Relationship between conformational changes in pol lambda's active site upon binding incorrect nucleotides and

Meredith C Foley1, Tamar Schlick

  • 1Department of Chemistry and Courant Institute of Mathematical Sciences, New York University, 251 Mercer Street, New York, New York 10012, USA.

Insights

Mammalian DNA polymerase lambda (pol lambda) uses specific amino acids like Arg517 to check incoming nucleotides, ensuring DNA replication fidelity. Incorrect base pairs are bound less tightly, revealing pol lambda

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Genetics

Background:

  • DNA replication and repair are essential cellular processes.
  • DNA polymerase lambda (pol lambda) plays a role in DNA fidelity.
  • Accurate nucleotide incorporation is critical for genomic stability.

Purpose of the Study:

  • To investigate the fidelity of mammalian DNA polymerase lambda (pol lambda).
  • To understand the molecular mechanisms underlying pol lambda's discrimination against incorrect nucleotides.
  • To determine the role of specific amino acid residues in pol lambda's base-checking function.

Main Methods:

  • Molecular dynamics simulations of pol lambda bound to correct and incorrect nucleotides.
  • Analysis of DNA and protein residue side-chain motions.
  • Electrostatic potential landscape analysis of the enzyme's active site.

Main Results:

  • Distinct differences in DNA and protein motion were observed between correct and mismatched base pairs.
  • Arg517 showed altered interactions, suggesting a role in base checking.
  • Tyr505 and Phe506 were also implicated in the base-checking mechanism.
  • Pol lambda binds incorrect dNTPs less tightly than correct dNTPs.

Conclusions:

  • Arg517, Tyr505, and Phe506 contribute to pol lambda's fidelity by acting as a base-checking mechanism.
  • The enzyme's active site electrostatics influence dNTP binding affinity.
  • A proposed order for mismatch insertion fidelity was established: A:C > A:G > A(syn):G > T:G > A(syn):A > A:A.

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