Literature DB >> 29350476

Investigating the mechanisms underlying phytoprotection by plant growth-promoting rhizobacteria in Spartina densiflora under metal stress.

K Paredes-Páliz1, R Rodríguez-Vázquez1, B Duarte2, M A Caviedes1, E Mateos-Naranjo3, S Redondo-Gómez3, M I Caçador2, I D Rodríguez-Llorente1, E Pajuelo1.   

Abstract

Pollution of coasts by toxic metals and metalloids is a worldwide problem for which phytoremediation using halophytes and associated microbiomes is becoming relevant. Metal(loid) excess is a constraint for plant establishment and development, and plant growth promoting rhizobacteria (PGPR) mitigate plant stress under these conditions. However, mechanisms underlying this effect remain elusive. The effect of toxic metal(loid)s on activity and gene expression of ROS-scavenging enzymes in roots of the halophyte Spartina densiflora grown on real polluted sediments in a greenhouse experiment was investigated. Sediments of the metal-polluted joint estuary of Tinto and Odiel rivers and control, unpollutred samples from the Piedras estuary were collected and submitted to ICP-OES. Seeds of S. densiflora were collected from the polluted Odiel marshes and grown in polluted and unpolluted sediments. Rhizophere biofilm-forming bacteria were selected based on metal tolerance and inoculated to S. densiflora and grown for 4 months. Fresh or frozen harvested plants were used for enzyme assays and gene expression studies, respectively. Metal excess induced SOD (five-fold increase), whereas CAT and ascorbate peroxidase displayed minor induction (twofold). A twofold increase of TBARs indicated membrane damage. Our results showed that metal-resistant PGPR (P. agglomerans RSO6 and RSO7 and B. aryabhattai RSO25) contributed to alleviate metal stress, as deduced from lower levels of all antioxidant enzymes to levels below those of non-exposed plants. The oxidative stress index (OSI) decreased between 50 and 75% upon inoculation. The results also evidenced the important role of PAL, involved in secondary metabolism and/or lignin synthesis, as a pathway for metal stress management in this halophyte upon inoculation with appropriate PGPR, since the different inoculation treatments enhanced PAL expression between 3.75- and five-fold. Our data confirm, at the molecular level, the role of PGPR in alleviating metal stress in S. densiflora and evidence the difficulty of working with halophytes for which little genetic information is available.
© 2018 German Society for Plant Sciences and The Royal Botanical Society of the Netherlands.

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Keywords:  Heavy metal stress; PGPR-halophyte interaction; ROS scavenging enzymes; phenylalanine ammonia lyase; thiobarbituric acid reactive substances

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Year:  2018        PMID: 29350476     DOI: 10.1111/plb.12693

Source DB:  PubMed          Journal:  Plant Biol (Stuttg)        ISSN: 1435-8603            Impact factor:   3.081


  4 in total

1.  Native Heavy Metal-Tolerant Plant Growth Promoting Rhizobacteria Improves Sulla spinosissima (L.) Growth in Post-Mining Contaminated Soils.

Authors:  Malika Oubohssaine; Laila Sbabou; Jamal Aurag
Journal:  Microorganisms       Date:  2022-04-19

Review 2.  Plants-Microorganisms-Based Bioremediation for Heavy Metal Cleanup: Recent Developments, Phytoremediation Techniques, Regulation Mechanisms, and Molecular Responses.

Authors:  Anas Raklami; Abdelilah Meddich; Khalid Oufdou; Marouane Baslam
Journal:  Int J Mol Sci       Date:  2022-05-01       Impact factor: 6.208

3.  Phytoextraction of iron from contaminated soils by inoculation of iron-tolerant plant growth-promoting bacteria in Brassica juncea L. Czern.

Authors:  Hardik Naik Jinal; Kachhadiya Gopi; Patel Prittesh; Vinodbhai Patel Kartik; Natarajan Amaresan
Journal:  Environ Sci Pollut Res Int       Date:  2019-09-09       Impact factor: 4.223

Review 4.  Overview of biofertilizers in crop production and stress management for sustainable agriculture.

Authors:  Parul Chaudhary; Shivani Singh; Anuj Chaudhary; Anita Sharma; Govind Kumar
Journal:  Front Plant Sci       Date:  2022-08-23       Impact factor: 6.627

  4 in total

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