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First published online March 11, 2009; 10.1104/pp.109.136630 Plant Physiology 150:521-530 (2009) © 2009 American Society of Plant Biologists OPEN ACCESS ARTICLE
Physiological Roles of Glutathione S-Transferases in Soybean Root Nodules1,[C],[W],[OA]Biology Department, Reed College, Portland, Oregon 97202 (D.A.D., C.B., Z.T., A.L., H.J.K., L.J.); and Donald Danforth Plant Science Center, St. Louis, Missouri 63132 (M.G., R.E.F., C.G.T.)
Glutathione S-transferases (GSTs) are ubiquitous enzymes that catalyze the conjugation of toxic xenobiotics and oxidatively produced compounds to reduced glutathione, which facilitates their metabolism, sequestration, or removal. We report here that soybean (Glycine max) root nodules contain at least 14 forms of GST, with GST9 being most prevalent, as measured by both real-time reverse transcription-polymerase chain reaction and identification of peptides in glutathione-affinity purified extracts. GST8 was prevalent in stems and uninfected roots, whereas GST2/10 prevailed in leaves. Purified, recombinant GSTs were shown to have wide-ranging kinetic properties, suggesting that the suite of GSTs could provide physiological flexibility to deal with numerous stresses. Levels of GST9 increased with aging, suggesting a role related to senescence. RNA interference studies of nodules on composite plants showed that a down-regulation of GST9 led to a decrease in nitrogenase (acetylene reduction) activity and an increase in oxidatively damaged proteins. These findings indicate that GSTs are abundant in nodules and likely function to provide antioxidant defenses that are critical to support nitrogen fixation.
Nitrogen fixation in legume root nodules requires a careful balance of oxygen relations because of the high energy requirements and the conflicting risk for the generation of reactive oxygen species (ROS), such as hydrogen peroxide, superoxide, and organic peroxides. This results in a perilous state of affairs referred to as the "oxygen paradox." The mechanisms by which ROS are generated in nodules include the autoxidation of leghemoglobin, the strong reducing conditions, the oxidation of enzymes such as nitrogenase, ferredoxin, and hydrogenase, and the usual suite of ROS-producing electron carriers in mitochondria (for review, see Dalton, 1995
We report here that legume root nodules also contain abundant glutathione S-transferases (GSTs), a ubiquitous class of enzymes with potential antioxidant properties. GSTs are best known for the detoxification of xenobiotics such as herbicides (e.g. atrazine; Marrs, 1996
GSTs comprise a large, complex gene family in plants. For instance, there are 25 GST genes in soybean (Glycine max), 42 in maize (Zea mays), and 47 in Arabidopsis (Arabidopsis thaliana; McGonigle et al., 2000 The antioxidant function of GST may be important in nitrogen-fixing root nodules due to the high risks of oxidative damage, but the potential role of this important class of enzymes has not been examined in root nodules. Considering that other antioxidants in nodules are so important in supporting nitrogen fixation, we hypothesized that there might be a similar connection between GSTs and nodule function. In this study, we have attempted to determine the relative importance and abundance of the many GSTs in legume nodules and their potential roles as antioxidants. We have also used RNA interference (RNAi) technology in nodulated, hairy roots of soybean to examine the effects of silencing of GST genes.
