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N. Murata

Publications and source records attributed to N. Murata.

5 recordsLinked to original sources

The role of glycine betaine in the protection of plants from stress: clues from transgenic plants.

The acclimation of a plant to a constantly changing environment involves the accumulation of certain organic compounds of low molecular mass, known collectively as compatible solutes, in the cytoplasm. The evidence from numerous investigations of the physiology, genetics, biophysics and biochemistry of plants strongly suggests that glycine betaine (GB), an amphoteric quaternary amine, plays an important role as a compatible solute in plants under various types of environmental stress, such as high levels of salts and low temperature. Plant species vary in their capacity to synthesize GB and some plants, such as spinach and barley, accumulate relatively high levels of GB in their chloroplasts while others, such as Arabidopsis and tobacco, do not synthesize this compound. Genetic engineering has allowed the introduction into GB-deficient species of biosynthetic pathways to GB from both micro-organisms and higher plants; this approach has facilitated investigations of the importance of GB in stress protection. In this review, we summarize recent progress in the genetic manipulation of the synthesis of GB, with special emphasis on the relationship between the protective effects of GB in vivo and those documented in vitro.

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Genetic Enhancement of the Ability to Tolerate Photoinhibition by Introduction of Unsaturated Bonds into Membrane Glycerolipids.

Strong light leads to damage to photosynthetic machinery, particularly at low temperatures, and the main site of the damage is the D1 protein of the photosystem II (PSII) complex. Here we describe that transformation of Synechococcus sp. PCC 7942 with the desA gene for a [delta]12 desaturase increased unsaturation of membrane lipids and enhanced tolerance to strong light. To our knowledge, this is the first report of the successful genetic enhancement of tolerance to strong light. Analysis of the light-induced inactivation and of the subsequent recovery of the activity of the PSII complex revealed that the recovery process was markedly accelerated by the genetic transformation. Labeling experiments with [35S]L-methionine also revealed that the synthesis of the D1 protein de novo at low temperature, which was a prerequisite for the restoration of the PSII complex, was much faster in the transformed cells than in the wild-type cells. These findings demonstrate that the ability of membrane lipids to desaturate fatty acids is important for the photosynthetic organisms to tolerate strong light, by accelerating the synthesis of the D1 protein de novo.

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The Unsaturation of Membrane Lipids Stabilizes Photosynthesis against Heat Stress.

The effect of the unsaturation of glycerolipids of thylakoid membranes on the heat tolerance of the photosynthetic evolution of oxygen was studied in vivo by mutation and transformation of fatty-acid desaturases in the cyanobacterium Synechocystis PCC6803. The experimental results indicate that elimination of dienoic lipid molecules decreases, to a small but distinct extent, the heat tolerance of photosynthetic oxygen evolution, but that elimination of trienoic lipid molecules has no effect on the heat tolerance. This conclusion contrasts with the previous hypothesis that the heat tolerance of photosynthesis is enhanced upon an increase in the level of saturation of membrane lipids. It is also shown that light does not affect the nature of the effect of lipid unsaturation on the heat tolerance of photosynthesis.

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An in Vivo Study of Substrate Specificities of Acyl-Lipid Desaturases and Acyltransferases in Lipid Synthesis in Synechocystis PCC6803.

The cyanobacterium Synechocystis PCC6803 was fed heptanoic acid to study the substrate specificities of desaturases and acyltransferases in lipid synthesis. This aliphatic acid was elongated to C15, C17, and C19 fatty acids, which were incorporated into polar glycerolipids and desaturated. The double bonds were located at the [delta]6, [delta]9, [delta]12, and [omega]3 positions of the fatty acids. This suggests that the [delta]9 desaturase counts the carbon number from the carboxy terminus, whereas the so-called [delta]15 desaturase counts from the methyl terminus. The counting mechanisms of the [delta]6 and [delta]12 desaturases are not fully understood. In the distribution of fatty acids at the sn positions of the glycerol moiety, the C17, C18, and C19 fatty acids were located at the sn-1 position, whereas the C15 and C16 fatty acids were located at the sn-2 position. This suggests that glycerol-3-phosphate acyltransferase specifically transfers heptadecanoic, octadecanoic, and nonadecanoic acids, whereas 1-acylglycerol-3-phosphate acyltransferase specifically transfers pentadecanoic and hexadecanoic acids.

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