| Literature DB >> 28608391 |
Katja Bernfur1, Gudrun Rutsdottir1, Cecilia Emanuelsson1.
Abstract
The small heat shock protein (sHsp) chaperones are crucial for cell survival and can prevent aggregation of client proteins that partially unfold under destabilizing conditions. Most investigations on the chaperone activity of sHsps are based on a limited set of thermosensitive model substrate client proteins since the endogenous targets are often not known. There is a high diversity among sHsps with a single conserved β-sandwich fold domain defining the family, the α-crystallin domain, whereas the N-terminal and C-terminal regions are highly variable in length and sequence among various sHsps and conserved only within orthologues. The endogenous targets are probably also varying among various sHsps, cellular compartments, cell type and organism. Here we have investigated Hsp21, a non-metazoan sHsp expressed in the chloroplasts in green plants which experience huge environmental fluctuations not least in temperature. We describe how Hsp21 can also interact with the chloroplast thylakoid membranes, both when isolated thylakoid membranes are incubated with Hsp21 protein and when plants are heat-stressed. The amount of Hsp21 associated with the thylakoid membranes was precisely determined by quantitative mass spectrometry after metabolic 15 N-isotope labeling of either recombinantly expressed and purified Hsp21 protein or intact Arabidopsis thaliana plants. We found that Hsp21 is among few proteins that become associated with the thylakoid membranes in heat-stressed plants, and that approximately two thirds of the pool of chloroplast Hsp21 is affected. We conclude that for a complete picture of the role of sHsps in plant stress resistance also their association with the membranes should be considered.Entities:
Keywords: chaperone; heat shock protein; membranes; photosynthesis; quantitative mass spectrometry; stable isotope labeling; stress response; thermomemory
Mesh:
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Year: 2017 PMID: 28608391 PMCID: PMC5563132 DOI: 10.1002/pro.3213
Source DB: PubMed Journal: Protein Sci ISSN: 0961-8368 Impact factor: 6.725
Figure 1Hsp21 protein associates with thylakoid membranes at increased temperature. Mass spectra are shown for three different Hsp21 peptides (ISVEDNVLVIK, ENSIDVVQQGQQK, KVIDVQIQ, all charged 2+), showing an increased proportion of the 14N‐peaks at 45°C compared to 20°C, in relation to the reference 15N‐peaks. Isolated thylakoid membranes were incubated with recombinantly expressed and purified unlabeled (14N) Hsp21 for 15 min and samples spiked with known amounts of 15N‐labeled Hsp21 before sample processing, tryptic digestion and LC‐MSMS.
Determination of L/H‐ratio in 1:1 Mixture of Recombinantly Expressed Hsp21 and
| Acquisition mode | |||
|---|---|---|---|
| MIPS off | MIPS on | Inclusion list | |
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| 1 Undiluted | 1.26 | 1.19 | 1.21 |
| 2 Diluted 1:10 | 1.22 | 1.28 | 1.21 |
| 3 Diluted 1:100 | 1.19 | 1.23 | 1.17 |
| Average | 1.21 | 1.25 | 1.19 |
L/H‐ratio is the relative amount of unlabeled (14N) and 15N‐labeled Hsp21 determined as the ratio between the Light and the Heavy isotope with the Mascot Distiller Quantitation Toolbox in nine replicates with varying conditions in the experimental workflow and %H = H/(L + H). Unlabeled (14N) Hsp21 and 15N‐labeled Hsp21 at three different dilutions (undiluted, diluted 1:10, diluted 1:100) were mixed 1:1. The samples were run as references during electrophoresis, as described in Figure 2, and then subjected to tryptic in‐gel‐digestion. Three consecutive LC‐MSMS runs were made for each sample, with three different settings in the data acquisition mode with respect to the selection of precursor ions for MSMS fragmentation.
Data acquisition modes were three different with respect to the selection of precursor ions for MSMS fragmentation: monoisotopic precursor selection enabled (MIPS on, which is the default setting) or disenabled (MIPS off) or with an inclusion list with theoretical masses for Hsp21 peptides (and MIPS off).