Abundance of Different GSTs
Two-dimensional (2-D) gels of proteins recovered from GSH-affinity chromatography of nodule crude extracts were examined as a first screen to detect possible GSTs. These revealed a wide band of GSH-related proteins of the expected molecular mass of GSTs (approximately 25 kD), spanning a broad range of pI values from 5 to 6.5 (Supplemental Fig. S1). The banding pattern observed was in close agreement with the pattern based on predicted molecular mass and pI values. It was not practical to resolve individual GSTs on these gels, so the GSH-affinity eluates were analyzed directly by matrix-assisted laser-desorption ionization mass spectrometry (MALDI MS). The most abundant GSTs identified are shown in Table I
. Although this list is ranked by the number of assigned spectra (i.e. the number of individual peptide fragments matched to each GST), it is only a crude indicator of relative abundance, since the number of fragments depends on the number of trypsin-cleavable sites on each protein as well as the abundance of the intact proteins. In summary, the proteins identified by these procedures indicate that GST9 and GST8 are most prevalent in nodules, but at least 13 other GSTs are present, including, in order of number of assigned spectra, GSTs 10, 13, 19, 14, 7, 16, 18, 13, 15, 12, 20, 22, and 16. DHAR was also abundant in our GSH-affinity purified samples. This enzyme catalyzes the GSH-dependent reduction of dehydroascorbate to ascorbate and thus is important in maintaining the function of the ascorbate-glutathione cycle, which is critical in plant redox homeostasis. DHAR has strong sequence similarity to GSTs and may be considered as a subclass of the GST superfamily (Dixon et al., 2002a
The full list of peptides identified (Supplemental Table S1) also includes high frequencies of Suc synthase, lipoxygenases, and leghemoglobins. This is probably a reflection of the abundance of these proteins in nodules and the incomplete separation provided by one-step affinity chromatography rather than of some relationship to GSH metabolism. Protein samples processed in two consecutive passes through an affinity column contained few peptides that were not GSTs. More definitive indications of the relative abundance of GSTs in nodules was provided by real-time quantitative reverse transcription (qRT)-PCR, which confirmed that GST9 was the prevalent form in 5-week-old soybean nodules at 33.3% of ubiquitin levels, followed by GST2/10 at 22.5% and GST8 at 6.4% (Fig. 1 ). Lower levels of GST3, GST4, GST13, GST14, GST154, and GST18 were also detected. APX and SOD levels were generally high (about 50% of ubiquitin), as expected, considering their role as key antioxidants in nodules. Transcripts of leghemoglobin a (Leg a; data not shown) were very high: 12,400% of ubiquitin. The transcript levels of GST9 increased with time, reaching 54.7% of ubiquitin at 6 weeks and 78.0% at 9 weeks (n = 3, P < 0.05), suggesting a senescence-related increase, as would be expected from cumulative oxidative damage (Supplemental Fig. S2).
The pattern of relative abundance of the different GSTs was very different in other plant organs (Table II ). Whereas GST9 was clearly the most abundant form in nodules, this GST was less abundant in other tissue types. GST2/10 (our primers did not distinguish between these two) was prevalent in leaves, GST4 was prevalent in stems, and GST8 was prevalent in uninfected roots.
Heterologous Expression and Kinetic Properties of Recombinant GSTs The major GSTs from nodules were successfully expressed in Escherichia coli (Fig. 2 ) and purified to near homogeneity by nickel-agarose affinity chromatography in order to study the differences in kinetic properties. The prominent bands around 31 kD in lanes 3 to 8 (Fig. 2) correspond to GSTs with a slightly increased (approximately 2.5 kD) mass due to the myc epitope and polyhistidine region, which are provided by the TrcHis vectors. As is typical of GSTs in general, the kinetic properties of different soybean recombinant GSTs varied widely. The Km values varied between 0.7 and 5.1 mM for 1-chloro-2,4-dinitrobenzene (CDNB) and 0.016 to 1.04 mM for EA (Supplemental Table S2). The turnover number and enzyme efficiency (kcat/Km) varied by a factor of over 100. GST9 was less efficient (high Km, low turnover number, low efficiency) than other GSTs, even though this GST is most abundant in nodules.
GST RNAi Composite Plants Agrobacterium rhizogenes was used to introduce GST RNAi and control constructs to composite plants to examine the effect of GST silencing on nodule function. Since soybean is difficult to transform and regenerate, composite plants, consisting of wild-type shoots and RNAi-transformed nodulated roots, were produced. Two RNAi lines were utilized: CGT-5214, containing silencing elements targeted to GST9; and CGT-5215, containing silencing elements targeted to the entire family of GST genes. A third line of composite plants (AKK 1467B), containing a GFP reporter gene but no RNAi, was used for comparison. Callus and hairy roots were evident at shoot ends within 4 weeks of inoculation with A. rhizogenes. Approximately half of the shoots survived up to this stage. The resultant composite plants grew slowly and produced only three expanded, trifoliate leaves after an additional 4 to 6 weeks, at which time the plants were harvested. Plants left beyond this stage typically declined even more in vigor, although a few (less than 10%) of the GFP-composite controls (AKK 1467B) grew rapidly and produced numerous healthy, dark green leaves. There were no significant differences in the fresh weight of shoots, fresh weight of roots plus nodules, fresh weight of nodules only, root-to-shoot ratio, total protein extracted per gram of nodule fresh weight, or number of nodules per hairy root between the three types of composite plants. Nodules on hairy roots were visually indistinguishable from those on wild-type plants. Examination with light microscopy of numerous callus cross sections at 12 to 15 weeks after transformation showed a disorganized pattern of incomplete xylem differentiation, with partially formed xylem interspersed with thin-walled parenchyma cells (Fig. 3 ). The slow growth of the composite plants is likely a result of the poor vascular connection between the newly formed hairy roots and the stem, making it questionable to compare the physiology of these plants with nontransformed plants. Therefore, our analyses focused on comparing control composite plants (AKK 1467B) with other composite plants containing RNAi constructs.
