Submitted:
10 May 2023
Posted:
10 May 2023
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Abstract

Keywords:
1. Introduction
2. Results
2.1. Plant growth of P. hybridum
2.2. Cd distribution in various parts of P. hybridum
2.3. Cd uptake and accumulation patterns of P. hybridum
2.3.1. Bioconcentration and translocation factors of Cd in various parts of P. hybridum
2.3.2. Location of Cd storage in P. hybridum roots
2.4. Phytoextraction capacity of P. hybridum for Cd
2.5. Variation of soil pH and Cd concentration
2.5.1. Variation of soil pH
2.5.2. Variation of soil Cd concentration
2.6. Soil Cd migration and removal pathways
3. Discussion
3.1. Advantages of P. hybridum for phytoremediation of Cd-contaminated soils
3.2. Forms of Cd stored in roots of P. hybridum
4. Materials and Methods
4.1. Experimental materials
4.2. Experimental design
4.2.1. Column test
4.2.2. Lysimeter test (July 12, 2021–July 13, 2022)
4.3. Sample preparation and analysis
4.4. Data analysis
- Bioconcentration factor (BCF) = Cd concentration in a plant part/initial soil Cd total concentration
- Translocation factor (TF) = Cd concentration in an aerial part/root Cd concentration
- Extraction efficiency = Cd extraction amount by plants/initial total Cd content in soil
- Removal rate = decrease in soil Cd content after planting/initial total Cd content in soil
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Zhang, X.; Zhong, T.; Liu, L.; Ouyang, X. Impact of soil heavy metal pollution on food safety in China. PLoS One 2015, 10, e0135182. [Google Scholar] [CrossRef] [PubMed]
- Chaney, R.L. How does contamination of rice soils with Cd and Zn cause high incidence of human Cd disease in subsistence rice farmers. Current Pollution Reports 2015, 1, 13–22. [Google Scholar] [CrossRef]
- Li, J.; Xu, Y. WITHDRAWN: Immobilization of Cd in a paddy soil using moisture management and amendment. Chemosphere 2015, 122, 131–136. [Google Scholar] [CrossRef] [PubMed]
- Rizwan, M.; Ali, S.; Zia Ur Rehman, M.; Rinklebe, J.; Tsang, D.C.W.; Bashir, A.; Maqbool, A.; Tack, F.M.G.; Ok, Y.S. Cadmium phytoremediation potential of Brassica crop species: A review. Sci Total Environ 2018, 631-632, 1175–1191. [Google Scholar] [CrossRef]
- Hei, L.; Lee, C.C.; Wang, H.; Lin, X.Y.; Chen, X.H.; Wu, Q.T. Using a high biomass plant Pennisetum hydridum to phyto-treat fresh municipal sewage sludge. Bioresour Technol 2016, 217, 252–256. [Google Scholar] [CrossRef] [PubMed]
- Yi, Z.C.; He, J.B.; Cheng, H.; Luo, S.M.; He, H.Z.; Zhang, W.Q.; Zhang, Z.M.; Li, H.S. Effects of Cd polluted soil on the modular growth and physiological characteristics of Pennisetum hydridum. Journal of Agro-Environment Science 2014, 33, 276–282. [Google Scholar]
- Wiangkham, N.; Prapagdee, B. Potential of Napier grass with cadmium-resistant bacterial inoculation on cadmium phytoremediation and its possibility to use as biomass fuel. Chemosphere 2018, 201, 511–518. [Google Scholar] [CrossRef]
