AI Article Synopsis

  • AID (Activation-Induced Cytidine Deaminase) changes cytosine (C) to uracil (U) in immunoglobulin gene DNA, leading to specific transition mutations if U isn't fixed.
  • Two processing pathways result in transversion mutations at C:G bases, particularly influenced by the sequence context of AGCT hotspots.
  • AGCT regions resist accurate DNA repair processes, possibly due to the presence of inhibiting proteins or specific DNA structures, while mutations farther from AGCT rely on UNG2 and mismatch repair mechanisms.

Article Abstract

AID deaminates C to U in either strand of Ig genes, exclusively producing C:G/G:C to T:A/A:T transition mutations if U is left unrepaired. Error-prone processing by UNG2 or mismatch repair diversifies mutation, predominantly at C:G or A:T base pairs, respectively. Here, we show that transversions at C:G base pairs occur by two distinct processing pathways that are dictated by sequence context. Within and near AGCT mutation hotspots, transversion mutation at C:G was driven by UNG2 without requirement for mismatch repair. Deaminations in AGCT were refractive both to processing by UNG2 and to high-fidelity base excision repair (BER) downstream of UNG2, regardless of mismatch repair activity. We propose that AGCT sequences resist faithful BER because they bind BER-inhibitory protein(s) and/or because hemi-deaminated AGCT motifs innately form a BER-resistant DNA structure. Distal to AGCT sequences, transversions at G were largely co-dependent on UNG2 and mismatch repair. We propose that AGCT-distal transversions are produced when apyrimidinic sites are exposed in mismatch excision patches, because completion of mismatch repair would require bypass of these sites.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5389528PMC
http://dx.doi.org/10.1093/nar/gkw1300DOI Listing

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