Callus tissue, hairy roots, and nodules were found to consistently demonstrate GFP fluorescence (Fig. 4 ). Adventitious roots sometimes formed adjacent to the callus, but these could be distinguished by different morphology and lack of GFP fluorescence. These adventitious roots were removed and discarded.
Acetylene Reduction Activity Nodule function was measured based on the ability to reduce acetylene to ethylene. Preliminary experiments were conducted with composite soybeans with constructs containing two types of promoters: either Cassava vein mosaic virus (CvMV), as described in "Materials and Methods," or the superubiquitin promoter. In preliminary studies, nodules from CGT-5214 plants (CvMV promoter and GST9-specific RNAi) showed only 60% of the acetylene reduction activity of AKK 1467B (control) nodules. Activities from nodules from other constructs (CGT-5215 or either of the constructs with superubiquitin promoters) were not significantly different from those of the AKK 1467B controls. Therefore, we elected to proceed with more extensive studies focusing on constructs with CvMV promoters. In the expanded studies, acetylene reduction activity of CGT-5214 nodules was only 16% of the activity of AKK 1467B nodules (Fig. 5 ). There was no significant difference between the acetylene reduction activities of CGT-5215 and AKK 1467B nodules.
Oxidation Products in Nodules Two common indicators of oxidative damage were used: thiobarbituric acid-reactive substances (TBARS), for lipid peroxidation, and Oxyblot, for protein oxidation. The values for lipid peroxide production in nodules, as measured by the TBARS assay, were 78 ± 7.1 nmol malondialdehyde (MDA) g–1 fresh weight for AKK 1467B, 74 ± 3.7 nmol MDA g–1 fresh weight for CGT-5214, and 71 ± 2.5 nmol MDA g–1 fresh weight for CGT-5215 (means ± SE, n = 5). These values were not significantly different between the treatments. Protein oxidation as measured by western blots with antibodies detecting the formation of protein carbonyls showed a higher degree of oxidation in nodules from CGT-5214 (Fig. 6 ). This result was consistent in four western blots, with Figure 6 being representative. The interpretation of these blots is based on the collective intensity of all bands regardless of molecular mass, with the relative intensity of any single band being of less interest. On this basis, lanes 2 and 3, corresponding to extracts from CGT-5214, clearly show a darker pattern, indicating protein oxidation.
GST Activity in Extracts from Nodules of Composite Plants GST activities in crude extracts of nodules from composite plants were not significantly different for either substrate (CDNB or EA) between the different constructs. These are the two most commonly used substrates for measuring GST activity and can provide some insight into kinetic differences between the various GSTs as well as serve as a good basis for comparing nodule GSTs with those from a wide range of other organisms. The activities for all groups combined were 1.17 ± 0.13 nmol CDNB min–1 mg–1 protein and 0.17 ± 0.02 nmol EA min–1 mg–1 protein.
Real-time RT-PCR was used to compare transcript levels of key genes in nodules from composite plants (Fig. 7 ). These data are expressed in terms of the percentage of transcript levels in the control (AKK 1467B) plants and thus indicate changes that can be ascribed to RNAi effects for either the GST9-specific construct (CGT-5214) or the broader target of all GSTs (CGT-5215). Both RNAi constructs resulted in about a 50% reduction in levels of GST9. Transcript levels of GST3 and GST4 were elevated in both RNAi lines, but the absolute levels of GST4 still remained low in terms of the percentage of ubiquitin (e.g. 8.1% ± 1.6% for CGT-5214 and 12.0% ± 5.2% for CGT-5215). GST8 was elevated only in construct CGT-5214. Transcript levels of other genes tested (GST14, APX, SOD, and Leg a) remained unchanged in the RNAi lines relative to the control. These results indicate that some GSTs (e.g. GST9) are down-regulated as expected and other GSTs (e.g. GST3) are up-regulated, perhaps in compensation for the decrease of other GSTs.
