Literature DB >> 30639786

Cadmium tolerance is associated with the root-driven coordination of cadmium sequestration, iron regulation, and ROS scavenging in rice.

Md Azizul Bari1, Mst Salma Akther2, Md Abu Reza3, Ahmad Humayan Kabir4.   

Abstract

Excess cadmium (Cd) is a serious threat to agriculture and the environment. High Cd availability showed no significant decline in growth, chlorophyll synthesis, soluble protein, cell and membrane stability in Sonarbangla (Cd-tolerant), while these were severely affected in BRRI 72 (Cd-sensitive). Atomic absorption spectroscopy analysis demonstrated a huge increment of Cd and Fe in root and shoot of BRRI 72; however, Sonarbangla only exhibited a significant increase of Cd in roots. It suggests that excess Cd in Sonarbangla possibly retained in roots through vacuolar sequestration without interfering cell functions. This was further confirmed by the increased accumulation of cysteine, glutathione, and phytochelatin along with OsPCS1 and OsHMA3 upregulation, possibly facilitated by nitric oxide in roots of Sonarbangla. Further, Fe chelate reductase activity in conjunction with the genes (OsFRO1, OsNRAMP1, OsIRT1, and OsYSL15) associated with Fe availability significantly upregulated in BRRI 72 but not in Sonarbangla in response to Cd. It advises that Fe acquisition and transport were tightly regulated in Cd-tolerant Sonarbangla. Furthermore, elevated CAT, APX, GR, NO in root along with shoot sugar helps rice plants to withstand Cd-induced oxidative damage. Finally, reciprocal grafting combining Sonarbangla rootstock with either BRRI 72 or Sonarbangla scion showed Sonarbangla type tolerance along with no changes of H2O2 and Fe reductase activity in roots under high Cd. It indicates that the signal inducing the responses to adjust Cd stress is originated in the root system. These messages deliver essential background for further breeding program to produce Cd-free rice.
Copyright © 2019 Elsevier Masson SAS. All rights reserved.

Entities:  

Keywords:  Cd tolerance; Fe regulation; H(2)O(2) scavenging capability; Rice; Vacuolar sequestration

Mesh:

Substances:

Year:  2019        PMID: 30639786     DOI: 10.1016/j.plaphy.2019.01.007

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


  5 in total

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4.  Fe-Mn Plaque Formation Mechanism Underlying the Inhibition of Cadmium Absorption by Rice Under Oxygation Conditions.

Authors:  Wenping Zhang; Hanchang Li; Xin Tan; Zhonghao Li; Cheng Zhong; Weihua Xiao; Yuanfu Xiong; Wenjun Zhang; Liangjiu Yang; Genyi Wu
Journal:  Environ Eng Sci       Date:  2021-07-22       Impact factor: 2.172

5.  Understanding the Role of the Antioxidant System and the Tetrapyrrole Cycle in Iron Deficiency Chlorosis.

Authors:  Carla S Santos; Rengin Ozgur; Baris Uzilday; Ismail Turkan; Mariana Roriz; António O S S Rangel; Susana M P Carvalho; Marta W Vasconcelos
Journal:  Plants (Basel)       Date:  2019-09-13
  5 in total

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