human cancer. Recent work has led to the realization that p53 lies at the hub of a very complex network of signaling pathways, which integrate a variety of intracellular and extracellular inputs. Part of this network consists of an array of autoregulatory feedback loops, where p53 exhibits very intricate interactions with other proteins known to play important roles in the determination of cell fate. We discuss two such loops, one involving the beta catenin protein and the other centering on the Akt/protein kinase B. In both cases, the central module is the interplay between p53 and the murine double minute 2 (Mdm2) protein, which inactivates p53 and targets it for rapid proteolysis. Whereas deregulated beta catenin can lead to Mdm2 inactivation and p53 accumulation, active p53 can promote the degradation and downregulation of beta catenin. Similarly, Akt can block p53 activation by potentiating Mdm2, whereas activated p53 can tune down Akt in several different ways. In each case, the actual output of the loop is determined by the delicate balance between the opposing effects of its different components. Often, this balance is dictated by additional signaling processes that occur simultaneously within the same cell. Genetic alterations characteristic of cancer are capable of severely distorting this balance, thereby overriding the tumor suppressor effects of p53 in a manner that facilitates neoplastic conversion.
Insights
The p53 protein, a key cancer defense, interacts with pathways like beta-catenin and Akt. Its balance with Mdm2 protein is crucial for preventing cancer, but genetic alterations disrupt this, aiding tumor growth.
Area of Science:
- Molecular Biology
- Oncology
- Cell Signaling
Context:
- The p53 tumor suppressor protein is a critical component of the cellular defense against cancer.
- Genetic alterations in the p53 gene are frequent in human cancers, highlighting its importance.
- p53 functions within a complex network of signaling pathways that integrate cellular signals.
Purpose:
- To explore the intricate autoregulatory feedback loops involving p53.
- To discuss the interactions of p53 with beta-catenin and Akt/protein kinase B.
- To elucidate how these interactions, centered on the p53-Mdm2 axis, influence cell fate determination.
Summary:
- p53 interacts with beta-catenin and Akt through feedback loops, often involving the murine double minute 2 (Mdm2) protein, which regulates p53 stability.
- Deregulation of beta-catenin or Akt can disrupt p53 activity, while activated p53 can modulate these pathways.
- The balance within these loops is critical for p53's tumor suppressor function and is influenced by other cellular signaling processes.
Impact:
- Understanding these p53 regulatory networks is vital for comprehending cancer development.
- Disruptions in these feedback loops due to genetic alterations can lead to the loss of p53's anti-cancer effects.
- This knowledge may inform the development of novel cancer therapies targeting these signaling pathways.