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Biology subjects

Kesici, M.-Z.

Publications and source records attributed to Kesici, M.-Z..

2 recordsLinked to original sources

Real-Time Structural Biology of DNA and DNA-Protein Complexes on an Optical Microscope

The intricate interplay between DNA and proteins is key for biological functions such as DNA replication, transcription, and repair. To better understand these interactions, it is crucial to develop tools to study DNA-protein complexes with high spatial and temporal resolution. Here, we use the vertical orientation that DNA adopts on graphene and investigate its interactions with proteins via energy transfer from a probe dye to graphene, achieving spatial resolution down to the [A]ngstrom scale. We measured the bending angle of DNA induced by adenine tracts, bulges, abasic sites and the binding of Escherichia coli endonuclease IV with unprecedented precision and millisecond time resolution. Additionally, we observed the translocation of the O6-alkylguanine DNA alkyltransferase along double-stranded DNA, reaching single-base pair resolution and detecting an affinity for adenine tracts. Overall, we foresee that this method will become a widespread tool for the dynamical study of nucleic acid and nucleic acid-protein interactions.

biophysics↗

A simple and general approach to control the activity of DNA processing enzymes

DNA processing enzymes, such as DNA polymerases and endonucleases, have found many applications in biotechnology, molecular diagnostics, and synthetic biology, among others. The development of enzymes with controllable activity, such as hot-start or light-activatable versions, has boosted their applications and improved the sensitivity and specificity of the existing ones. However, current approaches to produce controllable enzymes are experimentally demanding to develop and case specific. Here, we introduce a simple and general method to design light-start DNA processing enzymes. In order to prove its versatility, we applied our method to three DNA polymerases commonly used in biotechnology, including the Phi29 (mesophilic), Taq and Pfu polymerases, and one restriction enzyme. Light-start enzymes showed suppressed polymerase, exonuclease and endonuclease activity until they were re-activated by an UV pulse. Finally, we applied our enzymes to common molecular biology assays, and showed comparable performance to commercial hot-start enzymes.

molecular biology↗