The plant sHSP superfamily: five new members in Arabidopsis thaliana with unexpected properties.

PubWeight™: 1.39‹?› | Rank: Top 5%

🔗 View Article (PMC 2673886)

Published in Cell Stress Chaperones on March 28, 2008

Authors

Masood Siddique1, Sascha Gernhard, Pascal von Koskull-Döring, Elizabeth Vierling, Klaus-Dieter Scharf

Author Affiliations

1: Molecular Cell Biology, Johann Wolfgang Goethe University, Biocenter N200, Max-von-Laue-Strasse 9, Frankfurt am Main, Germany. msiddiqu@biochem2.uni-frankfurt.de

Articles citing this

Small heat shock proteins and α-crystallins: dynamic proteins with flexible functions. Trends Biochem Sci (2011) 1.74

The heat-inducible transcription factor HsfA2 enhances anoxia tolerance in Arabidopsis. Plant Physiol (2010) 1.30

Rice sHsp genes: genomic organization and expression profiling under stress and development. BMC Genomics (2009) 1.24

A first line of stress defense: small heat shock proteins and their function in protein homeostasis. J Mol Biol (2015) 1.16

Mechanistic differences between two conserved classes of small heat shock proteins found in the plant cytosol. J Biol Chem (2010) 1.02

Detection and architecture of small heat shock protein monomers. PLoS One (2010) 0.99

BOBBER1 is a noncanonical Arabidopsis small heat shock protein required for both development and thermotolerance. Plant Physiol (2009) 0.99

Chloroplast small heat shock protein HSP21 interacts with plastid nucleoid protein pTAC5 and is essential for chloroplast development in Arabidopsis under heat stress. Plant Cell (2013) 0.95

Hsf and Hsp gene families in Populus: genome-wide identification, organization and correlated expression during development and in stress responses. BMC Genomics (2015) 0.93

REPRESSOR OF SILENCING5 Encodes a Member of the Small Heat Shock Protein Family and Is Required for DNA Demethylation in Arabidopsis. Plant Cell (2014) 0.90

Small heat shock protein Hsp17.8 functions as an AKR2A cofactor in the targeting of chloroplast outer membrane proteins in Arabidopsis. Plant Physiol (2011) 0.89

Why proteins without an alpha-crystallin domain should not be included in the human small heat shock protein family HSPB. Cell Stress Chaperones (2009) 0.89

Genome-wide analysis of the Hsp20 gene family in soybean: comprehensive sequence, genomic organization and expression profile analysis under abiotic and biotic stresses. BMC Genomics (2013) 0.89

Identification of stress-responsive genes in Ammopiptanthus mongolicus using ESTs generated from cold- and drought-stressed seedlings. BMC Plant Biol (2013) 0.88

Recovery from heat, salt and osmotic stress in Physcomitrella patens requires a functional small heat shock protein PpHsp16.4. BMC Plant Biol (2013) 0.87

Heat shock proteins in association with heat tolerance in grasses. Int J Proteomics (2011) 0.86

An unusual dimeric small heat shock protein provides insight into the mechanism of this class of chaperones. J Mol Biol (2013) 0.86

AtHSP17.8 overexpression in transgenic lettuce gives rise to dehydration and salt stress resistance phenotypes through modulation of ABA-mediated signaling. Plant Cell Rep (2013) 0.84

ZmHSP16.9, a cytosolic class I small heat shock protein in maize (Zea mays), confers heat tolerance in transgenic tobacco. Plant Cell Rep (2012) 0.84

Plant leucine aminopeptidases moonlight as molecular chaperones to alleviate stress-induced damage. J Biol Chem (2012) 0.83

Genome-wide analysis of the CaHsp20 gene family in pepper: comprehensive sequence and expression profile analysis under heat stress. Front Plant Sci (2015) 0.83

Hsp27 associates with the titin filament system in heat-shocked zebrafish cardiomyocytes. Exp Cell Res (2009) 0.83

A comparative proteomic analysis of Pinellia ternata leaves exposed to heat stress. Int J Mol Sci (2013) 0.82

Endophytic colonization of barley (Hordeum vulgare) roots by the nematophagous fungus Pochonia chlamydosporia reveals plant growth promotion and a general defense and stress transcriptomic response. J Plant Res (2015) 0.82

Misexpression of a chloroplast aspartyl protease leads to severe growth defects and alters carbohydrate metabolism in Arabidopsis. Plant Physiol (2012) 0.81