- Hu, L.; Wang, R.; Liu, X.; Xu, B.; Xie, T.; Li, Y.; Wang, M.; Wang, G.; Chen, Y. Cadmium phytoextraction potential of king grass (Pennisetum sinese Roxb.) and responses of rhizosphere bacterial communities to a cadmium pollution gradient. Environ Sci Pollut Res Int 2018, 25, 21671–21681. [Google Scholar] [CrossRef]
- He, L.; Zhu, Q.; Wang, Y.; Chen, C.; He, M.; Tan, F. Irrigating digestate to improve cadmium phytoremediation potential of Pennisetum hybridum. Chemosphere 2021, 279, 130592. [Google Scholar] [CrossRef]
- Zhang, X.F.; Wu, P.; Feng, J.F.; Guo, Y.H.; Gao, B. Effects of intercropping on Cd, Pb, and Zn accumulation using hyperaccumulators and energy plants. Journal of Agro⁃Environment Science 2021, 40, 1481–1491. [Google Scholar]
- Ali, H.; Khan, E.; Sajad, M.A. Phytoremediation of heavy metals--concepts and applications. Chemosphere 2013, 91, 869–881. [Google Scholar] [CrossRef] [PubMed]
- Chen, Y.H.; Hu, L.; Liu, X.G.; Deng, Y.W.; Liu, M.J.; Xu, B.; Wang, M.K.; Wang, G. Influences of king grass (Pennisetum sinese Roxb)-enhanced approaches for phytoextraction and microbial communities in multi-metal contaminated soil. Geoderma 2017, 307, 253–266. [Google Scholar] [CrossRef]
- Cui, H.; Fan, Y.; Yang, J.; Xu, L.; Zhou, J.; Zhu, Z. In situ phytoextraction of copper and cadmium and its biological impacts in acidic soil. Chemosphere 2016, 161, 233–241. [Google Scholar] [CrossRef] [PubMed]
- Yong, Y.; Wang, W.; Jiang, R.f.; Li, H.f. Comparison of phytoextraction efficiency of Cd with the hyperaccumulator Thlaspi caerulescens and three high biomass species. Act Ecologica Sinica 2009, 29, 2732–2737. [Google Scholar]
- Shen, S.L.; Li, H.S.; Xia, B.C.; Yang, C.L. A field experiment on phytoextraction of heavy metals from highly contaminated soil using big biomass plants of sauropus androgynus and manihot sp. Journal of Agro-Environment Science 2013, 32, 572–578. [Google Scholar]
- Ma, C.J.; Ming, H.; Lin, C.H.; Naidu, R.; Bolan, N. Phytoextraction of heavy metal from tailing waste using Napier grass. Catena 2016, 136, 74–83. [Google Scholar] [CrossRef]
- Xie, H.; Zhao, X.M.; Xie, Z.; Wu, K.Q.; Li, X.L.; Yang, R.G.; Peng, B.; Yu, M.H.; He, J.H. Phytoremediation efficiency of Pennisetum hydridum for acid- and cadmium-polluted soil and its safe utilization. Journal of Agro-Environment Science 2016, 35, 478–484. [Google Scholar]
- Ma, C.J.; Liu, F.G.; Lin, C.H. Study on improving the degraded soil with Napier grass (Pennisetum Hydridum). Journal of Shaoguan University ·Natural Science 2012, 33, 44–47. [Google Scholar]
- Sheoran, V.; Sheoran, A.S.; Poonia, P. Factors affecting phytoextraction: A review. Pedosphere 2016, 26, 148–166. [Google Scholar] [CrossRef]
- Huang, Y.Z.; Hao, X.W.; Lei, M.; Tie, B.Q. The remediation technology and remediation practice of heavy metals-contaminated soil. Journal of Agro-Environment Science 2013, 32, 409–417. [Google Scholar]
