Ali, Z., Kazi, A. G., Malik, R. N., Naz, M., Khan, T., Hayat, A., et al. (2015). Heavy metal built-up in agricultural soils of Pakistan: Sources, Ecological Consequences, and Possible Remediation Measures. In I. Sherameti & A. Varma (Eds.), Heavy metal contamination of soils: Monitoring and remediation (pp. 23–42). Cham: Springer.
Google Scholar
Amin, N.-U., Hussain, A., Alamzeb, S., & Begum, S. (2013). Accumulation of heavy metals in edible parts of vegetables irrigated with waste water and their daily intake to adults and children, District Mardan, Pakistan. Food Chemistry, 136(3–4), 1515–1523. https://doi.org/10.1016/j.foodchem.2012.09.058.
CAS
Article
Google Scholar
Arif, M. (2000). Zincian, manganiferous chrome spinel from the Swat valley ophiolite, NW Pakistan. Geological Bulletin University of Peshawar, 33, 103–110.
Google Scholar
Arif, M. (2003). Sulphides and sulpharsenides in the emerald-hosting rocks from the Indus suture zone in Swat, NW Pakistan. Swiss Bulletin of Mineralogy and Petrology, 83(3), 261–271.
CAS
Google Scholar
Arif, M., Henry, D. J., & Moon, C. J. (2010). Cr-bearing tourmaline associated with emerald deposits from Swat, NW Pakistan: Genesis and its exploration significance. American Mineralogist, 95(5–6), 799–809.
CAS
Article
Google Scholar
Arif, M., & Jan, M. Q. (1993). Chemistry of chromite and associated phases from the Shangla ultramafic body in the Indus suture zone of Pakistan. Geological Society, London, Special Publications, 74(1), 101–112.
Article
Google Scholar
Askarova, M. A., & Mussagaliyeva, A. N. (2014). The ecological situation in contaminated areas of oil and gas exploration in Atyrau Region. Procedia-Social and Behavioral Sciences, 120, 455–459.
Article
Google Scholar
ATSDR. (2011). Agency for toxic substances and disease registry, draft toxicological profiles. Atlanta: ATSDR.
Google Scholar
Cárdenas-González, M., Osorio-Yáñez, C., Gaspar-Ramírez, O., Pavković, M., Ochoa-Martínez, A., López-Ventura, D., et al. (2016). Environmental exposure to arsenic and chromium in children is associated with kidney injury molecule-1. Environmental Research, 150, 653.
Article
Google Scholar
Castillo, M. A., Trujillo, I. S., Alonso, E. V., de Torres, A. G., & Pavón, J. C. (2013). Bioavailability of heavy metals in water and sediments from a typical Mediterranean Bay (Málaga Bay, Region of Andalucía, Southern Spain). Marine Pollution Bulletin, 76(1), 427–434.
Article
Google Scholar
Chamberlain, C., Zeitler, P., & Jan, M. (1989). The dynamics of the suture between the Kohistan island arc and the Indian plate in the Himalaya of Pakistan. Journal of Metamorphic Geology, 7(1), 135–149.
CAS
Article
Google Scholar
Chen, H., Teng, Y., Lu, S., Wang, Y., & Wang, J. (2015). Contamination features and health risk of soil heavy metals in China. Science of the Total Environment, 512, 143–153.
Article
Google Scholar
Coward, M. P., Windley, B. F., Broughton, R. D., Luff, I. W., Petterson, M. G., Pudesy, C. J., et al. (1986). Collision tectonics in the NW Himalaya. In M. P. Coward & A. Ries (Eds.), Collision tectonics (Vol. 19, pp. 203–219). London: Geological Society of London Special Publication.
Google Scholar
Denkhaus, E., & Salnikow, K. (2002). Nickel essentiality, toxicity, and carcinogenicity. Critical reviews in oncology/hematology, 42(1), 35–56.
CAS
Article
Google Scholar
DiPietro, J. A., & Isachsen, C. E. (2001). U-Pb zircon ages from the Indian plate in northwest Pakistan and their significance to Himalayan and pre-Himalayan geologic history. Tectonics, 20(4), 510–525.
Article
Google Scholar
Ebqa’ai, M., & Ibrahim, B. (2017). Application of multivariate statistical analysis in the pollution and health risk of traffic-related heavy metals. Environmental Geochemistry and Health. https://doi.org/10.1007/s10653-017-9930-9.
