Modulation of physio-biochemical and photosynthesis parameters by overexpressing SbPIP2 gene improved abiotic stress tolerance of transgenic tobacco

Jaykumar Patel, Kusum Khatri, Deepesh Khandwal, Nirmala Kumari Gupta, Babita Choudhary, Divya Hapani, Jignasha Koshiya, Saif Najam Syed, Dylan Wyn Phillips, Huw Dylan Jones, Avinash Mishra*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

The present study aims to explore the potential of a plasma-membrane localized PIP2-type aquaporin protein sourced from the halophyte Salicornia brachiata to alleviate salinity and water deficit stress tolerance in a model plant through transgenic intervention. Transgenic plants overexpressing SbPIP2 gene showed improved physio-biochemical parameters like increased osmolytes (proline, total sugar, and amino acids), antioxidants (polyphenols), pigments and membrane stability under salinity and drought stresses compared to control plants [wild type (WT) and vector control (VC) plants]. Multivariate statistical analysis showed that, under water and salinity stresses, osmolytes, antioxidants and pigments were correlated with SbPIP2-overexpressing (SbPIP2-OE) plants treated with salinity and water deficit stress, suggesting their involvement in stress tolerance. As aquaporins are also involved in CO2 transport, SbPIP2-OE plants showed enhanced photosynthesis performance than wild type upon salinity and drought stresses. Photosynthetic gas exchange (net CO2 assimilation rate, PSII efficiency, ETR, and non-photochemical quenching) were significantly higher in SbPIP2-OE plants compared to control plants (wild type and vector control plants) under both unstressed and stressed conditions. The higher quantum yield for reduction of end electron acceptors at the PSI acceptor side [Φ(R0)] in SbPIP2-OE plants compared to control plants under abiotic stresses indicates a continued PSI functioning, leading to retained electron transport rate, higher carbon assimilation, and less ROS-mediated injuries. In conclusion, the SbPIP2 gene functionally validated in the present study could be a potential candidate for engineering abiotic stress resilience in important crops.
Original languageEnglish
Article numbere14384
JournalPhysiologia Plantarum
Volume176
Issue number3
DOIs
Publication statusPublished - 10 Jun 2024

Keywords

  • Antioxidants - metabolism
  • Aquaporins - genetics - metabolism
  • Chenopodiaceae - genetics - physiology - metabolism
  • Droughts
  • Gene Expression Regulation, Plant
  • Nicotiana - genetics - physiology
  • Photosynthesis - genetics
  • Plant Proteins - genetics - metabolism
  • Plants, Genetically Modified
  • Salinity
  • Stress, Physiological - genetics
  • Photosynthesis/genetics
  • Chenopodiaceae/genetics
  • Stress, Physiological/genetics
  • Antioxidants/metabolism
  • Plant Proteins/genetics
  • Nicotiana/genetics
  • Aquaporins/genetics

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