- Gallego, S.M.; Pena, L.B.; Barcia, R.A.; Azpilicueta, C.E.; Lannone, M.F.; Rosales, E.P.; Zawoznik, M.S.; Groppa, M.D.; Benavides, M.P. Unravelling cadmium toxicity and tolerance in plants: Insight into regulatory mechanisms. Environmental and Experimental Botany 2012, 83, 33–46. [Google Scholar] [CrossRef]
- Sun, X.X.; Zhu, J.; Tao, R.P.; Xiong, H.X.; Xu, Y.Q. Effect of exogenous iron on soil Cd accumulation of rice. Journal of Yangzhou University (Natural Science Edition) 2022, 25, 74–78. [Google Scholar]
- Zhao, J.; Xia, B.; Meng, Y.; Yang, Z.; Pan, L.; Zhou, M.; Zhang, X. Transcriptome analysis to shed light on the molecular mechanisms of early responses to cadmium in roots and leaves of king grass (Pennisetum americanum x P. purpureum). Int J Mol Sci 2019, 20, 2532. [Google Scholar] [CrossRef] [PubMed]
- Zhang, X.F.; Tian, C.; Gao, B. Heavy metal tolerance and phytoremediation potential of energy crop, king grass. Chinese Journal of Environmental Engineering 2017, 11, 3204–3213. [Google Scholar]
- Du, R.J.; He, E.K.; Tang, Y.T.; Hu, P.J.; Ying, R.R.; Morel, J.L.; Qiu, R.L. How phytohormone IAA and chelator EDTA affect lead uptake by Zn/Cd hyperaccumulator Picris divaricata. Int J Phytoremediation 2011, 13, 1024–1036. [Google Scholar] [CrossRef]
- Hart, J.J.; Di Tomaso, J.M.; Linscott, D.L.; Kochian, L.V. Characterization of the transport and cellular compartmentation of paraquat in roots of intact maize seedlings. Pesticide Biochemistry and Physiology 1992, 43, 212–222. [Google Scholar] [CrossRef]




| Root length (cm) | Height (cm) | Biomass (DW, /g·plant–1) | ||||
|---|---|---|---|---|---|---|
| Root (in topsoil) | Root (in supsoil-1) | Stem | Leaf | |||
| Test 1 | 57.67±2.08 | 174.00±4.58 | 16.84±1.09 | 9.60±1.11 | 44.36±2.52 | 42.27±7.10 |
| Test 2 | 51.67±4.51 | 190.00±8.66 | 17.91±1.94 | 11.59±0.90 | 95.51±2.25 | 25.96±3.00 |
| Height (cm) | Biomass (DW, g·plant –1) | Yield (DW, 104 kg·ha–1) | |||
|---|---|---|---|---|---|
| Pennisetum hybridum | Stem | Leaf | Stem | Leaf | |
| First harvest | 312.50±5.45 | 856.95±92.15 | 332.86±36.98 | 3.430 | 1.332 |
| Second harvest | 267.08±12.14 | 919.83±102.2 | 555.17±62.00 | 3.681 | 2.222 |
| Third harvest | 259.17±15.28 | 625.15±47.32 | 478.89±36.37 | 2.502 | 1.917 |
| Fourth harvest | 265.00±10.00 | 721.52±59.47 | 653.39±54.68 | 2.888 | 2.615 |
| Rice | Straw | Grain | Straw | Grain | |
| Upland rice | 130.00±6.00 | 31.73±1.69 | 43.29±1.95 | 0.5080 | 0.6930 |
| Simiao rice | 120.00±5.50 | 22.96±3.97 | 15.03±1.48 | 0.3675 | 0.2406 |
| BCF | TF | ||||||
| Root (in topsoil) | Root (in subsoil-1) | Stem | Leaf | Stem | Leaf | ||
| Column test 1 | 2.24 | 0.68 | 1.25 | 0.65 | 0.56 | 0.29 | |
| Column test 2 | 2.74 | 0.76 | 0.91 | 0.86 | 0.33 | 0.31 | |
| Lysimeter test | 3.54 | 1.89 | 0.95 | 1.82 | 0.27 | 0.51 | |
| Extraction amount (mg·plant–1) | Extraction efficiency(%) | |||||||
