MAMP-elicited changes in amino acid transport activity contribute to restricting bacterial growth

Author:

Zhang Xiaomu1ORCID,Khadka Pramod1ORCID,Puchalski Patryk1,Leehan Joss D1ORCID,Rossi Franco R12ORCID,Okumoto Sakiko3ORCID,Pilot Guillaume3ORCID,Danna Cristian H1ORCID

Affiliation:

1. Department of Biology, University of Virginia , Charlottesville, Virginia 22904, USA

2. Instituto Tecnológico Chascomús (INTECH), Universidad Nacional de General San Martín (UNSAM)—Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET) , Chascomús, Buenos Aires 7130, Argentina

3. School of Plant and Environmental Sciences, Virginia Tech , Blacksburg, Virginia 24061, USA

Abstract

Abstract Plants live under the constant challenge of microbes that probe the environment in search of potential hosts. Plant cells perceive microbe-associated molecular patterns (MAMPs) from incoming microbes and activate defense responses that suppress attempted infections. Despite the substantial progress made in understanding MAMP-triggered signaling pathways, the downstream mechanisms that suppress bacterial growth and disease remain poorly understood. Here, we uncover how MAMP perception in Arabidopsis (Arabidopsis thaliana) elicits dynamic changes in extracellular concentrations of free L-amino acids (AA). Within the first 3 h of MAMP perception, a fast and transient inhibition of AA uptake produces a transient increase in extracellular AA concentrations. Within 4 and 12 h of MAMP perception, a sustained enhanced uptake activity decreases the extracellular concentrations of AA. Gene expression analysis showed that salicylic acid-mediated signaling contributes to inducing the expression of AA/H+ symporters responsible for the MAMP-induced enhanced uptake. A screening of loss-of-function mutants identified the AA/H+ symporter lysin/histidine transporter-1 as an important contributor to MAMP-induced enhanced uptake of AA. Infection assays in lht1-1 seedlings revealed that high concentrations of extracellular AA promote bacterial growth in the absence of induced defense elicitation but contribute to suppressing bacterial growth upon MAMP perception. Overall, the data presented in this study reveal a mechanistic connection between MAMP-induced plant defense and suppression of bacterial growth through the modulation of AA transport activity.

Funder

University of Virginia 4-VA

National Science Foundation CAREER

National Scientific and Technical Research Council

International Union for Biochemistry and Molecular Biology

Wood–Whelan Fellowship

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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