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Advances in Understanding of Desiccation Tolerance of Lichens and Lichen-Forming Algae

https://doi.org/10.3390/plants10040807
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The 177 checked references that resolve
resolves10.1242/jeb.02179
Constraints of tolerance: why are desiccation-tolerant organisms so small or rare?
resolves10.1023/A:1026550808557
The evolution of vegetative desiccation tolerance in land plants
resolves10.1079/9780851995342.0000
Desiccation and survival in plants: drying without dying
resolves10.1093/jexbot/51.351.1695
Rapid recovery of photosystems on rewetting desiccation‐tolerant mosses: chlorophyll fluorescence and inhibitor experiments
resolves10.1111/nph.12009
The earliest records of internally stratified cyanobacterial and algal lichens from the Lower Devonian of the Welsh Borderland
resolves10.1111/gbi.12369
No support for the emergence of lichens prior to the evolution of vascular plants
resolves10.1073/pnas.1719588115
The timescale of early land plant evolution
resolves10.1017/CBO9780511790478
Lichen Biology
resolves10.1111/j.1469-185X.1962.tb01336.x
THE BIOLOGY OF LICHEN THALLI
resolves10.1007/978-94-010-0423-7
Monitoring with Lichens — Monitoring Lichens
resolves10.1639/0007-2745-111.4.576
Desiccation-Tolerance in Lichens: A Review
resolves10.1046/j.1469-8137.2002.00376.x
Glutathione status correlates with different degrees of desiccation tolerance in three lichens
resolves10.1046/j.1469-8137.2003.00852.x
Biochemical traits of lichens differing in relative desiccation tolerance
resolves10.5772/1385
Advances in Photosynthesis - Fundamental Aspects
resolves10.3389/fpls.2013.00327
Desiccation stress and tolerance in green algae: consequences for ultrastructure, physiological and molecular mechanisms
resolves10.1093/jexbot/52.363.2033
Hydration‐dependent photosynthetic production of lichens: what do laboratory studies tell us about field performance?
resolves10.1007/BF00346710
Moisture content and CO2 exchange of lichens
resolves10.1007/s00442-006-0391-6
Nocturnal respiration of lichens in their natural habitat is not affected by preceding diurnal net photosynthesis
resolves10.1007/BF00195320
Operation of the xanthophyll cycle in higher plants in response to diurnal changes in incident sunlight
resolves10.3390/ijms19030872
Optimization of Photosynthetic Productivity in Contrasting Environments by Regulons Controlling Plant Form and Function
resolves10.1093/jxb/eri056
Is PsbS the site of non-photochemical quenching in photosynthesis?
resolves10.1016/j.tplants.2004.05.001
Dynamic flexibility in the light reactions of photosynthesis governed by both electron and proton transfer reactions
resolves10.1021/bi0521588
Nonphotochemical Quenching of Chlorophyll Fluorescence in<i>Chlamydomonas reinhardtii</i>
resolves10.2307/3870388
Chlamydomonas Xanthophyll Cycle Mutants Identified by Video Imaging of Chlorophyll Fluorescence Quenching
resolves10.1055/s-2004-820884
The Xanthophyll Cycle in Green Algae <i>(Chlorophyta):</i> Its Role in the Photosynthetic Apparatus
resolves10.1038/nature08587
An ancient light-harvesting protein is critical for the regulation of algal photosynthesis
resolves10.1074/jbc.M402461200
Regulation of Photosynthetic Light Harvesting Involves Intrathylakoid Lumen pH Sensing by the PsbS Protein
resolves10.1007/s11120-011-9660-2
Mutagenesis and phenotypic selection as a strategy toward domestication of Chlamydomonas reinhardtii strains for improved performance in photobioreactors
resolves10.1016/j.jplph.2014.04.018
Evolution and function of light harvesting proteins
resolves10.1104/pp.16.00572
<i>Chlamydomonas reinhardtii</i> PsbS Protein Is Functional and Accumulates Rapidly and Transiently under High Light
resolves10.1146/annurev-arplant-043014-114744
The Plastid Terminal Oxidase: Its Elusive Function Points to Multiple Contributions to Plastid Physiology
resolves10.1007/s00425-009-1019-y
Dehydration rate and time of desiccation affect recovery of the lichenic algae Trebouxia erici: alternative and classical protective mechanisms
resolves10.1007/BF00328159
