Literature DB >> 31766104

It's Time to Replace the Term "Heavy Metals" with "Potentially Toxic Elements" When Reporting Environmental Research.

Olivier Pourret1, Andrew Hursthouse2.   

Abstract

Even if the Periodic Table of Chemical Elements is relatively well defined, some controversial terms are still in use. Indeed, the term "heavy metal" is a common term used for decades in the natural sciences, and even more in environmental sciences, particularly in studies of pollution impacts. As the use of the term appears to have increased, we highlight the relevance of the use of the term "Potentially Toxic Element(s)", which needs more explicit endorsement, and we illustrate the chemical elements that need to be considered.

Entities:  

Keywords:  contaminants; elements; heavy metals; toxic

Mesh:

Substances:

Year:  2019        PMID: 31766104      PMCID: PMC6887782          DOI: 10.3390/ijerph16224446

Source DB:  PubMed          Journal:  Int J Environ Res Public Health        ISSN: 1660-4601            Impact factor:   3.390


The development of the Periodic Table of Chemical Elements is one of the most significant achievements in science and a uniting scientific concept, with broad implications for the modern practice of chemistry, physics, biology and many other natural sciences. The International Year of the Periodic Table of Chemical Elements in 2019 coincides with the 150th anniversary of the discovery of the Periodic System by Mendeleev in 1869—a time to consider its application and progress to enable further exploration of our natural and human-impacted environment. It is a unique tool, enabling scientists to predict the appearance and properties of matter on Earth and in the Universe. However, even if the Periodic Table of Chemical Elements is relatively well defined, some controversial terms are still in use. Indeed, the term “heavy metal” is a common term used for decades in the sciences, and even more in environmental sciences (Figure 1), particularly in studies of pollution impacts. As the use of the term appears to have increased (annually 8% to 10% these last ten years, Figure 2), we emphasise the relevance of the use of the term “Potentially Toxic Element(s)” (PTEs) [1], which needs more explicit endorsement, and we illustrate the chemical elements that need to be considered.
Figure 1

Proportion of publication by research areas in 2018 using the term “heavy metal*” in the title (sourced from Scopus using the term “heavy metal*”, data accessed on 10 October 2019).

Figure 2

Evolution of the number of publications using the term “heavy metal*” in the title (sourced from Scopus and the Web of Science using the term “heavy metal*”, data accessed 10 October 2019). It should be noted that the total number of publications has also dramatically increased. Thus, the proportion of publications using this term may have decreased.

