The Avr (Effector) Proteins HrmA (HopPsyA) and AvrPto Are Secreted in Culture from Pseudomonas syringaePathovars via the Hrp (Type III) Protein Secretion System in a Temperature- and pH-Sensitive Manner

Author:

van Dijk Karin1,Fouts Derrick E.2,Rehm Amos H.2,Hill Angela R.1,Collmer Alan2,Alfano James R.1

Affiliation:

1. Department of Biological Sciences, University of Nevada, Las Vegas, Nevada 89154-4004,1and

2. Department of Plant Pathology, Cornell University, Ithaca, New York 14583-42032

Abstract

ABSTRACT We present here data showing that the Avr proteins HrmA and AvrPto are secreted in culture via the native Hrp pathways fromPseudomonas syringae pathovars that produce these proteins. Moreover, their secretion is strongly affected by the temperature and pH of the culture medium. Both HrmA and AvrPto were secreted at their highest amounts when the temperature was between 18 and 22°C and when the culture medium was pH 6.0. In contrast, temperature did not affect the secretion of HrpZ. pH did affect HrpZ secretion, but not as strongly as it affected the secretion of HrmA. This finding suggests that there are at least two classes of proteins that travel theP. syringae pathway: putative secretion system accessory proteins, such as HrpZ, which are readily secreted in culture; and effector proteins, such as HrmA and AvrPto, which apparently are delivered inside plant cells and are detected in lower amounts in culture supernatants under the appropriate conditions. Because HrmA was shown to be a Hrp-secreted protein, we have changed the name ofhrmA to hopPsyA to reflect that it encodes a Hrp outer protein from P. syringae pv. syringae. The functional P. syringae Hrp cluster encoded by cosmid pHIR11 conferred upon P. fluorescens but not Escherichia coli the ability to secrete HopPsyA in culture. The use of these optimized conditions should facilitate the identification of additional proteins traveling the Hrp pathway and the signals that regulate this protein traffic.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

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