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dc.contributor.authorAntonio Hernández Cortés, Jose*
dc.date.accessioned2021-02-12T02:46:25Z
dc.date.available2021-02-12T02:46:25Z
dc.date.issued2019*
dc.date.submitted2019-06-26 10:09:00*
dc.identifier33724*
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/58813
dc.description.abstractSalt stress is one of the most damaging abiotic stresses because most crop plants are susceptible to salinity to different degrees. According to the FAO, about 800 million Has of land are affected by salinity worldwide. Unfortunately, this situation will worsen in the context of climate change, where there will be an overall increase in temperature and a decrease in average annual rainfall worldwide. This Special Issue presents different research works and reviews on the response of plants to salinity, focused from different points of view: physiological, biochemical, and molecular levels. Although an important part of the studies on the response to salinity have been carried out with Arabidopsis plants, the use of other species with agronomic interest is also notable, including woody plants. Most of the conducted studies in this Special Issue were focused on the identification and characterization of candidate genes for salt tolerance in higher plants. This identification would provide valuable information about the molecular and genetic mechanisms involved in the salt tolerance response, and it also supplies important resources to breeding programs for salt tolerance in plants.*
dc.languageEnglish*
dc.subjectQH301-705.5*
dc.subjectQD415-436*
dc.subjectQ1-390*
dc.subject.classificationthema EDItEUR::P Mathematics and Science::PS Biology, life sciencesen_US
dc.subject.othersoluble nutrients*
dc.subject.othertranscription factor*
dc.subject.othern/a*
dc.subject.otherCDPK*
dc.subject.othersalicylic acid*
dc.subject.otherantioxidant enzymes*
dc.subject.otherlight saturation point*
dc.subject.otherphytohormone*
dc.subject.otherion homeostasis*
dc.subject.otherantioxidant systems*
dc.subject.otherphotosynthesis*
dc.subject.otherChlamydomonas reinhardtii*
dc.subject.otherhigh salinity*
dc.subject.othernitric oxide*
dc.subject.otherpoplars (Populus)*
dc.subject.otherroot activity*
dc.subject.otherabiotic stresses*
dc.subject.othertranscriptional activator*
dc.subject.othergermination*
dc.subject.otherABA*
dc.subject.othertranscriptome*
dc.subject.othermandelonitrile*
dc.subject.otherredox homeostasis*
dc.subject.otherassociation mapping.*
dc.subject.otherredox signalling*
dc.subject.otherosmotic stress*
dc.subject.otherflax*
dc.subject.otherstrigolactones*
dc.subject.othersalt tolerance*
dc.subject.othernucleolin*
dc.subject.otherCaDHN5*
dc.subject.otherphotosystem*
dc.subject.otherEST-SSR*
dc.subject.otherNMT*
dc.subject.otherSapium sebiferum*
dc.subject.otherGossypium arboretum*
dc.subject.otherSOS*
dc.subject.otherBrassica napus*
dc.subject.otherSnRK2*
dc.subject.otherHKT1*
dc.subject.othergrapevine*
dc.subject.othertranscription factors*
dc.subject.othercucumber*
dc.subject.otherunderpinnings of salt stress responses*
dc.subject.otherabiotic stress*
dc.subject.otherArabidopsis thaliana*
dc.subject.otherRNA-seq*
dc.subject.otherhalophytes*
dc.subject.othersingle nucleotide polymorphisms*
dc.subject.otherdehydrin*
dc.subject.otherJ8-1 plum line*
dc.subject.otherchlorophyll fluorescence*
dc.subject.othernatural variation*
dc.subject.otherhydrogen peroxide*
dc.subject.othersalt stress*
dc.subject.otherlipid peroxidation*
dc.subject.otherROS detoxification*
dc.subject.otherROP*
dc.subject.othermolecular mechanisms*
dc.subject.othercell membrane injury*
dc.subject.otherbooting stage*
dc.subject.otherascorbate cycle*
dc.subject.otherbanana (Musa acuminata L.)*
dc.subject.otheriTRAQ quantification*
dc.subject.otherROS*
dc.subject.otherNa+*
dc.subject.otherCapsicum annuum L.*
dc.subject.otherbZIP transcription factors*
dc.subject.othermultiple bioactive constituents*
dc.subject.otherNaCl stress*
dc.subject.otherphysiological changes*
dc.subject.otherVOZ*
dc.subject.othertranscriptional regulation*
dc.subject.othergenome-wide identification*
dc.subject.otherApocyni Veneti Folium*
dc.subject.otherimpairment of photosynthesis*
dc.subject.othersalt-stress*
dc.subject.otherOryza sativa*
dc.subject.otherreactive oxygen species*
dc.subject.otherlipid accumulation*
dc.subject.otherpolyamines*
dc.subject.othermultivariate statistical analysis*
dc.subject.otherDEUs*
dc.subject.othersalinity*
dc.subject.otherTGase*
dc.subject.otherSalt stress*
dc.subject.otherPrunus domestica*
dc.subject.otherproteomics*
dc.subject.otherArabidopsis*
dc.subject.otherRNA binding protein*
dc.subject.otherrice*
dc.subject.otherglycophytes*
dc.subject.otherSsMAX2*
dc.subject.otherdrought*
dc.subject.othergenome-wide association study*
dc.subject.othertranscriptome analysis*
dc.subject.othersignal pathway*
dc.subject.othermelatonin*
dc.subject.otherMaROP5g*
dc.titleSalinity Tolerance in Plants*
dc.typebook
oapen.identifier.doi10.3390/books978-3-03921-027-5*
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0*
oapen.relation.isbn9783039210275*
oapen.relation.isbn9783039210268*
oapen.pages422*
oapen.edition1st*


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