Silicon alleviates antimony phytotoxicity in giant reed (Arundo donax L.)

被引:11
作者
Shetty, Rajpal [1 ,2 ]
Vidya, Chirappurathu Sukumaran-Nair [2 ]
Weidinger, Marieluise [3 ]
Vaculik, Marek [1 ,2 ]
机构
[1] Comenius Univ, Dept Plant Physiol, Fac Nat Sci, Mlynska Dolina B2,Ilkovicova 6, Bratislava 84215, Slovakia
[2] Slovak Acad Sci, Inst Bot, Plant Sci & Biodivers Ctr, Dubravska Cesta 9, Bratislava 84523, Slovakia
[3] Univ Vienna, Core Facil Cell Imaging & Ultrastruct Res, Althanstr 14, A-1090 Vienna, Austria
关键词
Chlorophylls; Lignin; Metalloid; Photosynthesis; Root lignification; Suberin; MEDIATED ALLEVIATION; GROWTH; TOXICITY; CADMIUM; ENVIRONMENT; PHOTOSYNTHESIS; PLANTS; ROOTS; MAIZE; TRANSLOCATION;
D O I
10.1007/s00425-021-03756-4
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Main conclusion Silicon enhances photosynthetic efficiency, biomass, and lignification of root structures possibly limiting antimony translocation and mitigating phytotoxicity in giant reed plants. Antimony (Sb) is a non-essential metalloid causing toxic effects in plants. Silicon has been reported to impart tolerance against biotic and abiotic stress in plants. Fast-growing plant, giant reed (Arundo donax L.) is a promising energy crop, can be a suitable plant for phytoremediation. However, information regarding the tolerance capacity with respect to Sb toxicity and potential of Si to mitigate the Sb phytotoxicity in giant reed are very scarce. Rhizomes of giant reed were grown for ten weeks in hydroponics exposed to Sb, Si, and their combination wherein treatment without Sb/Si served as control. Effect of these treatments on rate of net photosynthesis and photosynthetic pigments, phytoextraction ability of Sb, Si and Sb uptake, plant biomass, and lignification and suberization of roots along with localization of Sb and Si were analysed. We found that Si considerably improved the growth and biomass of giant reed under Sb toxicity. Antimony reduced the photosynthesis and decreased the content of photosynthetic pigments, which was completely alleviated by Si. Silicon amendment to Sb treated plants enhanced root lignification. Silicon enhanced lignification of root structures probably restricted the Sb translocation. However, co-localization of Sb with Si has not been observed neither at the shoot nor at the root levels. Similarly, Sb was also not detected in leaf phytoliths. These findings suggest that Si treatment promotes overall plant growth by improving photosynthetic parameters and decreasing Sb translocation from root to shoot in giant reed by improving root lignification.
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页数:11
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共 55 条
  • [1] Mechanisms of silicon-mediated alleviation of heavy metal toxicity in plants: A review
    Adrees, Muhammad
    Ali, Shafaqat
    Rizwan, Muhammad
    Zia-ur-Rehman, Muhammad
    Ibrahim, Muhammad
    Abbas, Farhat
    Farid, Mujahid
    Qayyum, Muhammad Farooq
    Irshad, Muhammad Kashif
    [J]. ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2015, 119 : 186 - 197
  • [2] The influence of silicon on barley growth, photosynthesis and ultra-structure under chromium stress
    Ali, Shafaqat
    Farooq, Muhammad Ahsan
    Yasmeen, Tahira
    Hussain, Sabir
    Arif, Muhammad Saleem
    Abbas, Farhat
    Bharwana, Saima Aslam
    Zhang, Guoping
    [J]. ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2013, 89 : 66 - 72
  • [3] Ecological effects of soil antimony on the crop plant growth and earthworm activity
    Baek, Yong-Wook
    Lee, Woo-Mi
    Jeong, Seung-Woo
    An, Youn-Joo
    [J]. ENVIRONMENTAL EARTH SCIENCES, 2014, 71 (02) : 895 - 900
  • [4] Role of Silicon in Mitigation of Heavy Metal Stresses in Crop Plants
    Bhat, Javaid Akhter
    Shivaraj, S. M.
    Singh, Pritam
    Navadagi, Devanna B.
    Tripathi, Durgesh Kumar
    Dash, Prasanta K.
    Solanke, Amolkumar U.
    Sonah, Humira
    Deshmukh, Rupesh
    [J]. PLANTS-BASEL, 2019, 8 (03):
  • [5] Silicon Uptake and Localisation in Date Palm (Phoenix dactylifera) - A Unique Association With Sclerenchyma
    Bokor, Boris
    Soukup, Milan
    Vaculik, Marek
    Vd'acny, Peter
    Weidinger, Marieluise
    Lichtscheidl, Irene
    Vavrova, Silvia
    Soltys, Katarina
    Sonah, Humira
    Deshmukh, Rupesh
    Belanger, Richard R.
    White, Philip J.
    El-Serehy, Hamed A.
    Lux, Alexander
    [J]. FRONTIERS IN PLANT SCIENCE, 2019, 10
  • [6] Assessing Arundo donax L. in vitro-tolerance for phytoremediation purposes
    Cano-Ruiz, J.
    Ruiz Galea, M.
    Amoros, M. C.
    Alonso, J.
    Mauri, P., V
    Lobo, M. C.
    [J]. CHEMOSPHERE, 2020, 252 (252)
  • [7] Accumulation of heavy metals in phytoliths from reeds growing on mining environments in Southern Europe
    Delplace, Gauthier
    Schreck, Eva
    Pokrovsky, Oleg S.
    Zouiten, Cyril
    Blondet, Isalyne
    Darrozes, Jose
    Viers, Jerome
    [J]. SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 712
  • [8] The uptake and detoxification of antimony by plants: A review
    Feng, Renwei
    Wei, Chaoyang
    Tu, Shuxin
    Ding, Yongzhen
    Wang, Ruigang
    Guo, Junkang
    [J]. ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2013, 96 : 28 - 34
  • [9] Antimony in the environment: a review focused on natural waters II. Relevant solution chemistry
    Filella, M
    Belzile, N
    Chen, YW
    [J]. EARTH-SCIENCE REVIEWS, 2002, 59 (1-4) : 265 - 285
  • [10] Antimony in the environment: knowns and unknowns
    Filella, Montserrat
    Williams, Peter A.
    Belzile, Nelson
    [J]. ENVIRONMENTAL CHEMISTRY, 2009, 6 (02) : 95 - 105