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Ecological risk assessment of heavy metals to aquatic organisms in the Lhasa River, Tibet, China

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Abstract

The Lhasa River is the largest and most important tributary of the Yarlung Tsangpo River on the Tibetan Plateau, China. It is an important source of drinking water and irrigation for the inhabitants living in the watershed. Despite the increasing focus on water chemistry, the ecological risk assessment (ERA) caused by heavy metals to aquatic organisms in the Lhasa River has not been performed before. Based on the documented monitoring data for heavy metals, the species sensitivity distributions (SSDs) method was applied in this study. The potential ecological risks induced by eight major heavy metals (including arsenic (As), cadmium (Cd), chromium (Cr), copper (Cu), mercury (Hg), manganese (Mn), lead (Pb), and zinc (Zn)) in the Lhasa River to four typical categories of freshwater organisms, including insects, crustaceans, fish, and mollusks, were assessed in different water periods (e.g., high, normal, and low water-periods). Results suggested that the downstream part of the Lhasa River and the Meldromarchu and Tölungchu tributaries are the principal zones for the high aquatic ecological risks. For most of the monitoring sites, the ecological risks decreased in the following order: high-water period > normal-water period > low-water period. During the high-water period, Cu had the highest ecological risks for all selected species. For the insects, the ecological risks were quite low (< 1%) throughout the year. These results suggested that particular attention should be paid to the contamination of certain heavy metals (e.g., Cu and Cr) in the future water management in the Lhasa River.

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References

  • Achary MS, Satpathy KK, Panigrahi S, Mohanty AK, Padhi RK, Biswas S, Prabhu RK, Vijayalakshmi S, Panigrahy RC (2017) Concentration of heavy metals in the food chain components of the nearshore coastal waters of Kalpakkam, southeast coast of India. Food Control 72:232–243

    CAS  Google Scholar 

  • Aliko V, Qirjo M, Sula E, Morina V, Faggio C (2018) Antioxidant defense system, immune response and erythron profile modulation in gold fish, Carassius auratus, after acute manganese treatment. Fish Shellfish Immunol 76:101–109

    Google Scholar 

  • Avigliano E, Schenone NF (2015) Human health risk assessment and environmental distribution of trace elements, glyphosate, fecal coliform and total coliform in Atlantic rainforest mountain rivers (South America). Microchem J 122:149–158

    CAS  Google Scholar 

  • Burger J (2008) Assessment and management of risk to wildlife from cadmium. Sci Total Environ 389:37–45

    CAS  Google Scholar 

  • Chen CS (2005) Ecological risk assessment for aquatic species exposed to contaminants in Keelung River, Taiwan. Chemosphere 61:1142–1158

    CAS  Google Scholar 

  • Chen PF, Li CL, Kang SC, Zhang QQ, Gao SP (2012) The geochemical characteristics of sediments of the Yarlung Tsangpo River. Geochimica 41:387–392 (in Chinese with English Abstract)

    CAS  Google Scholar 

  • Chen Y, Yu SY, Tang S, Li YB, Liu HL, Zhang XH, Su GY, Li B, Yu HX, Giesy JP (2016) Site-specific water quality criteria for aquatic ecosystems: a case study of pentachlorophenol for Tai Lake, China. Sci Total Environ 541:65–73

    CAS  Google Scholar 

  • Chen JH, Mei YD, Xiao WH (2019) Establishment of the ecological relationships and properties of the Lhasa River Basin water resources system, China. Sustain Cities Soc 47

  • Duboudin C, Ciffroy P, Magaud H (2004) Acute-to-chronic species sensitivity distribution extrapolation. Environ Toxicol Chem 23:1774–1785

    CAS  Google Scholar 

  • Fichet D, Boucher G, Radenac G, Miramand P (1999) Concentration and mobilisation of Cd, Cu, Pb and Zn by meiofauna populations living in harbour sediment: their role in the heavy metal flux from sediment to food web. Sci Total Environ 243:263–272

    Google Scholar 

  • Finnegan MC, Baxter LR, Maul JD, Hanson ML, Hoekstra PF (2017) Comprehensive characterization of the acute and chronic toxicity of the neonicotinoid insecticide Thiamethoxam to a suite of aquatic primary producers, invertebrates, and fish. Environ Toxicol Chem 36:2838–2848

