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DNA-binding specificity of Mcm1: operator mutations that alter DNA-bending and transcriptional activities by a MADS
T B Acton1, H Zhong, A K Vershon
1Waksman Institute of Microbiology, Rutgers University, Piscataway, New Jersey 08855-0759, USA.
Abstract:
The yeast Mcm1 protein is a member of the MADS box family of transcriptional regulatory factors, a class of DNA-binding proteins found in such diverse organisms as yeast, plants, flies, and humans. To explore the protein-DNA interactions of Mcm1 in vivo and in vitro, we have introduced an extensive series of base pair substitutions into an Mcm1 operator site and examined their effects on Mcm1-mediated transcriptional regulation and DNA-binding affinity. Our results show that Mcm1 uses a mechanism to contact the DNA that has some significant differences from the one used by the human serum response factor (SRF), a closely related MADS box protein in which the three-dimensional structure has been determined. One major difference is that 5-bromouracil-mediated photo-cross-linking experiments indicate that Mcm1 is in close proximity to functional groups in the major groove at the center of the recognition site whereas the SRF protein did not exhibit this characteristic. A more significant difference is that mutations at a position outside of the conserved CC(A/T)6GG site significantly reduce Mcm1-dependent DNA bending, while these substitutions have no effect on DNA bending by SRF. This result shows that the DNA bending by Mcm1 is sequence dependent and that the base-specific requirements for bending differ between Mcm1 and SRF. Interestingly, although these substitutions have a large effect on DNA bending and transcriptional activation by Mcm1, they have a relatively small effect on the DNA-binding affinity of the protein. This result suggests that the degree of DNA bending is important for transcriptional activation by Mcm1.
Insights
The yeast Mcm1 protein
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Mcm1 is a MADS box transcription factor in yeast.
- MADS box proteins regulate DNA binding and transcription across species.
- Human serum response factor (SRF) is a related MADS box protein with known 3D structure.
Purpose of the Study:
- Investigate Mcm1 protein-DNA interactions in vivo and in vitro.
- Determine how base pair substitutions affect Mcm1's transcriptional regulation and DNA binding.
- Compare Mcm1's DNA interaction mechanism to that of SRF.
Main Methods:
- Systematic base pair substitutions in the Mcm1 operator site.
- Assessing Mcm1-mediated transcriptional regulation.
- Measuring Mcm1 DNA-binding affinity.
- 5-bromouracil-mediated photo-cross-linking experiments.
- Analyzing Mcm1-dependent DNA bending.
Main Results:
- Mcm1 contacts DNA in the major groove, differing from SRF.
- Mcm1-dependent DNA bending is sequence-specific and differs from SRF.
- Substitutions outside the conserved site affect Mcm1 DNA bending and transcription but not binding affinity.
- DNA bending is crucial for Mcm1 transcriptional activation.
Conclusions:
- Mcm1 utilizes a distinct DNA interaction mechanism compared to SRF.
- Sequence-dependent DNA bending is a key feature of Mcm1 function.
- DNA bending plays a significant role in Mcm1-mediated transcriptional activation.
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