Separase, securin and Rad21 in neural cell growth
H N Pemberton1, J A Franklyn, K Boelaert
1Divisions of Medical Sciences, University of Birmingham, Queen Elizabeth Hospital, Birmingham, B15 2TH, UK.
Abstract:
The key mitotic regulator securin is expressed at low levels in fetal brain compared with adult, and modulates the proliferation of human embryonic neuronal N-Tera2 (NT2) cells. We now examine the function and expression of securin's interacting partner separase, along with Rad21, the functional component of cohesin, which is cleaved by separase following interaction with securin. In contrast to securin, the cleaved forms of separase and Rad21 were highly expressed in human fetal cerebral cortex compared with adult. In a murine model of absent securin expression - the PTTG knock-out mouse - separase and Rad21 were over-expressed in multiple brain regions. In addition, cDNA array analysis of other key mitotic regulators additionally identified cyclin C and sestrin 2 to be induced in the brains of securin-null mice compared with wild type. Further, Rad21 mRNA expression was highly correlated with that of securin, separase, cyclin C and sestrin 2 in fetal brains. In embryonic neuronal NT2 cells, siRNA repression of separase failed to significantly alter cell turnover, whereas repression of securin expression resulted in increased levels of the activated forms of Rad21 and separase, and promoted cell proliferation. Our data suggest that the co-ordinated expression of separase, securin and Rad21 is fundamental for the developing brain.
Related Concept Videos
Separation of Sister Chromatids
At the onset of anaphase, separase, a proteolytic enzyme, is...
Separation of Sister Chromatids
At the onset of anaphase, separase, a proteolytic enzyme, is...
The Spindle Assembly Checkpoint
Many proteins function together to control the spindle assembly checkpoint. Mutations affecting these proteins may allow cells to proceed into anaphase prematurely, resulting in the...
Negative Regulator Molecules
Restarting Stalled Replication Forks
DNA Damage can Stall the Cell Cycle


