47 © 2019 by the authors; licensee Asian Online Journal Publishing Group Asian Review of Environmental and Earth Sciences Vol. 6, No. 1, 47-69, 2019 ISSN(E) 2313-8173/ ISSN(P) 2518-0134 DOI: 10.20448/journal.506.2019.61.47.69 © 2019 by the authors; licensee Asian Online Journal Publishing Group Surface and Ground Water Pollution in Bangladesh: A Review Akash Mamon Sarkar1 A. K. M. Lutfor Rahman2 Abdus Samad3 Arjun Chandra Bhowmick4 Jahida Binte Islam5 ( Corresponding Author) 1Pulp and Paper Research Division, Bangladesh Council of Scientific and Industrial Research, Bangladesh. 2,3Department of Chemistry, Jagannath University, Bangladesh. 4Department of Chemistry, University of South Dakota, Vermillion, United States. 5Department of Chemistry for Materials, Mie University, Japan. Abstract Environmental analysis does not become properly meaningful unless follow the standard procedure in sampling, preserving and also in analysis. This study investigates different studies on surface and groundwater pollution and discusses their findings along with impacts on environment, human health and aquatic ecosystem demolition. Fresh water is a vital need for drinking, household, agricultural and industrial use. Fresh water availability is shrinking worldwide due to imprudent use. Abound availability of fresh water in Bangladesh is now polluting due to unwise dumping of industrial, household, agricultural and municipal wastes. Water body in urban arena is severely polluted rather than rural part. The over concentration of DO, BOD, COD, EC, TDS, Cr, Cd, Pb was observed in Dhaka region. The highest arsenic concentration was found in the ground water of Lakshimpur. The main sources of pollution in industrial cities are anthropogenic sources like untreated industrial effluent and municipal wastes whereas in rural part the main sources of pollution are agricultural and naturogenic. Transboundary impact also intensifies some river water pollution. Government approved the policies, ordinance, acts and laws however, due to lack of proper implementation and monitoring water pollution problem increasing day by day. Keywords: Effluent, Heavy metal, Pesticides, Ecosystem, Pharmaceuticals, Environmental policy. Citation | Akash Mamon Sarkar; A. K. M. Lutfor Rahman; Abdus Samad; Arjun Chandra Bhowmick; Jahida Binte Islam (2019). Surface and Ground Water Pollution in Bangladesh: A Review. Asian Review of Environmental and Earth Sciences, 6(1): 47-69. History: Received: 13 August 2019 Revised: 17 September 2019 Accepted: 23 October 2019 Published: 9 December 2019 Licensed: This work is licensed under a Creative Commons Attribution 3.0 License Publisher: Asian Online Journal Publishing Group Acknowledgement: Author wants to acknowledge library of BCSIR and the library of the University of South Dakota for information access. Funding: This study received no specific financial support. Competing Interests: The authors declare that they have no conflict of interests. Transparency: The authors confirm that the manuscript is an honest, accurate, and transparent account of the study was reported; that no vital features of the study have been omitted; and that any discrepancies from the study as planned have been explained. Ethical: This study follows all ethical practices during writing. Contents 1. Introduction ...................................................................................................................................................................................... 48 2. Water Pollution ............................................................................................................................................................................... 50 3. Handicap in Sampling and Analysis ............................................................................................................................................. 63 4. Environmental Policies in Bangladesh ........................................................................................................................................ 63 5. Conclusion ......................................................................................................................................................................................... 64 References .............................................................................................................................................................................................. 64 http://crossmark.crossref.org/dialog/?doi=10.20448/journal.506.2019.61.47.69&domain=pdf&date_stamp=2017-01-14 http://creativecommons.org/licenses/by/3.0/ http://creativecommons.org/licenses/by/3.0/ https://www.asianonlinejournals.com/index.php/AREES/article/view/1147 https://orcid.org/0000-0002-0277-6916 https://orcid.org/0000-0001-7258-3506 https://orcid.org/0000-0001-5601-3124 https://orcid.org/0000-0003-1557-4499 https://orcid.org/0000-0001-6718-8982 https://www.asianonlinejournals.com/index.php/AREES/article/view/1147 https://orcid.org/0000-0002-0277-6916 https://orcid.org/0000-0001-7258-3506 https://orcid.org/0000-0001-5601-3124 https://orcid.org/0000-0003-1557-4499 https://orcid.org/0000-0001-6718-8982 https://www.asianonlinejournals.com/index.php/AREES/article/view/1147 https://orcid.org/0000-0002-0277-6916 https://orcid.org/0000-0001-7258-3506 https://orcid.org/0000-0001-5601-3124 https://orcid.org/0000-0003-1557-4499 https://orcid.org/0000-0001-6718-8982 https://www.asianonlinejournals.com/index.php/AREES/article/view/1147 https://orcid.org/0000-0002-0277-6916 https://orcid.org/0000-0001-7258-3506 https://orcid.org/0000-0001-5601-3124 https://orcid.org/0000-0003-1557-4499 https://orcid.org/0000-0001-6718-8982 https://www.asianonlinejournals.com/index.php/AREES/article/view/1147 https://orcid.org/0000-0002-0277-6916 https://orcid.org/0000-0001-7258-3506 https://orcid.org/0000-0001-5601-3124 https://orcid.org/0000-0003-1557-4499 https://orcid.org/0000-0001-6718-8982 https://www.asianonlinejournals.com/index.php/AREES/article/view/1147 https://orcid.org/0000-0002-0277-6916 https://orcid.org/0000-0001-7258-3506 https://orcid.org/0000-0001-5601-3124 https://orcid.org/0000-0003-1557-4499 https://orcid.org/0000-0001-6718-8982 https://www.asianonlinejournals.com/index.php/AREES/article/view/1147 https://orcid.org/0000-0002-0277-6916 https://orcid.org/0000-0001-7258-3506 https://orcid.org/0000-0001-5601-3124 https://orcid.org/0000-0003-1557-4499 https://orcid.org/0000-0001-6718-8982 Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 48 © 2019 by the authors; licensee Asian Online Journal Publishing Group Contribution of this paper to the literature This study contributes to the existing literature by investigating different studies on surface and groundwater pollution and discusses their findings along with impacts on environment, human health and aquatic ecosystem demolition. 