Literature DB >> 24616097

The Arg-62 residues of the TREX1 exonuclease act across the dimer interface contributing to catalysis in the opposing protomers.

Jason M Fye1, Stephanie R Coffin, Clinton D Orebaugh, Thomas Hollis, Fred W Perrino.   

Abstract

TREX1 is a 3'-deoxyribonuclease that degrades single- and double-stranded DNA (ssDNA and dsDNA) to prevent inappropriate nucleic acid-mediated immune activation. More than 40 different disease-causing TREX1 mutations have been identified exhibiting dominant and recessive genetic phenotypes in a spectrum of autoimmune disorders. Mutations in TREX1 at positions Asp-18 and Asp-200 to His and Asn exhibit dominant autoimmune phenotypes associated with the clinical disorders familial chilblain lupus and Aicardi-Goutières syndrome. Our previous biochemical studies showed that the TREX1 dominant autoimmune disease phenotype depends upon an intact DNA-binding process coupled with dysfunctional active site chemistry. Studies here show that the TREX1 Arg-62 residues extend across the dimer interface into the active site of the opposing protomer to coordinate substrate DNA and to affect catalysis in the opposing protomer. The TREX1(R62A/R62A) homodimer exhibits ∼50-fold reduced ssDNA and dsDNA degradation activities relative to TREX1(WT). The TREX1 D18H, D18N, D200H, and D200N dominant mutant enzymes were prepared as compound heterodimers with the TREX1 R62A substitution in the opposing protomer. The TREX1(D18H/R62A), TREX1(D18N/R62A), TREX1(D200H/R62A), and TREX1(D200N/R62A) compound heterodimers exhibit higher levels of ss- and dsDNA degradation activities than the homodimers demonstrating the requirement for TREX1 Arg-62 residues to provide necessary structural elements for full catalytic activity in the opposing TREX1 protomer. This concept is further supported by the loss of dominant negative effects in the TREX1 D18H, D18N, D200H, and D200N compound heterodimers. These data provide compelling evidence for the required TREX1 dimeric structure for full catalytic function.

Entities:  

Keywords:  Autoimmune Diseases; DNA; DNase; Dimer; Enzyme Mechanisms; Exonuclease; Nucleic Acid; TREX1

Mesh:

Substances:

Year:  2014        PMID: 24616097      PMCID: PMC4036290          DOI: 10.1074/jbc.M114.559252

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  39 in total

1.  Structure and expression of the TREX1 and TREX2 3' --> 5' exonuclease genes.

Authors:  D J Mazur; F W Perrino
Journal:  J Biol Chem       Date:  2001-01-29       Impact factor: 5.157

2.  Evaluation of the TREX1 gene in a large multi-ancestral lupus cohort.

Authors:  B Namjou; P H Kothari; J A Kelly; S B Glenn; J O Ojwang; A Adler; M E Alarcón-Riquelme; C J Gallant; S A Boackle; L A Criswell; R P Kimberly; E Brown; J Edberg; A M Stevens; C O Jacob; B P Tsao; G S Gilkeson; D L Kamen; J T Merrill; M Petri; R R Goldman; L M Vila; J-M Anaya; T B Niewold; J Martin; B A Pons-Estel; J M Sabio; J L Callejas; T J Vyse; S-C Bae; F W Perrino; B I Freedman; R H Scofield; K L Moser; P M Gaffney; J A James; C D Langefeld; K M Kaufman; J B Harley; J P Atkinson
Journal:  Genes Immun       Date:  2011-01-27       Impact factor: 2.676

3.  Defects in DNA degradation revealed in crystal structures of TREX1 exonuclease mutations linked to autoimmune disease.

Authors:  Suzanna L Bailey; Scott Harvey; Fred W Perrino; Thomas Hollis
Journal:  DNA Repair (Amst)       Date:  2011-11-08

4.  The human TREX2 3' -> 5'-exonuclease structure suggests a mechanism for efficient nonprocessive DNA catalysis.

Authors:  Fred W Perrino; Scott Harvey; Sara McMillin; Thomas Hollis
Journal:  J Biol Chem       Date:  2005-01-19       Impact factor: 5.157

Review 5.  Thermodynamic and kinetic methods of analyses of protein-nucleic acid interactions. From simpler to more complex systems.

