Protein-templated synthesis of dinucleotide repeat DNA by an antiphage reverse transcriptase
Abstract
Defense-associated reverse transcriptases (DRTs) are widespread bacterial antiphage systems that use unconventional mechanisms of polynucleotide synthesis. We show that DRT3, which comprises two distinct RTs (Drt3a and Drt3b) and a noncoding RNA (ncRNA), synthesizes alternating poly(GT/AC) double-stranded DNA. Cryo–electron microscopy structures at 2.6-angstrom resolution reveal a D3-symmetric 6:6:6 complex of Drt3a, Drt3b, and ncRNA. Drt3a produces the poly(GT) strand using a conserved ACACAC template within the ncRNA. Notably, Drt3b synthesizes a complementary, protein-primed poly(AC) strand in the complete absence of a nucleic acid template, using conserved active site residues specific to Drt3b to enforce precise base alternation. These findings expand the functional landscape of nucleic acid polymerases, revealing a protein-templated mechanism for sequence-specific DNA synthesis.
Article Details
Journal Info
Science
American Association for the Advancement of Science
Authors (5)
Pujuan Deng
Department of Biochemistry, Stanford University, Stanford, CA, USA.
Hyunbin Lee
Carlo Armijo
Department of Biochemistry, Stanford University, Stanford, CA, USA.
Haoqing Wang
Sarafan ChEM-H, Stanford University, Stanford, CA, USA.
Alex Gao