1. Introduction Bangladesh after forty four yours of achieving independence entered into the list of lower middle income country in 2016 according to the World Bank. Industrial development policy was upheld by the government in first five year plane after liberation in 1973 [1]. This industrial development policy has been carried out by all the following government unless some alterations even till now. Therefore, agriculture based economy of Bangladesh is gradually shifting into the industry based economy. That industrial journey was significantly started through the establishment of garments and textile industries in the last two decades of previous century. Contribution of agriculture to the GDP in 1981 was 30 % [2] whereas in 2016 that was 14.8 % [3, 4]. Agricultural constant price GDP growth rate in 2016 was 11.1 % and by industries was 32.4 % [3]. However, the contribution of manufacturing sector to the GDP in 1981 was 13 % [2] where as in 2016 that was 29.3 % [3, 4]. Bangladesh is now a middle income country and the Government already has divulged their target to enter in the list of developed country by 2041. To reach that goal, government emphasized the industrial development by local and foreign investment. Eight export processing zones (EPZ) have already been established in response of foreign investment and technology transfer for creating employment opportunities. Recently, an economic zone is going to establish in cox’sbazar area. To support the industrial development, port and power facilities is trying to improve on priority basis. Therefore, construction of the Paira sea port is running fast with special care. The coal based power plants in Rampal and atomic energy based power plants in Ruppur are under consideration. In accordance with industrial development policy, the government has not divulged the environmental protection policies. Already, the surface water quality of different rivers around Dhaka and Chittagong region has been demolished. A strong protest has already been raised among the national and international environmental scientist, environmental protection organization and concerning people about the establishment of Rampal coal based power plants in Sundorban arena. This concern has been raised because of the different environmental issues like hot water will increase the temperature of surrounding river, particulate matter emitted from the kiln will may affect the local and far away environment [5, 6] the pH may be declined by sinking of coal carrying cargos etc. All of these concerning incidents might be the reasons for destroying the ecosystem of world heritage Surdarban forest. Environment is one of the prime concerns all over the world for sustainable development nevertheless the government has taken of consideration about environment in development program. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 49 © 2019 by the authors; licensee Asian Online Journal Publishing Group Figure-1. Main rivers in Bangladesh. Source: Banglapedia, 2005. Bangladesh is a large delta and 230 rivers have been flown over this country Figure 1. Most of the industries have been established on the bank of the river and are dumping their wastes into the nearby river without proper pretreatment subsequently damaging the aquatic environment [7]. As a consequence the river water quality in industrial region is deteriorating day by day. The rivers in the urban area are mainly polluted by industrial effluent, municipal wastes, hospital wastes and the sources of river pollution in the rural area are mainly land run off (fertilizer, pesticides), human wastes and naturogenic. The portion of Buriganga river near the southern edge of Dhaka city is almost biologically dead [8] as well as the Turag, Shitallakhya and Balu river water quality is unfavorable for aquatic life [9-11]. The color of the Buriganga, Turag, Shitalakkhya, balu and some other river water during dry season becomes dark [8, 10, 12, 13] which is not suitable for sunlight penetration. Therefore, the photosynthesis becomes hindered in the water body which affects the hydrochemistry and ecosystem. The surface water of the rivers in the rural district far from the industrial region is till suitable for aquatic biota [14, 15] whereas in the urban or industrial districts are polluted by organic as well as inorganic sources and are exposing adverse effects for aquatic ecosystem [16-18]. All over the world, water borne diseases are prime concern among people. A wide range of mortality and morbidity occurs by dint of water related diseases especially in developing countries through ingesting pathogenic bacteria, viruses, penetration through human skin by infective forms [19]. The common sources of pollution and its effects are summarized in Figure 2. Figure-2. Water pollution and its effects. Source: Prensa Latina; FakeSick; IWA, India Celebrating. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 50 © 2019 by the authors; licensee Asian Online Journal Publishing Group This review has an aim to discuss some handicap in polluted water analysis, the sources of water pollution, adverse effects of pollution on hydrochemistry and ecosystem and environmental policies in Bangladesh. The concentration of major pollutants aggregation in surface and groundwater and their health risks have been discussed. Some statistical analysis and the inter-correlation of pollution causing parameters have also been embodied in this review. 2. Water Pollution In recent past decades, Bangladesh had been faced the dangerous arsenic pollution problem which is attributed to tremendous public health problem. Beside this, the ecological condition mortification of some rivers in the industrial zone has been drawn the concern. Severe water pollution may be caused by organic (indicated by COD, BOD, DO, grease, oil, volatile organic carbon etc.), inorganic (indicated by Temperature, acid, base, TSS, salinity, metals etc.), ions (e.g. anion, cation) and pathogenic (e.g. bacteria, virous, protozoa etc.) sources from industrial, municipal, hospital wastes as well as naturogenic sources. 2.1. Organic Pollution Organic pollution of water occur by the bio-degradable wastes from industrial and domestic sources which stimulates the growth of micro-organism in the water body [8]. As a consequence of microbial decomposition, the oxygen in the water body is consumed and the quality balance is disturbed. Water pollution mostly occurred in developing countries as a result of miss management of industrial, municipal, hospital wastes and dumping into the water body [20-22]. Dissolve Oxygen (DO) and Chemical Oxygen Demand (COD) are commonly used for the determination of organic pollution level of water body [8, 10]. According to the WHO, the permissible limit of DO and COD in industrial wastewater and drinking water is 4.5-6.5 mg/l and 10 mg/l, respectively [23]. Pollution of surface and groundwater in different regions of Bangladesh from organic sources has been summarized in Table 1. The main rivers around Dhaka city have been polluting drastically due to the untreated industrial and municipal wastes from the last couple of decades. Buriganga is one of the main rivers in Dhaka city which has lower level of DO (0.9-2.8 mg/l) [24] and higher level of COD (140-800 mg/l) value [8]. Similar condition has been observed in case of Turag rive which flows beside the Dhaka city [9, 25]. The water quality of Shitalakkha river is also unfavorable for aquatic biota due to organic pollution [10, 26, 27]. As a consequence of high level of organic pollution aquatic ecosystem in the surrounding rivers of Dhaka City is almost ruined [8, 12, 28]. Beside the peripheral river of Dhaka city, Dhanmondi lake, Gulsan lake, Rampura lake, Ramna lake are polluted by volatile organic carbon (VOC) [29]. Burignaga river is also polluted by VOC [30]. However, the rivers far from the industrial region are not such highly polluted. The DO, COD and BOD levels of Jamuna, Meghna, Podma, Mahuri, Surma, Ganges river are in the permissible level [31-34]. The permissible level of DO, COD and BOD indicates that the lower dumping of organic wastes and lower aerobic bacterial decomposition has been occurred in those rivers. A very recent study showed that COD level (20.84-114.6) in the Meghna river is higher than permissible level [15]. This is may be occurred due to the transboundary water flow from polluted Buriganga and Shitalakkhya river into the Meghna river. DO is a conventional parameter for assessing the water quality which indicates the availability of life in water body [10]. DO provides essential direct and indirect information about water body such as, bacterial activity, photosynthesis, availability of nutrients, stratification and so on Premlata [19]. At the lower level of DO value, fish and other aquatic organisms may not survive [40]. The rivers Buriganga, Turag, Shitalakkhya, Dhaleshwari, Bongshi, Surma Table 1 are polluted by organic pollutant as those have lower DO value according to DoE [41] and WHO (World Health Organization) [42]. COD is another essential parameter for assessing