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Modulation of the DNA scanning activity of the Micrococcus luteus UV endonuclease
1Department of Molecular Biology, Vanderbilt University School of Medicine, Nashville, Tennessee 37232.
Abstract:
Micrococcus luteus UV endonuclease incises DNA at the sites of ultraviolet (UV) light-induced pyrimidine dimers. The mechanism of incision has been previously shown to be a glycosylic bond cleavage at the 5'-pyrimidine of the dimer followed by an apyrimidine endonuclease activity which cleaves the phosphodiester backbone between the pyrimidines. The process by which M. luteus UV endonuclease locates pyrimidine dimers within a population of UV-irradiated plasmids was shown to occur, in vitro, by a processive or "sliding" mechanism on non-target DNA as opposed to a distributive or "random hit" mechanism. Form I plasmid DNA containing 25 dimers per molecule was incubated with M. luteus UV endonuclease in time course reactions. The three topological forms of plasmid DNA generated were analyzed by agarose gel electrophoresis. When the enzyme encounters a pyrimidine dimer, it is significantly more likely to make only the glycosylase cleavage as opposed to making both the glycosylic and phosphodiester bond cleavages. Thus, plasmids are accumulated with many alkaline-labile sites relative to single-stranded breaks. In addition, reactions were performed at both pH 8.0 and pH 6.0, in the absence of NaCl, as well as 25,100, and 250 mM NaCl. The efficiency of the DNA scanning reaction was shown to be dependent on both the ionic strength and pH of the reaction. At low ionic strengths, the reaction was shown to proceed by a processive mechanism and shifted to a distributive mechanism as the ionic strength of the reaction increased. Processivity at pH 8.0 is shown to be more sensitive to increases in ionic strength than reactions performed at pH 6.0.
Insights
Micrococcus luteus UV endonuclease uses a processive "sliding" mechanism to find pyrimidine dimers in DNA. Enzyme activity, favoring glycosylase cleavage, is influenced by pH and ionic strength, impacting DNA repair efficiency.
Area of Science:
- Biochemistry
- Molecular Biology
- DNA Repair
Background:
- Ultraviolet (UV) light induces pyrimidine dimers in DNA, causing damage.
- Micrococcus luteus UV endonuclease repairs these dimers via a two-step incision mechanism.
- Understanding the enzyme's DNA scanning mechanism is crucial for DNA repair research.
Purpose of the Study:
- To investigate the DNA scanning mechanism of Micrococcus luteus UV endonuclease.
- To determine how environmental factors like pH and ionic strength affect enzyme activity.
- To elucidate the preference for glycosylase cleavage over complete phosphodiester backbone incision.
Main Methods:
- In vitro incubation of UV-irradiated plasmid DNA with M. luteus UV endonuclease.
- Analysis of plasmid topological forms using agarose gel electrophoresis.
- Time course reactions at varying pH (6.0 and 8.0) and NaCl concentrations (0-250 mM).
Main Results:
- The enzyme employs a processive (sliding) mechanism to locate pyrimidine dimers, not a distributive one.
- M. luteus UV endonuclease preferentially performs glycosylase cleavage, creating alkaline-labile sites.
- Enzyme efficiency and scanning mechanism (processive vs. distributive) are dependent on pH and ionic strength.
Conclusions:
- The DNA scanning mechanism of M. luteus UV endonuclease is primarily processive and sensitive to ionic strength and pH.
- Environmental conditions modulate the enzyme's ability to locate and incise UV-damaged DNA.
- The enzyme's preference for initial glycosylase cleavage influences the accumulation of DNA lesions.