Literature DB >> 26687010

PDH45 transgenic rice maintain cell viability through lower accumulation of Na(+), ROS and calcium homeostasis in roots under salinity stress.

Manoj Nath1, Sandep Yadav1, Ranjan Kumar Sahoo1, Nishat Passricha1, Renu Tuteja1, Narendra Tuteja2.   

Abstract

Salinity severely affects the growth/productivity of rice, which is utilized as major staple food crop worldwide. PDH45 (pea DNA helicase 45), a member of the DEAD-box helicase family, actively provides salinity stress tolerance, but the mechanism behind this is not well known. Therefore, in order to understand the mechanism of stress tolerance, sodium ion (Na(+)), reactive oxygen species (ROS), cytosolic calcium [Ca(2+)]cyt and cell viability were analyzed in roots of PDH45 transgenic-IR64 rice lines along with wild-type (WT) IR64 rice under salinity stress (100mM and 200 mM NaCl). In addition, the roots of salinity-tolerant (FL478) and susceptible (Pusa-44) rice varieties were also analyzed under salinity stress for comparative analysis. The results reveal that, under salinity stress (100mM and 200 mM NaCl), roots of PDH45 transgenic lines accumulate lower levels of Na(+), ROS and maintain [Ca(2+)]cyt and exhibit higher cell viability as compared with roots of WT (IR64) plants. Similar results were also obtained in the salinity-tolerant FL478 rice. However, the roots of WT and salinity-susceptible Pusa-44 rice accumulated higher levels of Na(+), ROS and [Ca(2+)]cyt imbalance and lower cell viability during salinity stress, which is in contrast to the overexpressing PDH45 transgenic lines and salinity-tolerant FL478 rice. Further, to understand the mechanism of PDH45 at molecular level, comparative expression profiling of 12 cation transporters/genes was also conducted in roots of WT (IR64) and overexpressing PDH45 transgenic lines (L1 and L2) under salt stress (24h of 200 mM NaCl). The expression analysis results show altered and differential gene expression of cation transporters/genes in salt-stressed roots of WT (IR64) and overexpressing transgenic lines (L1 and L2). These observations collectively suggest that, under salinity stress conditions, PDH45 is involved in the regulation of Na(+) level, ROS production, [Ca(2+)]cyt homeostasis, cell viability and cation transporters in roots of PDH45 transgenic-IR64 rice and consequently provide salinity tolerance. Elucidating the detailed regulatory mechanism of PDH45 will provide a better understanding of salinity stress tolerance and further open new ways to manipulate genome to achieve higher agricultural production under stress.
Copyright © 2015 Elsevier GmbH. All rights reserved.

Entities:  

Keywords:  Calcium (Ca(2+)) homeostasis; Cell viability; Pea DNA helicase 45 (PDH45); ROS; Salinity stress; Sodium (Na(+)) accumulation

Mesh:

Substances:

Year:  2015        PMID: 26687010     DOI: 10.1016/j.jplph.2015.11.008

Source DB:  PubMed          Journal:  J Plant Physiol        ISSN: 0176-1617            Impact factor:   3.549


  8 in total

1.  Introgression, Generational Expression and Salinity Tolerance Conferred by the Pea DNA Helicase 45 Transgene into Two Commercial Rice Genotypes, BR28 and BR47.

Authors:  Sudip Biswas; U S Mahzabin Amin; Sarah Sarker; M Sazzadur Rahman; Ruhul Amin; Rezaul Karim; Narendra Tuteja; Zeba I Seraj
Journal:  Mol Biotechnol       Date:  2018-02       Impact factor: 2.695

Review 2.  A Review of Integrative Omic Approaches for Understanding Rice Salt Response Mechanisms.

Authors:  Mohammad Asad Ullah; Muhammad-Redha Abdullah-Zawawi; Rabiatul-Adawiah Zainal-Abidin; Noor Liyana Sukiran; Md Imtiaz Uddin; Zamri Zainal
Journal:  Plants (Basel)       Date:  2022-05-27

3.  Foliar applied fullerol differentially improves salt tolerance in wheat through ion compartmentalization, osmotic adjustments and regulation of enzymatic antioxidants.

Authors:  Fahad Shafiq; Muhammad Iqbal; Muhammad Arslan Ashraf; Muhammad Ali
Journal:  Physiol Mol Biol Plants       Date:  2020-01-23

Review 4.  Reactive Oxygen Species Generation-Scavenging and Signaling during Plant-Arbuscular Mycorrhizal and Piriformospora indica Interaction under Stress Condition.

Authors:  Manoj Nath; Deepesh Bhatt; Ram Prasad; Sarvajeet S Gill; Naser A Anjum; Narendra Tuteja
Journal:  Front Plant Sci       Date:  2016-10-21       Impact factor: 5.753

5.  Overexpression of SbSI-1, A Nuclear Protein from Salicornia brachiata Confers Drought and Salt Stress Tolerance and Maintains Photosynthetic Efficiency in Transgenic Tobacco.

Authors:  Jyoti Kumari; Pushpika Udawat; Ashish K Dubey; Md Intesaful Haque; Mangal S Rathore; Bhavanath Jha
Journal:  Front Plant Sci       Date:  2017-07-13       Impact factor: 5.753

6.  Improved physiological and morphological traits of root synergistically enhanced salinity tolerance in rice under appropriate nitrogen application rate.

Authors:  Yinglong Chen; Yang Liu; Jianfei Ge; Rongkai Li; Rui Zhang; Yang Zhang; Zhongyang Huo; Ke Xu; Huanhe Wei; Qigen Dai
Journal:  Front Plant Sci       Date:  2022-07-29       Impact factor: 6.627

Review 7.  Multi-Omics and Integrative Approach towards Understanding Salinity Tolerance in Rice: A Review.

Authors:  Pandiyan Muthuramalingam; Rajendran Jeyasri; Kasinathan Rakkammal; Lakkakula Satish; Sasanala Shamili; Adhimoolam Karthikeyan; Alaguvel Valliammai; Arumugam Priya; Anthonymuthu Selvaraj; Pandiyan Gowri; Qiang-Sheng Wu; Shunmugiah Karutha Pandian; Hyunsuk Shin; Jen-Tsung Chen; Venkidasamy Baskar; Muthu Thiruvengadam; Manoharan Akilan; Manikandan Ramesh
Journal:  Biology (Basel)       Date:  2022-07-07

8.  Marker-free transgenic rice plant overexpressing pea LecRLK imparts salinity tolerance by inhibiting sodium accumulation.

Authors:  Nishat Passricha; Shabnam K Saifi; Pushpa Kharb; Narendra Tuteja
Journal:  Plant Mol Biol       Date:  2019-01-02       Impact factor: 4.076

  8 in total

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