Features of a unique intronless cluster of class I small heat shock protein genes in tandem with box C/D snoRNA genes on chromosome 6 in tomato (Solanum lycopersicum). Planta (2011) 0.81

Heat and water stress induce unique transcriptional signatures of heat-shock proteins and transcription factors in grapevine. Funct Integr Genomics (2014) 0.81

Dynamic changes in the leaf proteome of a C3 xerophyte, Citrullus lanatus (wild watermelon), in response to water deficit. Planta (2011) 0.80

Global transcriptome analysis of constitutive resistance to the white pine weevil in spruce. Genome Biol Evol (2011) 0.79

Pharmacoinformatic and molecular docking studies reveal potential novel antidepressants against neurodegenerative disorders by targeting HSPB8. Drug Des Devel Ther (2016) 0.78

Class I and II Small Heat Shock Proteins Together with HSP101 Protect Protein Translation Factors during Heat Stress. Plant Physiol (2016) 0.78

Molecular characterization of two small heat shock protein genes in rice: their expression patterns, localizations, networks, and heterogeneous overexpressions. Mol Biol Rep (2013) 0.78

sHSPdb: a database for the analysis of small Heat Shock Proteins. BMC Plant Biol (2016) 0.78

Small heat shock proteins in cellular adhesion and migration: evidence from Plasmodium genetics. Cell Adh Migr (2012) 0.77

Nanocaged platforms: modification, drug delivery and nanotoxicity. Opening synthetic cages to release the tiger. Nanoscale (2017) 0.77

Genome-Wide Identification and Expression Profiling of Tomato Hsp20 Gene Family in Response to Biotic and Abiotic Stresses. Front Plant Sci (2016) 0.77

Production of phytotoxic cationic α-helical antimicrobial peptides in plant cells using inducible promoters. PLoS One (2014) 0.77

Analysis of gene sequences indicates that quantity not quality of chloroplast small HSPs improves thermotolerance in C4 and CAM plants. Plant Cell Rep (2012) 0.77

The involvement of J-protein AtDjC17 in root development in Arabidopsis. Front Plant Sci (2014) 0.76

Duplication of the class I cytosolic small heat shock protein gene and potential functional divergence revealed by sequence variations flanking the {alpha}-crystallin domain in the genus Rhododendron (Ericaceae). Ann Bot (2010) 0.76

The α-Crystallin Domain Containing Genes: Identification, Phylogeny and Expression Profiling in Abiotic Stress, Phytohormone Response and Development in Tomato (Solanum lycopersicum). Front Plant Sci (2016) 0.76

Characterization of rice small heat shock proteins targeted to different cellular organelles. Cell Stress Chaperones (2015) 0.75

Genome-Wide Analysis of the PvHsp20 Family in Switchgrass: Motif, Genomic Organization, and Identification of Stress or Developmental-Related Hsp20s. Front Plant Sci (2017) 0.75

Uptake of non-pathogenic E. coli by Arabidopsis induces down-regulation of heat shock proteins. Plant Signal Behav (2010) 0.75

Genome-wide analysis of heat shock proteins in C4 model, foxtail millet identifies potential candidates for crop improvement under abiotic stress. Sci Rep (2016) 0.75

Expression of small heat shock protein (sHSP) genes in the garden pea (Pisum sativum) under slow horizontal clinorotation. Plant Signal Behav (2014) 0.75

Allyl-isothiocyanate treatment induces a complex transcriptional reprogramming including heat stress, oxidative stress and plant defence responses in Arabidopsis thaliana. BMC Genomics (2016) 0.75

Tandem Duplication Events in the Expansion of the Small Heat Shock Protein Gene Family in Solanum lycopersicum (cv. Heinz 1706). G3 (Bethesda) (2016) 0.75

Nodulin 22, a novel small heat-shock protein of the endoplasmic reticulum, is linked to the unfolded protein response in common bean. Mol Plant Microbe Interact (2014) 0.75

Identification and characterization of the GhHsp20 gene family in Gossypium hirsutum. Sci Rep (2016) 0.75

Articles cited by this

How to measure and predict the molar absorption coefficient of a protein. Protein Sci (1995) 18.71

Crystal structure of a small heat-shock protein. Nature (1998) 4.07

Crystal structure and assembly of a eukaryotic small heat shock protein. Nat Struct Biol (2001) 3.69

Cytoplasmic heat shock granules are formed from precursor particles and are associated with a specific set of mRNAs. Mol Cell Biol (1989) 3.65