the soundness of water body. Higher value of COD indicates more organic pollution. COD value is enhanced by the urban runoff with household wastes and wastes from streets and sidewalks, fertilizers, leaves, grass clippings and paper from residential areas [43]. The enhanced level of COD value makes the water dark in color which hindered the penetration of sunlight. As a consequence, the photosynthesis of aquatic weeds affected drastically. Therefore, the hydrochemistry and aquatic ecosystem disturbed badly. Beside this, higher level of COD value makes the water nuisance in smell. Fish, aquatic biota feels suffocating with higher level of COD in a water body. COD enriched water is another source of pathogenic bacteria and virus. The use of COD enriched water is not suitable for drinking, washing and other household uses. The use of this water may highly risk for sore on skin. The river Buriganga [8] Turag [9, 25] Shitallakhya [10, 26] and Meghna [15] are highly polluted which is indicated by higher level of COD value. BOD represents the amount of oxygen required by the living organisms in water body which are associated with utilization and ultimate destruction or stabilization of organic matter [44]. BOD is an indicator of water pollution. It may represents, how much oxygen is necessary for oxidizing a given quantity of organic matter by microbes [45]. BOD value is lower in clean water which reveals more oxygen is present in water body and ultimate more nutrients is available for high forms of life in water body. The reason of higher BOD value is same as lower DO value. At higher BOD value the aquatic biota are stressed, suffocated and in some cases died. The consequence of higher value of BOD is leaves and woody derbis, dead plants and animals, animal manure, effluents from different industries and urban storm water runoff [46]. Most of the rivers in industrial arena show BOD value above the permissible level however, the rivers in rural zone that show in the permissible level Table 1. VOCs are concerning environmental pollutant as a consequence of their toxicity exerted to the environment and widespread occurrence. VOC comes from solvent and important raw materials used in different industries, oil from water vehicles and oil spilling from tanker, ship scraps, paints, adhesives, deodorants and refrigerants [47]. Some VOCs are used in agricultural practices and as fumigants, as herbicides and as solvent for pesticides [48]. Oceans, marine algae, phytoplankton and forest soil consist remarkable sources of biogenic VOCs [49] Water sample from 5 to 25 m depth is used for VOC detection. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 51 © 2019 by the authors; licensee Asian Online Journal Publishing Group Table-1. Organic contamination of various surface and groundwater samples in Bangladesh. Sampling location No. of observation Polluting parameters References Total Polluted DO mg/l COD mg/l BOD mg/l VOC (µg/ml) Benzene Toluene Xylene Surface water Buriganga river 10 - - - - 0.35-0.37 0.16-0.23 0.12-0.14 [30]c Buriganga river 5 5 1.8-6.5 - 17.3-41.9 - - - [20]b Buriganga river 4 4 1.1-4.1 140-800 - - - - [8]a Buriganga river - - 0.9-2.8 17.2-60.1 2.5-34.5 - - - [24] Gulsan lake - - - - - - 33.09-52.12 2.11-2.29 [29] Turag River 3 3 2.1-6.8 21-220 10-180 - - - [25] Turag River 4 4 0.6-3.6 220-1550 - - - - [9] Bangshi River 1 1 3.2-6.3 0.02-2.1 15.23-96.12 - - - [35]d DMD embankment 12 12 0.0-2.57 400-2004 150-977 - - - [27] Dhaleshwari river 5 0 6.37-6.63 - -(4.1-1.46) - - - [36]b Surma river 5 0 3.5-7.6 0.9-2.6 0.6-1.8 - - - [31]b Surma river 167 - 1.40-7.60 0.16-2.60 0.10 -1.80 [37]b Meghna river 6.23 8.54 6.38 - - - [32] Meghna river 11 4.66-8.35 20.84-114.6 1.2-10.1 - - - [15] Ganges river 1 - 10.7-6.4 10.3-15.75 4.55-1.1 - - - [33]e Brahmaputra river 1 - 9.85-6.7 75-16 4.6-0.66 - - - [33]e Padma river - - 6.21-9.61 - 3.9-5.1 - - - [34]d Dhanmondi lake - - - - - 16.98-23.78 2.68-2.92 [29] Rupnagar lake - - - - - - 19.33-24.02 2.08-2.15 [29] Ramna lake - - - - - - 13.78-16.87 2.74-2.99 [29] Shitalakkhya river 3 3 1.2-3.12 89.72-118.1 25.12-35.12 - - - [26]e Shitalakkhya river 5 5 0.5-3.3 80-480 - - - [10] Jamuna river - - 6.8 - 3.2 - - - [38] Padma river - - 6.1 - 1.9 - - - [38] Dakatia river - - 5.06 3.09 2.41 - - - [32] Muhuri river - - 4.88 2.87 2.61 - - - [32] Vahirab irver - - 1.22-5.51 3.80-10.80 0.22-5.79 - - - [39] Groundwater Feni - - 1.25-3.34 - - - - - [32] aObserved every two month over the year; bObserved in wet and dry seasons; cObserved in 0 cm and 15 cm depth, in C18 column; dObserved at every month over the year, eObserved in monsoon, premonson and postmonson. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 52 © 2019 by the authors; licensee Asian Online Journal Publishing Group Fondekar and Gupta found higher values of hydrocarbon in the 10 m depth of an oil tanker route in Northern Indian Ocean [50]. It was observed that mentionable amount of Benzene, Toluene and Xylene has been found in the Burigana river, Gulsan lake, Dhanmondi lake, Raman lake and Rampura lake Table 1. Among them Gulsan lake is more polluted by Toluene by amounting 33.09-52.12 µg/ml [29]. The sources of this high concentration of Toluene are may be the industrial and municipal wastes and insecticides used by the municipality. At a very low concentration of VOCs exerts severe health risk as many of these materials are toxic, carcinogenic or mutagenic [51]. Oil pollution depletes the water quality by dropping down the level of DO and increasing the COD, BOD, TSS and TH value of water body [52]. According to APA, ≥ 10 ppm concentration of oil in water body can cause lethal for aquatic habitant [53]. In December 2014, Chowdhury and Akter found 295-1650 ppm and 6.68-11.3 ppm oil at the contaminated and uncontaminated region of shela river, respectively due oil tanker slammed in eastern part of Sundarbans mangrove forests [54]. Islam and Hossain also found high concentration of oil (9280-10800 ppm) at ship scrapping area in Chittagong [55]. Another oil tanker slammed in the Karnafui river on October 24, 2019. Beside these, the oil pollution in Buriganga river is a common scenario from ship terminal and shipyard due to pore management. The natural decomposition of oil is highly slow and may endure for decades [56]. Oil spill affects the fisheries breeding place. The high concentration of oil restricts the sunlight penetration underneath of oil layer in water body. Lack of light intensity suppresses the photosynthesis of phytoplankton which impairs the oxygen and carbon dioxide balance across the air-water interface [55] substantially depletes the water ecosystem. It also inhibits the swimming and flying capacity of wetland birds due to over-weight [57]. 2.2. Inorganic Pollution Inorganic pollutants (especially acids, salts and metals) are not biodegradable. They form homogeneous or heterogeneous mixture and persist in the water body. Over the permissible limit, they exert toxicity and adverse effect for aquatic ecosystem, diversity of aquatic life and human health. Inorganic pollutants are in active pollutants group. The sources of inorganic pollution are the industrial untreated wastes, municipal wastes, hospital wastes, road wash, agricultural wastes and in some cases naturogenic. Bangladesh is an emerging industrial country with its unplanned industries. Most of the industries dump their wastes without proper treatment into the nearest water body. Textile manufacturing and garments industries are the main contributing industries in Bangladesh and prime surface water pollution causing industries with their untreated effluent [58, 59]. Inorganic pollutions have been treated major pollution causing components in Bangladesh from last couple of decades because of the deficiency of wastes treatment facilities. Many studies mentioned highly inorganic pollution in surface and groundwater in the different parts of country is summarized in Table 2 which is directed by the higher level of EC and