Differences in the susceptibility to light stress in two lichens forming a phycosymbiodeme, one partner possessing and one lacking the xanthophyll cycle
resolves10.1023/A:1007214915785
Chlorophyll a Fluorescence Emission, Xanthophyll Cycle Activity, and Net Photosynthetic Rate Responses to Ozone in Some Foliose and Fruticose Lichen Species
resolves10.1007/s00425-010-1129-6
Unravelling the roles of desiccation-induced xanthophyll cycle activity in darkness: a case study in Lobaria pulmonaria
resolves10.1007/BF00028527
Chlorophyll fluorescence as a tool in plant physiology
resolves10.1016/S0005-2728(89)80082-9
An examination of factors contributing to non-photochemical quenching of chlorophyll fluorescence in barley leaves
resolves10.1016/j.pbi.2015.04.009
Sharing light between two photosystems: mechanism of state transitions
resolves10.1016/S0005-2728(09)91014-3
Protein phosphorylation in regulation of photosynthesis
resolves10.1038/nature03286
State transitions and light adaptation require chloroplast thylakoid protein kinase STN7
resolves10.1073/pnas.94.4.1585
Plastoquinol at the quinol oxidation site of reduced cytochrome <i>bf</i> mediates signal transduction between light and protein phosphorylation: Thylakoid protein kinase deactivation by a single-turnover flash
resolves10.1093/emboj/18.11.2961
The Qo site of cytochrome b6f complexes controls the activation of the LHCII kinase
resolves10.1371/journal.pbio.1000288
Role of Plastid Protein Phosphatase TAP38 in LHCII Dephosphorylation and Thylakoid Electron Flow
resolves10.1073/pnas.0913810107
The PPH1 phosphatase is specifically involved in LHCII dephosphorylation and state transitions in Arabidopsis
resolves10.1104/pp.20.00384
Regulation of Light Harvesting in <i>Chlamydomonas reinhardtii</i> Two Protein Phosphatases Are Involved in State Transitions
resolves10.1034/j.1399-3054.1999.105210.x
How does<i>Lobaria pulmonaria</i>regulate photosystem II during progressive desiccation and osmotic water stress?
resolves10.1111/ppl.12792
Chlororespiration induces non‐photochemical quenching of chlorophyll fluorescence during darkness in lichen chlorobionts
resolves10.1007/s10265-009-0229-5
Analysis of non-photochemical energy dissipating processes in wild type Dunaliella salina (green algae) and in zea1, a mutant constitutively accumulating zeaxanthin
resolves10.1007/s11120-004-0359-5
Metabolic Flexibility of the Green Alga Chlamydomonas reinhardtii as Revealed by the Link between State Transitions and Cyclic Electron Flow
resolves10.1146/annurev.genet.42.110807.091452
The Dynamics of Photosynthesis
resolves10.1074/jbc.M114.632588
The Involvement of Hydrogen-producing and ATP-dependent NADPH-consuming Pathways in Setting the Redox Poise in the Chloroplast of Chlamydomonas reinhardtii in Anoxia
resolves10.1104/pp.15.00105
Induction of Photosynthetic Carbon Fixation in Anoxia Relies on Hydrogenase Activity and Proton-Gradient Regulation-Like1-Mediated Cyclic Electron Flow in <i>Chlamydomonas reinhardtii</i>
resolves10.1104/pp.107.106872
Photoprotection in the Lichen <i>Parmelia sulcata</i>: The Origins of Desiccation-Induced Fluorescence Quenching
resolves10.1007/s00425-008-0766-5
Photoprotection of green plants: a mechanism of ultra-fast thermal energy dissipation in desiccated lichens
resolves10.1111/j.1399-3054.2010.01417.x
Photoprotection of reaction centers: thermal dissipation of absorbed light energy vs charge separation in lichens<sup>‡</sup>
resolves10.1007/s11120-015-0196-8
Formation of photosystem II reaction centers that work as energy sinks in lichen symbiotic Trebouxiophyceae microalgae
resolves10.1016/S0176-1617(89)80240-8
Inhibition of Energy-Transfer to Photosystem II in Lichens by Dehydration: Different Properties of Reversibility with Green and Blue-green Phycobionts
resolves10.1016/j.bbabio.2009.11.007
Mechanism of strong quenching of photosystem II chlorophyll fluorescence under drought stress in a lichen, Physciella melanchla, studied by subpicosecond fluorescence spectroscopy
resolves10.1021/jp402881f
Two Different Mechanisms Cooperate In The Desiccation-Induced Excited State Quenching In Parmelia Lichen
resolves10.1093/jxb/erm139
