Literature DB >> 33581621

Calcium lignosulfonate improves proliferation of recalcitrant indica rice callus via modulation of auxin biosynthesis and enhancement of nutrient absorption.

Wan Muhamad Asrul Nizam Wan Abdullah1, Ngai-Paing Tan2, Lee-Yoon Low3, Jiun-Yan Loh4, Chien-Yeong Wee5, Azney Zuhaily Md Taib6, Janna Ong-Abdullah7, Kok-Song Lai8.   

Abstract

Lignosulfonate (LS) is a commonly used to promote plant growth. However, the underlying growth promoting responses of LS in plant remain unknown. Therefore, this study was undertaken to elucidate the underlying growth promoting mechanisms of LS, specifically calcium lignosulfonate (CaLS). Addition of 100 mg/L CaLS in phytohormone-free media enhanced recalcitrant indica rice cv. MR219 callus proliferation rate and adventitious root formation. Both, auxin related genes (OsNIT1, OsTAA1 and OsYUC1) and tryptophan biosynthesis proteins were upregulated in CaLS-treated calli which corroborated with increased of endogenous auxin content. Moreover, increment of OsWOX11 gene on CaLS-treated calli implying that the raised of endogenous auxin was utilized as a cue to enhance adventitious root development. Besides, CaLS-treated calli showed higher nutrient ions content with major increment in calcium and potassium ions. Consistently, increased of potassium protein kinases genes (OsAKT1, OsHAK5, OsCBL, OsCIPK23 and OsCamk1) were also recorded. In CaLS treated calli, the significant increase of calcium ion was observed starting from week one while potassium ion only recorded significant increase on week two onwards, suggesting that increment of potassium ion might be dependent on the calcium ion content in the plant cell. Additionally, reduced callus blackening was also coherent with downregulation of ROS scavenging protein and reduced H2O2 content in CaLS-treated calli suggesting the role of CaLS in mediating cellular homeostasis via prevention of oxidative burst in the cell. Taken together, CaLS successfully improved MR219 callus proliferation and root formation by increasing endogenous auxin synthesis, enhancing nutrients uptake and regulating cellular homeostasis.
Copyright © 2021 Elsevier Masson SAS. All rights reserved.

Entities:  

Keywords:  Auxin biosynthesis; Calcium lignosulfonate; Callus proliferation; Indica cv. MR219; Nutrient absorption

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Year:  2021        PMID: 33581621     DOI: 10.1016/j.plaphy.2021.01.046

Source DB:  PubMed          Journal:  Plant Physiol Biochem        ISSN: 0981-9428            Impact factor:   4.270


  3 in total

1.  Genome-Wide Identification and Comparative Analysis of WOX Genes in Four Euphorbiaceae Species and Their Expression Patterns in Jatropha curcas.

Authors:  Zhanjun Wang; Qianwen Cai; Haimeng Xia; Bingqing Han; Minhui Li; Yue Wang; Minhui Zhu; Chunyan Jiao; Dandan Wang; Junjie Zhu; Wenya Yuan; Di Zhu; Congcong Xu; Hongyan Wang; Minghui Zhou; Xie Zhang; Jisen Shi; Jinhui Chen
Journal:  Front Genet       Date:  2022-06-30       Impact factor: 4.772

2.  Vacuolar Processing Enzymes Modulating Susceptibility Response to Fusarium oxysporum f. sp. cubense Tropical Race 4 Infections in Banana.

Authors:  Wan Muhamad Asrul Nizam Wan Abdullah; Noor Baity Saidi; Mohd Termizi Yusof; Chien-Yeong Wee; Hwei-San Loh; Janna Ong-Abdullah; Kok-Song Lai
Journal:  Front Plant Sci       Date:  2022-01-12       Impact factor: 5.753

3.  Sodium lignosulfonate improves shoot growth of Oryza sativa via enhancement of photosynthetic activity and reduced accumulation of reactive oxygen species.

Authors:  Andrew De-Xian Kok; Wan Muhamad Asrul Nizam Wan Abdullah; Chu-Nie Tang; Lee-Yoon Low; Mohd Hafis Yuswan; Janna Ong-Abdullah; Ngai-Paing Tan; Kok-Song Lai
Journal:  Sci Rep       Date:  2021-06-24       Impact factor: 4.379

  3 in total

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