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1.
Plant Cell Physiol ; 59(4): 715-723, 2018 Apr 01.
Article in English | MEDLINE | ID: mdl-29237029

ABSTRACT

The stem parasite dodder, Cuscuta japonica, has evolved a specialized root-like organ, the haustorium, which is differentiated from the stem. In order to take up water and nutrients, C. japonica reprograms haustorial cells to vascular cells, connecting the host's vascular system to its own. However, little is known about vascular differentiation in haustoria. In this study, we first confirmed the temporal and spatial expression profiles of vascular cell type-specific genes, CjAPL, CjSEOR1, CjWOX4 and CjTED7, to examine whether phloem companion cells, developing sieve elements, procambial cells and differentiating xylem cells, respectively, are present in the haustoria. CjAPL and CjSEOR1 decreased, and CjWOX4 showed a transient increase before the onset of xylem vessel formation, and then decreased. CjTED7 increased coincidentally with xylem vessel formation. In situ hybridization demonstrated that CjWOX4-expressing cells and phloem-conducting cells are in close proximity, and occupied a domain distinguishable from xylem vessels, suggesting differentiation of a phloem/procambial domain and a xylem domain in the haustorium. Secondly, expression of regulatory genes that are involved in determination of the fate of procambial cells was investigated. Expression patterns of CjCLE41, CjGSK3 and CjBES1suggested that TDIF-TDR-GSK3-mediated signaling is activated in haustoria. The natural antisense transcript of CjCLE41 was detected in haustoria, implying the sense regulation of CjCLE41. Expression profiles of the regulatory genes, combined with those of cell type-specific marker genes, suggest that reprogramming of haustorial cells to vascular cells is regulated in a way that allows the immediate formation of xylem vessels by alleviating inhibition of xylem differentiation.


Subject(s)
Cuscuta/anatomy & histology , Cuscuta/cytology , Plant Vascular Bundle/anatomy & histology , Plant Vascular Bundle/cytology , Cell Differentiation , Cuscuta/genetics , Gene Expression Profiling , Gene Expression Regulation, Plant , Genes, Plant , Genes, Regulator , MicroRNAs/genetics , MicroRNAs/metabolism , Phloem/metabolism , Plant Vascular Bundle/genetics , RNA, Antisense/metabolism , Time Factors , Xylem/metabolism
2.
Plant Cell Physiol ; 58(11): 1868-1877, 2017 Nov 01.
Article in English | MEDLINE | ID: mdl-29016904

ABSTRACT

Stem parasitic plants (Cuscuta spp.) develop a specialized organ called a haustorium to penetrate their hosts' stem tissues. To reach the vascular tissues of the host plant, the haustorium needs to overcome the physical barrier of the cell wall, and the parasite-host interaction via the cell wall is a critical process. However, the cell wall components responsible for the establishment of parasitic connections have not yet been identified. In this study, we investigated the spatial distribution patterns of cell wall components at a parasitic interface using parasite-host complexes of Cuscuta campestris-Arabidopsis thaliana and Cuscuta japonica-Glycine max. We focused on arabinogalactan proteins (AGPs), because AGPs accumulate in the cell walls of searching hyphae of both C. campestris and C. japonica. We found more AGPs in elongated haustoria than in pre haustoria, indicating that AGP accumulation is developmentally regulated. Using in situ hybridization, we identified five genes in C. campestris that encode hyphal-expressed AGPs that belong to the fasciclin-like AGP (FLA) family, which were named CcFLA genes. Three of the five CcFLA genes were expressed in the holdfast, which develops on the Cuscuta stem epidermis at the attachment site for the host's stem epidermis. Our results suggest that AGPs are involved in hyphal elongation and adhesion to host cells, and in the adhesion between the epidermal tissues of Cuscuta and its host.


Subject(s)
Cuscuta/cytology , Host-Parasite Interactions/physiology , Mucoproteins/metabolism , Plant Stems/metabolism , Arabidopsis/parasitology , Cell Adhesion/physiology , Cell Wall/immunology , Cell Wall/metabolism , Cuscuta/genetics , Cuscuta/metabolism , Epitopes , Gene Expression Regulation, Plant , Mucoproteins/chemistry , Mucoproteins/genetics , Plant Epidermis/cytology , Plant Epidermis/metabolism , Plant Proteins/chemistry , Plant Proteins/genetics , Plant Proteins/metabolism , Glycine max/parasitology
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