| Root (in topsoil) | Root (in subsoil-1) | Stem | Leaf | Total | Roots | Shoots | ||
| Test 1 | 0.0567 ±0.0044 | 0.0138 ±0.0021 | 0.0428±0.0043 | 0.0212±0.0060 | 0.1345 | 4.60 | 4.17 | |
| Test 2 | 0.0642±0.0086 | 0.0116±0.0008 | 0.1136±0.0022 | 0.0363±0.0034 | 0.2256 | 2.90 | 5.74 | |
| Extraction amount (mg·m–2) | Extraction efficiency (%) | |||||
|---|---|---|---|---|---|---|
| Pennisetum hybridum | Stem | Leaf | Each harvest | Annual | ||
| First harvest | 3.153±0.085 | 1.564±0.042 | 4.717 | 23.40 | 8.53 | |
| Second harvest | 3.850±0.107 | 4.438±0.123 | 8.288 | |||
| Third harvest | 2.216±0.041 | 2.641±0.049 | 4.857 | |||
| Fourth harvest | 2.207±0.046 | 3.334±0.069 | 5.541 | |||
| Rice | Straw | Grain | ||||
| Upland rice | 2.006±0.107 | 0.913±0.041 | 2.919 | 3.02 | 1.10 | |
| Simiao rice | 0.071±0.012 | 0.029±0.003 | 0.100 | |||
| Test 1 | Test 2 | ||||||
|---|---|---|---|---|---|---|---|
| Initial value | Control | P. hybridum | Initial value | Control | P. hybridum | ||
| Topsoil | 5.57±0.03 A | 5.20±0.27 B | 4.87±0.05 C | 5.27±0.01 a | 5.14±0.01 b | 4.81±0.01 b | |
| Subsoil-1 | 4.47±0.03 A | 5.20±0.28 A | 3.76±0.12 B | 6.27±0.04 a | 6.42±0.02 a | 5.86±0.19 b | |
| Initial value | Pennisetum hybridum | Rice | ||||
|---|---|---|---|---|---|---|
| Second harvest | Fourth harvest | Upland rice | Simiao rice | |||
| Topsoil | 5.58±0.11 B | 5.06±0.14 C | 4.37±0.23 D | 5.47±0.10 B | 5.95±0.31 A | |
| Subsoil-1 | 5.59±0.25 A | 5.10±0.03 C | 4.76±0.17 D | 5.45±0.03 AB | 5.30±0.14 BC | |
| Cd concentration (mg·kg–1) | Cd removal rate (%) | ||
|---|---|---|---|
| Initial | After planting | ||
| Column test 1 | 0.7676±0.0077 | 0.5863±0.0429 | 23.62 |
| Column test 2 | 1.3058±0.0232 | 1.0250±0.0265 | 21.50 |
| Lysimeter test | 1.0970±0.0123 | 0.7041±0.1385 | 35.81 |
| Shoots | Roots (in topsoil) |
Roots (in subsoil) |
Topsoil reduction | Subsoil increase | Leaching out | |
|---|---|---|---|---|---|---|
| Planted test 1 | 0.0640 | 0.0567 | 0.0138 | 0.3626 | 0.0496 | 0.1785 |
| Planted test 2 | 0.1499 | 0.0642 | 0.0116 | 0.5616 | 0.0960 | 0.2399 |
| No plant test 1 | - | - | - | 0.0418 | 0.0209 | 0.0209 |
| No plant test 2 | - | - | - | 0.1677 | 0.0207 | 0.1470 |
| Column test 1 | Column test 2 | Lysimeter test | ||||||
|---|---|---|---|---|---|---|---|---|
| Topsoil | Subsoil | Topsoil | Subsoil | Topsoil | Subsoil | |||
| pH | 5.57±0.09 | 4.47±0.04 | 5.27±0.01 | 6.27±0.04 | 4.95±0.05 | 4.86±0.11 | ||
| OM g·kg–1 | 34.42±0.08 | 5.60±0.02 | 39.94±0.17 | 10.51±0.30 | 39.53±4.43 | 16.10±2.46 | ||
| TN g·kg–1 | 1.96±0.10 | 0.29±0.02 | 1.27±0.12 | 0.62±0.06 | 2.24±0.03 | 0.89±0.11 | ||
| TP g·kg–1 | 0.75±0.08 | 0.26±0.02 | 0.44±0.02 | 0.16±0.02 | 0.47±0.04 | 0.24±0.02 | ||
| TK g·kg–1 | 7.59±0.19 | 3.29±0.62 | 9.56±0.15 | 8.34±0.30 | 10.43±0.13 | 12.63±0.20 | ||
| Cd mg·kg–1 | 0.7676±0.0077 | 0.0181±0.0019 | 1.3058±0.0232 | 0.0698±0.0078 | 1.0236±0.0294 | 0.1472±0.0298 | ||
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