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Kosar, Z.

Publications and source records attributed to Kosar, Z..

2 recordsLinked to original sources

Multi-exponential DNA Residence Behaviors of Transcription Factors Under The Discrete Affinity Model

The transcription process is regulated by temporal interactions of transcription factors with DNA. In the last decade, computational and experimental studies revealed the residence times of transcription factors on DNA correlate with transcriptional output. Biochemical studies suggest that transcription factor bindings exhibit bi-exponential dynamics, often explained by the binary affinity model composed of nonspecific and specific protein-DNA interactions. Recently, transcription factor residence times were shown to display a power law in vivo implicating effective protein-DNA interactions controlling the dissociation kinetics are rather more complex than suggested. One contribution that can cause such continuous residence-time distributions could be higher-order protein-DNA complexes or protein coacervates. Here, by using molecular dynamics simulations of a coarse-grained polymer model for bacterial chromosomes interacting with homodimeric transcription factors at physiologically relevant concentrations, we demonstrate that residence time distributions of dimeric proteins follow a multi-exponential pattern even when a single interaction describes the affinity between DNA and protein. Our simulations reveal that this emergent behavior is due to the formation of DNA-protein clusters of various sizes at a wide range of protein concentrations and affinities. These findings add another layer to transcriptional regulation and, consequently, to gene expression by connecting transcription factor concentrations and affinities, DNA-protein clusters, and DNA residence times of transcription factors.

biophysics↗

Facilitated Dissociation of Nucleoid Associated Proteins from DNA in the Bacterial Confinement

Transcription machinery depends on the temporal formation of protein-DNA complexes. Recent experiments demonstrated that lifetime of the complex can also affect transcription. In parallel, in vitro single-molecule studies showed that nucleoid-associated proteins (NAPs) leave the DNA rapidly as the bulk concentration of the protein increases via facilitated dissociation (FD). Never-theless, whether such concentration-dependent mechanism is functional in a bacterial cell, in which NAP levels and the 3D chromosomal structure are often coupled, is not clear a priori. Here, by using extensive coarse-grained molecular simulations, we model the unbinding of specific and nonspecific dimeric NAPs from a high-molecular-weight circular DNA molecule in a cylindrical structure mimicking the cellular confinement of a bacterial chromosome. Our simulations show that physiologically relevant peak protein levels (tens of micromolar) lead to highly compact chromosomal structures. This compaction results in rapid off rates (shorter DNA-residence times) but only for specifically DNA-binding NAPs such as the factor for inversion stimulation (Fis). Contrarily, for nonspecific NAPs, the off rates decrease as the protein levels increase, suggesting an inverse FD pattern. The simulations with restrained chromosome models reveal that this inverse response is due to DNA-segmental fluctuations, and that chromosomal compaction is in favor of faster protein dissociation. Overall, our results indicate that cellular-concentration level of a structural DNA-binding protein can be highly intermingled with its DNA-residence time.

biophysics↗