Activation of mechanisms of photoprotection by desiccation and by light: poikilohydric photoautotrophs*
resolves10.1073/pnas.1319164111
State transitions in <i>Chlamydomonas reinhardtii</i> strongly modulate the functional size of photosystem II but not of photosystem I
resolves10.1021/jp070573z
Equilibrium between Quenched and Nonquenched Conformations of the Major Plant Light-Harvesting Complex Studied with High-Pressure Time-Resolved Fluorescence
resolves10.1104/pp.104.4.1333
The Involvement of Respiration in Free Radical Processes during Loss of Desiccation Tolerance in Germinating Zea mays L. (An Electron Paramagnetic Resonance Study)
resolves10.1104/pp.106.077073
Reactive Species and Antioxidants. Redox Biology Is a Fundamental Theme of Aerobic Life
resolves10.1046/j.0028-646X.2001.00256.x
High rates of extracellular superoxide production in bryophytes and lichens, and an oxidative burst in response to rehydration following desiccation
resolves10.1128/AEM.71.11.6508-6514.2005
Characterization of Enzymatic Antioxidants in the Lichen <i>Ramalina lacera</i> and Their Response to Rehydration
resolves10.1186/1471-2180-10-297
Fungal-associated NO is involved in the regulation of oxidative stress during rehydration in lichen symbiosis
resolves10.3390/plants8070189
Inhibition of NO Biosynthetic Activities during Rehydration of Ramalina farinacea Lichen Thalli Provokes Increases in Lipid Peroxidation
resolves10.1093/pcp/pcp043
Responses to Desiccation Stress in Lichens are Different from Those in Their Photobionts
resolves10.1242/jcs.212233
A model suite of green algae within the Scenedesmaceae for investigating contrasting desiccation tolerance and morphology
resolves10.1093/pcp/pcz103
Tolerance to Cyclic Desiccation in Lichen Microalgae is Related to Habitat Preference and Involves Specific Priming of the Antioxidant System
resolves10.1073/pnas.0407716102
Antioxidants and photoprotection in a lichen as compared with its isolated symbiotic partners
resolves10.1111/1462-2920.13249
Contrasting strategies used by lichen microalgae to cope with desiccation–rehydration stress revealed by metabolite profiling and cell wall analysis
resolves10.1034/j.1399-3054.1999.105412.x
Effects of ascorbate feeding on chlorophyll fluorescence and xanthophyll cycle components in the lichen <i>Parmelia quercina</i> (Willd.) Vainio exposed to atmospheric pollutants
resolves10.1006/lich.1998.0164
Oxidative Stress and Ascorbic Acid Contents in <i>Parmotrema Reticulatum</i> and <i>Parmelia Sulcata</i> Thalli
resolves10.1111/pce.12061
Plant sugars are crucial players in the oxidative challenge during abiotic stress: extending the traditional concept
resolves10.1016/j.plaphy.2017.02.021
Antioxidant defense during desiccation of the resurrection plant Haberlea rhodopensis
resolves10.1007/s11356-017-9444-0
Ozone and desiccation tolerance in chlorolichens are intimately connected: a case study based on two species with different ecology
resolves10.1111/j.1399-3054.2008.01134.x
Adaptations of higher plant cell walls to water loss: drought vs desiccation
resolves10.3389/fpls.2016.00678
Abiotic Stress Tolerance of Charophyte Green Algae: New Challenges for Omics Techniques
resolves10.1007/BF01281320
Drought-induced structural alterations at the mycobiont-photobiont interface in a range of foliose macrolichens
resolves10.1093/aob/mcz181
Ultrastructural and biochemical analyses reveal cell wall remodelling in lichen-forming microalgae submitted to cyclic desiccation–rehydration
resolves10.1002/j.1537-2197.1982.tb13418.x
CELL WALL CONFORMATION IN DRY SEEDS IN RELATION TO THE PRESERVATION OF STRUCTURAL INTEGRITY DURING DESICCATION
resolves10.1111/ppl.12727
Plant and algal structure: from cell walls to biomechanical function
resolves10.1016/j.femsec.2005.05.003
Molecular studies of photobionts of selected lichens from the coastal vegetation of Brazil
resolves10.1016/j.ijbiomac.2007.02.006
First report on polysaccharides of Asterochloris and their potential role in the lichen symbiosis
resolves10.1111/j.1462-2920.2010.02386.x
Two <i>Trebouxia</i> algae with different physiological performances are ever‐present in lichen thalli of <i>Ramalina farinacea</i> . Coexistence versus Competition?