Figure 2Quantification of Hsp21 protein associated with thylakoid membranes at increased temperature. A. Outline of the experimental set‐up in which thylakoid membranes were incubated at 20°C and 45°C with unlabeled (14N) Hsp21, and samples spiked with known amounts of 15N‐labeled Hsp21 before sample processing. By centrifugation pellet (P) with thylakoid membranes and supernatant (S) were separated, followed by SDS‐PAGE gfractionation. Samples excised (dashed rectangles) were subjected to LC‐MSMS to determine the L/H‐ratios. B. Triplicate samples of thylakoid membranes were processed as described in panel A and the relative amount of Hsp21 in thylakoid membranes incubated with Hsp21 at 20°C (Control) and 45°C (Heated) determined as L/H‐ratio. Results are shown for Hsp21 protein (upper panel) and for Hsp21V181A, a non‐dodecameric mutational variant (lower panel).
Figure 3Hsp21 associates with thylakoid membranes in heat‐stressed plants. Mass spectra are shown for the Hsp21 peptide ENSIDVVQQGQQK detected in samples of Thylakoid membranes (upper), from control plants (14N) and from a 1:1 mix of control (14N) and heat‐stressed plants (15N), and samples of Stroma (lower), from control plants (14N) and from a 1:1 mix of control (14N) and heat‐stressed plants (15N). The Hsp21 peptide ENSIDVVQQGQQK is singly charged and has a mass difference of 19 Da between the 14N‐peptide (m/z = 1472.7) and the 15N‐peptide (m/z = 1491.7) due to 13 N‐atoms in each amido‐group, and 1 extra N‐atom in the amino acid side‐chains of N, Q and K. The quantification of the amount of Hsp21 in stroma and thylakoid membranes is shown as L/H‐ratios in Table 3.
Quantification of the Relative Amount of Hsp21 in the Chloroplast Soluble Stroma in Heat‐Stressed Plants Compared to Control Plants
| z | Sequence |
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| % | % | Std. Err. | Fraction | Correlation | Intensity |
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| 2+ | KVIDVQIQ | 2.96 | 2.10 | 0.25 | 0.30 | 0.082 | 0.281 | 0.997 | 3 376 |
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| 2+ | ISVEDNVLVIK | 3.25 | 2.31 | 0.24 | 0.28 | 0.193 | 0.419 | 0.996 | 55 310 |
| 4+ | APWDIKEEEHEIK | 2.90 | 2.06 | 0.26 | 0.31 | 0.143 | 0.508 | 0.996 | 2 757 |
| 3+ | APWDIKEEEHEIK | 2.72 | 1.93 | 0.27 | 0.32 | 0.147 | 0.353 | 0.995 | 5 559 |
| 3+ | ISVEDNVLVIKGEQK | 2.43 | 1.72 | 0.29 | 0.35 | 0.136 | 0.181 | 0.996 | 14 130 |
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| 2+ | FDMPGLSK | 0.17 | 0.12 | 0.85 | 1.02 | 2.219 | 0.413 | 0.953 | 458 000 |
| 2+ | QMLDTMDR | 0.03 | 0.02 | 0.97 | 1.17 | 0.028 | 0.247 | 0.980 | 6 954 |
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| 1 812 000 |
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| 1 269 000 |
| 2+ | APWDIKEEEHEIK | 0.05 | 0.04 | 0.95 | 1.14 | 0.081 | 0.061 | 0.997 | 61 230 |
| 4+ | APWDIKEEEHEIK | 0.02 | 0.01 | 0.98 | 1.18 | 0.005 | 0.243 | 0.996 | 61 840 |
| 3+ | APWDIKEEEHEIK | 0.02 | 0.01 | 0.98 | 1.18 | 0.089 | 0.068 | 0.969 | 180 500 |
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| 972 200 |
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| 3 780 000 |
The amount of protein in the thylakoid membrane in heat‐stressed plants compared to control plants is expressed as %H= H/L + H, based on the L/H‐ratio (Light (14N)/Heavy(15N)) calculated by the Mascot Distiller Toolbox software for at least 3 peptides as the sum of the signals from the heavy isotope divided by the sum of all signals of the light and heavy peptide.