RNA splicing is interrupted by heat shock and is rescued by heat shock protein synthesis. Cell (1986) 3.53

A small heat shock protein stably binds heat-denatured model substrates and can maintain a substrate in a folding-competent state. EMBO J (1997) 3.30

Formation of cytoplasmic heat shock granules in tomato cell cultures and leaves. Mol Cell Biol (1983) 3.19

Binding of non-native protein to Hsp25 during heat shock creates a reservoir of folding intermediates for reactivation. EMBO J (1997) 2.92

Alpha-crystallin-type heat shock proteins: socializing minichaperones in the context of a multichaperone network. Microbiol Mol Biol Rev (2002) 2.80

Structure and in vitro molecular chaperone activity of cytosolic small heat shock proteins from pea. J Biol Chem (1995) 2.64

Hsp26: a temperature-regulated chaperone. EMBO J (1999) 2.51

Genealogy of the alpha-crystallin--small heat-shock protein superfamily. Int J Biol Macromol (1998) 2.51

The tomato Hsf system: HsfA2 needs interaction with HsfA1 for efficient nuclear import and may be localized in cytoplasmic heat stress granules. Mol Cell Biol (1998) 2.26

Structure and function of the small heat shock protein/alpha-crystallin family of molecular chaperones. Adv Protein Chem (2001) 2.21

The human genome encodes 10 alpha-crystallin-related small heat shock proteins: HspB1-10. Cell Stress Chaperones (2003) 2.09

A small heat shock protein cooperates with heat shock protein 70 systems to reactivate a heat-denatured protein. Plant Physiol (2000) 2.08

Synthesis of small heat-shock proteins is part of the developmental program of late seed maturation. Plant Physiol (1996) 2.04

In the complex family of heat stress transcription factors, HsfA1 has a unique role as master regulator of thermotolerance in tomato. Genes Dev (2002) 1.97

The heat stress transcription factor HsfA2 serves as a regulatory amplifier of a subset of genes in the heat stress response in Arabidopsis. Plant Mol Biol (2006) 1.96

Refolding of substrates bound to small Hsps relies on a disaggregation reaction mediated most efficiently by ClpB/DnaK. J Biol Chem (2003) 1.89

Versatile cloning vectors for transient gene expression and direct gene transfer in plant cells. Nucleic Acids Res (1988) 1.86

The expression of small heat shock proteins in seeds responds to discrete developmental signals and suggests a general protective role in desiccation tolerance. Plant Physiol (2000) 1.81

The expanding family of Arabidopsis thaliana small heat stress proteins and a new family of proteins containing alpha-crystallin domains (Acd proteins). Cell Stress Chaperones (2001) 1.79

The small heat shock proteins and their clients. Cell Mol Life Sci (2007) 1.78

pJC20 and pJC40--two high-copy-number vectors for T7 RNA polymerase-dependent expression of recombinant genes in Escherichia coli. Protein Expr Purif (1994) 1.71

Dual role for tomato heat shock protein 21: protecting photosystem II from oxidative stress and promoting color changes during fruit maturation. Plant Cell (2005) 1.68

Subunit exchange of alphaA-crystallin. J Biol Chem (1997) 1.67

A novel transcriptional cascade regulating expression of heat stress proteins during seed development of Arabidopsis. Plant Cell (2007) 1.59

Disassembling protein aggregates in the yeast cytosol. The cooperation of Hsp26 with Ssa1 and Hsp104. J Biol Chem (2005) 1.59

Subunit exchange of multimeric protein complexes. Real-time monitoring of subunit exchange between small heat shock proteins by using electrospray mass spectrometry. J Biol Chem (2002) 1.50

Wrapping the alpha-crystallin domain fold in a chaperone assembly. J Mol Biol (2005) 1.43

An efficient method to purify active eukaryotic proteins from the inclusion bodies in Escherichia coli. Biotechniques (1991) 1.43

The N-terminal arm of small heat shock proteins is important for both chaperone activity and substrate specificity. J Biol Chem (2006) 1.43

Changes in oligomerization are essential for the chaperone activity of a small heat shock protein in vivo and in vitro. J Biol Chem (2002) 1.43

Heat shock induced changes of plant cell ultrastructure and autoradiographic localization of heat shock proteins. Eur J Cell Biol (1984) 1.41

Light dependence of catalase synthesis and degradation in leaves and the influence of interfering stress conditions. Plant Physiol (1992) 1.38

