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Key Steps in Type III Secretion System (T3SS) Towards Translocon Assembly with Potential Sensor at Plant Plasma Membrane

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Specialty Molecular Biology
Date 2014 Dec 4
PMID 25469869
Citations 19
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Abstract

Many plant- and animal-pathogenic Gram-negative bacteria employ the type III secretion system (T3SS) to translocate effector proteins from bacterial cells into the cytosol of eukaryotic host cells. The effector translocation occurs through an integral component of T3SS, the channel-like translocon, assembled by hydrophilic and hydrophobic proteinaceous translocators in a two-step process. In the first, hydrophilic translocators localize to the tip of a proteinaceous needle in animal pathogens, or a proteinaceous pilus in plant pathogens, and associate with hydrophobic translocators, which insert into host plasma membranes in the second step. However, the pilus needs to penetrate plant cell walls in advance. All hydrophilic translocators so far identified in plant pathogens are characteristic of harpins: T3SS accessory proteins containing a unitary hydrophilic domain or an additional enzymatic domain. Two-domain harpins carrying a pectate lyase domain potentially target plant cell walls and facilitate the penetration of the pectin-rich middle lamella by the bacterial pilus. One-domain harpins target plant plasma membranes and may play a crucial role in translocon assembly, which may also involve contrapuntal associations of hydrophobic translocators. In all cases, sensory components in the target plasma membrane are indispensable for the membrane recognition of translocators and the functionality of the translocon. The conjectural sensors point to membrane lipids and proteins, and a phosphatidic acid and an aquaporin are able to interact with selected harpin-type translocators. Interactions between translocators and their sensors at the target plasma membrane are assumed to be critical for translocon assembly.

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References
1.
Galan J, Collmer A . Type III secretion machines: bacterial devices for protein delivery into host cells. Science. 1999; 284(5418):1322-8. DOI: 10.1126/science.284.5418.1322. View

2.
Neyt C, Cornelis G . Insertion of a Yop translocation pore into the macrophage plasma membrane by Yersinia enterocolitica: requirement for translocators YopB and YopD, but not LcrG. Mol Microbiol. 1999; 33(5):971-81. DOI: 10.1046/j.1365-2958.1999.01537.x. View

3.
Zhu W, MaGbanua M, White F . Identification of two novel hrp-associated genes in the hrp gene cluster of Xanthomonas oryzae pv. oryzae. J Bacteriol. 2000; 182(7):1844-53. PMC: 101866. DOI: 10.1128/JB.182.7.1844-1853.2000. View

4.
Rossier O, Van Den Ackerveken G, Bonas U . HrpB2 and HrpF from Xanthomonas are type III-secreted proteins and essential for pathogenicity and recognition by the host plant. Mol Microbiol. 2000; 38(4):828-38. DOI: 10.1046/j.1365-2958.2000.02173.x. View

5.
Lee J, Klusener B, Tsiamis G, Stevens C, Neyt C, Tampakaki A . HrpZ(Psph) from the plant pathogen Pseudomonas syringae pv. phaseolicola binds to lipid bilayers and forms an ion-conducting pore in vitro. Proc Natl Acad Sci U S A. 2001; 98(1):289-94. PMC: 14583. DOI: 10.1073/pnas.98.1.289. View