Differentiation of plant cells during symbiotic nitrogen fixation
Open Access
- 16 April 2002
- journal article
- website
- Published by Wiley in Comparative and Functional Genomics
- Vol. 3 (2) , 151-157
- https://doi.org/10.1002/cfg.155
Abstract
Nitrogen-fixing symbioses between legumes and bacteria of the family Rhizobiaceae involve differentiation of both plant and bacterial cells. Differentiation of plant root cells is required to build an organ, the nodule, which can feed and accommodate a large population of bacteria under conditions conducive to nitrogen fixation. An efficient vascular system is built to connect the nodule to the root, which delivers sugars and other nutrients to the nodule and removes the products of nitrogen fixation for use in the rest of the plant. Cells in the outer cortex differentiate to form a barrier to oxygen diffusion into nodules, which helps to produce the micro-aerobic environment necessary for bacterial nitrogenase activity. Cells of the central, infected zone of nodules undergo multiple rounds of endoreduplication, which may be necessary for colonisation by rhizobia and may enable enlargement and greater metabolic activity of these cells. Infected cells of the nodule contain rhizobia within a unique plant membrane called the peribacteroid or symbiosome membrane, which separates the bacteria from the host cell cytoplasm and mediates nutrient and signal exchanges between the partners. Rhizobia also undergo differentiation during nodule development. Not surprisingly, perhaps, differentiation of each partner is dependent upon interactions with the other. High-throughput methods to assay gene transcripts, proteins, and metabolites are now being used to explore further the different aspects of plant and bacterial differentiation. In this review, we highlight recent advances in our understanding of plant cell differentiation during nodulation that have been made, at least in part, using high-throughput methods.Keywords
Funding Information
- European Union
This publication has 58 references indexed in Scilit:
- Temporal and Spatial Order of Events During the Induction of Cortical Cell Divisions in White Clover byRhizobium leguminosarumbv.trifoliiInoculation or Localized Cytokinin AdditionMolecular Plant-Microbe Interactions®, 2000
- Expression Profiles of 22 Novel Molecular Markers for Organogenetic Pathways Acting in Alfalfa Nodule DevelopmentMolecular Plant-Microbe Interactions®, 2000
- Identification of Novel Putative Regulatory Genes Induced During Alfalfa Nodule Development with a Cold-Plaque Screening ProcedureMolecular Plant-Microbe Interactions®, 1998
- Legume nodule organogenesisTrends in Plant Science, 1998
- Construction of a Lotus japonicus Late Nodulin Expressed Sequence Tag Library and Identification of Novel Nodule-Specific GenesPlant Physiology, 1997
- A Gene That Encodes a Proline-Rich Nodulin with Limited Homology to PsENOD12 Is Expressed in the Invasion Zone of Rhizobium meliloti-Induced Alfalfa Root NodulesPlant Physiology, 1993
- Sequential induction of nodulin gene expression in the developing pea nodule.Plant Cell, 1990
- A dicarboxylate transporter on the peribacteroid membrane of soybean nodulesFEBS Letters, 1988
- Development of root nodules of mung bean (Vigna radiata): a reinvestigation of endocytosisCanadian Journal of Botany, 1981
- Identification of “nodule-specific” host proteins (nodulins) involved in the development of Rhizobium-Legume symbiosisCell, 1980