Stable transformation of an Arabidopsis cell suspension culture with firefly luciferase providing a cellular system for analysis of chaperone activity in vivo. Plant Cell (1997) 1.38

Small heat shock protein of Methanococcus jannaschii, a hyperthermophile. Proc Natl Acad Sci U S A (1998) 1.31

Developmental and environmental concurrent expression of sunflower dry-seed-stored low-molecular-weight heat-shock protein and Lea mRNAs. Plant Mol Biol (1992) 1.25

Comparative analysis of the small heat shock proteins in three angiosperm genomes identifies new subfamilies and reveals diverse evolutionary patterns. Cell Stress Chaperones (2008) 1.24

Intracellular distribution and identification of the nuclear localization signals of two plant heat-stress transcription factors. Planta (1997) 1.23

Identification and characterization of a stress-inducible and a constitutive small heat-shock protein targeted to the matrix of plant peroxisomes. Plant Physiol (2006) 1.21

Transient expression and heat-stress-induced co-aggregation of endogenous and heterologous small heat-stress proteins in tobacco protoplasts. Plant J (2000) 1.15

Role of Hsp17.4-CII as coregulator and cytoplasmic retention factor of tomato heat stress transcription factor HsfA2. Plant Physiol (2004) 1.15

Evidence for an essential function of the N terminus of a small heat shock protein in vivo, independent of in vitro chaperone activity. Proc Natl Acad Sci U S A (2005) 1.13

Characterization of cDNAs induced in meiotic prophase in lily microsporocytes. DNA Res (1994) 1.11

Differential regulation of small heat-shock genes in plants: analysis of a water-stress-inducible and developmentally activated sunflower promoter. Plant Mol Biol (1996) 1.10

The diversification of plant cytosolic small heat shock proteins preceded the divergence of mosses. Mol Biol Evol (1999) 1.10

Mitochondrial small heat-shock protein enhances thermotolerance in tobacco plants. FEBS Lett (2004) 1.10

Developmental regulation and tissue-specific differences of heat shock gene expression in transgenic tobacco and Arabidopsis plants. Plant Mol Biol (1995) 1.09

A plant small heat shock protein gene expressed during zygotic embryogenesis but noninducible by heat stress. J Biol Chem (1997) 1.07

A critical motif for oligomerization and chaperone activity of bacterial alpha-heat shock proteins. Eur J Biochem (2002) 1.06

Cytosolic heat-stress proteins Hsp17.7 class I and Hsp17.3 class II of tomato act as molecular chaperones in vivo. Planta (2000) 1.05

Interactions between small heat shock protein subunits and substrate in small heat shock protein-substrate complexes. J Biol Chem (2003) 1.04

The independent stage-specific expression of the 18-kDa heat shock protein genes during microsporogenesis in Zea mays L. Dev Genet (1993) 1.03

The sperm outer dense fiber protein is the 10th member of the superfamily of mammalian small stress proteins. Cell Stress Chaperones (2003) 1.02

Thermotolerance of isolated mitochondria associated with heat shock proteins. Plant Physiol (1989) 1.01

Monodisperse Hsp16.3 nonamer exhibits dynamic dissociation and reassociation, with the nonamer dissociation prerequisite for chaperone-like activity. J Mol Biol (2002) 1.01

Subunit exchange, conformational stability, and chaperone-like function of the small heat shock protein 16.5 from Methanococcus jannaschii. J Biol Chem (2002) 1.01

Chaperone activity of cytosolic small heat shock proteins from wheat. Eur J Biochem (2004) 1.00

Mutants in a small heat shock protein that affect the oligomeric state. Analysis and allele-specific suppression. J Biol Chem (2004) 0.99

Thermotolerance and nuclear protein aggregation: protection against initial damage or better recovery? J Cell Physiol (1995) 0.95

Cells overexpressing Hsp27 show accelerated recovery from heat-induced nuclear protein aggregation. Biochem Biophys Res Commun (1994) 0.95

Expression, purification, and molecular chaperone activity of plant recombinant small heat shock proteins. Methods Enzymol (1998) 0.93

Thermal protein denaturation and protein aggregation in cells made thermotolerant by various chemicals: role of heat shock proteins. Exp Cell Res (1995) 0.91

Tomato heat stress protein Hsp16.1-CIII represents a member of a new class of nucleocytoplasmic small heat stress proteins in plants. Cell Stress Chaperones (2003) 0.89

Determination of quaternary structure of an active enzyme using chemical cross-linking with glutaraldehyde. Methods Enzymol (1988) 0.87

