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. 1988 Nov;88(3):815–822. doi: 10.1104/pp.88.3.815

Metabolite Diffusion into Bundle Sheath Cells from C4 Plants

Relation to C4 Photosynthesis and Plasmodesmatal Function

Hendrik Weiner 1,1, James N Burnell 1, Ian E Woodrow 1, Hans W Heldt 1,1, Marshall D Hatch 1
PMCID: PMC1055667  PMID: 16666390

Abstract

The present studies provide the first measurements of the resistance to diffusive flux of metabolites between mesophyll and bundle sheath cells of C4 plants. Species examined were Panicum miliaceum, Urochloa panicoides, Atriplex spongiosa, and Zea mays. Diffusive flux of metabolites into isolated bundle sheath cells was monitored by following their metabolic transformation. Evidence was obtained that the observed rapid fluxes occurred via functional plasmodesmata. Diffusion constants were determined from the rate of transformation of limiting concentrations of metabolites via cytosolic enzymes with high potential velocities and favorable equilibrium constants. Values on a leaf chlorophyll basis ranged between 1 and 5 micromoles per minute per milligram of chlorophyll per millimolar gradient depending on the molecular weight of the metabolite and the source of bundle sheath cells. Diffusion of metabolites into these cells was unaffected by a wide variety of compounds including respiratory inhibitors, monovalent and divalent cations, and plant hormones, but it was interrupted by treatments inducing cell plasmolysis. The molecular weight exclusion limit for permeation of compounds into bundle sheath cells was in the range of 850 to 900. These cells provide an ideal system for the quantitative study of plasmodesmatal function.

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Selected References

These references are in PubMed. This may not be the complete list of references from this article.

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