Functional Characterization of Phosphoenolpyruvate Carboxykinase-Type C4 Leaf Anatomy: Immuno-, Cytochemical and Ultrastructural Analyses
Open Access
- 16 May 2006
- journal article
- research article
- Published by Oxford University Press (OUP) in Annals of Botany
- Vol. 98 (1), 77-91
- https://doi.org/10.1093/aob/mcl096
Abstract
• Background and Aims Species having C4 photosynthesis belonging to the phosphoenolpyruvate carboxykinase (PEP-CK) subtype, which are found only in family Poaceae, have the most complex biochemistry among the three C4 subtypes. In this study, biochemical (western blots and immunolocalization of some key photosynthetic enzymes) and structural analyses were made on several species to further understand the PEP-CK system. This included PEP-CK-type C4 species Urochloa texana (subfamily Panicoideae), Spartinaalterniflora and S. anglica (subfamily Chloridoideae), and an NADP-ME-type C4 species, Echinochloa frumentacea, which has substantial levels of PEP-CK. • Key Results Urochloa texana has typical Kranz anatomy with granal chloroplasts scattered around the cytoplasm in bundle sheath (BS) cells, while the Spartina spp. have BS forming long adaxial extensions above the vascular tissue and with chloroplasts in a strictly centrifugal position. Despite some structural and size differences, in all three PEP-CK species the chloroplasts in mesophyll and BS cells have a similar granal index (% appressed thylakoids). Immunolocalization studies show PEP-CK (which catalyses ATP-dependent decarboxylation) is located in the cytosol, and NAD-ME in the mitochondria, in BS cells, and in the BS extensions of Spartina. In the NADP-ME species E. frumentacea, PEP-CK is also located in the cytosol of BS cells, NAD-ME is very low, and the source of ATP to support PEP-CK is not established. • Conclusions Representative PEP-CK species from two subfamilies of polyphyletic origin have very similar biochemistry, compartmentation and chloroplast grana structure. Based on the results with PEP-CK species, schemes are presented with mesophyll and BS chloroplasts providing equivalent reductive power which show bioenergetics of carbon assimilation involving C4 cycles (PEP-CK and NAD-ME, the latter functioning to generate ATP to support the PEP-CK reaction), and the consequences of any photorespiration.Keywords
This publication has 40 references indexed in Scilit:
- Mechanistic stoichiometry of mitochondrial oxidative phosphorylationBiochemistry, 1991
- NAD‐malic enzyme from plantsFEBS Letters, 1985
- Intracellular location of phosphoenolpyruvate carboxykinase and other C4 photosynthetic enzymes in mesophyll and bundle sheath protoplasts of Panicum maximumPlant Science Letters, 1983
- Chlorophyll‐protein levels and degree of thylakoid stacking in radish chloroplasts from high‐light, low‐light and bentazon‐treated plantsPhysiologia Plantarum, 1982
- Occurrence of the suberized lamella in leaves of grasses of different photosynthetic types. I. In parenchymatous bundle sheaths and PCR (?Kranz?) sheathsProtoplasma, 1981
- Intracellular localization of phosphoenolpyruvate carboxykinase in leaves of C4 and CAM plantsPlant Science Letters, 1980
- Subdivision of C4-Pathway Species Based on Differing C4 Acid Decarboxylating Systems and Ultrastructural FeaturesFunctional Plant Biology, 1975
- Photosynthesis in mesophyll protoplasts and bundle sheath cells of various types of C4 plants II. Chlorophyll and hill reaction studiesZeitschrift für Pflanzenphysiologie, 1974
- Photosynthesis in mesophyll protoplasts and bundle sheath cells of various types of C4 plants I. Carboxylases and CO2 fixation studiesZeitschrift für Pflanzenphysiologie, 1974
- Phosphoenolpyruvate carboxykinase in leaves of certain plants which fix CO2 by the C4-dicarboxylic acid cycle of photosynthesisBiochemical and Biophysical Research Communications, 1971