It is also instructive to view these data as transcript levels expressed as a percentage of ubiquitin levels within the same treatment type (Table III ). When viewed in these terms, it is evident that there is a prominent shift in relative frequencies that is not related to GST silencing. Specifically, whereas GST9 is prevalent in nontransformed nodules, GST8 is prominent in all composite plants (including controls) regardless of silencing elements. GST14, barely present in nontransformed nodules, is also much increased in composite plants. Transcript levels of APX, SOD, and Leg a were consistent in nodules of all three types of composite plants. The specific values, again expressed as a percentage of ubiquitin for control plants, were as follows: APX, 61.9% ± 22.3%; SOD, 31.1% ± 9.8%; and Leg a, 11,700% ± 5,600%.
Transcript levels for GFP were also measured to confirm that the transgenic constructs were present and functioning in nodules of composite plants. GFP transcript levels, expressed as a percentage of ubiquitin control, were 0.9% ± 0.3% for AKK 1467B, 8.4% ± 4.2% for CGT-5214, and 1.5% ± 1.2% for CGT-5215. No GFP transcripts were detected in nontransformed nodules.
Our results indicate that GSTs should be added to the list of other proteins that are known antioxidants in nodules. These previously established antioxidants, most notably the enzymes of the ascorbate-GSH cycle and SOD, are recognized as critical in protecting nodules primarily because of the potential of leghemoglobin to produce ROS (Matamoros et al., 2003
Analysis of proteins and transcripts provides two independent lines of evidence that GST9 is the dominant form of GST in nodules. Although our data indicate that GST9 has low efficiency (high Km) for EA, this form of GST is still capable of a high specific activity at saturating substrate concentrations (McGonigle et al., 2000
The presence of so many different GSTs in soybean raises questions concerning their potential physiological roles. Soybean GSTs vary widely with respect to their activity with different substrates (McGonigle et al., 2000
Having a range of different GSTs may be especially critical in nodules because of the high potential for the production of While real-time qRT-PCR indicated a decrease in GST9 in response to RNAi silencing, there was a corresponding increase in other GSTs (Table III; Fig. 7) that may be compensatory. This could account for the observation that GST activity in crude extracts, a reflection of the total pool of GST proteins present, was unaltered in RNAi-silenced nodules. However, the decreased nitrogenase activity and increased levels of protein carbonyls suggest that this compensation was not entirely sufficient. This may suggest that GST9 has a distinct function in nodules that other GSTs cannot adequately fulfill.
The elevated levels of GSTs (especially GST9) in nodules compared with other plant tissues and the marked decline in acetylene reduction activity in nodules of the composite plant CGT-5214 (silenced for GST9) supports the conclusion that GSTs play an important role in nodule function. We also observed that an ortholog of GST9 was present at high levels in nodules of the model legume Medicago truncatula (data not shown), giving further support to this connection. The elevation in levels of protein oxidation observed in the Oxyblots of composite CGT-5214 nodules (silenced for GST9) supports the conclusion that GSTs are involved in antioxidant defense (Fig. 6). It also appears that GSTs play a wider role in plant-microbe interactions, as transcript levels of at least one GST are elevated by infection with various types of fungi, including mycorrhizal species (Strittmatter et al., 1996
Composite plants are relatively easy to produce compared with stably transformed and regenerated plants and thus are useful tools for functional studies of a range of physiological processes in nodules (Govindarajulu et al., 2009
Soybean nodules contain at least 14 of the 25 total GSTs in the soybean genome. GST9 is most abundant in nodules, followed by GST8 and GST10. Six different GSTs were expressed in E. coli to produce recombinant proteins that revealed a wide range of kinetic properties, suggesting that the range of GSTs may provide physiological flexibility to deal with various toxic products. RNAi silencing of GST9 in nodules of composite soybean plants resulted in decreased GST9 transcript levels, decreased nitrogenase (acetylene reduction) activity, and increased levels of oxidized protein products. This is consistent with the presumed role of GSTs as antioxidants. Several other GSTs were up-regulated in GST9-silenced plants, suggesting a compensatory response.