resolves10.1007/s00248-021-01685-z
Physiological and Molecular Alterations of Phycobionts of Genus Trebouxia and Coccomyxa Exposed to Cadmium
resolves10.1111/1462-2920.15043
Disentangling the role of extracellular polysaccharides in desiccation tolerance in lichen‐forming microalgae. First evidence of sulfated polysaccharides and ancient sulfotransferase genes
resolves10.1111/j.1574-6941.2008.00568.x
Effect of exogenous extracellular polysaccharides on the desiccation and freezing tolerance of rock-inhabiting phototrophic microorganisms
resolves10.1016/j.carbpol.2014.01.061
Effects of light wavelengths on extracellular and capsular polysaccharide production by Nostoc flagelliforme
resolves10.1111/1541-4337.12441
Nutraceutical Potential of Seaweed Polysaccharides: Structure, Bioactivity, Safety, and Toxicity
resolves10.1016/j.biotechadv.2013.07.011
Microalgae for high-value compounds and biofuels production: A review with focus on cultivation under stress conditions
resolves10.1016/j.plantsci.2015.04.003
Differences in the cell walls and extracellular polymers of the two Trebouxia microalgae coexisting in the lichen Ramalina farinacea are consistent with their distinct capacity to immobilize extracellular Pb
resolves10.1104/pp.101.4.1127
Structural Cell Wall Proteins
resolves10.3389/fpls.2016.00984
The Plant Cell Wall: A Complex and Dynamic Structure As Revealed by the Responses of Genes under Stress Conditions
resolves10.1017/S002428298400030X
Cell Walls of the Phycobionts <i>Trebouxia</i> and <i>Pseudotrebouxia</i>: Constituents and Their Localization
resolves10.1016/S0006-3495(99)77484-9
Characterization of Molecular Mobility in Seed Tissues: An Electron Paramagnetic Resonance Spin Probe Study
resolves10.1016/S1360-1385(01)02052-0
Mechanisms of plant desiccation tolerance
resolves10.1104/pp.122.4.1217
Is There a Role for Oligosaccharides in Seed Longevity? An Assessment of Intracellular Glass Stability
resolves10.1093/jxb/eraa521
How dry is dry? Molecular mobility in relation to thallus water content in a lichen
resolves10.1016/j.pbi.2011.03.018
Programming desiccation-tolerance: from plants to seeds to resurrection plants
resolves10.3390/proteomes4040040
Enzymes and Metabolites in Carbohydrate Metabolism of Desiccation Tolerant Plants
resolves10.1007/978-0-387-39975-1
Molecular Aspects of the Stress Response: Chaperones, Membranes and Networks
resolves10.1111/j.1469-8137.1989.tb00707.x
A <sup>13</sup>C NMR study of photosynthate transport and metabolism in the lichen <i>Xanthoria calcicola</i> Oxner
resolves10.1111/j.1469-8137.1976.tb01505.x
ECOLOGICAL PHYSIOLOGY OF THE LICHEN <i>HYPOGYMNIA PHYSODES</i>
resolves10.1007/s00425-007-0563-6
Metabolic processes sustaining the reviviscence of lichen Xanthoria elegans (Link) in high mountain environments
resolves10.1046/j.1365-313X.1991.t01-11-00999.x
Novel carbohydrate metabolism in the resurrection plant Craterostigma plantagineum
resolves10.1111/j.1399-3054.1997.tb03466.x
Desiccation increases sucrose levels in <i>Ramonda</i> and <i>Haberlea</i>, two genera of resurrection plants in the Gesneriaceae
resolves10.1093/jxb/erm056
Protection mechanisms in the resurrection plant Xerophyta viscosa (Baker): both sucrose and raffinose family oligosaccharides (RFOs) accumulate in leaves in response to water deficit
resolves10.1111/j.1469-8137.2006.01754.x
Responses of the green algal foliose lichen <i>Platismatia glauca</i> to increased nitrogen supply
resolves10.2216/15-127.1
Metabolic response to desiccation stress in strains of green algal photobionts (<i>Trebouxia</i>) from two Antarctic lichens of southern habitats
resolves10.1016/j.envexpbot.2021.104397
Polyols-related gene expression is affected by cyclic desiccation in lichen microalgae
resolves10.1007/BF00027385
Sequence and characterization of 6 Lea proteins and their genes from cotton
resolves10.1146/annurev.arplant.47.1.377
THE MOLECULAR BASIS OF DEHYDRATION TOLERANCE IN PLANTS
