5cb1 Citations

Structural Mechanism for the Fidelity Modulation of DNA Polymerase λ.

J Am Chem Soc 138 2389-98 (2016)
Related entries: 4xq8, 4xrh, 5ca7, 5chg, 5cj7, 5cp2, 5cr0, 5cwr, 5ddm, 5ddy, 5dkw

Cited: 7 times
EuropePMC logo PMID: 26836966

Abstract

The mechanism of DNA polymerase (pol) fidelity is of fundamental importance in chemistry and biology. While high-fidelity pols have been well studied, much less is known about how some pols achieve medium or low fidelity with functional importance. Here we examine how human DNA polymerase λ (Pol λ) achieves medium fidelity by determining 12 crystal structures and performing pre-steady-state kinetic analyses. We showed that apo-Pol λ exists in the closed conformation, unprecedentedly with a preformed MgdNTP binding pocket, and binds MgdNTP readily in the active conformation in the absence of DNA. Since prebinding of MgdNTP could lead to very low fidelity as shown previously, it is attenuated in Pol λ by a hydrophobic core including Leu431, Ile492, and the Tyr505/Phe506 motif. We then predicted and demonstrated that L431A mutation enhances MgdNTP prebinding and lowers the fidelity. We also hypothesized that the MgdNTP-prebinding ability could stabilize a mismatched ternary complex and destabilize a matched ternary complex, and provided evidence with structures in both forms. Our results demonstrate that, while high-fidelity pols follow a common paradigm, Pol λ has developed specific conformations and mechanisms for its medium fidelity. Structural comparison with other pols also suggests that different pols likely utilize different conformational changes and microscopic mechanisms to achieve their catalytic functions with varying fidelities.

Reviews - 5cb1 mentioned but not cited (1)

  1. Structure and function relationships in mammalian DNA polymerases. Hoitsma NM, Whitaker AM, Schaich MA, Smith MR, Fairlamb MS, Freudenthal BD. Cell Mol Life Sci 77 35-59 (2020)

Articles - 5cb1 mentioned but not cited (1)



Reviews citing this publication (2)

  1. Nonhomologous DNA end-joining for repair of DNA double-strand breaks. Pannunzio NR, Watanabe G, Lieber MR. J Biol Chem 293 10512-10523 (2018)
  2. For the Better or for the Worse? The Effect of Manganese on the Activity of Eukaryotic DNA Polymerases. Balint E, Unk I. Int J Mol Sci 25 363 (2023)

Articles citing this publication (3)

  1. Uniform Free-Energy Profiles of the P-O Bond Formation and Cleavage Reactions Catalyzed by DNA Polymerases β and λ. Klvaňa M, Bren U, Florián J. J Phys Chem B 120 13017-13030 (2016)
  2. Thermococcus sp. 9°N DNA polymerase exhibits 3'-esterase activity that can be harnessed for DNA sequencing. LinWu SW, Tu YH, Tsai TY, Maestre-Reyna M, Liu MS, Wu WJ, Huang JY, Chi HW, Chang WH, Chiou CF, Wang AH, Lee J, Tsai MD. Commun Biol 2 224 (2019)
  3. Noncanonical prokaryotic X family DNA polymerases lack polymerase activity and act as exonucleases. Prostova M, Shilkin E, Kulikova AA, Makarova A, Ryazansky S, Kulbachinskiy A. Nucleic Acids Res 50 6398-6413 (2022)