Overexpression of CaHSP26 in transgenic tobacco alleviates photoinhibition of PSII and PSI during chilling stress under low irradiance. J Plant Physiol (2006) 0.87

Structural and functional defects caused by point mutations in the alpha-crystallin domain of a bacterial alpha-heat shock protein. J Mol Biol (2003) 0.87

Accumulation of plant small heat-stress proteins in storage organs. Planta (2002) 0.85

High-molecular-mass complexes formed in vivo contain smHSPs and HSP70 and display chaperone-like activity. Eur J Biochem (2000) 0.83

Characterization of mitochondria-located small heat shock protein from tomato (Lycopersicon esculentum). Plant Cell Physiol (1999) 0.83

Articles by these authors

Complexity of the heat stress response in plants. Curr Opin Plant Biol (2007) 2.82

Heat stress phenotypes of Arabidopsis mutants implicate multiple signaling pathways in the acquisition of thermotolerance. Plant Physiol (2005) 2.53

Small heat shock proteins, ClpB and the DnaK system form a functional triade in reversing protein aggregation. Mol Microbiol (2003) 2.31

Heat stress response in plants: a complex game with chaperones and more than twenty heat stress transcription factors. J Biosci (2004) 2.22

Analysis of natural allelic variation of Arabidopsis seed germination and seed longevity traits between the accessions Landsberg erecta and Shakdara, using a new recombinant inbred line population. Plant Physiol (2004) 2.10

Evidence for an unfolding/threading mechanism for protein disaggregation by Saccharomyces cerevisiae Hsp104. J Biol Chem (2004) 2.06

Core genome responses involved in acclimation to high temperature. Plant Physiol (2007) 2.04

The diversity of plant heat stress transcription factors. Trends Plant Sci (2007) 2.01

In the complex family of heat stress transcription factors, HsfA1 has a unique role as master regulator of thermotolerance in tomato. Genes Dev (2002) 1.97

The heat stress transcription factor HsfA2 serves as a regulatory amplifier of a subset of genes in the heat stress response in Arabidopsis. Plant Mol Biol (2006) 1.96

Refolding of substrates bound to small Hsps relies on a disaggregation reaction mediated most efficiently by ClpB/DnaK. J Biol Chem (2003) 1.89

Small heat-shock proteins regulate membrane lipid polymorphism. Proc Natl Acad Sci U S A (2002) 1.79

Substrate binding site flexibility of the small heat shock protein molecular chaperones. Proc Natl Acad Sci U S A (2009) 1.78

Small heat shock proteins and α-crystallins: dynamic proteins with flexible functions. Trends Biochem Sci (2011) 1.74

Dissecting heterogeneous molecular chaperone complexes using a mass spectrum deconvolution approach. Chem Biol (2012) 1.66

Quaternary dynamics and plasticity underlie small heat shock protein chaperone function. Proc Natl Acad Sci U S A (2010) 1.63

A cascade of transcription factor DREB2A and heat stress transcription factor HsfA3 regulates the heat stress response of Arabidopsis. Plant J (2007) 1.63

Characterization of C-terminal domains of Arabidopsis heat stress transcription factors (Hsfs) and identification of a new signature combination of plant class A Hsfs with AHA and NES motifs essential for activator function and intracellular localization. Plant J (2004) 1.62

A novel transcriptional cascade regulating expression of heat stress proteins during seed development of Arabidopsis. Plant Cell (2007) 1.59

Subunit exchange of multimeric protein complexes. Real-time monitoring of subunit exchange between small heat shock proteins by using electrospray mass spectrometry. J Biol Chem (2002) 1.50

Arabidopsis hot mutants define multiple functions required for acclimation to high temperatures. Plant Physiol (2003) 1.50

Modulation of nitrosative stress by S-nitrosoglutathione reductase is critical for thermotolerance and plant growth in Arabidopsis. Plant Cell (2008) 1.47

The N-terminal arm of small heat shock proteins is important for both chaperone activity and substrate specificity. J Biol Chem (2006) 1.43

Changes in oligomerization are essential for the chaperone activity of a small heat shock protein in vivo and in vitro. J Biol Chem (2002) 1.43

The Arabidopsis ClpB/Hsp100 family of proteins: chaperones for stress and chloroplast development. Plant J (2006) 1.28

Developmental and heat stress-regulated expression of HsfA2 and small heat shock proteins in tomato anthers. J Exp Bot (2009) 1.22

