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      Building a cell cycle oscillator: hysteresis and bistability in the activation of Cdc2.

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          Abstract

          In the early embryonic cell cycle, Cdc2-cyclin B functions like an autonomous oscillator, whose robust biochemical rhythm continues even when DNA replication or mitosis is blocked. At the core of the oscillator is a negative feedback loop; cyclins accumulate and produce active mitotic Cdc2-cyclin B; Cdc2 activates the anaphase-promoting complex (APC); the APC then promotes cyclin degradation and resets Cdc2 to its inactive, interphase state. Cdc2 regulation also involves positive feedback, with active Cdc2-cyclin B stimulating its activator Cdc25 (refs 5-7) and inactivating its inhibitors Wee1 and Myt1 (refs 8-11). Under the correct circumstances, these positive feedback loops could function as a bistable trigger for mitosis, and oscillators with bistable triggers may be particularly relevant to biological applications such as cell cycle regulation. Therefore, we examined whether Cdc2 activation is bistable. We confirm that the response of Cdc2 to non-degradable cyclin B is temporally abrupt and switch-like, as would be expected if Cdc2 activation were bistable. We also show that Cdc2 activation exhibits hysteresis, a property of bistable systems with particular relevance to biochemical oscillators. These findings help establish the basic systems-level logic of the mitotic oscillator.

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          Author and article information

          Journal
          Nat Cell Biol
          Nature cell biology
          Springer Science and Business Media LLC
          1465-7392
          1465-7392
          Apr 2003
          : 5
          : 4
          Affiliations
          [1 ] Department of Molecular Pharmacology, Stanford University School of Medicine, Stanford, CA 94305-5174, USA.
          Article
          ncb954
          10.1038/ncb954
          12629549
          bd2bbd05-2a85-4ed1-b418-d61ee63b708a
          History

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