In 1980, Nieboer and Richardson [2] had already proposed the replacement of this nondescript term by a biologically and chemically significant classification. Moreover, according to the International Union of Pure and Applied Chemistry [3], the term “heavy metal” is considered imprecise at best and meaningless and misleading at worst. The use of this term is strongly discouraged, especially as there is no standardised definition. In 2004, Hodson [4] considered them as geochemical “bogey men”. In 2007, Chapman [5] first proposed to keep this term for music not for science. In 2010, Hübner et al. [6] proposed to move on from semantics to pragmatics, whereas Madrid [7] recalls the long-standing and sometimes forgotten controversy. Nikimnaa and Schlenk [8] further insisted on the ill-defined term. In 2012, Chapman [9] continued to write on the cacophony not the symphony around “heavy metals” and Batley et al. [10] further presented a detailed discussion of its usefulness. However, some authors still proposed some form of a definition. In 2010, Appenroth defined them in plant sciences [11], and in 2018, Ali and Kahn [12] proposed their own “comprehensive” definition. More recently, Pourret and Bollinger [13] questioned the use of the term “heavy metals”—to use or not to use?—and Pourret [14] clearly proposed to ban this term from the scientific literature, but why? Overall, the term “heavy metal” is based on categorization by density or molar mass (zinc or copper have relatively low density and molar mass compared to lanthanides and actinides). It is often used as a group name for metals (i.e., transition metals from vanadium to zinc) that are associated with contamination and potential toxicity. The “heavy metals” list is not clearly defined and often mixes metals, metalloids and non-metals without clear definition. Eventually, the pejorative connotation of “heavy” associated with the toxicity of metal induces a kind of fear in society. All so-called “heavy metals” and their compounds may have relatively high toxicity (e.g., lead or cadmium). Nonetheless, metals are not always toxic and some are in fact essential—depending on the dose and exposure levels and the receiving organism/population, the balance between essential or toxic may tip (e.g., nickel or zinc). In this opinion presented to the International Journal of Environmental Research and Public Health, we look at progress in environmental sciences and medicine within a restricted sample population. Among the 167 articles with the “heavy metal” term in the title and the 996 with it in the subject, which we identified from a total of 12,700 articles published in International Journal of Environmental Research and Public Health in the widely used databases of Scopus and the Web of Science using the search term “heavy metal” (data accessed 10 October 2019), we found lead (Pb), cadmium (Cd) and zinc (Zn) to be the three most commonly studied elements (69%, 67% and 62%, respectively, when considering the term “heavy metal” in the title (n = 167), and 32%, 30% and 23%, respectively, when considering the term in the subject (n = 996); Table 1 and Figure 4). In addition, these elements are most often associated with monitoring based on total or extractable concentrations in soils, sediments or water, in order to characterise pollution, to perform risk assessment and to identify environmental exposure and health hazards (Figure 3). Apart from these chemical elements, the keyword “China” appeared then in 44% of the articles (73/167) and 58% of the articles were co-authored by researchers from Chinese institutions (97/167), reflecting in part the emergence of intense research activity on widespread environmental issues in the region. Also emerging reports in English language journals, perhaps has enhanced the growth of the term, a result of perpetuating the approach to an established and long-standing practice.
Table 1

Occurrence of the first 10 elements in article keywords with “heavy metal” or “potentially toxic element” in the subject of the articles published in International Journal of Environmental Research and Public Health (sourced from Scopus, data accessed on 10 October 2019).

Rank“Heavy Metal” (n = 996)Rank“Potentially Toxic Element” (n = 131)
Element n % Element n %
1Pb321321Pb7255
2Cd298302Cd7054
3Zn228233Zn5844
4Cu225234Cu5744
5As208215As4736
6Cr193196Cr4434
7Ni158167Ni3829
8Hg141148Hg2922
9Mn107119Mn2318
10Fe85910Co2015
Figure 3

Word cloud of keywords used in the 167 articles from International Journal of Environmental Research and Public Health with the term “heavy metal*” in the title (sourced from Scopus, data accessed on 10 October 2019).

In environmental science, the chemical speciation (molecular form) of the elements is often overlooked [15]. The fact that chemical speciation is rarely considered may be because it is relatively expensive (time and resources) and inherently difficult to measure directly. Sometimes, fractionation analysis is performed, such as sequential chemical extraction, to identify the accessibility of portions of the total sample content. However, elements are mostly judged as toxic because of evidence relating to the toxicity of only a few of the chemical species in which they occur, often from laboratory-based acute exposure. Since their physical, chemical and biological characteristics depend on molecular structure and not its elemental constituents, so does its toxicity. Indeed, the toxicity of these PTEs, like lead and cadmium, depends on their speciation and concentration not only in a quantitative way but also qualitatively. Bioaccessibility and/or bioavailability should be considered. Overall, human exposure to lead by the addition of tetraethyl-lead to gasoline as an antiknock agent, or to lead paint, is well documented. However, the lead-acid battery does not pose a direct threat to humans through use but may generate environmentally hazardous waste [16]. Therefore, it is essential that environmental studies further consider the species present rather than the elemental constituent in order to create meaningful data. It thus becomes clearer that failure to properly consider the chemical speciation of elements can lead to poor risk assessment and bad use of legislation. Laws and regulations based on simple elemental analysis may wrongly consider environmental media or products as toxic and group them in the term “heavy metals”.