Article
Google Scholar
Ferreira-Baptista, L., & De Miguel, E. (2005). Geochemistry and risk assessment of street dust in Luanda, Angola: A tropical urban environment. Atmospheric Environment, 39(25), 4501–4512.
CAS
Article
Google Scholar
Fowler, B. A. (2009). Monitoring of human populations for early markers of cadmium toxicity: A review. Toxicology and Applied Pharmacology, 238(3), 294–300.
CAS
Article
Google Scholar
Gu, Y.-G., Gao, Y.-P., & Lin, Q. (2016). Contamination, bioaccessibility and human health risk of heavy metals in exposed-lawn soils from 28 urban parks in southern China’s largest city, Guangzhou. Applied Geochemistry, 67, 52–58. https://doi.org/10.1016/j.apgeochem.2016.02.004.
CAS
Article
Google Scholar
Gul, S., Naz, A., Khan, A., Nisa, S., & Irshad, M. (2015a). Phytoavailability and Leachability of Heavy Metals from Contaminated Soil Treated with Composted Livestock Manure. Soil and Sediment Contamination: An International Journal (just-accepted), 00-00
Gul, S., Naz, A., Khan, A., Nisa, S., & Irshad, M. (2016). Phytoavailability and Leachability of Heavy Metals from Contaminated Soil Treated with Composted Livestock Manure. Soil and Sediment Contamination: An International Journal, 25(2), 181–194.
CAS
Article
Google Scholar
Gul, N., Shah, M. T., Khan, S., & Muhammad, S. (2015b). Quantification of the Heavy Metals in the Agricultural Soils of Mardan District, Khyber Pakhtunkhwa, Pakistan. Journal of global innovation in agricultural and social sciences, 2(4), 158–162.
Article
Google Scholar
Hamad, S. H., Schauer, J. J., Shafer, M. M., Al-Rheem, E. A., Skaar, P. S., Heo, J., et al. (2014). Risk assessment of total and bioavailable potentially toxic elements (PTEs) in urban soils of Baghdad-Iraq. Science of the Total Environment, 494, 39–48.
Article
Google Scholar
Harikumar, P., Nasir, U., & Rahman, M. M. (2009). Distribution of heavy metals in the core sediments of a tropical wetland system. International Journal of Environmental Science and Technology, 6(2), 225–232.
CAS
Article
Google Scholar
HC (2004). Federal contaminated site risk assessment in Canada-Part II: Health Canada toxicological reference values (TRVs) and chemical-specific factors. Ottawa, Canada: HC
Hu, X., Zhang, Y., Ding, Z., Wang, T., Lian, H., Sun, Y., et al. (2012). Bioaccessibility and health risk of arsenic and heavy metals (Cd Co, Cr, Cu, Ni, Pb, Zn and Mn) in TSP and PM2. 5 in Nanjing. China Atmospheric Environment, 57, 146–152.
CAS
Article
Google Scholar
Hussain, R., Khattak, S., Shah, M., & Ali, L. (2015). Multistatistical approaches for environmental geochemical assessment of pollutants in soils of Gadoon Amazai Industrial Estate, Pakistan. Journal of Soils and Sediments, 15(5), 1119–1129.
CAS
Article
Google Scholar
Jan, F. A., Ishaq, M., Khan, S., Ihsanullah, I., Ahmad, I., & Shakirullah, M. (2010). A comparative study of human health risks via consumption of food crops grown on wastewater irrigated soil (Peshawar) and relatively clean water irrigated soil (lower Dir). Journal of Hazardous Materials, 179(1), 612–621.
CAS
Article
Google Scholar
Jiao, X., Teng, Y., Zhan, Y., Wu, J., & Lin, X. (2015). Soil Heavy Metal Pollution and Risk Assessment in Shenyang Industrial District. Northeast China. PloS one, 10(5), e0127736.
Article
Google Scholar
Kabata-Pendias, A. (2010). Trace elements in soils and plants. Boca Raton: CRC press.
Book
Google Scholar
Kelepertzis, E. (2014). Investigating the sources and potential health risks of environmental contaminants in the soils and drinking waters from the rural clusters in Thiva area (Greece). Ecotoxicology and Environmental Safety, 100, 258–265.