resolves10.1007/978-94-011-4431-5
Seed Proteins
resolves10.1042/BJ20041931
LEA proteins prevent protein aggregation due to water stress
resolves10.1016/S0167-4838(00)00220-X
Isolation and characterization of a D-7 LEA protein from pollen that stabilizes glasses in vitro
resolves10.1111/j.1399-3054.1997.tb04785.x
Dehydrins: A commonalty in the response of plants to dehydration and low temperature
resolves10.1074/jbc.M212007200
Transition from Natively Unfolded to Folded State Induced by Desiccation in an Anhydrobiotic Nematode Protein
resolves10.1126/science.1191803
Freezing Tolerance in Plants Requires Lipid Remodeling at the Outer Chloroplast Membrane
resolves10.1104/pp.16.00286
Chloroplast Membrane Remodeling during Freezing Stress Is Accompanied by Cytoplasmic Acidification Activating SENSITIVE TO FREEZING2
resolves10.1104/pp.18.00503
DIACYLGLYCEROL ACYLTRANSFERASE1 Contributes to Freezing Tolerance
resolves10.1104/pp.16.01183
SENSITIVE TO FREEZING2 Aids in Resilience to Salt and Drought in Freezing-Sensitive Tomato
resolves10.1111/tpj.12241
The role of lipid metabolism in the acquisition of desiccation tolerance in <i><scp>C</scp>raterostigma plantagineum</i>: a comparative approach
resolves10.1016/j.envexpbot.2019.05.003
Evolution, biosynthesis and protective roles of oligogalactolipids: Key molecules for terrestrial photosynthesis?
resolves10.1016/j.bpj.2018.08.014
Folding and Lipid Composition Determine Membrane Interaction of the Disordered Protein COR15A
resolves10.1093/pcp/pcw111
The Role of Phospholipase D and MAPK Signaling Cascades in the Adaption of Lichen Microalgae to Desiccation: Changes in Membrane Lipids and Phosphoproteome
resolves10.1016/j.molcel.2010.10.006
The Heat Shock Response: Life on the Verge of Death
resolves10.1093/jxb/47.3.325
Evolution, structure and function of the small heat shock proteins in plants
resolves10.1093/emboj/18.23.6744
Hsp26: a temperature‐regulated chaperone
resolves10.1104/pp.122.1.189
A Small Heat Shock Protein Cooperates with Heat Shock Protein 70 Systems to Reactivate a Heat-Denatured Protein
resolves10.1016/S0005-2736(99)00215-1
The LEA-like protein HSP 12 in Saccharomyces cerevisiae has a plasma membrane location and protects membranes against desiccation and ethanol-induced stress
resolves10.1073/pnas.192468399
Small heat-shock proteins regulate membrane lipid polymorphism
resolves10.1111/pce.12065
The response of <scp><i>A</i></scp><i>sterochloris erici</i> (<scp>A</scp>hmadjian) <scp>S</scp>kaloud et <scp>P</scp>eksa to desiccation: a proteomic approach
resolves10.1016/j.plaphy.2018.06.004
Relation between water status and desiccation-affected genes in the lichen photobiont Trebouxia gelatinosa
resolves10.1007/s11103-016-0468-5
New features of desiccation tolerance in the lichen photobiont Trebouxia gelatinosa are revealed by a transcriptomic approach
resolves10.1186/s12864-019-5629-x
The lichen symbiosis re-viewed through the genomes of Cladonia grayi and its algal partner Asterochloris glomerata
resolves10.1186/1471-2164-14-870
Whole transcriptome characterization of the effects of dehydration and rehydration on Cladonia rangiferina, the grey reindeer lichen
resolves10.1007/s00425-018-2925-7
Survey of the occurrence of desiccation-induced quenching of basal fluorescence in 28 species of green microalgae
resolves10.1371/journal.pone.0110630
Transcriptomics of Desiccation Tolerance in the Streptophyte Green Alga Klebsormidium Reveal a Land Plant-Like Defense Reaction
resolves10.1093/pcp/pcx136
Enhanced Desiccation Tolerance in Mature Cultures of the Streptophytic Green Alga Zygnema circumcarinatum Revealed by Transcriptomics
resolves10.1016/j.jplph.2018.05.002
Protection of photosynthesis in desiccation-tolerant resurrection plants
resolves10.1007/s00425-015-2292-6
Desiccation tolerance in the chlorophyte green alga Ulva compressa: does cell wall architecture contribute to ecological success?