2-D Gels A theoretical 2-D "fingerprint" of soybean (Glycine max) GSTs was constructed from known Mr values with a first-dimension pH range of 4 to 7 based on pI values predicted by Vector NTI 7 Software (Invitrogen). An extract of nodule total protein was prepared as described below, passed through a GSH-affinity chromatography column, concentrated to a volume of 25 µL (approximately 60 µg of protein), and combined with 300 µL of ReadyPrep Rehydration/Sample buffer (Bio-Rad). The sample was applied to IPG ReadyStrips (7 cm and pH 4–7; Bio-Rad) at 125 µL strip–1 and incubated at room temperature for 18 h. Samples were focused by electrophoresis along the IPG strips under the following conditions with the current not exceeding 50 µA IPG strip–1: 250 V for 15 min, rapid ramp to 4,000 V over 2 h, and constant 4,000 V for 5 h for a total of 20 kVh. Strips were equilibrated for 10 min in 50 mM Tris-HCl buffer (pH 8.8) containing 6 M urea, 30% glycerol, 2% SDS, 0.05% bromphenol blue, and 2% dithiothreitol. The solution was then replaced with the same buffer containing 2.5% iodoacetamide instead of dithiothreitol and incubated again for 10 min. The IPG strips were transferred to 10-cm 12% Tris-HCl Ready Gels (Bio-Rad). The second-dimension separation was carried out at 150 V for 1 h. Protein was visualized using Silver Stain Plus (Bio-Rad).
Nodulated soybeans (Williams 82) were grown in a greenhouse as described by Dalton et al. (1993)
Total RNA was isolated from 10 to 20 mg of nodules after homogenization using the RNeasy Plant Mini Kit (Qiagen) following the manufacturer's protocol. All samples were treated with Turbo DNA-free DNase (Ambion). RNA concentration was measured by UV spectrophotometry (A260 and A280) using a BioPhotometer (Eppendorf). cDNA was synthesized using approximately 400 ng of RNA and oligo(dT) primers with the iScript cDNA Synthesis Kit (Bio-Rad) as prescribed by the manufacturer. Specifically, samples were incubated at 65°C for 5 min without reverse transcriptase and snap chilled on ice for 1 min. Reverse transcriptase was then added, and the samples were incubated at 42°C for 90 min followed by 85°C for 5 min. Duplicate samples received nanopure water in place of reverse transcriptase to check for genomic DNA contamination by qPCR. qRT-PCR was used to determine the relative expression of genes normalized against ubiquitin. Primers (Supplemental Table S3) were designed to amplify 3'-end products between 150 and 200 bp with annealing temperatures between 54°C and 56°C using Primer3 (frodo.wi.mit.edu/), with soybean mRNA sequences acquired from the NCBI (www.ncbi.nlm.nih.gov/sites/entrez) and the Gene Index Project (compbio.dfci.harvard.edu/tgi/plant.html) databases. All reactions were carried out using 0.2 µL of 10 µM primer mix, 5 µL of Immomix 2x (Bioline), 0.15 µL of 50x SYBR Green (Invitrogen), 2 µL of cDNA template diluted 1:40 in nanopure water, and 2.65 µL of diethyl pyrocarbonate-treated nanopure water (www.growcells.com) in a 96-well DNA Engine Opticon 2 (MJ Research/Bio-Rad). PCR products were confirmed by agarose gel electrophoresis as well as a qPCR dissociation curve (melting curve) plotting the change in raw fluorescence between 60°C and 95°C. PCR product size was confirmed by agarose gel electrophoresis and visualized by UV fluorescence. All primers were analyzed for qPCR efficiency (E) using serial dilutions of cDNA acquired from wild-type soybean (1:10, 1:40, 1:160, and 1:640 in nanopure water), where E = 10–m and m = the slope of the line of least-squares fit of the log of the quantity versus cycle threshold (Ct; results ranged from E = 1.8 to E = 1.99). Relative expression for each gene of interest (GOI) was determined with the following formula (Livak and Schmittgen, 2001
If Eubiquitin = EGOI, then the calculation 2–[
Full-length EST clones of soybean GSTs 3, 4, 8, 9,14, and 18 were provided by Daniel O'Keefe (DuPont; McGonigle et al., 2000