SDgeo, parameter presented by the Mascot Distiller Quantitation Toolbox to estimate the average L/H‐ratios and should be >1.
Number of unique peptides identified by MS/MS and used to determine L/H‐ratio.
Mascot protein score.
Peptides of the Hsp21 protein were detected in the gel segment at approximately 25 kDa excised after electrophoretic separation of proteins in a 1:1 mixture of soluble stroma fraction from heat‐stressed 15N‐plants and control 14N‐plants. As a comparison, corresponding data for chloroplast thylakoid membranes are also listed. Apart from the values for L/H and %H, determined as described in Table 2, four quality parameters (Standard error, Fraction, Correlation and Intensity) are presented which are used by the Mascot Distiller Quantitation Toolbox software to decide which peptides to include. The peptides that are included in the final calculation of average L/H‐ratio for the protein are indicated in bold.
Quantification of the Relative Amount of Various Proteins in the Thylakoid Membranes in Heat‐Stressed Plants Compared to Control Plants
| Accession | Description |
| % | SD(geo) | # pept | Score | Mass (kDa) |
| % |
|---|---|---|---|---|---|---|---|---|---|
| AT4G27670.1 | HSP21 heat shock protein 21 | 0.05 | 0.95 | 1.350 | 11 | 262 | 26 | 0.04 | 1.14 |
| AT1G71500.1 | Rieske (2Fe‐2S) domain‐containing protein | 0.96 | 0.51 | 1.044 | 4 | 196 | 32 | 0.68 | 0.61 |
| AT1G61520.1 | #LHCA3 PS I light harvesting compl gene 3 | 1.08 | 0.48 | 1.071 | 8 | 554 | 29 | 0.77 | 0.58 |
| AT5G66570.1 | #PSBO‐1. OE33. PSBO1. MSP‐1 PS II oxygen‐evolving compl 1 | 1.10 | 0.48 | 1.144 | 3 | 132 | 36 | 0.78 | 0.57 |
| AT4G10340.1 | #LHCB5 light harvesting compl of PS II 5 | 1.11 | 0.47 | 1.055 | 18 | 1207 | 30 | 0.79 | 0.57 |
| AT2G05070.1 | #LHCB2.2. LHCB2 PS II light harvest compl gene 2.2 | 1.11 | 0.47 | 1.089 | 11 | 325 | 29 | 0.79 | 0.57 |
| AT1G29910.1 | #CAB3. AB180. LHCB1.2 chlorophyl A/B binding protein 3 | 1.13 | 0.47 | 1.095 | 9 | 287 | 28 | 0.81 | 0.56 |
| AT2G34430.1 | #LHB1B1. LHCB1.4 light‐harvest chl‐prot compl II subunit B1 | 1.14 | 0.47 | 1.085 | 9 | 304 | 28 | 0.81 | 0.56 |
| AT3G23400.1 | FIB4 Plastid‐lipid ass protein PAP/fibrillin family | 1.14 | 0.47 | 1.033 | 3 | 170 | 30 | 0.81 | 0.56 |
| AT1G44575.1 | NPQ4. PSBS Chlorophyl A‐B binding family protein | 1.18 | 0.46 | 1.059 | 7 | 374 | 28 | 0.83 | 0.55 |
| AT5G54270.1 | #LHCB3. LHCB3*1 light‐harvest chl B‐binding protein 3 | 1.21 | 0.45 | 1.071 | 5 | 109 | 29 | 0.86 | 0.54 |
| AT4G02770.1 | PSAD‐1 PS I subunit D‐1 | 1.22 | 0.45 | 1.089 | 6 | 323 | 23 | 0.86 | 0.54 |
| AT1G54780.1 | TLP18.3 thylakoid lumen 18.3 kDa protein | 1.30 | 0.44 | 1.056 | 6 | 537 | 31 | 0.92 | 0.52 |
| ATCG00020.1 | #PSBA PS II reaction center protein A | 1.43 | 0.41 | 1.044 | 9 | 472 | 39 | 1.02 | 0.49 |
