Intersection of transfer cells with phloem biology-broad evolutionary trends, function, and induction

被引:41
作者
Andriunas, Felicity A. [1 ]
Zhang, Hui-Ming [1 ]
Xia, Xue [1 ]
Patrick, John W. [1 ]
Offler, Christina E. [1 ]
机构
[1] Univ Newcastle, Sch Environm & Life Sci, Dept Biol Sci, Callaghan, NSW 2308, Australia
基金
澳大利亚研究理事会;
关键词
transfer cell; ingrowth wall architecture; phloem transport; inductive signals; EPIDERMAL TRANSFER CELLS; VICIA-FABA L; COMPARATIVE LEAF STRUCTURE; VASCULAR TRANSFER CELLS; ROOT-KNOT NEMATODES; MINOR VEINS; PHOTOSYNTHATE TRANSFER; NUCELLAR PROJECTION; GENE-EXPRESSION; CELLULAR-DIFFERENTIATION;
D O I
10.3389/fpls.2013.00221
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Transfer cells (TCs) are ubiquitous throughout the plant kingdom. Their unique ingrowth wall labyrinths, supporting a plasma membrane enriched in transporter proteins, provides these cells with an enhanced membrane transport capacity for resources. In certain plant species, TCs have been shown to function to facilitate phloem loading and/or unloading at cellular sites of intense resource exchange between symplasmic/apoplasmic compartments. Within the phloem, the key cellular locations of TCs are leaf minor veins of collection phloem and stem nodes of transport phloem. In these locations, companion and phloem parenchyma cells trans-differentiate to a TC morphology consistent with facilitating loading and re-distribution of resources, respectively. At a species level, occurrence of TCs is significantly higher in transport than in collection phloem. TCs are absent from release phloem, but occur within post-sieve element unloading pathways and particularly at interfaces between generations of developing Angiosperm seeds. Experimental accessibility of seed TCs has provided opportunities to investigate their inductive signaling, regulation of ingrowth wall formation and membrane transport function. This review uses this information base to explore current knowledge of phloem transport function and inductive signaling for phloem-associated TCs. The functional role of collection phloem and seed TCs is supported by definitive evidence, but no such information is available for stem node TCs that present an almost intractable experimental challenge. There is an emerging understanding of inductive signals and signaling pathways responsible for initiating trans-differentiation to a TC morphology in developing seeds. However, scant information is available to comment on a potential role for inductive signals (auxin, ethylene and reactive oxygen species) that induce seed TCs, in regulating induction of phloem-associated TCs. Biotic phloem invaders have been used as a model to speculate on involvement of these signals.
引用
收藏
页数:20
相关论文
共 147 条
[11]   Regulation and execution of programmed cell death in response to pathogens, stress and developmental cues [J].
Beers, EP ;
McDowell, JM .
CURRENT OPINION IN PLANT BIOLOGY, 2001, 4 (06) :561-567
[12]  
Bel A. J. E. van, 1993, Progress in Botany, V54, P134
[13]   CYTOCHEMICAL-LOCALIZATION OF ADENOSINE-TRIPHOSPHATASE IN PHLOEM OF PISUM-SATIVUM AND ITS RELATION TO FUNCTION OF TRANSFER CELLS [J].
BENTWOOD, BJ ;
CRONSHAW, J .
PLANTA, 1978, 140 (02) :111-120
[14]   Specific aquaporins facilitate the diffusion of hydrogen peroxide across membranes [J].
Bienert, Gerd P. ;
Moller, Anders L. B. ;
Kristiansen, Kim A. ;
Schulz, Alexander ;
Moller, Ian M. ;
Schjoerring, Jan K. ;
Jahn, Thomas P. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (02) :1183-1192
[15]   Transfer of phloem-mobile substances from the host plants to the holoparasite Cuscuta sp. [J].
Birschwilks, M ;
Haupt, S ;
Hofius, D ;
Neumann, S .
JOURNAL OF EXPERIMENTAL BOTANY, 2006, 57 (04) :911-921
[16]   Arabidopsis thaliana is a susceptible host plant for the holoparasite Cuscuta spec [J].
Birschwilks, Mandy ;
Sauer, Norbert ;
Scheel, Dierk ;
Neumann, Stefanie .
PLANTA, 2007, 226 (05) :1231-1241
[17]   High-resolution histographical mapping of glucose concentrations in developing cotyledons of Vicia faba in relation to mitotic activity and storage processes:: glucose as a possible developmental trigger [J].
Borisjuk, L ;
Walenta, S ;
Weber, H ;
Mueller-Klieser, W ;
Wobus, U .
PLANT JOURNAL, 1998, 15 (04) :583-591
[18]  
Borisjuk L, 2002, DEVELOPMENT, V129, P1595
[19]   IMMUNOLOCALIZATION OF THE PLASMA-MEMBRANE H+-ATPASE IN MINOR VEINS OF VICIA-FABA IN RELATION TO PHLOEM LOADING [J].
BOUCHEPILLON, S ;
FLEURATLESSARD, P ;
FROMONT, JC ;
SERRANO, R ;
BONNEMAIN, JL .
PLANT PHYSIOLOGY, 1994, 105 (02) :691-697
[20]   Structural changes induced by NaCl in companion and transfer cells of Medicago sativa blades [J].
Boughanmi, N ;
Michonneau, P ;
Verdus, MC ;
Piton, F ;
Ferjani, E ;
Bizid, E ;
Fleurat-Lessard, P .
PROTOPLASMA, 2003, 220 (3-4) :179-187