Literature DB >> 32945578

Structural basis for the activation and suppression of transposition during evolution of the RAG recombinase.

Yuhang Zhang1, Elizabeth Corbett1, Shenping Wu2, David G Schatz1.   

Abstract

Jawed vertebrate adaptive immunity relies on the RAG1/RAG2 (RAG) recombinase, a domesticated transposase, for assembly of antigen receptor genes. Using an integration-activated form of RAG1 with methionine at residue 848 and cryo-electron microscopy, we determined structures that capture RAG engaged with transposon ends and U-shaped target DNA prior to integration (the target capture complex) and two forms of the RAG strand transfer complex that differ based on whether target site DNA is annealed or dynamic. Target site DNA base unstacking, flipping, and melting by RAG1 methionine 848 explain how this residue activates transposition, how RAG can stabilize sharp bends in target DNA, and why replacement of residue 848 by arginine during RAG domestication led to suppression of transposition activity. RAG2 extends a jawed vertebrate-specific loop to interact with target site DNA, and functional assays demonstrate that this loop represents another evolutionary adaptation acquired during RAG domestication to inhibit transposition. Our findings identify mechanistic principles of the final step in cut-and-paste transposition and the molecular and structural logic underlying the transformation of RAG from transposase to recombinase.
© 2020 The Authors.

Entities:  

Keywords:  DNA bending; V(D)J recombination; evolution; recombination-activating gene; transposition

Mesh:

Substances:

Year:  2020        PMID: 32945578      PMCID: PMC7604617          DOI: 10.15252/embj.2020105857

Source DB:  PubMed          Journal:  EMBO J        ISSN: 0261-4189            Impact factor:   11.598


  61 in total

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Review 6.  New insights into the evolutionary origins of the recombination-activating gene proteins and V(D)J recombination.

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7.  RAG1 core and V(D)J recombination signal sequences were derived from Transib transposons.

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9.  Discovery of an Active RAG Transposon Illuminates the Origins of V(D)J Recombination.

Authors:  Shengfeng Huang; Xin Tao; Shaochun Yuan; Yuhang Zhang; Peiyi Li; Helen A Beilinson; Ya Zhang; Wenjuan Yu; Pierre Pontarotti; Hector Escriva; Yann Le Petillon; Xiaolong Liu; Shangwu Chen; David G Schatz; Anlong Xu
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10.  How mouse RAG recombinase avoids DNA transposition.

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  4 in total

1.  Structural basis for the activation and suppression of transposition during evolution of the RAG recombinase.

Authors:  Yuhang Zhang; Elizabeth Corbett; Shenping Wu; David G Schatz
Journal:  EMBO J       Date:  2020-09-18       Impact factor: 11.598

Review 2.  Structural insights into the evolution of the RAG recombinase.

Authors:  Chang Liu; Yuhang Zhang; Catherine C Liu; David G Schatz
Journal:  Nat Rev Immunol       Date:  2021-10-21       Impact factor: 108.555

Review 3.  Inner workings of RAG recombinase and its specialization for adaptive immunity.

Authors:  Xuemin Chen; Martin Gellert; Wei Yang
Journal:  Curr Opin Struct Biol       Date:  2021-07-07       Impact factor: 6.809

4.  Guardian of the Genome: An Alternative RAG/Transib Co-Evolution Hypothesis for the Origin of V(D)J Recombination.

Authors:  Iryna Yakovenko; Jacob Agronin; L Courtney Smith; Matan Oren
Journal:  Front Immunol       Date:  2021-07-28       Impact factor: 7.561

  4 in total

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