Balancing growth amidst salt stress – lifestyle perspectives from the extremophyte model Schrenkiella parvula

Author:

Tran Kieu‐Nga1ORCID,Pantha Pramod1ORCID,Wang Guannan1ORCID,Kumar Narender1ORCID,Wijesinghege Chathura1ORCID,Oh Dong‐Ha1ORCID,Wimalagunasekara Samadhi1,Duppen Nick2,Li Hongfei3,Hong Hyewon4,Johnson John C.1,Kelt Ross1,Matherne Megan G.1,Nguyen Thu T1,Garcia Jason R1,Clement Ashley1,Tran David5,Crain Colt16,Adhikari Prava1,Zhang Yanxia3,Foroozani Maryam1,Sessa Guido7,Larkin John C.1,Smith Aaron P.1ORCID,Longstreth David1,Finnegan Patrick8,Testerink Christa3ORCID,Barak Simon9ORCID,Dassanayake Maheshi1ORCID

Affiliation:

1. Department of Biological Sciences Louisiana State University Baton Rouge Louisiana 70803 USA

2. Albert Katz International School for Desert Studies Ben‐Gurion University of the Negev Sde Boqer Campus Beersheba 8499000 Israel

3. Laboratory of Plant Physiology, Plant Sciences Group Wageningen University and Research 6708PB Wageningen The Netherlands

4. Department of Plant Biology University of Illinois Urbana‐Champaign Illinois 61801 USA

5. Department of Biochemistry & Department of Psychology University of Miami Coral Gables Florida 33146 USA

6. Louisiana School for Math, Science and the Arts Natchitoches Louisiana 71457 USA

7. School of Plant Sciences and Food Security, The George S. Wise Faculty of Life Sciences Tel Aviv University Tel Aviv Israel

8. School of Biological Sciences University of Western Australia Perth 6009 Australia

9. French Associates' Institute for Agriculture and Biotechnology of Drylands, Jacob Blaustein Institutes for Desert Research Ben‐Gurion University of the Negev Sde Boqer Campus Beersheba 8499000 Israel

Abstract

SUMMARYSchrenkiella parvula, a leading extremophyte model in Brassicaceae, can grow and complete its lifecycle under multiple environmental stresses, including high salinity. Yet, the key physiological and structural traits underlying its stress‐adapted lifestyle are unknown along with trade‐offs when surviving salt stress at the expense of growth and reproduction. We aimed to identify the influential adaptive trait responses that lead to stress‐resilient and uncompromised growth across developmental stages when treated with salt at levels known to inhibit growth in Arabidopsis and most crops. Its resilient growth was promoted by traits that synergistically allowed primary root growth in seedlings, the expansion of xylem vessels across the root‐shoot continuum, and a high capacity to maintain tissue water levels by developing thicker succulent leaves while enabling photosynthesis during salt stress. A successful transition from vegetative to reproductive phase was initiated by salt‐induced early flowering, resulting in viable seeds. Self‐fertilization in salt‐induced early flowering was dependent upon filament elongation in flowers otherwise aborted in the absence of salt during comparable plant ages. The maintenance of leaf water status promoting growth, and early flowering to ensure reproductive success in a changing environment, were among the most influential traits that contributed to the extremophytic lifestyle of S. parvula.

Funder

U.S. Department of Energy

National Science Foundation

Publisher

Wiley

Subject

Cell Biology,Plant Science,Genetics

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