hardness. Surface water is seriously polluted by discharging of agricultural effluent [8, 20] industrial effluents, random throwing of household, clinical, pathological and commercial wastes, fuel and sewage wastes [60]. Groundwater pollution may be due to the naturogenic sources [61] and the leaching of industrial waste water. pH is an important water quality assessing parameter which determines the corrosive characteristic of water [10]. Intuitively, pH significantly affects the biological activities and efficiency of toxic substances present in the aquatic environment [9]. Photosynthesis of water body is greatly affected by the pH level of water. If photosynthesis rate is decreased then carbon dioxide and bicarbonates inclusion are increased subsequently pH of the water body is increased [72]. The pH level is affected by the reaction of carbon dioxide, organic and inorganic solutes present in water [34]. The buffer (pH level) protection of water body is one of the major parameters. The pH maintained by a well-buffered is attributed by the fact of normally running water and is influenced by the nature of the deposits over which the water flows [73]. A slight change from the certain pH level of water for an organism can be abolishing cause for that organism [74]. In summer, water show alkaline nature may be due to the increase of photosynthesis of the algal blooms resulting into the precipitation of carbonates of calcium and magnesium from bicarbonates, whereas in winter pH level decreased due to the decrease of photosynthesis [34]. pH value of the surface and groundwater samples recommended by WHO is 6.5-8.5 [23]. According to EQS the pH levels in industrial water, fishing water and drinking water are 6.0-9.5, 6.5-8.5 and 6.5-8.5, respectively [75]. In all the studies the pH level was in the permissible limit recommended by EQS except karnaphuli river which shows higher level of (pH = 9.86) alkalinity [61]. The higher value of pH in the karnaphuli river may be due to the untreated karnaphuli paper mill effluent discharged into the river. Beside this some other industries situated on the bank of the karnaphuli river are discharging their effluent without any treatment. pH value in surface water is slightly higher than the groundwater could be due to the increased photosynthetic assimilation of dissolved inorganic carbon by plankton [70]. Electrical conductivity (EC) demonstrates the total ionic species in the water. Higher value of EC depicts that larger quantity of mineral salts are present in the water [76]. High content of mineral salt affects the irrigation scheme. EC is strongly related with total solid [60]. According to the WHO the maximum permissible limit of EC is 1500 µS/cm [77]. EC found well below than the WHO recommended limit in surface water however, the EC concentration in groundwater of Feni, Noakhali, Lakshmipur, Khulna and Comilla region was found in dangerous limit Table 2. Higher level of EC in these regions is may be attributed to the proximity of Bay of Bengal where saline water flow comes with tidal force. Higher level of conductivity as well as dissolved solids may have certain physiological effects on desirable food plants as well as habitat-forming plant species, give mineral testes in drinking water and create problem in irrigation [78]. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 53 © 2019 by the authors; licensee Asian Online Journal Publishing Group Table-2. Inorganic contamination of various surface and groundwater samples in Bangladesh. Sampling location No. of observation pH EC µS/cm TDS mg/l TSS mg/l Salinity mg/l Alkalinity mg/l Hardness mg/l References Total Polluted Surface water Panguchi river - - 7.23-8.09 201.96-465.87 228-284 - - 42.66-71.16 56.68-74.79 [60]a Buriganga river - - 6.92-7.82 622.2-1093.47 544-789 - - 67.43-159.42 91.94-163.1 [60]a Buriganga river - - 6.7-7.7 146-1309 98-871 - 71-642 - - [8] Turag river - - 8.23-9.45 985-1362 684-898 - 436-612 - - [12] Padma river - - 6.8-8.66 - 43-112 20.4-237.4 80-240 - 60-120 [34]b Surma river 4 - - - 51.5-301.6 - - 30.67-115.67 61.67-175.17 [62] Bongshi river - - - 545-605 384-429 - 261-305 - - [43] Karnatoli river 2 2 - - 90.7-1148.0 78.35-1282.4 0.0-1.03 - - [63]a Dhaleshwari river 5 0 5.0-7.65 136-540 69-299 - - 126-640 16-68 [40]a Mouri river 6 - 7.3-8.3 164-275 255-305 74.5-123.3 - 354-570 34.45-280 [64] Muhuri river - - - 65.90 32.70 - - 66.82 40 [32] Shitalakhya river - - 6.6-8.0 135-4768 - - - 49-355 - [65] Shitalakhya river - - 6.9-8.0 121-1167 80-754 - 57-582 - - [10] Dakatia river - - 6.78 179.15 89.85 80.00 56.02 107.00 [61] Dakatia river - - - 112.40 56.25 - - 52.71 58.0 [32] Meghna river - - 7.04 414.95 207.40 70.0 - 50.75 90.0 [61] Meghna river - - - 1193.5 598.5 - - 50.75 340.0 [32] Rajakhali canal - - 6.5-8.8 - 334-951 - 0.0002-0.001 78-270 36.3-88.9 [66] Sunamganj - - 117.51-503.61 - - - - 215-48250 [67] Halda river - - 7.03-8.60 72.00-414.00 30.0-200.0 20.0-653.0 - 2.12-35.36 9.0-380.0 [68] Karnafuli river - - 6.36-9.86 90.0-45600.0 45.0-20000.0 14.4-5100.0 - 1.60-52.25 10.0-4500.0 [68] Groundwater Feni - - 6.08-8.86 172.2-2528.0 85.3-262.0 - - 75.48-258.0 26-554 [32] Noakhali - - 6.57-7.91 483.0-9520.0 241.0-4800.0 - - 148.24-760.32 148-1530 [32] Lakshmipur - - 6.83-7.52 52.2-3800.0 129.3-1920.0 - - 108.6-1017.72 134-630 [32] Northwest region - - 5.4-5.6 160-460 95-287 - - - 100-300 [69] Mohanpur - - 6.9-7.1 701-987 490.7-990.9 - - 373.8-495.8 301.6-400.0 [70] Khulna 26 25 - 962-9370 480-4640 - - - - [71] Comilla - - 5.8-7.58 73.20-1797.0 36.50-749.0 - - 21.33-1046.69 26.0-684.0 [61] aObservation was made three times over the year; bObservation was made by monthly. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 54 © 2019 by the authors; licensee Asian Online Journal Publishing Group Total dissolved solid (TDS) in water mainly consists of ammonia, nitrite, nitrate, phosphate, alkalis, some acids, sulphates, metallic ions and so on [27]. TDS is not generally treated as a primary contaminant (as it is not directly associated with health effect) but used as an indicator of aesthetic characteristics of drinking water and as an aggregate indicator of the presence of a broad array of chemical contaminants [34]. Excess amount of TDS makes the water more turbid and increase its electrical conductivity [79, 80]. Higher quantity of TDS in effluents can increase the density of water, influence osmoregulation of fresh water organisms, reduce solubility of gases (like oxygen) and impair the utility of water for drinking, irrigation and industrial purpose [27]. TDS indicates the saline behavior of water. The high concentration of TDS means higher concentration of salinity in the water. Salinity could also be a major limiting factor for crop yield in poorly drained soils [81]. According to the WHO guide line the maximum permissible value of TDS in drinking water is 500 mg/l and in irrigable water is 1500 mg/l [77]. Both surface and groundwater in and around industrial area shows higher level of TDS vales for drinking water than the WHO’s guideline value Table 2. However, the rivers in the rural area show TDS value well fit into the permissible level. Total suspended solids (TSS) depict the suspended impurities present in the water which are responsible to transport pollutant in the aquatic environment [27]. Suspended solids may be appear in the form of course, floating, fine or colloidal particles as a floating film which cause ecological imbalance in the aquatic ecosystem by mechanical abrasive action [34]. Untreated or partially treated industrial, municipal, hospital and agricultural wastes intensify the TSS value in water body [12]. TSS is highly pH susceptible. Therefore, with pH change the dissolved matter can be aggregated and precipitated [82]. The permissible limit of TSS in drinking water is 5 mg/l [83] and in industrial waste water is 150 mg/l [84]. The Karnafuli, Halda and Bongshi rivers contain the exceed limit of TSS value for industrial effluent Table 2. These