A 223-bp GST9 gene-specific gene fragment and a 166-bp GST family-specific gene fragment were amplified by PCR from soybean genomic DNA using GST9 gene-specific forward primer (5'-GCAGGGAAGAAGGAGTTTATC-3'), GST9 gene-specific reverse primer (5'-TGGACACAGCCTCTCTTTGC-3'), GST family-specific forward primer (5'-TGCTTGGGAGTTACTTATAGC-3'), and GST family-specific reverse primer (5'-CAAACATTACAACATCCATCC-3'), respectively. The amplified PCR fragments were cloned into the entry vector CGT-11050 by TA cloning using two AhdI sites (engineered to produce 3' T-overhangs). Entry vector CGT-11050 utilizes the origin of replication and chloramphenicol resistance (CmR) gene of plasmid pBC KS+ (Stratagene) combined with the Gateway system of pENTR4 (Invitrogen) engineered to contain AhdI sites flanking the ccdB gene located between the attL1 and attL2 recombination sites. The RNAi entry vector was recombined with the destination vector CGT-11018A using the LR clonase reaction (Invitrogen). The destination vector CGT-11018A consists of three expression modules within the T-DNA: (1) a bar scorable marker module (nopaline synthase promoter [pNOS] driving expression of the bar gene terminated with its cognate terminator [tNOS] flanked by NotI sites); (2) a GFP selectable marker module flanked by PacI sites (Collier et al. 2005
Production of Composite Plants
Composite plants (wild-type shoots and transgenic roots) were generated as described by Collier et al. (2005)
Callus tissue, which had formed at the site of inoculation with A. rhizogenes, was separated from hairy roots and stems. The callus was fixed in 3% glutaraldehyde in 0.1 M potassium phosphate buffer for 1 h. The tissue was then dehydrated through graded ethanol, embedded in LR White resin, cut into 1-µm sections, and stained with toluidine blue.
Nodules were harvested from 87 composite plants (32 CGT-5215, 31 CGT-5214, and 25 AKK 1467B) at 32 to 34 d after inoculation. Each plant was separated into shoots, lateral roots emerging above the cut site, and hairy roots emerging from callus tissue at the cut site. Each portion was weighed, and the number of roots was counted. Nodules from hairy roots were then carefully removed with forceps. Nodules from six or seven plants were pooled to obtain enough material to form five samples from each treatment type. Acetylene reduction (as described by Dalton et al., 1991
The TBARS assay was modified from Puppo et al. (1991) Oxidative damage to proteins was assessed by derivatization of protein carbonyls to 2,4-dinitrophenylhydrazone using the Oxyblot Protein Oxidation Detection Kit (Millipore) followed by separation on 12% SDS-PAGE precast gels (Bio-Rad). Separated proteins were electrophoretically transferred to nitrocellulose and immunoblotted following the Oxyblot instructions with a rabbit anti-2,4-dinitrophenylhydrazone primary antibody and secondarily with alkaline phosphatase conjugated to goat anti-rabbit IgG antibody (Immune Blot Assay Kit; Bio-Rad) and developed according to the manufacturer's instructions.
Protein extraction from nodules was performed as described by Dalton et al. (1993) Sequence data from this article can be found in the GenBank/EMBL data libraries under accession numbers M20363 (GST1), AF243365 (GST2/10), X68819 (GST3), AF048978 (GST4), AF243361 (GST6/7), AF243363 (GST8), AF243364 (GST9), AF243368 (GST13), AF243369 (GST14), AF243370 (GST15), AF243373 (GST18), L10292 (APX), L11632 (glutathione reductase), and V00453 (Leg a).
The following materials are available in the online version of this article.
We thank Dr. Larry David (Oregon Health Sciences University) for analysis of proteins by MALDI MS. Received February 3, 2009; accepted March 8, 2009; published March 11, 2009.
1 This work was supported by the National Science Foundation (grant nos. IOS–0517688 to D.A.D. and 0421620 to M.G. and C.G.T.) and the M.J. Murdock Charitable Trust Partners in Science Program. The author responsible for distribution of materials integral to the findings presented in this article in accordance with the policy described in the Instructions for Authors (www.plantphysiol.org) is: David A. Dalton (david.dalton{at}reed.edu).
[C] Some figures in this article are displayed in color online but in black and white in the print edition.
[W] The online version of this article contains Web-only data.
[OA] Open Access articles can be viewed online without a subscription. www.plantphysiol.org/cgi/doi/10.1104/pp.109.136630 * Corresponding author; e-mail david.dalton{at}reed.edu.
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