    CAS  Google Scholar 

  • Fu ZY, Wu FC, Chen LL, Xu BB, Feng CL, Bai YC, Liao HQ, Sun SY, Giesy JP, Guo WJ (2016) Copper and zinc, but not other priority toxic metals, pose risks to native aquatic species in a large urban lake in eastern China. Environ Pollut 219:1069–1076

    CAS  Google Scholar 

  • Fu ZY, Guo WJ, Dang Z, Hu Q, Wu FC, Feng CL, Zhao XO, Meng W, Xing BS, Giesyl JP (2017) Refocusing on nonpriority toxic metals in the aquatic environment in China. Environ Sci Technol 51:3117–3118

    CAS  Google Scholar 

  • Gall JE, Boyd RS, Rajakaruna N (2015) Transfer of heavy metals through terrestrial food webs: a review. Environ Monit Assess 187:201

    Google Scholar 

  • Gao J, Williams MW, Fu XD, Wang GQ, Gong TL (2012) Spatiotemporal distribution of snow in eastern Tibet and the response to climate change. Remote Sens Environ 121:1–9

    Google Scholar 

  • Gao QZ, Guo YQ, Xu HM, Ganjurjav H, Li Y, Wan YF, Qin XB, Ma X, Liu S (2016) Climate change and its impacts on vegetation distribution and net primary productivity of the alpine ecosystem in the Qinghai-Tibetan Plateau. Sci Total Environ 554:34–41

    Google Scholar 

  • Guo BB, Jiao DQ, Wang J, Lei K, Lin CY (2016) Trophic transfer of toxic elements in the estuarine invertebrate and fish food web of Daliao River, Liaodong Bay, China. Mar Pollut Bull 113:258–265

    CAS  Google Scholar 

  • Guo BX, Liu YQ, Zhang F, Hou JZ, Zhang HB, Li CL (2018) Heavy metals in the surface sediments of lakes on the Tibetan Plateau, China. Environ Sci Pollut Res 25:3695–3707

    CAS  Google Scholar 

  • He W, Qin N, Kong XZ, Liu WX, Wu WJ, He QS, Yang C, Jiang YJ, Wang QM, Yang B, Xu FL (2014) Ecological risk assessment and priority setting for typical toxic pollutants in the water from Beijing-Tianjin-Bohai area using Bayesian matbugs calculator (BMC). Ecol Indic 45:209–218

    CAS  Google Scholar 

  • Hickey CW, Clements WH (1998) Effects of heavy metals on benthic macroinvertebrate communities in New Zealand streams. Environ Toxicol Chem 17:2338–2346

    CAS  Google Scholar 

  • Hu MH, Stallard RF, Edmond JM (1982) TMajor ion chemistry of some large Chinese rivers. Nature 298:550–553

    Google Scholar 

  • Hu TF, Cao JJ, Zhu CS, Zhao ZZ, Liu SX, Zhang DZ (2018) Morphologies and elemental compositions of local biomass burning particles at urban and glacier sites in southeastern Tibetan Plateau: results from an expedition in 2010. Sci Total Environ 628-629:772–781

    CAS  Google Scholar 

  • Huang X, Sillanpaa M, Duo B, Gjessing ET (2008) Water quality in the Tibetan plateau: metal contents of four selected rivers. Environ Pollut 156:270–277

    CAS  Google Scholar 

  • Huang XA, Sillanpaa M, Gjessing ET, Peraniemi S, Vogt RD (2010) Environmental impact of mining activities on the surface water quality in Tibet: Gyama valley. Sci Total Environ 408:4177–4184

    CAS  Google Scholar 

  • Huang X, Sillanpaa M, Gjessing ET, Peraniemi S, Vogt RD (2011) Water quality in the southern Tibetan Plateau: chemical evaluation of the Yarlung Tsangpo (Brahmaputra). River Res Appl 27:113–121

    Google Scholar 

  • Islam MS, Ahmed MK, Raknuzzaman M, Habibullah-Al-Mamun M, Islam MK (2015) Heavy metal pollution in surface water and sediment: a preliminary assessment of an urban river in a developing country. Ecol Indic 48:282–291

    CAS  Google Scholar 

  • Jian D, Huang DD, Chang XL, Zhang Q, Xie S, Chen F, Chen S (2015) Zoobenthos community structure in the middle and lower reaches of Lhasa River. J Hydroecol 36:40–46

    Google Scholar 

  • Jiang C, Li DQ, Gao YN, Liu WF, Zhang LB (2017) Impact of climate variability and anthropogenic activity on streamflow in the three tivers headwater region, Tibetan Plateau, China. Theor Appl Climatol 129:667–681