Concluding Remark

To be consistent, researchers should only use well-accepted definitions. The series from V to Zn are considered the transition metals, As is a metalloid, Se a non-metal and Ba an alkali-earth (Figure 4). The best way to describe the studied elements is to name them clearly or to consider them as a group of elements (metals or metalloids) and, in the case of environmental studies published in journals like International Journal of Environmental Research and Public Health, to consider the term “Potentially Toxic Element(s)” (PTEs). The wider and less ambiguous term PTE can provide consistent and comparative use and more specialised definitions accepted only on the basis of a more refined characterisation. Some other terms, like “Potentially Toxic Analytes”, can also be applied. Eventually, one should continue to educate people to avoid the term “heavy metals”, especially in non-peer-reviewed regulations or governments’ research reports.
Figure 4

Periodic Table of Chemical Elements, highlighting the elements considered as “heavy metals” in International Journal of Environmental Research and Public Health (from the 167 articles with “heavy metal” in the title sourced from Scopus, data accessed on 10 October 2019).

  10 in total

1.  Heavy metals--geochemical bogey men?

Authors:  Mark E Hodson
Journal:  Environ Pollut       Date:  2004-06       Impact factor: 8.071

2.  "Heavy metal"--cacophony, not symphony.

Authors:  Peter M Chapman
Journal:  Integr Environ Assess Manag       Date:  2012-04       Impact factor: 2.992

3.  "Heavy metal"--a useful term.

Authors:  Graeme E Batley
Journal:  Integr Environ Assess Manag       Date:  2012-04       Impact factor: 2.992

4.  'Heavy metal'--time to move on from semantics to pragmatics?

Authors:  Ralf Hübner; K Brian Astin; Roger J H Herbert
Journal:  J Environ Monit       Date:  2010-07-08

5.  Heavy metal-music, not science.

Authors:  Peter M Chapman
Journal:  Environ Sci Technol       Date:  2007-06-15       Impact factor: 9.028

6.  Uses of phrases.

Authors:  Mikko Nikinmaa; Daniel Schlenk
Journal:  Aquat Toxicol       Date:  2010-04-01       Impact factor: 4.964

7.  Potentially toxic elements contamination in urban soils: a comparison of three European cities.

Authors:  M Biasioli; H Grcman; T Kralj; F Madrid; E Díaz-Barrientos; F Ajmone-Marsan
Journal:  J Environ Qual       Date:  2007-01-09       Impact factor: 2.751

8.  Lead distribution in soils impacted by a secondary lead smelter: Experimental and modelling approaches.

Authors:  Arnaud R Schneider; Benjamin Cancès; Marie Ponthieu; Sophie Sobanska; Marc F Benedetti; Olivier Pourret; Alexandra Conreux; Ivan Calandra; Blandine Martinet; Xavier Morvan; Maxime Gommeaux; Béatrice Marin
Journal:  Sci Total Environ       Date:  2016-06-10       Impact factor: 7.963

9.  On the difficulties of being rigorous in environmental geochemistry studies: some recommendations for designing an impactful paper.

Authors:  Olivier Pourret; Jean-Claude Bollinger; Eric D van Hullebusch
Journal:  Environ Sci Pollut Res Int       Date:  2019-11-19       Impact factor: 4.223

10.  "Heavy metal" - What to do now: To use or not to use?

Authors:  Olivier Pourret; Jean-Claude Bollinger
Journal:  Sci Total Environ       Date:  2017-08-12       Impact factor: 7.963

  10 in total
  10 in total

1.  Parasitic Load, Hematological Parameters, and Trace Elements Accumulation in the Lesser Spotted Dogfish Scyliorhinus canicula from the Central Tyrrhenian Sea.

