A mini-TGA protein modulates gene expression through heterogeneous association with transcription factors

Author:

Tomaž Špela12ORCID,Petek Marko1ORCID,Lukan Tjaša1ORCID,Pogačar Karmen1ORCID,Stare Katja1ORCID,Teixeira Prates Erica3ORCID,Jacobson Daniel A3ORCID,Zrimec Jan1ORCID,Bajc Gregor4ORCID,Butala Matej4ORCID,Pompe Novak Maruša15ORCID,Dudley Quentin6ORCID,Patron Nicola6ORCID,Taler-Verčič Ajda78ORCID,Usenik Aleksandra79ORCID,Turk Dušan79ORCID,Prat Salomé10ORCID,Coll Anna1ORCID,Gruden Kristina1ORCID

Affiliation:

1. Department of Biotechnology and Systems Biology, National Institute of Biology , 1000 Ljubljana , Slovenia

2. Jožef Stefan International Postgraduate School , 1000 Ljubljana , Slovenia

3. Biosciences Division, Oak Ridge National Laboratory, , Oak Ridge, Tennessee 37831 , USA

4. Department of Biology, Biotechnical Faculty, University of Ljubljana , 1000 Ljubljana , Slovenia

5. School for Viticulture and Enology, University of Nova Gorica , 5271 Vipava , Slovenia

6. Earlham Institute, Norwich Research Park , Norwich NR4 7UZ , UK

7. Department of Biochemistry and Molecular and Structural Biology, Jožef Stefan Institute , 1000 Ljubljana , Slovenia

8. Faculty of Medicine, Institute of Biochemistry and Molecular Genetics, University of Ljubljana , 1000 Ljubljana , Slovenia

9. Centre of Excellence for Integrated Approaches in Chemistry and Biology of Proteins , 1000 Ljubljana , Slovenia

10. Department of Plant Development and Signal Transduction, Centre for Research in Agricultural Genomics , 08193 Cerdanyola, Barcelona , Spain

Abstract

AbstractTGA (TGACG-binding) transcription factors, which bind their target DNA through a conserved basic region leucine zipper (bZIP) domain, are vital regulators of gene expression in salicylic acid (SA)-mediated plant immunity. Here, we investigated the role of StTGA2.1, a potato (Solanum tuberosum) TGA lacking the full bZIP, which we named a mini-TGA. Such truncated proteins have been widely assigned as loss-of-function mutants. We, however, confirmed that StTGA2.1 overexpression compensates for SA-deficiency, indicating a distinct mechanism of action compared with model plant species. To understand the underlying mechanisms, we showed that StTGA2.1 can physically interact with StTGA2.2 and StTGA2.3, while its interaction with DNA was not detected. We investigated the changes in transcriptional regulation due to StTGA2.1 overexpression, identifying direct and indirect target genes. Using in planta transactivation assays, we confirmed that StTGA2.1 interacts with StTGA2.3 to activate StPRX07, a member of class III peroxidases (StPRX), which are known to play role in immune response. Finally, via structural modeling and molecular dynamics simulations, we hypothesized that the compact molecular architecture of StTGA2.1 distorts DNA conformation upon heterodimer binding to enable transcriptional activation. This study demonstrates how protein truncation can lead to distinct functions and that such events should be studied carefully in other protein families.

Funder

Slovenian Research Agency

European Union Horizon 2020 Framework Programme

US Department of Energy

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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