CAS
Article
Google Scholar
Khan, M., Achakzai, A., Iqbal, Y., Ullah, W., Khan, N., Sharif, M., et al. (2015). Heavy metals status of the urban and agricultural soils of Peshawar. Pakistan. Pure and Applied Biology, 4(3), 418.
CAS
Article
Google Scholar
Khan, K., Lu, Y., Khan, H., Ishtiaq, M., Khan, S., Waqas, M., et al. (2013a). Heavy metals in agricultural soils and crops and their health risks in Swat District, northern Pakistan. Food and Chemical Toxicology, 58, 449–458.
CAS
Article
Google Scholar
Khan, M. U., Malik, R. N., & Muhammad, S. (2013b). Human health risk from Heavy metal via food crops consumption with wastewater irrigation practices in Pakistan. Chemosphere, 93(10), 2230–2238. https://doi.org/10.1016/j.chemosphere.2013.07.067.
CAS
Article
Google Scholar
Khan, M. U., Muhammad, S., Malik, R. N., Khan, S. A., & Tariq, M. (2016). Heavy metals potential health risk assessment through consumption of wastewater irrigated wild plants: A case study. Human and Ecological Risk Assessment: An International Journal, 22(1), 141–152.
CAS
Article
Google Scholar
Khan, S., Shah, I. A., Muhammad, S., Malik, R. N., & Shah, M. T. (2014). Arsenic and Heavy Metal Concentrations in Drinking Water in Pakistan and Risk Assessment: A Case Study. Human and Ecological Risk Assessment: An International Journa l(ahead-of-print), 1–12
Khan, M. A., Wajid, A., Noor, S., Khattak, F. K., Akhter, S., & Rahman, I. U. (2008). Effect of soil contamination on some heavy metals content of Cannabis sativa. Journal of the Chemical Society of Pakistan, 30(6), 805–809.
CAS
Google Scholar
Knight, C., Kaiser, J., Lalor, G., Robotham, H., & Witter, J. (1997). Heavy metals in surface water and stream sediments in Jamaica. Environmental Geochemistry and Health, 19(2), 63–66.
CAS
Article
Google Scholar
Kuppusamy, S., Palanisami, T., Megharaj, M., Venkateswarlu, K., & Naidu, R. (2016). Ex-Situ Remediation Technologies for Environmental Pollutants: A Critical Perspective. In P. de Voogt (Ed.), Reviews of Environmental Contamination and Toxicology (Vol. 236, pp. 117–192). Cham: Springer International Publishing.
Google Scholar
Landrigan, P. J., Schechter, C. B., Lipton, J. M., Fahs, M. C., & Schwartz, J. (2002). Environmental pollutants and disease in American children: Estimates of morbidity, mortality, and costs for lead poisoning, asthma, cancer, and developmental disabilities. Environmental Health Perspectives, 110(7), 721.
Article
Google Scholar
Lison, D. (1996). Human toxicity of cobalt-containing dust and experimental studies on the mechanism of interstitial lung disease (hard metal disease). Critical Reviews in Toxicology, 26(6), 585–616.
CAS
Article
Google Scholar
Liu, Y., Ma, J., Yan, H., Ren, Y., Wang, B., Lin, C., et al. (2016). Bioaccessibility and health risk assessment of arsenic in soil and indoor dust in rural and urban areas of Hubei province, China. Ecotoxicology and Environmental Safety, 126, 14–22. https://doi.org/10.1016/j.ecoenv.2015.11.037.
CAS
Article
Google Scholar
Lu, X., Zhang, X., Li, L. Y., & Chen, H. (2014). Assessment of metals pollution and health risk in dust from nursery schools in Xi’an, China. Environmental Research, 128, 27–34.
CAS
Article
Google Scholar
Man, Y. B., Sun, X. L., Zhao, Y. G., Lopez, B. N., Chung, S. S., Wu, S. C., et al. (2010). Health risk assessment of abandoned agricultural soils based on heavy metal contents in Hong Kong, the world’s most populated city. Environment International, 36(6), 570–576. https://doi.org/10.1016/j.envint.2010.04.014.
CAS
Article
Google Scholar
Mohammad, J., Khan, S., Shah, M. T., Din, I. U., & Ahmad, A. (2015). Essential and non-essential metals concentrations in the morel mushroom (Morchella esculenta) in Dir-Kohistan, Northern Pakistan. Pak J Botany, 47, 133.