The identity of proteins associated with a small heat shock protein during heat stress in vivo indicates that these chaperones protect a wide range of cellular functions. J Biol Chem (2003) 1.20

Genetic analysis reveals domain interactions of Arabidopsis Hsp100/ClpB and cooperation with the small heat shock protein chaperone system. Plant Cell (2005) 1.17

Role of Hsp17.4-CII as coregulator and cytoplasmic retention factor of tomato heat stress transcription factor HsfA2. Plant Physiol (2004) 1.15

Crosstalk between Hsp90 and Hsp70 chaperones and heat stress transcription factors in tomato. Plant Cell (2011) 1.14

Evidence for an essential function of the N terminus of a small heat shock protein in vivo, independent of in vitro chaperone activity. Proc Natl Acad Sci U S A (2005) 1.13

A rhizosphere fungus enhances Arabidopsis thermotolerance through production of an HSP90 inhibitor. Plant Physiol (2007) 1.11

Real-time monitoring of protein complexes reveals their quaternary organization and dynamics. Chem Biol (2008) 1.08

Role of heat stress transcription factor HsfA5 as specific repressor of HsfA4. J Biol Chem (2006) 1.07

Interactions between small heat shock protein subunits and substrate in small heat shock protein-substrate complexes. J Biol Chem (2003) 1.04

Arabidopsis UVH6, a homolog of human XPD and yeast RAD3 DNA repair genes, functions in DNA repair and is essential for plant growth. Plant Physiol (2003) 1.04

Arabidopsis hot2 encodes an endochitinase-like protein that is essential for tolerance to heat, salt and drought stresses. Plant J (2006) 1.03

Mechanistic differences between two conserved classes of small heat shock proteins found in the plant cytosol. J Biol Chem (2010) 1.02

Insights into small heat shock protein and substrate structure during chaperone action derived from hydrogen/deuterium exchange and mass spectrometry. J Biol Chem (2008) 1.01

Chaperone activity of cytosolic small heat shock proteins from wheat. Eur J Biochem (2004) 1.00

Specific interaction between tomato HsfA1 and HsfA2 creates hetero-oligomeric superactivator complexes for synergistic activation of heat stress gene expression. J Biol Chem (2009) 1.00

Mutants in a small heat shock protein that affect the oligomeric state. Analysis and allele-specific suppression. J Biol Chem (2004) 0.99

Arabidopsis immunophilins ROF1 (AtFKBP62) and ROF2 (AtFKBP65) exhibit tissue specificity, are heat-stress induced, and bind HSP90. Plant Mol Biol (2006) 0.97

"Heat shock lipid" in cyanobacteria during heat/light-acclimation. Arch Biochem Biophys (2005) 0.96

A mutant small heat shock protein with increased thylakoid association provides an elevated resistance against UV-B damage in synechocystis 6803. J Biol Chem (2008) 0.91

Tomato heat stress protein Hsp16.1-CIII represents a member of a new class of nucleocytoplasmic small heat stress proteins in plants. Cell Stress Chaperones (2003) 0.89

Mutations in an Arabidopsis mitochondrial transcription termination factor-related protein enhance thermotolerance in the absence of the major molecular chaperone HSP101. Plant Cell (2012) 0.89

Functional dissection of the cytosolic chaperone network in tomato mesophyll protoplasts. Plant Cell Environ (2009) 0.87

The quaternary organization and dynamics of the molecular chaperone HSP26 are thermally regulated. Chem Biol (2010) 0.87

Solution structure and dynamics of a heat shock protein assembly probed by hydrogen exchange and mass spectrometry. Biochemistry (2003) 0.86

An unusual dimeric small heat shock protein provides insight into the mechanism of this class of chaperones. J Mol Biol (2013) 0.86

Selective activation of the developmentally regulated Ha hsp17.6 G1 promoter by heat stress transcription factors. Plant Physiol (2002) 0.85

S-nitrosoglutathione reductases are low-copy number, cysteine-rich proteins in plants that control multiple developmental and defense responses in Arabidopsis. Front Plant Sci (2013) 0.84

Chaperone network composition in Solanum lycopersicum explored by transcriptome profiling and microarray meta-analysis. Plant Cell Environ (2014) 0.82

The protein translocation systems in plants - composition and variability on the example of Solanum lycopersicum. BMC Genomics (2013) 0.80

The folding capacity of the mature domain of the dual-targeted plant tRNA nucleotidyltransferase influences organelle selection. Biochem J (2013) 0.76