    Google Scholar 

  • Kong XZ, He W, Qin N, He QS, Wang Y, OuYang HL, Xu FF (2011) Assessing acute ecological risks of heavy metals to freshwater organisms by species sensitivity distributions. China Environ Sci 31:1555–1562 (in Chinese with English Abstract)

    CAS  Google Scholar 

  • Kooijman SALM (1987) A safety factor for LC50 values allowing for differences in sensitivity among species. Water Res 21:269–276

    CAS  Google Scholar 

  • Li CL, Kang SC, Chen PF, Zhang QG, Mi J, Gao SP, Sillanpaa M (2014) Geothermal spring causes arsenic contamination in river waters of the southern Tibetan Plateau, China. Environ Earth Sci 71:4143–4148

    CAS  Google Scholar 

  • Lin XD, Zhang YL, Yao ZJ, Gong TL, Wang H, Liu LH (2007) Trend analysis of the runoff variation in Lhasa River Basin in Tibetan plateau during the last 50 years. Prog Geogr 26:58–67 (in Chinese with English Abstract)

    CAS  Google Scholar 

  • Liu L, Zhang JH, Hu YY, Huo C, Wang J (2011) Ecological risk assessment on polycyclic aromatic hydrocarbons in surface sediments of Dalian Bay. Mar Environ Sci 30:477–480 (in Chinese with English Abstract)

    CAS  Google Scholar 

  • Liu F, Li M, Zhang RF, Cui YB (2012) Pollution analysis and health risk assessment of heavy metals in Lhasa River. Environ Chem 31:580–585 (in Chinese with English Abstract)

    CAS  Google Scholar 

  • Liu Y, Wu JZX, Mei D, Huang DJ, Dan Z, Bu D (2015) The distribution of heavy metals in geothermal water in Lhasa River Basin and its potential risk. J Anhui Agric Sci 43:2250227 (in Chinese with English Abstract)

    Google Scholar 

  • Liu X, Wang Z, Wang XL, Yang C, Song XX, Lv XM, Li Z (2018) Ecological risks assessment of selected heavy metals in the waters of Chinese lakes based on species sensitivity distributions. J Lake Sci 30:1206–1217 (in Chinese with English Abstract)

    Google Scholar 

  • Lv YL, Hao SX, Wang C, Sun DF, Wang XT, Liu HP (2016) Investigation and analysis on plankton and fish resources in the source area of LHASA river, TIBET, China. Oceanol Limnol Sin 47:407–413 (in Chinese with English Abstract)

    Google Scholar 

  • Mamat Z, Haximu S, Zhang ZY, Aji R (2016) An ecological risk assessment of heavy metal contamination in the surface sediments of Bosten Lake, Northwest China. Environ Sci Pollut Res 23:7266–7266

    Google Scholar 

  • Mao GX, Zhao YS, Zhang FR, Liu JJ, Huang X (2019) Spatiotemporal variability of heavy metals and identification of potential source tracers in the surface water of the Lhasa River basin. Environ Sci Pollut Res 26:7442–7452

    CAS  Google Scholar 

  • Peng DZ, Chen J, Fang J (2015) Simulation of summer hourly stream flow by applying TOPMODEL and two routing algorithms to the sparsely gauged Lhasa River Basin in China. Water-Sui 7:4041–4053

    Google Scholar 

  • Pervez MS, Henebry GM (2015) Assessing the impacts of climate and land use and land cover change on the freshwater availability in the Brahmaputra River basin. J Hydrol-Reg Stud 3:285–311

    Google Scholar 

  • Qu B, Zhang YL, Kang SC, Sillanpaa M (2019) Water quality in the Tibetan plateau: major ions and trace elements in rivers of the “water tower of Asia”. Sci Total Environ 649:571–581

    CAS  Google Scholar 

  • Savorelli F, Manfra L, Croppo M, Tornambe A, Palazzi D, Canepa S, Trentini PL, Cicero AM, Faggio C (2017) Fitness evaluation of Ruditapes philippinarum exposed to Ni. Biol Trace Elem Res 177:384–393

    CAS  Google Scholar 

  • Shi YJ, Wang RS, Lu YL, Song S, Johnson AC, Sweetman A, Jones K (2016) Regional multi-compartment ecological risk assessment: establishing cadmium pollution risk in the northern Bohai Rim, China. Environ Int 94:283–291

