Structural basis of gate-DNA breakage and resealing by type II topoisomerases

Ivan Laponogov1, Xiao-Su Pan, Dennis A Veselkov

  • 1Randall Division of Cell and Molecular Biophysics, King's College London, London, United Kingdom.

Plos One
|July 3, 2010
PubMed

Insights

Type II DNA topoisomerases are crucial enzymes. New structures reveal how these enzymes cleave and reseal DNA, offering insights into antibacterial drug mechanisms.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • Type II DNA topoisomerases regulate DNA topology for essential cellular processes.
  • Their mechanism, particularly cleavage complex formation and reversal, remains poorly understood.
  • These enzymes are targets for antibacterial and anticancer drugs.

Purpose of the Study:

  • To elucidate the mechanism of DNA cleavage complex formation and reversal by a type II topoisomerase.
  • To investigate the structural basis of drug interactions with topoisomerase-DNA complexes.

Main Methods:

  • X-ray crystallography was employed to determine high-resolution structures.
  • Sequential states of DNA cleavage complex formation and reversal were studied.
  • A novel antibacterial dione was used to capture intermediate states.

Main Results:

  • Structures revealed drug molecules intercalated in a cleaved DNA gate, stabilized by protein contacts.
  • Drug release led to DNA resealing, with the DNA adopting an unusual A/B-form conformation.
  • A repositioned Mg(2+) ion was observed coordinating scissile phosphodiester groups.

Conclusions:

  • The study provides the first structural insights into reaction intermediates of type II topoisomerases.
  • Findings suggest mechanisms for DNA resealing during the enzyme's normal function.
  • The results illuminate drug-induced arrest mechanisms, aiding the development of new therapeutics.

Related Concept Videos

DNA Topoisomerases02:02

DNA Topoisomerases

Topoisomerases are enzymes that relax overwound DNA molecules during various cell processes, including DNA replication and transcription. These enzymes regulate positive and negative DNA supercoiling without changing the nucleotide sequence. DNA overwinding in a clockwise direction results in positively supercoiled DNA, whereas underwinding in a counterclockwise direction produces negatively supercoiled DNA.
Types and Mechanism of action
Topoisomerases are divided into two main types.  Type I...
Inhibitors of Bacterial DNA Synthesis01:28

Inhibitors of Bacterial DNA Synthesis

Bacterial pathogens depend on precise and efficient DNA replication to sustain infection. Two type II topoisomerases—DNA gyrase and topoisomerase IV—are critical to this process, as they resolve DNA supercoiling and unlink chromosomes during replication. Fluoroquinolones, synthetic derivatives of quinolones, exploit this mechanism by stabilizing the transient DNA–enzyme cleavage complex, preventing strand religation, and causing lethal double-strand breaks. These antibiotics are selectively...
Fixing Double-strand Breaks02:04

Fixing Double-strand Breaks

The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
Fixing Double-strand Breaks02:04

Fixing Double-strand Breaks

The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
DNA Helicases00:55

DNA Helicases

DNA unwinding helicase enzymes are a type of motor protein. Motor proteins can translocate along filaments or polymers using energy generated from ATP hydrolysis. Helicases are involved in all the important cellular processes where DNA unwinding is required, such as DNA replication, repair, recombination, and transcription. They are present in all living organisms, but vary in their structure, function, and mechanism of action. For example, in prokaryotes, DnaB helicase binds and translocates...
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...