Authors:  Francesca Romana Reinero; Concetta Milazzo; Marco Minervino; Cristian Marchio; Mariacristina Filice; Laura Bevacqua; Gianni Giglio; Francesco Luigi Leonetti; Primo Micarelli; Sandro Tripepi; Donatella Barca; Emilio Sperone
Journal:  Biology (Basel)       Date:  2022-04-26

2.  Construction of a sensitive and specific lead biosensor using a genetically engineered bacterial system with a luciferase gene reporter controlled by pbr and cadA promoters.

Authors:  Esmail Nourmohammadi; Saman Hosseinkhani; Reza Nedaeinia; Hoda Khoshdel-Sarkarizi; Mozhdeh Nedaeinia; Maryam Ranjbar; Neshat Ebrahimi; Zahra Farjami; Mohammad Nourmohammadi; Ali Mahmoudi; Mohammad Goli; Gordon A Ferns; Majid Sadeghizadeh
Journal:  Biomed Eng Online       Date:  2020-10-19       Impact factor: 2.819

3.  Pollution Distribution of Potentially Toxic Elements in a Karstic River Affected by Manganese Mining in Changyang, Western Hubei, Central China.

Authors:  Zhao Liu; Ye Kuang; Shengtao Lan; Wenjia Cao; Ziqi Yan; Li Chen; Qianlong Chen; Qi Feng; Hong Zhou
Journal:  Int J Environ Res Public Health       Date:  2021-02-15       Impact factor: 3.390

Review 4.  Metal Detoxification in Land Plants: From Bryophytes to Vascular Plants. STATE of the Art and Opportunities.

Authors:  Elisa Fasani; Mingai Li; Claudio Varotto; Antonella Furini; Giovanni DalCorso
Journal:  Plants (Basel)       Date:  2022-01-18

5.  Coronilla juncea, a native candidate for phytostabilization of potentially toxic elements and restoration of Mediterranean soils.

Authors:  Alma Heckenroth; Pascale Prudent; Hélène Folzer; Jacques Rabier; Stéven Criquet; Arne Saatkamp; Marie-Dominique Salducci; Laurent Vassalo; Isabelle Laffont-Schwob
Journal:  Sci Rep       Date:  2022-06-15       Impact factor: 4.996

6.  Cd Phytoextraction Potential in Halophyte Salicornia fruticosa: Salinity Impact.

Authors:  Fawzy Mahmoud Salama; Arwa Abdulkreem Al-Huqail; Mohammed Ali; Amany H A Abeed
Journal:  Plants (Basel)       Date:  2022-09-28

7.  Genotoxicity and Oxidative Stress in Experimental Hybrid Catfish Exposed to Heavy Metals in a Municipal Landfill Reservoir.

Authors:  Lamyai Neeratanaphan; Chuchart Kamollerd; Pimchanok Suwannathada; Pongthorn Suwannathada; Bundit Tengjaroenkul
Journal:  Int J Environ Res Public Health       Date:  2020-03-17       Impact factor: 3.390

8.  Characteristics and Assessment of Toxic Metal Contamination in Surface Water and Sediments Near a Uranium Mining Area.

Authors:  Ling Yi; Bai Gao; Haiyan Liu; Yanhong Zhang; Chaochao Du; Yanmei Li
Journal:  Int J Environ Res Public Health       Date:  2020-01-15       Impact factor: 3.390

Review 9.  Extremophiles, a Nifty Tool to Face Environmental Pollution: From Exploitation of Metabolism to Genome Engineering.

Authors:  Giovanni Gallo; Rosanna Puopolo; Miriam Carbonaro; Emanuela Maresca; Gabriella Fiorentino
Journal:  Int J Environ Res Public Health       Date:  2021-05-14       Impact factor: 3.390

Review 10.  Chemical Fractionation in Environmental Studies of Potentially Toxic Particulate-Bound Elements in Urban Air: A Critical Review.

Authors:  Ryszard Świetlik; Marzena Trojanowska
Journal:  Toxics       Date:  2022-03-04
  10 in total

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