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.

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.

Related Concept Videos

Mismatch Repair01:36

Mismatch Repair

Overview
Cooperative Binding of Transcription Regulators02:13

Cooperative Binding of Transcription Regulators

Transcriptional regulators bind to specific cis-regulatory sequences in the DNA to regulate gene transcription. These cis-regulatory sequences are very short, usually less than ten nucleotide pairs in length. The short length means that there is a high probability of the exact same sequence randomly occurring throughout the genome.  Since regulators can also bind to groups of similar sequences, this further increases the chances of random binding. Transcriptional regulators form dimers that...
Co-activators and Co-repressors02:04

Co-activators and Co-repressors

Gene transcription is regulated by the synergistic action of several proteins that form a complex at a gene regulatory site. This is observed in eukaryotes, where the regulation of gene expression is a complex process. Regulatory proteins in eukaryotes can broadly be classified into two types – regulators that bind directly to specific DNA sequences and co-regulators that associate with regulatory proteins but cannot directly bind to the DNA. These co-regulators are further divided into...
Master Transcription Regulators02:23

Master Transcription Regulators

Master transcription regulators are regulatory proteins that are predominantly responsible for regulating the expression of multiple genes. Often these genes work in concert to drive a  complex process. Activation of a master transcription regulator can lead to a cascade of transcriptional activation necessary for that outcome. These regulators can directly bind to the regulatory sequences of the various genes involved, or they can indirectly regulate transcription by binding to regulatory...
Single-Strand DNA Binding Proteins01:03

Single-Strand DNA Binding Proteins

For successful DNA replication, the unwinding of double-stranded DNA must be accompanied by stabilization and protection of the separated single strands of the DNA. This crucial task is performed by single-strand DNA-binding (SSB) proteins. They bind to the DNA in a sequence-independent manner, which means that the nitrogenous bases of the DNA need not be present in a specific order for binding of SSB proteins to it. The binding of SSB proteins straightens single-stranded DNA (ssDNA) and makes...
Mismatch Repair01:20

Mismatch Repair

Organisms are capable of detecting and fixing nucleotide mismatches that occur during DNA replication. This sophisticated process requires identifying the new strand and replacing the erroneous bases with correct nucleotides. Mismatch repair is coordinated by many proteins in both prokaryotes and eukaryotes.
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...