resolves10.1111/ppl.12511
Dehydration rate determines the degree of membrane damage and desiccation tolerance in bryophytes
resolves10.1104/pp.94.4.1682
Characterization of Five Abscisic Acid-Responsive cDNA Clones Isolated from the Desiccation-Tolerant Plant <i>Craterostigma plantagineum</i> and Their Relationship to Other Water-Stress Genes
resolves10.1007/s11008-005-0028-6
Identification and characterization of differentially expressed ESTs of Gossypium barbadense infected by Verticillium dahliae with suppression subtractive hybridization
resolves10.1111/j.1469-8137.2008.02484.x
Global patterns of gene expression in rice cultivars undergoing a susceptible or resistant interaction with the parasitic plant <i>Striga hermonthica</i>
resolves10.1038/35048706
Sequence and analysis of chromosome 3 of the plant Arabidopsis thaliana
resolves10.1093/jxb/ery173
Analysis of pcC13-62 promoters predicts a link between cis-element variations and desiccation tolerance in Linderniaceae
resolves10.1073/pnas.1914480116
A ligand-independent origin of abscisic acid perception
resolves10.1016/j.cj.2016.01.010
Phytohormones and their metabolic engineering for abiotic stress tolerance in crop plants
resolves10.20944/preprints201911.0382.v1
Integration of Abscisic Acid Signaling with Other Signaling Pathways in Plant Stress Responses and Development
resolves10.1016/j.biotechadv.2020.107612
Potential of phytohormones as a strategy to improve microalgae productivity for biotechnological applications
resolves10.1007/s00425-018-2993-8
Characterization of the responses to saline stress in the symbiotic green microalga Trebouxia sp. TR9
resolves10.1111/jpy.13032
Abundance and Extracellular Release of Phytohormones in Aero‐terrestrial Microalgae (Trebouxiophyceae, Chlorophyta) As a Potential Chemical Signaling Source<sup>1</sup>
resolves10.1071/FP10058
The evolution of abscisic acid (ABA) and ABA function in lower plants, fungi and lichen
resolves10.1016/j.biotechadv.2013.09.006
The role of ABA and MAPK signaling pathways in plant abiotic stress responses
resolves10.1016/S0092-8674(01)00606-7
Guard Cell Signaling
resolves10.1105/tpc.010441
Abscisic Acid Signaling in Seeds and Seedlings
resolves10.1104/pp.97.2.798
Abscisic Acid Metabolism in Salt-Stressed Cells of <i>Dunaliella salina</i>
resolves10.1007/s00425-015-2438-6
Role of abscisic acid (ABA) in activating antioxidant tolerance responses to desiccation stress in intertidal seaweed species
resolves10.1046/j.1469-8137.1998.00881.x
Abscisic acid in lichens: variation, water relations and metabolism
resolves10.1104/pp.010765
Desiccation Tolerance in the Resurrection Plant<i>Craterostigma plantagineum</i>. A Contribution to the Study of Drought Tolerance at the Molecular Level
resolves10.1093/jxb/err079
Molecular, cellular, and physiological responses to phosphatidic acid formation in plants
resolves10.1016/S0083-6729(05)72010-0
Nitric Oxide Signaling in Plants
resolves10.1093/jxb/erm244
Nitric oxide function and signalling in plant disease resistance
resolves10.1080/15592324.2019.1667730
Nitric oxide modulates polyamine homeostasis in sunflower seedling cotyledons under salt stress
resolves10.1111/ppl.12958
Salicylic acid and nitric oxide signaling in plant heat stress
resolves10.1093/jxb/erm293
Nitric oxide, stomatal closure, and abiotic stress
resolves10.1104/pp.104.058719
Proteomic Identification of <i>S</i> -Nitrosylated Proteins in Arabidopsis  