rivers are situated in the industrial belt of the country. Most of the industries have no well-organized effluent treatment plant and they are dumping their effluent into the nearest river. Therefore, higher value of TSS has been experienced in the river of industrial region. Salinity means the saltiness or dissolved salt content in the water such as sodium chloride, magnesium and calcium sulfates and bicarbonates [34]. The elevated saline content in water affects the soil construction, permeability and aeration which affect the growth of seedlings [85]. Ecologically salinity is an important factor for influencing the types of organisms that live in the water body [34]. Various species of fresh water fish cannot get suitable environment for reproduction in high content of saline water [8]. Highly concentrated saline water declines the fish diversity at an alarming rate which effects on biodiversity subsequently correlates with ecosystem as well as human food chain [8, 86]. The ultimate effect of high saline content in drinking water is detrimental on blood pressure, kidney as well as menstrual process of women [8]. Dietary salt intake guideline has been established by WHO, but guideline for safe salinity has never been published except the sodium contents > 200 mg/L in drinking water [87]. Higher rate of preeclampsia and gestational hypertension in pregnant women living in the southwestern coastal region of Bangladesh has been noticed compared with noncoastal pregnant women which may be caused by saline contamination in drinking water [88]. In surface water highest level of salinity was recorded in Buriganga river (642 mg/l) and Turag river (612 mg/l) [8, 12]. The dominant sources of salinity are tidal force, irrigation and industrial effluents. Alkalinity is the capability of water to neutralize a strong acid into a designated pH [60]. In natural water most of the alkalinity is attributed to the dissolution of CO2 into water [70] and in industrial region most of the surface water turned alkaline due to the untreated effluent. Surface water of the Buriganga, Dhalashari, Mouri rivers and ground water of southeast region (Feni, Noakhali, Laxmipur, Comilla) consists higher level of alkalinity Table 2. According to the WHO, acceptable limit of total hardness is 200 mg/l for drinking water which can be extended up to 600 mg/l in case of non-availability of fresh water source [77]. Hard water does not exert any known health impact but it forms foams which creates heat insulating scales in the boilers and reducing the efficiency [80]. Karnafuli river showed the highest range of hardness like 10-4500.0 mg/l [68] which is attributed to the industrial effluent. Groundwater in Comilla and Noakhali regions experienced hardness over the WHO guided limit for drinking water [32, 68]. This higher value may be due to the naturogenic as the industrial source in those regions is limited. Hard water exerts unpleasant test in drinking water. 2.2.1. Trace Metals Water from natural sources contain impurities of trace metals as it dissolves these metals while flowing downward through hydrological cycle [102]. Beside the natural pollution, some human activities like large scale use of chemicals in agricultural field, unauthorized disposal of industrial, hospital, mining and research wastes are attributed to pollute surface and groundwater. Some trace metals are essential for human health whereas overloading these metals cause health problems in living organism especially human. Trace metals are immobilizing in aquatic system as well as non-biodegradable and can accumulate onto sediment and in plant tissue [12, 103]. Trace metals are accumulated as a consequence of coagulation, ion exchange with dissolved and suspended species in water, incorporation into the mineral lattice structure and precipitation due to the formation of insoluble species [104-106]. Trace metals are remained in the form of oxides, hydroxides, sulphides, shlphates, phosphates, silicates, organic bindings forming complexes with humid compounds and complex sugars [107]. Surface water is a vital source of irrigation in Bangladesh. Therefore, by irrigation as well as wreath of clouds, trace metals can enter into the food chain [12]. Trace metals may contaminate sediment significantly at some concentrations which may be toxic to aquatic ecosystem [105, 108]. However, the concentration of trace metals cannot provide enough information to evaluate the effect on sediment due to trace metal contamination is deposited in different chemical forms which determine their mobility, toxicity and bioavailability [108, 109]. The results from various studies of metal pollution in Bangladesh are summarized in Table 3. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 55 © 2019 by the authors; licensee Asian Online Journal Publishing Group Table-3. Metal contamination of various surface and groundwater samples in Bangladesh. Sampling location Cr Cd Hg As Zn Cu Fe Co Pb Ni Mn References Surface water (mg/l) Khiru river - 0.054-0.175 - - 0.005-0.008 0.004-0.005 - - 0.012-0.033 - 0.082-0.324 [89] Dhaleshwari river 0.13 0.001 - - - BDL - - 0.20 - - [90] Turag river - BDL-0.004 - - 0.12-0.16 0.06-0.08 1.4-2.44 - 0.02-0.08 - - [14]a Meghna river - 0.006-0.009 - 0.001-0.003 0.019-0.022 0.003-0.009 - - 0.0005-0.0022 - 0.01-0.04 [91] Meghna river 0.006-0.074 0.001-0.007 - - 0.01-011 - 0.47-1.6 - BDL BDL 0.0003-0.025 [15] Balu river - 0.01-0.016 - 0.001-0.002 0.021-0.028 0.006-0.01 - - 0.0002-0.001 - 0.044-0.049 [91] Balu river <0.004-8.44 <0.003-3.30 - - - - - <0.004- 0.054 <0.0179-0.0282 0.0106-0.0191 - [92] Shitalakshiya river - 0.004-0.02 0.001-0.003 0.017-0.029 0.001-0.009 - - 0.0005-0.002 - 0.045-0.056 [91] Karatoa river 0.033-0.126 0.0009-0.022 - 0.01-0.092 - 0.023-0.119 - - 0.008-.064 0.0093-0.071 - [93]a Karatoa 0.002-0.009 - - Trace - Trace Trace-0.89 Trace 0.001-0.012 Trace-0.32 [94] Dhaleswari river 0.379-0.501 0.005-0.008 - - - 0.0984-0.188 - - 0.038-0.063 0.00547- 0.00974 - [95]b Buriganga river 0.557-0.0645 0.007-0.0123 - - - 0.107-0.201 - - 0.058-0.072 0.00715-0.0103 - [96]b Surma river 0.036-0.040 - - - 0.00259-1.443 0.0042 0.00028- 0.0032 - 0.013 - - [31]a Turag river 0.011-0.0127 0.0116-0.0195 0.0009- 0.0151 0.001-0.0055 0.186-0.45 0.1203-0.380 2.012-3.461 - 0.0078-0.029 0.1282-0.1333 0.4381-0.978 [12]a DEPZ 0.0037- 0.0175 0.0022-0.0039 0.0025- 0.0059 0.002-0.007 0.0146-0.0818 0.0015-0.0092 0.05-2.014 0.0037- 0.0175 0.0160.033 0.0051-0.022 0.0049-0.0479 [97] Hazaribagh canal 0.0-20.20 <0.01-0.28 - 0.01-1.10 0.01-2.50 <0.005-1.50 0.01-15.50 <0.005- 1.10 0.01-2.5 0.0-1.10 0.0-1.22 [98] Vahirab river 0.001-0.006 0.0002-0.0094 - 0.001-.004 - - 0.1-2.6 0.004-0.025 - - [39] - Groundwater (mg/l) Feni BDL-0.005 BDL-0.011 - 0.1-0.5 BDL-0.015 BDL-0.01 0.1-8.46 BDL- 0.008 0.02-0.07 BDL-0.02 BDL-3.47 [32] Noakhali BDL-0.006 BDL-0.013 - 0.1-0.5 BDL-0.017 BDL-0.012 0.15-3.08 BDL- 0.005 0.01-0.08 BDL-0.024 BDL-1.49 [32] Lakshmipur BDL-0.007 BDL-0.009 - 0.1-3.0 BDL-0.019 BDL-0.015 0.08-8.10 BDL- 0.009 0.05-0.07 BDL-0.018 0.01-2.39 [32] Kustia <0.002 <0.001 0.114-1.16 0.012-0.021 0.004-0.009 6.77-7.19 <0.002 <0.004-0.005 <0.002 0.69-0.74 [99] Western region <0.0002- 0.0031 - - 0.0002-1.955 0.012-0.073 0.0002-0.0008 - - ND-0.0001 Trace-0.001 - [100] Mohanpur - 0.0036-0.019 - 0.00208- 0.00316 - - - - 0.0136-0.0159 - 0.0072-0.0037 [70] Dhaka city <0.01 <0.001 - 0.0023- 0.0033 <0.025-0.102 <0.001-0.003 <0.025 <0.001 <0.001-0.0014 0.0025- <0.025- 0.0063-<0.056 [101] aObserved in wet and dry seasons; bObserved in monsoon, premonson and postmonson, DEPZ-Dhaka Export Processing Zone. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 56 © 2019 by the authors; licensee Asian Online Journal Publishing Group Chromium (Cr) is one of the most health and environmental concerning metals found in earth crust and water. Chromium becomes hazardous for public health if the daily intake is exceeded by WHO recommended value (0.05 mg/l) but the deficiency of Cr can cause the disturbance of glucose, protein and lipid metabolism [110]. Chromium is generally present in trivalent oxidation state (Cr3+), tetravalent oxidation state (Cr4+) as well as hexavalent oxidation state (Cr6+). Among those three states Cr3+ is least toxic. Hexavalent state of Cr is highly toxic and is mainly responsible for different types of skin irritation like ulcerations, dermatitis, allergic skin reactions [111]. In different studies, higher concentration of Cr has been documented in the surface water from last two decades Table 3. Chromium concentration in the water of Dhaleshwary river [90, 95] Balu river [92] (higher limit 8.44 mg/l), Karatoa river [93] (higher limit 0.126 mg/l), Buriganga river [96] Hazaribagh canal [35] was higher than the WHO (World Health Organization) [42] and DoE [41] recommended (0.05 mg/l) limit for drinking water. Chromium concentrations in groundwater of Noakhali [32] excided the DoE recommended [41] value for drinking water. The main source of Cr concentration in surface water has been attributed to the industrial wastes especially tannery effluent [12, 112]. However, in all cases summarized in Table 3, Cr concentration in groundwater is lower than the surface water as well as belongs to permissible limit. Cadmium (Cd) is rarely found in surface water however, in industrial arena it can be found over the danger level. Cadmium is an eco-toxic metal exposes highly adverse effects on the soil overrate, biological activity of soil, plant metabolism and human and animal health [113]. A very mild concentration of Cd intake can cause anemia, anosmia, cardiovascular diseases, renal problems and hypertension [114]. Cadmium is used in battery, pigment and paint, plastic, ceramics and glass manufacturing industries and causes pollution when the untreated wastes of those industries are dumped into the water body. It is a health hazardous element over the concentration of 0.005 mg/l in drinking water [42]. The observed concentrations of Cd are above the danger level in Khiru river [89]; Balu river (0.003-3.30 mg/l) [92] Meghna river [91] Buriganga river [96] Turag river [12] as well as in groundwater from Noakhali [32] and Mohammadpur [70]. Intense mortality rate of red tilapia has been observed due to the higher intake of Cd and it also has an effect on the decreasing of sperm number [115]. The intake of Cd over the permissible level through water or food causes acute and chronic illness for human and also treats as a carcinogenic agent [116]. Mercury (Hg) a natural occurring trace element exerts its hazardous impact on public health even a very dilute concentration. In aquatic environment, Hg combines with methyl ion and forms methyl mercury which exerts its highest toxic effects [117]. As a potential toxic element, Hg interferes on the production of neurotransmitter and also reduces the production of different important hormones including thyroid and testosterone [117]. The sources of Hg are anthropogenic and naturogenic. The anthropogenic sources are metal processing, chemical industries, mining, sewage, fungicides etc. [118]. A study [42] reported that in absence of Hg emitting source, an area can be polluted by Hg due to the global Hg cycle through the air and water. The concentration of Hg in the Turag river is in the range of 0.009-0.0151 mg/l [12] and that of in the DEPZ area is 0.0025-0.0059 mg/l [97] both are over the safe level 0.005 mg/l [119]. Last decades of previous century, arsenic (As) in drinking water was a tremendous public health threat in Bangladesh. Groundwater As concentration in northern and southern district of Bangladesh has been found over the permissible level of safe drinking water. A plethora of arsenicosis patients have been identified over the past two decades. Uptake of As over a period causes melanosis, leuko-melanosis, hyperkeratosis, cardiovascular diseases, neuropathy and cancer [120]. Nowadays, the arsenicosis problem has been changed due to awareness program and safe water treatment plant conducted by WHO, government and different NGOs, howbeit, owing to over exposure of ground water still arsenic problem in ground water is an alarming problem in Bangladesh. Arsenic problem is also faced by some other Asian countries like India, Pakistan, China, Mayanmar. In surface water the concentrations of As lie in the limit of DoE [41] and WHO [119] except Korotoa river [93] and Hazaribag canal [98]. However, the concentration of As in groundwater of Noakhali, Feni, Lakshmipur, Kustia, Western region is highly above of the DoE and WHO recommended drinking water standard Table 3. The DoE recommended [41] value of As in drinking water is 0.05 mg/l and that of by WHO is 0.01 mg/l [119]. In Bangladesh, the main source of As is the naturogenic. This can be rationalized by the fact that the over irrigation and decreasing the ground water level owing to the lower availability of water in dry season, As get readily mixed from earth crust to the groundwater. Arsenic contamination in body may decrease the production of white and red blood cells, can cause gastrointestinal irritation, weaken the heart beat and red spots on hand and feet [121]. Zinc (Zn) is an essential element in enzyme and protein [122]. It has a protective effect against Pb and Cd toxicity [123]. However, the over exposure to Zn can have adverse effect in aquatic life [12] ecosystem and public health. Higher accumulation of Zn in body exerts toxic and carcinogenic effects and subsequently neurologic, hematological complications, hypertension, kidney and liver function disorder [124]. WHO recommended acceptable value of Zn for drinking water is 3.0 mg/l [119]. In both surface and groundwater Zn lies in well below of permissible level Table 3. The source of Zn is naturogenic, industrial effluent and agricultural runoff. Zinc is highly mobile element. At alkaline condition, Zn lead to precipitate as ZnCO3 [116] and settle down on sediment and on plant tissue. Radial oxyzen loss rate of V. serpyllifolia wetland plant can significantly decrease the mobility of Zn as an essential element of plant in metal contaminated soil under flooded condition where iron plaque is formed on the root surface which hinders the mobilization of Zn through the plant tissue [125]. Copper (Cu) is a biogenic element in hemoglobin which is necessary for the metabolism of all organisms [126]. However, the over dose of Cu may cause parkinson’s disease [127]. WHO recommended value of Cu in safe drinking water is 1.5 mg/l [119]. The concentration of Cu in surface and groundwater lies below enough the permissible limit for drinking water except Hazaribagh canal [98]. In Hazaribagh arena more than 250 tannery industries had been operated and they used copper salts for tanning purpose. Therefore, may be the concentration of Cu (0.005-1.50 mg/l) was higher in Hazaribagh canal. Recently, tannery industries have been shifted from the Hazaribagh area to a well-organized industrial area in Savar and we are expecting this situation will be changed in near future. As an important element of earth, Iron (Fe) is found on earth crust. It is an important element in the physiology of living organisms [128]. The concentration of Fe in surface and groundwater is very high than the Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 57 © 2019 by the authors; licensee Asian Online Journal Publishing Group WHO prescribed (0.3 mg/l) value [119] for drinking water Table 3. In groundwater of Fenni, Laxmipur and Kustia the concentration of Fe in some samples is more than 8 mg/l. The source of Fe in ground water is the naturogenic. In some cases Fe may be mixed from industrial sources. Higher concentration of Fe makes the water bad tested and addled color. Gorell, et al. [127] found the highest relation of Parkinson’s diseases with the elevated dose of iron for over 1-20 years. The over exposure to Fe causes cancer [129] diabetes [130] liver and heart diseases [131]. In contrast to the over dose, the deficiency of iron causes improper