| AT1G06680.1 | PSBP‐1. OEE2. PSII‐P. OE23 PS II subunit P‐1 | 1.47 | 0.41 | 1.043 | 7 | 646 | 28 | 1.04 | 0.49 |
| AT4G21280.1 | #PSBQ. PSBQA. PSBQ‐1 PS II subunit QA | 1.48 | 0.40 | 1.128 | 4 | 132 | 24 | 1.05 | 0.48 |
| AT4G03280.1 | #PETC. PGR1 photosynthetic electron transfer C | 1.54 | 0.39 | 1.082 | 3 | 146 | 24 | 1.09 | 0.47 |
| AT3G61470.1 | #LHCA2 PS I light harvesting compl gene 2 | 1.59 | 0.39 | 1.140 | 4 | 296 | 28 | 1.13 | 0.46 |
| AT5G01530.1 | #LHCB4.1 light harvesting compl PS II | 1.61 | 0.38 | 1.495 | 4 | 274 | 31 | 1.14 | 0.46 |
| AT1G15820.1 | #LHCB6. CP24 light harvest compl PS II subunit 6 | 1.64 | 0.38 | 1.087 | 12 | 479 | 28 | 1.16 | 0.46 |
| AT3G08940.2 | #LHCB4.2 light harvesting compl PS II | 1.73 | 0.37 | 1.453 | 4 | 103 | 31 | 1.23 | 0.44 |
| AT3G26070.1 | Plastid‐lipid ass protein PAP/fibrillin family | 1.73 | 0.37 | 1.050 | 3 | 216 | 27 | 1.23 | 0.44 |
| AT3G47470.1 | #LHCA4. CAB4 light‐harvest chl‐prot compl I subunit A4 | 1.98 | 0.34 | 1.063 | 4 | 246 | 28 | 1.41 | 0.40 |
The amount of protein in the thylakoid membrane in heat‐stressed plants compared to control plants is expressed as %H= H/L + H. based on the L/H‐ratio (Light (14N)/Heavy(15N)) calculated by the Mascot Distiller Toolbox software for at least 3 peptides as the sum of the signals from the heavy isotope divided by the sum of all signals of the light and heavy peptide.
SDgeo. parameter presented by the Mascot Distiller Quantitation Toolbox to estimate the average L/H‐ratios and should be >1.
Number of unique peptides identified by MS/MS and used to determine L/H‐ratio.
Mascot protein score.
Protein marked with # are 15 subunits in membrane‐bound chlorophyl‐protein complexes. with determined average L/H‐ratio = 1.4 and average %H = 0.42. Assuming that the abundance of these proteins do not change in the thylakoid membranes during a 2 h heat stress the values should be L/H = 1 and %H = 0.5. Thus multiplication with a factor 0.71 and 1.2, respectively, is required to reflect a situation with no changes in these 15 proteins.
Proteins detected with Mascot score > 100 and L/H‐ratio with SD (geo) > 1 in the gel segment at approximately 25 kDa excised after electrophoretic separation of proteins in a 1:1 mixture of thylakoid membranes from heat‐stressed (15N) plants and control (14N) plants
Figure 4Decreased amount of Hsp21 in chloroplast stroma in heat‐stressed plants. Mass spectra are shown for three Hsp21 peptides (NGVLFTIPK charge 2+, LTMDVSPGLLDPLSPMR charge 2+, LTMDVSPGLLDPLSPMR charge 3+) detected in stroma samples with 1:1 mix of control (14N) and heat‐stressed plants (15N), showing a decreased proportion of the 15N‐peaks compared to 14N‐peaks indicating that the amount of Hsp21 in the soluble stroma is lower in the heat‐stressed compared to control plants. The quantification of the amount of Hsp21 in stroma and thylakoid membranes is shown as L/H‐ratios in Table III.