CAS
Google Scholar
Muhammad, S., Shah, M. T., & Khan, S. (2011a). Health risk assessment of heavy metals and their source apportionment in drinking water of Kohistan region, northern Pakistan. Microchemical Journal, 98(2), 334–343. https://doi.org/10.1016/j.microc.2011.03.003.
CAS
Article
Google Scholar
Muhammad, S., Shah, M. T., & Khan, S. (2011b). Heavy metal concentrations in soil and wild plants growing around Pb–Zn sulfide terrain in the Kohistan region, northern Pakistan. Microchemical Journal, 99(1), 67–75.
CAS
Article
Google Scholar
Muhammad, S., Shah, M. T., Khan, S., Saddique, U., Gul, N., Khan, M. U., et al. (2013). Wild plant assessment for heavy metal phytoremediation potential along the mafic and ultramafic terrain in northern Pakistan. BioMed research international, 2013, 194765.
Google Scholar
Nawab, J., Khan, S., Shah, M. T., Gul, N., Ali, A., Khan, K., et al. (2016). Heavy Metal Bioaccumulation in Native Plants in Chromite Impacted Sites: A Search for Effective Remediating Plant Species. CLEAN–Soil, Air, Water, 44(1), 37–46.
CAS
Article
Google Scholar
Nazir, R., Khan, M., Masab, M., Rehman, H., Rauf, N., Shahab, S., et al. (2015). Accumulation of Heavy Metals (Ni, Cu, Cd, Cr, Pb, Zn, Fe) in the soil, water and plants and analysis of physicochemical parameters of soil and water Collected from Tanda Dam kohat. Journal of pharmacy and pharmaceutical sciences, 7(3), 89–97.
CAS
Google Scholar
Nickens, K. P., Patierno, S. R., & Ceryak, S. (2010). Chromium genotoxicity: A double-edged sword. Chemico-Biological Interactions, 188(2), 276–288.
CAS
Article
Google Scholar
Nordberg, G., Jin, T., Bernard, A., Fierens, S., Buchet, J. P., Ye, T., et al. (2002). Low bone density and renal dysfunction following environmental cadmium exposure in China. AMBIO: A Journal of the Human Environment, 31(6), 478–481.
Article
Google Scholar
Ogunkunle, C. O., & Fatoba, P. O. (2013). Pollution loads and the ecological risk assessment of soil heavy metals around a mega cement factory in southwest Nigeria. Polish Journal of Environmental Studies, 22(2), 487–493.
CAS
Google Scholar
Olawoyin, R., Oyewole, S. A., & Grayson, R. L. (2012). Potential risk effect from elevated levels of soil heavy metals on human health in the Niger delta. Ecotoxicology and Environmental Safety, 85, 120–130.
CAS
Article
Google Scholar
Ordóñez, A., Álvarez, R., Charlesworth, S., De Miguel, E., & Loredo, J. (2011). Risk assessment of soils contaminated by mercury mining, Northern Spain. Journal of Environmental Monitoring, 13(1), 128–136.
Article
Google Scholar
Pelfrêne, A., Waterlot, C., & Douay, F. (2013). Influence of land use on human bioaccessibility of metals in smelter-impacted soils. Environmental Pollution, 178, 80–88.
Article
Google Scholar
Prasad, A. S. (2013). Essential and toxic element: Trace elements in human health and disease. Amsterdam: Elsevier.
Google Scholar
Qu, C., Sun, K., Wang, S., Huang, L., & Bi, J. (2012). Monte carlo simulation-based health risk assessment of heavy metal soil pollution: A case study in the Qixia mining area, China. Human and Ecological Risk Assessment: An International Journal, 18(4), 733–750.
CAS
Article
Google Scholar
Rehman, Z. U., Khan, S., Qin, K., Brusseau, M. L., Shah, M. T., & Din, I. (2016). Quantification of inorganic arsenic exposure and cancer risk via consumption of vegetables in southern selected districts of Pakistan. Science of the Total Environment, 550, 321–329.
CAS
Article
Google Scholar
Robson, M. (2003). Methodologies for assessing exposures to metals: Human host factors. Ecotoxicology and Environmental Safety, 56(1), 104–109. https://doi.org/10.1016/S0147-6513(03)00054-X.
CAS
Article
Google Scholar
Shah, M. T., Ara, J., Muhammad, S., Khan, S., Asad, S. A., & Ali, L. (2014). Potential heavy metals accumulation of indigenous plant species along the mafic and ultramafic terrain in the Mohmand Agency, Pakistan. CLEAN–Soil, Air, Water, 42(3), 339–346.