physiological metabolism of living organisms especially for women. Cobalt (Co) is as an essential element of vitamin B12 [132]. The concentration of Co in both surface and groundwater is very low except Hazaribagh industrial region (1.1 mg/l) [133]. In surface water the source of Co is mainly the industrial wastes. Mass population can consume Co from beverage and food. Co poisoning of human body may be linked with allergic dermatitis, rhinitis, asthma and lung cancer [132]. Lead (Pb) is a toxic heavy metal which has no known biological function [134]. Pb shows very high mobility and associates with clay minerals like manganese oxide, aluminum and iron hydroxide and organic materials [135]. Both surface and groundwater are contaminated by Pb compared to the permissible level of drinking water Table 3. The permissible level of Pb in drinking water fixed by WHO is 0.01 mg/l [119] and by DoE is 0.05 mg/l [41]. Despite the lacking of heavy industrial zone, the concentration of lead in the groundwater of the southeast part of the country (Feni, Noakhali, Laxmipur) shows raised value than the permissible level [130]. The source of Pb in the groundwater of southeast part may be the naturogenic. The other sources of Pb in surface and groundwater are household paint, vehicle exhausts and industrial wastes [136] lead gasoline, municipal runoffs, atmospheric deposition [137, 138] battery industries [12] scrap batteries, thermal power plants and iron industries. Higher intake of Pb over time may exert bad effect on nervous, digestive, haematopoietic, cardiovascular, reproductive and immunological system and kidneys [139, 140]. Nickel (Ni) exerts its toxicity on human health due to over consumption through food or drinking water. Permissible level of Ni in drinking water is 0.07 mg/l [119] and in Bangladesh that is 0.10 mg/l [41]. All the surface and groundwater sample satisfy the permissible level except Turag river wherein the concentration of Ni is 0.128-0.133 mg/l [12]. The sources of Ni are attributed to the alloy, battery and pigment industries wastes. Consumption of Ni through food chain or with drinking water have connection with heart and liver damage can decrease the body weight and cause skin irritation [141] dermatitis, lung fibrosis, cardiovascular diseases, cancer in the respiratory tract [142, 143] rhinitis, nasal sinusitis and nasal mucosal injury [17]. Manganese (Mn) forms 0.1 % of earth crust [144]. It is an essential element for animal and plant for their physiological functions and deficiency of Mn may cause brutal skeletal and reproductive abnormalities for animal [126]. The WHO recommended value of Mn in drinking water is 0.5 mg/l [119]. In different observations the concentration of Mn in surface water is in the WHO prescribed value except Turag river Table 3. However, in groundwater the concentration of Mn in the southeast part (Feni, Noakhali, Laxmipur) and southwest part (Kustia) of Bangladesh is surprisingly above the WHO suggested value for drinking water Table 3. The source of Mn in groundwater may be naturogenic. The ingestion of higher dose with drinking water affect adversely in nervous system [145]. Most of the metals are in the permissible level recommended for drinking water. Heavy metals concentration is slightly higher in the industrial region. Most of the authors described that the higher concentration of metals are attributed to the untreated industrial effluent, municipal wastes, and agricultural runoff. However, the ground water as concentration in the southeast and northern region is over permissible limit for drinking water. This is due to the consequence of naturogenic activity. 2.2.2. Ions Some ions are essential for plants however; overdoses of those may cause adverse effect. Some major ions those are reported from surface and groundwater have been tabulated in Table 4. Main source of Na+ in the river water and in sediment may be the untreated or partially treated industrial effluent which is dumped into the river. Different types of sodium salt are used by industries (mainly tannery, dying) for their production purpose. The excess amount of sodium salt in effluent potentially pollutes water body unless proper treatment accounted. If sodium concentration is higher as combined with chlorine and sulfate then the water would not be suitable for irrigational use [128]. Sodium polluted irrigated water makes the soil puddling and therefore, decreases the water intake capability and becomes hard which makes seed germination difficulties [149]. Higher concentration of sodium may impose osmotic stress on the aquatic biota [149]. Therefore, the population of biota may be decreased which makes a poor aquatic ecosystem. Magnesium is the key component of chlorophylla, plays an important role in ecosystem. Higher concentration of Mg2+ makes hard water which creates difficulties in household washing. Like Mg2+, Ca2+ also creates problem in household washing. Long time ingestion of excess calcium may cause hypercalcmia, urinary tract calculi, calcification in soft tissues like kidneys and in arterial walls and suppression of bone remodeling [150]. The source of fluoride is naturogenic character. Beside this pesticide, fertilized, industrial wastes and agricultural runoff, cosmetics enhance the concentration of fluoride in wetland. It consists in the environment by combining with other elements and minerals as fluorite and fluorapatite [151]. Fluoride is an essential element for human, plays an important role for teeth and bones structure. However, more than 1.5 mg/l intake of fluoride causes dental and skeletal fluorosis [152]. It also causes non-skeletal fluorosis when affected the soft tissues in the organs such as endocrine glands, thyroid, liver, kidney and other systems of the body [151]. Like fluoride ion, chloride ion presents in different rocks. It has a high affinity towards metals. Therefore, it has a high concentration in ground water, hard water and metal polluted water. The other sources of chloride in surface and groundwater might be chlorinated pesticides and wastes from industries. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 58 © 2019 by the authors; licensee Asian Online Journal Publishing Group Table-4. Contamination by ions of various surface and groundwater samples in Bangladesh. Sampling points Na+ K+ Ca2+ Mg2+ Cl- F- CO3 2- NO3 - SO4 2- PO4 3- References Surface water (mg/l) Buriganga river 9.4-39.3 4.2-10.6 17.2-34.0 6.4-22.7 39.6-98.3 - - 12.9-34.5 2.0-9.8 1.7-6.1 [146] Turag river 13.2-32.3 7.6-20.4 11.2-25.5 2.0-5.7 80.7-147.4 0.03- 0.6 - 1.0-4.9 101.2-148.9 9.9-26.1 [147] Dhaka District - - - - 21.38-214.0 - - 2.10-13.50 22.09-151.0 1.21-7.58 [98] Karatoa river 0.0125-0.025 0.0085- 0.0215 0.024-0.071 0.0039- 0.0301 - - Trace - 3.08-25.92 1.13-2.56 [94] DEPZ - - - - - - - - - 0.27-0.66 [97] Northwest region - - - - - - - 0.01-1.65 0.007-0.096 0.004-0.275 [69] Hazaribagh Canal 2211.76 44.49 244.1 48.47 2465.0 - - 44.80 546.0 - [101] Hazaribagh Canal - - - - 108-6840 - - 0.1-194.00 5-1163 0.07-52.1 [98] Groundwater (mg/l) Sylhet City 0.10-48.30 0.02-26.52 0.69-96.6 0.27-64.02 1.45-142.0 - - - - - [148] Northwest region 0.36-1.13 0.17-0.48 0.64-2.32 1.05-3.81 - - - - - - [69] Kustia - - - - 3.27 0.268 - 0.98 0.424 0.23 [99] Mohanpur - - - - 13.1-151.2 - - 0.08-2.8 - - [70] Pabna District 0.43-1.59 0.02-2.95 0.67-6.29 0.23-1.23 1.13-7.75 - ND - - - [99] Dhaka city 28.37-42.96 1.67-2.27 30.75-50.14 9.04-14.82 9.44-64.09 - - 0.40-5.57 0.18-9.21 - [101] Khulna 3.91-73.08 0.01-0.78 0.70-8.28 0.69-8.00 0.82-84.62 - - 0.00-0.11 0.00-0.57 0.00-0.48 [71] *ND=Not detected. Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 59 © 2019 by the authors; licensee Asian Online Journal Publishing Group Phosphate ion is sparingly soluble in water and adsorbs with clay particles and precipitates as Fe, Al and Ca compounds. The sources of PO4 3- in the surface water may be fertilizer and industrial wastes. Concentration of PO4 3- in surface water of Dhaka region [98, 146] shows slightly higher than the other part of country which indicates mainly industrial effluent is the main source of PO4 3- pollution. Safe limit of phosphate in drinking water has been prescribed by WHO is 5.0 mg/l [23]. Soft drinks contain almost about 170 mg/l phosphorus which is a potential threat for public health. The possible sources of nitrogenous ions are fertilizer, industrial effluent and human excreta [153] and agriculture runoff. Excessive nitrate content in drinking water causes infant methemoglobinemia (blue baby) [154]. Nitrate is not itself carcinogenic but it form N-nitroso compound in stomach which is carcinogen [155]. 2.3. Pesticides The residue of pesticides from agricultural and non-agricultural sector increases from last few decades due to the enormous use for higher agricultural farming. Surface water is more vulnerable to accept the residual pesticides due to rain and flood. Nowadays, the contamination of pesticides residue is more common concern worldwide as they expose their toxicity to human animal and living organism by penetrating into food cycle and water cycle. Some common pesticides which are reported in different articles are illustrated in Table 5. Table-5. Level of pesticides in surface water. Sampling location No of observation Detected pesticides Concentration (µg/l) Mean recovery (%) References Total Polluted Buriganga river 3 3 - 0 Chlorpyrifos Diazinon 484.0 19.0 - - [156] Lakes in Rangpur 5 5 5 5 5 1 Chlorpyrifos Carbofuran Carbaryl 0.544-0.895 0.949-1.671 ND-0.195 86.25 90.13 92.65 [157] Savar and Dhamrai 5 1 Malathion ND-105.2 81.25 [158] 5 1 Diazinon ND-0.90 96.38 5 2 Carbaryl ND-18.1 93.75 5 2 Carbofuran ND-198.7 85.00 Savar 12 0 Methoxychlor ND 89.3 [156] 12 0 DDT ND 91.45 12 0 Chlorpyrifos ND-9.31 94.54 12 1 Diazinon ND-7.86 88.32 12 0 Ethion ND 93.12 12 0 Fenthion ND-56.3 85.98 12 3 Fenitrothion ND-33.41 89.25 12 0 Malathion ND-59.9 91.62 12 0 Parathion ND-6.23 90.41 12 2 Carbaryl ND-6.3 92.51 12 1 Carbofuran ND-43.2 93.41 12 3 Cypermethrin ND-80.5 87.32 Dhanmondi Lake 3 - Diazinon 28.0 [156] 3 - Chlorpyrifos 629.0 Kollanpur Lake 3 - Diazinon 19.0 3 - Chlorpyrifos 982.0 Ramna Lake 3 - Diazinon ND 3 - Chlorpyrifos 177.0 Ponds in Dhaka City 30 - Diazinon ND-33.0 30 - Chlorpyrifos ND-108.0 Feni - - DDT 4.16 [159] Heptachlor ND Nawabganj - - DDT 3.01 Heptachlor ND Rajshahi - - DDT 0.133 Heptachlor ND Nator - - DDT ND Heptachlor 5.24 Comilla - - DDT 8.29 Heptachlor ND DDE 4.06 Sunamganj - - DDT 5.60 Heptachlor 5.04 Madaripur - - DDT ND Heptachlor 5.14 Bandarban - - DDT ND Heptachlor 5.08 Pagla, Narayanganj 8 3 Diazinon ND-2.144 [160] 8 3 Carbofuran ND-2.181 Savar - - Heptachlor 1.4795 [36] * Bold concentrations are unsafe for human. Chlorpyrifos is an organophosphate pesticide used to kill insecticides and worms. The concentration of chlorpyrifos is very high (484.0 μg/l) in Buriganga river [156]. Sumon and coauthors [161] reported that the chlorpyrifos is moderate to high chronic to fish in the spray spot and about its 10.0 m periphery. During dry Asian Review of Environmental and Earth Sciences, 2019, 6(1): 47-69 60 © 2019 by the authors; licensee Asian Online Journal Publishing Group season, the Burignga river water turn into dark color and according to the fisherman there is no fish in the metropolitan region [8]. This high concentration of chlorpyrifos gives evidence in favor of biological death of the Buriganga river. Chlorpyrifos level reported in the lake of Ramna, Kollanpur, Dhanmondi is also high Table 5. Diazinon is also an organothiophosphate pesticide used as pest control especially for cockroach, fleas and ant. The level of diazinon in the Buriganga river, Dhanmondi lake and Kollanpur lake is higher than the Australian permissible limit (3 μg/l) for health [162]. However, in rural area of Bangladesh the concentration of DDT, heptachlor is much higher than chlorpyrifos Table 5. DDT is an organochlorine pesticide used in farming and household insecticidal killing. Authors did not find detectable DDT level in the water samples collected from Bandarban, Nator, madaripur. This may be due to the prohibition of marketing and use of chlorinated pesticide according to the Bangladesh Environment Conservation Act 1995. Organophosphate pesticides are nowadays, mostly using in Bangladesh although some unethical organochlorine pesticides are still available. Therefore some authors detected higher DDT level in the Feni, Nawabjong and Comilla region [159]. Carbofuran is a toxic carbamate pesticide used in farming especially potato cultivation. In Savar and Dhamrai region [158] carbofuran has been detected very higher level (198.7 μg/l) than prescribed by the Austrlian guideline (5 μg/l) [162]. An article [163] reported higher concentration of cypermethrin in the sample collected from savar which is used in agricultural field and by rain and flood gets mixed in water body. Cypermethrin is a hydrophobic chemical and thus precipitate on sediment. As a consequence cypermethrin exposes long term toxicity to the water cycle [164]. 2.4. Pathogenic Pollution Pathogenic pollution is one of the concerning diseases causing sources in developing and developed countries which is mainly spread through water and foods. The subsequent effect of pathogenic pollution is different types of diseases including diarrhea, vomiting, dysentery, typhoid, hepatitis etc. In Bangladesh pathogens are attributed to the 80 % of all diseases [16]. According to GOB-UNICEF, about 0.3 million children under five die every year of which one third in city slums and quarter settlement [165]. Microbial waterborne diseases also acute in developed countries. In USA, every year 0.56 million people affected by severe waterborne diseases and 7.1 million suffer from mild to moderate infection [166]. Some pathogenic bacterial count observed by different authors in different regions of Bangladesh is presented in Table 6. Table-6. Pathogenic bacterial count in surface and groundwater. Sampling location Vibrio Cholerae Pseudomonas spp Heterotrophic Bacteria E. coli cfu/100ml Total coliform cfu/100 ml Fecal Coliform cfu/100 ml References Dhaka District - - - - 1.1× 103- 8.7× 106 225-6.8×105 [98] Turag river - - - 75-7500 25-2.0×104 - [167] Buriganga River - - - 10-55000 125-8.0×104 - Dhaleswari River - - - 4-4.0×103 50-6.5×103 - Khulna Area Pond 37 4-37 220-1.35×104 <1-4.0×103 - 12-5.0104 [168] Buriganga River - - 1.0 × 108 – 3.0 × 1011 - 1.1× 103 - >2.4 ×105* 1.1× 103 - >2.4 ×105* [169] Mirpur 0-7.5×104 0-4.6 ×104 1×1010-9.4×109 - - - [170] Satkhira - - - 2.74×102- 3.32×102 1.55×103- 1.95×104 9.50×102- 1.73×103 [171] Ponds in Dhaka - - - - - <1- 9.05×104 [172] Turag river - - - <18000 - - [12] Souther part of Bandladesh - - - - - 0.0-448 [173] Rajshahi - - - - - 184 [174] Groundwater Matlab - - - 1-2000* - - [175] Rajshahi - - - - - 5 [174] Potenga - - - - 6.5×103 - [176] Bhatiari - - - - 2.0×104- 1.2×105 - [176] Kumira - - - - 1.7×104- 3.0×104 - [176] *Unit is MPN/100ml (Most Probable Number). Total coliform and fecal coliform are shown highest count in all of the samples which indicate the samples are polluted by sewage and human as well as animal feces. E. coli is a subgroup of fecal coliform its concentration is also high in all of the samples. E. coli 0157:H7 strains in drinking water can cause abdominal pain, bloody diarrhea and hemolytic uremic syndrome [177]. The presence of coliform bacteria in the surface and groundwater samples indicates the presence of disease causing agent in the water. Heterotrophic bacteria count has been used for counting all aerobic and anaerobic bacteria shows higher bacterial count in a pond of Khulna [168] and Dhaka region [98]. They are not prone to pathogenic but some of them like Pseudomons are causing infectious to skin and lung and other type like Aeromonas cause gastroenteritis [178]. Heterotrophic bacteria are considered as an indication for measuring the coliform in water [179]. 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