Authors:  Wlodzimierz Bujalowski
Journal:  Chem Rev       Date:  2006-02       Impact factor: 60.622

6.  The crystal structure of TREX1 explains the 3' nucleotide specificity and reveals a polyproline II helix for protein partnering.

Authors:  Udesh de Silva; Sumana Choudhury; Suzanna L Bailey; Scott Harvey; Fred W Perrino; Thomas Hollis
Journal:  J Biol Chem       Date:  2007-02-09       Impact factor: 5.157

Review 7.  Aicardi-Goutières syndrome (AGS).

Authors:  John B P Stephenson
Journal:  Eur J Paediatr Neurol       Date:  2008-03-14       Impact factor: 3.140

8.  Rat polymerase beta binds double-stranded DNA using exclusively the 8-kDa domain. Stoichiometries, intrinsic affinities, and cooperativities.

Authors:  Maria J Jezewska; Roberto Galletto; Wlodzimierz Bujalowski
Journal:  Biochemistry       Date:  2003-05-20       Impact factor: 3.162

9.  C-terminal truncations in human 3'-5' DNA exonuclease TREX1 cause autosomal dominant retinal vasculopathy with cerebral leukodystrophy.

Authors:  Anna Richards; Arn M J M van den Maagdenberg; Joanna C Jen; David Kavanagh; Paula Bertram; Dirk Spitzer; M Kathryn Liszewski; Maria-Louise Barilla-Labarca; Gisela M Terwindt; Yumi Kasai; Mike McLellan; Mark Gilbert Grand; Kaate R J Vanmolkot; Boukje de Vries; Jijun Wan; Michael J Kane; Hafsa Mamsa; Ruth Schäfer; Anine H Stam; Joost Haan; Paulus T V M de Jong; Caroline W Storimans; Mary J van Schooneveld; Jendo A Oosterhuis; Andreas Gschwendter; Martin Dichgans; Katya E Kotschet; Suzanne Hodgkinson; Todd A Hardy; Martin B Delatycki; Rula A Hajj-Ali; Parul H Kothari; Stanley F Nelson; Rune R Frants; Robert W Baloh; Michel D Ferrari; John P Atkinson
Journal:  Nat Genet       Date:  2007-07-29       Impact factor: 38.330

