Protein-templated synthesis of dinucleotide repeat DNA by an antiphage reverse transcriptase

P Pujuan Deng (Department of Biochemistry, Stanford University, Stanford, CA, USA.) H Hyunbin Lee C Carlo Armijo (Department of Biochemistry, Stanford University, Stanford, CA, USA.) H Haoqing Wang (Sarafan ChEM-H, Stanford University, Stanford, CA, USA.) A Alex Gao

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 Science
Volume / Issue Vol. 392, Issue 6804
Published June 18, 2026
Pages 1274-1281
ISSN 0036-8075
Publisher American Association for the Advancement of Science

Journal Info

Science

American Association for the Advancement of Science

ISSN: 0036-8075 Social Sciences

Authors (5)

P

Pujuan Deng

Department of Biochemistry, Stanford University, Stanford, CA, USA.

H

Hyunbin Lee

C

Carlo Armijo

Department of Biochemistry, Stanford University, Stanford, CA, USA.

H

Haoqing Wang

Sarafan ChEM-H, Stanford University, Stanford, CA, USA.

A

Alex Gao