    CAS  Google Scholar 

  • Siddiqui E, Pandey J (2019) Assessment of heavy metal pollution in water and surface sediment and evaluation of ecological risks associated with sediment contamination in the Ganga River: a basin-scale study. Environ Sci Pollut Res 26:10926–10940

    CAS  Google Scholar 

  • Tao J, Kennard MJ, Jia YT, Chen YF (2018) Climate-driven synchrony in growth-increment chronologies of fish from the world’s largest high elevation river. Sci Total Environ 645:339–346

    CAS  Google Scholar 

  • Tong YD, Wang MZ, Bu XG, Guo X, Lin Y, Lin HM, Li J, Zhang W, Wang XJ (2017) Mercury concentrations in China’s coastal waters and implications for fish consumption by vulnerable populations. Environ Pollut 231:396–405

    CAS  Google Scholar 

  • USEPA (1998) Guidelines for ecological risk assessment. https://www.epa.gov/risk/guidelines-ecological-risk-assessment

  • USEPA (2016) CADDIS Volume 4. Data Analysis: Download Software. https://www.epa.gov/caddis-vol4/caddis-volume-4-data-analysis-download-software

  • Van Straalen NM, Van Rijn JP (1998) Ecotoxicological risk assessment of soil Fauna recovery from pesticide application. Rev Envilron Contam Toxicol 154:83–141

    Google Scholar 

  • Vu CT, Lin C, Yeh G, Villanueva MC (2017) Bioaccumulation and potential sources of heavy metal contamination in fish species in Taiwan: assessment and possible human health implications. Environ Sci Pollut Res 24:19422–19434

    CAS  Google Scholar 

  • Wang XD, Zang SY (2014) Distribution characteristics and ecological risk assessment of toxic heavy metals and metalloid in surface water of lakes in Daqing Heilongjiang Province, China. Ecotoxicology 23:609–617

    CAS  Google Scholar 

  • Wang MZ, Tong YD, Chen C, Liu XH, Lu YR, Zhang W, He W, Wang XJ, Zhao S, Lin Y (2018) Ecological risk assessment to marine organisms induced by heavy metals in China’s coastal waters. Mar Pollut Bull 126:349–356

    CAS  Google Scholar 

  • Wang L, Zhang F, Fu SH, Shi XN, Chen Y, Jagirani MD, Zeng C (2019) Assessment of soil erosion risk and its response to climate change in the mid-Yarlung Tsangpo River region. Environ Sci Pollut Res 1-15

  • Wheeler JR, Grist EPM, Leung KMY, Morritt D, Crane M (2002) Species sensitivity distributions: data and model choice. Mar Pollut Bull 45:192–202

    CAS  Google Scholar 

  • Zhang QG, Pan K, Kang SC, Zhu AJ, Wang WX (2014) Mercury in wild fish from high altitude aquatic ecosystems in the Tibetan Plateau. Environ Sci Technol 48:5220–5228

    CAS  Google Scholar 

  • Zhang JY, Gao Z, Shen HB, Li RJ, Yu B (2017a) Community structure characteristics of plankton in Lhasa River in spring. Freshw Fish 47:23–28 (in Chinese with English Abstract)

    CAS  Google Scholar 

  • Zhang Y, Liu YY, Niu ZG, Jin SP (2017b) Ecological risk assessment of toxic organic pollutant and heavy metals in water and sediment from a landscape lake in Tianjin City, China. Environ Sci Pollut Res 24:12301–12311

    CAS  Google Scholar 

  • Zhang T, Cai WT, Li YZ, Geng TT, Zhang ZY, Lv YG, Zhao M, Liu JW (2018) Ion chemistry of groundwater and the possible controls within Lhasa River Basin, SW Tibetan Plateau. Arab J Geosci 11

  • Zheng X, Zang WC, Yan ZG, Hong YG, Liu ZT, Yi XL, Wang XN, Liu TT, Zhou LM (2015) Species sensitivity analysis of heavy metals to freshwater organisms. Ecotoxicology 24:1621–1631

    CAS  Google Scholar 

Download references

Funding

This research was supported by the Natural Science Foundation of China (Grant No. 51974200) and the Science and Technology Basic Work of Science and Technology (Grant No. 2015FY111000).

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Correspondence to Yindong Tong.

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Mao, G., Zhang, Y., Tong, Y. et al. Ecological risk assessment of heavy metals to aquatic organisms in the Lhasa River, Tibet, China. Environ Sci Pollut Res 27, 26091–26102 (2020). https://doi.org/10.1007/s11356-020-09021-7

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