10.  Clinical and molecular phenotype of Aicardi-Goutieres syndrome.

Authors:  Gillian Rice; Teresa Patrick; Rekha Parmar; Claire F Taylor; Alec Aeby; Jean Aicardi; Rafael Artuch; Simon Attard Montalto; Carlos A Bacino; Bruno Barroso; Peter Baxter; Willam S Benko; Carsten Bergmann; Enrico Bertini; Roberta Biancheri; Edward M Blair; Nenad Blau; David T Bonthron; Tracy Briggs; Louise A Brueton; Han G Brunner; Christopher J Burke; Ian M Carr; Daniel R Carvalho; Kate E Chandler; Hans-Jurgen Christen; Peter C Corry; Frances M Cowan; Helen Cox; Stefano D'Arrigo; John Dean; Corinne De Laet; Claudine De Praeter; Catherine Dery; Colin D Ferrie; Kim Flintoff; Suzanna G M Frints; Angels Garcia-Cazorla; Blanca Gener; Cyril Goizet; Francoise Goutieres; Andrew J Green; Agnes Guet; Ben C J Hamel; Bruce E Hayward; Arvid Heiberg; Raoul C Hennekam; Marie Husson; Andrew P Jackson; Rasieka Jayatunga; Yong-Hui Jiang; Sarina G Kant; Amy Kao; Mary D King; Helen M Kingston; Joerg Klepper; Marjo S van der Knaap; Andrew J Kornberg; Dieter Kotzot; Wilfried Kratzer; Didier Lacombe; Lieven Lagae; Pierre Georges Landrieu; Giovanni Lanzi; Andrea Leitch; Ming J Lim; John H Livingston; Charles M Lourenco; E G Hermione Lyall; Sally A Lynch; Michael J Lyons; Daphna Marom; John P McClure; Robert McWilliam; Serge B Melancon; Leena D Mewasingh; Marie-Laure Moutard; Ken K Nischal; John R Ostergaard; Julie Prendiville; Magnhild Rasmussen; R Curtis Rogers; Dominique Roland; Elisabeth M Rosser; Kevin Rostasy; Agathe Roubertie; Amparo Sanchis; Raphael Schiffmann; Sabine Scholl-Burgi; Sunita Seal; Stavit A Shalev; C Sierra Corcoles; Gyan P Sinha; Doriette Soler; Ronen Spiegel; John B P Stephenson; Uta Tacke; Tiong Yang Tan; Marianne Till; John L Tolmie; Pam Tomlin; Federica Vagnarelli; Enza Maria Valente; Rudy N A Van Coster; Nathalie Van der Aa; Adeline Vanderver; Johannes S H Vles; Thomas Voit; Evangeline Wassmer; Bernhard Weschke; Margo L Whiteford; Michel A A Willemsen; Andreas Zankl; Sameer M Zuberi; Simona Orcesi; Elisa Fazzi; Pierre Lebon; Yanick J Crow
Journal:  Am J Hum Genet       Date:  2007-09-04       Impact factor: 11.025

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  8 in total

1.  Exonuclease TREX1 degrades double-stranded DNA to prevent spontaneous lupus-like inflammatory disease.

Authors:  Jessica L Grieves; Jason M Fye; Scott Harvey; Jason M Grayson; Thomas Hollis; Fred W Perrino
Journal:  Proc Natl Acad Sci U S A       Date:  2015-04-06       Impact factor: 11.205

2.  Measuring TREX1 and TREX2 exonuclease activities.

Authors:  Wayne O Hemphill; Fred W Perrino
Journal:  Methods Enzymol       Date:  2019-06-08       Impact factor: 1.600

3.  TREX1 D18N mice fail to process erythroblast DNA resulting in inflammation and dysfunctional erythropoiesis.

Authors:  Stephen L Rego; Scott Harvey; Sean R Simpson; Wayne O Hemphill; Zachariah A McIver; Jason M Grayson; Fred W Perrino
Journal:  Autoimmunity       Date:  2018-11-13       Impact factor: 2.815

Review 4.  Human disease phenotypes associated with mutations in TREX1.

Authors:  Gillian I Rice; Mathieu P Rodero; Yanick J Crow
Journal:  J Clin Immunol       Date:  2015-03-04       Impact factor: 8.317

5.  TREX1 - Apex predator of cytosolic DNA metabolism.

Authors:  Sean R Simpson; Wayne O Hemphill; Teesha Hudson; Fred W Perrino
Journal:  DNA Repair (Amst)       Date:  2020-06-12

6.  HIV-1 Activation of Innate Immunity Depends Strongly on the Intracellular Level of TREX1 and Sensing of Incomplete Reverse Transcription Products.

Authors:  Swati Kumar; James H Morrison; David Dingli; Eric Poeschla
Journal:  J Virol       Date:  2018-07-31       Impact factor: 5.103

7.  TREX1 as a Novel Immunotherapeutic Target.

Authors:  Wayne O Hemphill; Sean R Simpson; Mingyong Liu; Freddie R Salsbury; Thomas Hollis; Jason M Grayson; Fred W Perrino
Journal:  Front Immunol       Date:  2021-04-01       Impact factor: 7.561

8.  Structural insights into the duplex DNA processing of TREX2.

Authors:  Hiu-Lo Cheng; Chun-Ting Lin; Kuan-Wei Huang; Shuying Wang; Yeh-Tung Lin; Shu-Ing Toh; Yu-Yuan Hsiao
Journal:  Nucleic Acids Res       Date:  2018-12-14       Impact factor: 16.971

  8 in total

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