| Literature DB >> 27549233 |
Naser A Anjum1, Pallavi Sharma2, Sarvajeet S Gill3, Mirza Hasanuzzaman4, Ekhlaque A Khan5, Kiran Kachhap5, Amal A Mohamed6, Palaniswamy Thangavel7, Gurumayum Devmanjuri Devi7, Palanisamy Vasudhevan7, Adriano Sofo8, Nafees A Khan9, Amarendra Narayan Misra10, Alexander S Lukatkin11, Harminder Pal Singh12, Eduarda Pereira13, Narendra Tuteja14.
Abstract
Plants have to counteract unavoidable stress-caused anomalies such as oxidative stress to sustain their lives and serve heterotrophic organisms including humans. Among major enzymatic antioxidants, catalase (CAT; EC 1.11.1.6) and ascorbate peroxidase (APX; EC 1.11.1.11) are representative heme enzymes meant for metabolizing stress-provoked reactive oxygen species (ROS; such as H2O2) and controlling their potential impacts on cellular metabolism and functions. CAT mainly occurs in peroxisomes and catalyzes the dismutation reaction without requiring any reductant; whereas, APX has a higher affinity for H2O2 and utilizes ascorbate (AsA) as specific electron donor for the reduction of H2O2 into H2O in organelles including chloroplasts, cytosol, mitochondria, and peroxisomes. Literature is extensive on the glutathione-associated H2O2-metabolizing systems in plants. However, discussion is meager or scattered in the literature available on the biochemical and genomic characterization as well as techniques for the assays of CAT and APX and their modulation in plants under abiotic stresses. This paper aims (a) to introduce oxidative stress-causative factors and highlights their relationship with abiotic stresses in plants; (b) to overview structure, occurrence, and significance of CAT and APX in plants; (c) to summarize the principles of current technologies used to assay CAT and APX in plants; (d) to appraise available literature on the modulation of CAT and APX in plants under major abiotic stresses; and finally, (e) to consider a brief cross-talk on the CAT and APX, and this also highlights the aspects unexplored so far.Entities:
Keywords: Abiotic stress; Ascorbate peroxidase; Catalase; Oxidative stress; Plant stress tolerance; Reactive oxygen species
Mesh:
Substances:
Year: 2016 PMID: 27549233 DOI: 10.1007/s11356-016-7309-6
Source DB: PubMed Journal: Environ Sci Pollut Res Int ISSN: 0944-1344 Impact factor: 4.223