CAS
Article
Google Scholar
Shah, M. T., Begum, S., & Khan, S. (2010). Pedo and biogeochemical studies of mafic and ultramfic rocks in the Mingora and Kabal areas, Swat, Pakistan. Environmental Earth Sciences, 60(5), 1091–1102.
CAS
Article
Google Scholar
Shah, A., Niaz, A., Ullah, N., Rehman, A., Akhlaq, M., Zakir, M., et al. (2013). Comparative study of heavy metals in soil and selected medicinal plants. Journal of Chemistry, 2013, 1–5.
Article
Google Scholar
Sial, R., Chaudhary, M., Abbas, S., Latif, M., & Khan, A. (2006). Quality of effluents from Hattar industrial estate. Journal of Zhejiang University SCIENCE B, 7(12), 974–980.
CAS
Article
Google Scholar
Sun, Y., Zhou, Q., Xie, X., & Liu, R. (2010). Spatial, sources and risk assessment of heavy metal contamination of urban soils in typical regions of Shenyang, China. Journal of hazardous materials, 174(1), 455–462.
CAS
Article
Google Scholar
Tahirkheli, R. K., Mattauer, M., Proust, F., & Tapponnier, P. (1979). The India Eurasia suture zone in northern Pakistan: Ssynthesis and interpretation of recent data at plate scale, Geodynamics of Pakistan (pp. 125–130). Quetta: Geological Survey of Pakistan.
Google Scholar
Treloar, P., Broughton, R., Williams, M., Coward, M., & Windley, B. (1989). Deformation, metamorphism and imbrication of the Indian Plate, south of the Main Mantle Thrust, North Pakistan. Journal of Metamorphic Geology, 7(1), 111–125.
CAS
Article
Google Scholar
Ullah, H., & Khan, I. (2015). Effects of sewage water irrigation of cabbage to soil geochemical properties and products safety in peri-urban Peshawar, Pakistan. Environmental monitoring and assessment, 187(3), 1–12.
CAS
Article
Google Scholar
USDOE (2011). The risk assessment information system (RAIS). U.S. Oak: Department of Energy’s Oak Ridge Operations Office (ORO).
USEPA (1986). Guidelines for the health risk assessment of chemical mixtures. EPA 630/R-98/002. Washington, DC: US Environmental Protection Agency.
USEPA (1989). Risk assessment guidance for superfund. volume I: Human health evaluation manual (Part A). EPA/540/1-89/002.
USEPA (2002). Supplemental Guidance for Developing Soil Screening Levels for Superfund Sites. U.S. Environmental Protection Agency, Office of Emergency and Remedial Response, Washington
Usero, J., Garcia, A., & Fraidias, J. (2000). Calidad de las aguas y sedimentos del Litoral Andaluz. Consejería de Medio Ambiente de la Junta de Andalucía.
Wu, S., Peng, S., Zhang, X., Wu, D., Luo, W., Zhang, T., et al. (2015). Levels and health risk assessments of heavy metals in urban soils in Dongguan, China. Journal of Geochemical Exploration, 148, 71–78.
CAS
Article
Google Scholar
Zhang, X., Yang, L., Li, Y., Li, H., Wang, W., & Ye, B. (2012). Impacts of lead/zinc mining and smelting on the environment and human health in China. Environmental Monitoring and Assessment, 184(4), 2261–2273.
CAS
Article
Google Scholar
Zheng, N., Liu, J., Wang, Q., & Liang, Z. (2010). Health risk assessment of heavy metal exposure to street dust in the zinc smelting district, Northeast of China. Science of the Total Environment, 408(4), 726–733.
CAS
Article
Google Scholar
Zheng-Qi, X., Shi-Jun, N., Xian-Guo, T., & Cheng-jiang, Z. (2008). Calculation of heavy metals’ toxicity coefficient in the evaluation of potential ecological risk index. Environmental Science and Technology, 2, 029.
Google Scholar
Zhong, T., Xue, D., Zhao, L., & Zhang, X. (2017). Concentration of heavy metals in vegetables and potential health risk assessment in China. [journal article]. Environmental Geochemistry and Health. https://doi.org/10.1007/s10653-017-9909-6.
Article
Google Scholar