Human Cdc5, a regulator of mitotic entry, can act as a site-specific DNA binding protein
1Department of Pediatrics, Cardiovascular Research Institute and Cancer Center, University of California, San Francisco, Box 0130, San Francisco, California 94143-0130, USA.
Abstract:
G(2)/M progression requires coordinated expression of many gene products, but little is known about the transcriptional regulators involved. We recently identified human Cdc5, a positive regulator of G(2)/M in mammalian cells. We also demonstrated the presence of a latent activation domain in its carboxyl terminus, suggesting that human Cdc5 regulates G(2)/M through transcriptional activation. Despite the presence of a DNA binding domain, studies by others have failed to identify a preferential binding site for Cdc5 family members. In addition, Cdc5 recently has been associated with the splicesome in several organisms, suggesting that it may not act through DNA binding. We now report the identification of a 12 bp sequence to which human Cdc5 binds specifically and with high affinity through its amino terminus. We show that this DNA-protein interaction is capable of activating transcription. We also used a selection system in yeast to identify human genomic fragments that interact with human Cdc5. Several of these contained sequences similar to the binding site. We demonstrate that these bind human Cdc5 with similar specificity and affinity. These experiments provide the first evidence that Cdc5 family members can act as site-specific DNA binding proteins, and that human Cdc5 may interact with specific, low abundance sequences in the human genome. This raises the possibility that Cdc5 proteins may participate in more than one process necessary for regulated cell division.
Insights
Human Cdc5 protein regulates cell division by binding specific DNA sequences and activating transcription. This finding suggests Cdc5 may play roles in multiple cell division processes.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- G(2)/M cell cycle progression requires coordinated gene expression.
- Human Cdc5 (cell division cycle 5) is a known G(2)/M phase regulator.
- Previous studies suggested Cdc5 might regulate transcription but lacked specific DNA binding evidence.
Purpose of the Study:
- To identify specific DNA sequences bound by human Cdc5.
- To determine if human Cdc5 binding to DNA activates transcription.
- To investigate the potential role of human Cdc5 in transcriptional regulation during cell division.
Main Methods:
- Electrophoretic mobility shift assays (EMSA) to detect DNA-protein interactions.
- Yeast-based selection system to identify human genomic fragments interacting with human Cdc5.
- Reporter gene assays to measure transcriptional activation.
Main Results:
- Identified a specific 12 bp DNA sequence recognized by human Cdc5.
- Demonstrated that human Cdc5 binds this sequence with high affinity via its amino terminus.
- Showed that this DNA-protein interaction leads to transcriptional activation.
- Validated binding of human Cdc5 to similar sequences identified in human genomic fragments using yeast selection.
Conclusions:
- Human Cdc5 acts as a site-specific DNA binding protein.
- Human Cdc5 can activate transcription upon binding to specific DNA sequences.
- Cdc5 proteins may participate in multiple processes regulating cell division through DNA binding.
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