resolves10.1016/j.plaphy.2017.01.028
Protein tyrosine nitration in plants: Present knowledge, computational prediction and future perspectives
resolves10.1105/tpc.109.073510
Characterization of a Nitric Oxide Synthase from the Plant Kingdom: NO Generation from the Green Alga <i>Ostreococcus tauri</i> Is Light Irradiance and Growth Phase Dependent    
resolves10.1016/S1360-1385(99)01393-X
An alternative pathway for nitric oxide production in plants: new features of an old enzyme
resolves10.1093/jxb/45.5.577
Accumulation and polysomal recruitment of transcripts in response to desiccation and rehydration of the moss<i>Tortula ruralis</i>
resolves10.1046/j.1365-313X.1999.00458.x
Translational control in plant stress: the formation of messenger ribonucleoprotein particles (mRNPs) in response to desiccation of <i>Tortula ruralis</i> gametophytes
The 17 references without a DOI — listed, not checked
no DOI — not checkedDesiccation-tolerance of plant tissues: A mechanistic overview
no DOI — not checkedGalun, M. (1988). The lichen thallus. CRC Handbook of Lichenology, CRC Press.
no DOI — not checkedThe absorption and release of water by lichens
no DOI — not checkedAhmadjian, V., and Hale, M.E. (1973). Chapter 10-Response to extreme environments. The Lichens, Academic Press.
no DOI — not checkedThomas, E.A. (1939). Über die Biologie von Flechtenbildnern, Kommissionsverlag Buchdruckerei Büchler.
no DOI — not checkedHitze- und Trockenresistenz der Flechten in Beziehung zu ihrer Verbreitung
no DOI — not checkedRecherches physiologiques sur les lichens. II/2. Influence de la proportion d’eau du lichen sur l’intensité des échanges gazeux
no DOI — not checkedPapageorgiou, G.C. (2004). Non-photochemical Energy Dissipation Determined by Chlorophyll Fluorescence Quenching: Characterization and Function. Chlorophyll a Fluorescence: A Signature of Photosynthesis, Springer.
no DOI — not checkedLerner, H.R. (1999). Evolutionary consequences of transition to a lichen symbiotic state and physiological adaptation to oxidative damage associated with poikilohydry. Plant Responses to Environmental Stresses: From Phytohormones to Genome Reorganization, M. Dekker.
no DOI — not checkedThe effect of desiccation on the activities of antioxidant enzymes in lichens from habitats of contrasting water status
no DOI — not checkedShabala, S. (2007). Desiccation tolerance. Plant Stress Physiology, CAB International.
no DOI — not checkedThe under-explored extracellular proteome of aero-terrestrial microalgae provides clues on different mechanisms of desiccation tolerance in non-model organisms
no DOI — not checkedMargulis, L., and Fester, R. (1991). Fungal evolution: Symbiosis and morphogenesis. Symbiosis as a Source of Evolutionary Innovation, The MIT Press.
no DOI — not checkedBray, E.A. (1993). Structural motifs in LEA proteins. Plant Responses to Cellular Dehydration during Environmental Stress, American Society of Plant Physiologists.
no DOI — not checkedDesiccation tolerance in resurrection plants: New insights from transcriptome, proteome and metabolome analysis
no DOI — not checkedInduction of tolerance to oxidative stress in the green alga, Chlamydomonas reinhardtii, by abscisic acid
no DOI — not checkedPiccotto, M. (2009). Effetti Degli NOx Sulla Fisiologia dei Licheni Foliosi Epifiti. [Ph.D. Thesis, Universtà Degli Studi Di Trieste].
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