Literature DB >> 34806754

Global, regional and national burden of disease attributable to 19 selected occupational risk factors for 183 countries, 2000-2016: A systematic analysis from the WHO/ILO Joint Estimates of the Work-related Burden of Disease and Injury.

Frank Pega1, Halim Hamzaoui, Bálint Náfrádi, Natalie C Momen.   

Abstract

OBJECTIVES: We provide a brief introduction to the objectives, data, methods and results of the World Health Organization (WHO)/International Labor Organization (ILO) Joint Estimates of the Work-related Burden of Disease and Injury (WHO/ILO Joint Estimates), which estimated the burden attributable to 19 selected occupational risk factors.
METHODS: The WHO/ILO Joint Estimates were produced within the global Comparative Risk Assessment framework, which attributes the burden of one specific health outcome (ie, disease/injury) to a specific occupational risk factor. For 39 established occupational risk factor-health outcome pairs, estimates are produced using population attributable fractions (PAF) from recent burden of disease estimates. For two additional pairs, PAF are calculated from new databases of exposure and risk ratios produced in WHO/ILO systematic reviews. Attributable disease burdens were estimated by applying the PAF to total disease burdens.
RESULTS: Globally in 2016, it is estimated that 1.88 [95% uncertainty range (UR) 1.84-1.92] million deaths and 89.72 (95% UR 88.61-90.83) million disability-adjusted life years were attributable to the 19 selected occupational risk factors and their health outcomes. A disproportionately large work-related burden of disease is observed in the WHO African Region (for disability-adjusted life years), South-East Asia Region, and Western Pacific Region (for deaths), males and older age groups.
CONCLUSIONS: The WHO/ILO Joint Estimates can be used for global monitoring of exposure to occupational risk factors and work-related burden of disease and to identify, plan, cost, implement and evaluate policies, programs and actions to prevent exposure to occupational risk factors and their associated burden.

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Year:  2021        PMID: 34806754      PMCID: PMC9045235          DOI: 10.5271/sjweh.4001

Source DB:  PubMed          Journal:  Scand J Work Environ Health        ISSN: 0355-3140            Impact factor:   5.492


Despite a long history of productive interagency collaboration, the World Health Organization (WHO) and the International Labor Organization (ILO) have, until recently, produced separate estimates on work-related burden of disease. Their different methodologies have yielded different results. The two United Nations (UN) specialized agencies have been asked by Member States to harmonize their estimates. Additionally, the Sustainable Development Goals (SDGs) and the UN 2030 Agenda (1) call for partnerships for development and improved policy coherence. In response, an agreement was made in 2016 between WHO and ILO to develop a joint estimation methodology and produce the most comprehensive set of official estimates of work-related burden of disease produced to date: the first WHO/ILO Joint Estimates of the Work-related Burden of Disease and Injury (WHO/ILO Joint Estimates). While it was possible to apply WHO and ILO’s existing methodologies for many established pairs of occupational risk factors and health outcomes, several other pairs were considered in need of a new evidence review. Additionally, some were identified that had not been included in past estimates but were likely to contribute appreciably to the burden of disease. For these potential new pairs, WHO and ILO conducted a series of systematic reviews and meta-analyses of the evidence base, for which protocols were developed, peer-reviewed and pre-published (2–19). These were carried out with support of experts from government departments in 11 countries (often ministries of health and labor) and over 220 individual experts from 35 countries, covering all six WHO regions. Here we present a brief summary of the methodology and results of the WHO/ILO Joint Estimates. More detail on the burden of disease attributable to 19 selected occupational risk factors (41 pairs of occupational risk factor and health outcome) included in the WHO/ILO Joint Estimates can be found in the WHO/ILO Global Monitoring Report and Technical Report (21). In this article, as in the broader burden of disease framework, the term “burden of disease” refers to the combined burdens of three types of health outcomes, namely communicable diseases, non-communicable diseases and injuries (22, 23).

Methods

All WHO/ILO Joint Estimates are produced according to the strict statistical rules and established regulations of WHO and the ILO. The data sources and methods used in obtaining these estimates are reported according to the Guidelines for Accurate and Transparent Health Estimates Reporting (GATHER) (24). The technical report and previous publication can be referred to for more details (21, 25).

Established pairs

Thirty-nine established pairs of occupational risk factors and health outcomes, considered to have a sufficient evidence base, were selected for inclusion (table 1). The burden of disease attributable to established occupational risk factors was estimated using the Comparative Risk Assessment (CRA) framework, a systematic evaluation of the changes in population health that result from modifying the population distribution of exposure to a risk factor or a group of risk factors (22, 23). Recent burden of disease estimates from the Global Burden of Disease Study (26), openly available at http://ghdx.healthdata.org, were used to derive population attributable fractions (PAF). PAF quantify the proportion of deaths or disability-adjusted life years (DALY) lost from a particular health outcome that is attributable to a specific risk factor.
Table 1

Total numbers of attributable deaths and disability-adjusted life years (DALY), and numbers of deaths and DALY per 100 000 working-age population (≥15 years) and total population (all ages), by pair of occupational risk factor and health outcome, globally, 183 countries, for 2000, 2010 and 2016. Data source: WHO & ILO (20)

Occupational risk factor [a] Health outcome [b]Deaths per pairDeaths per pair per 100 000 population (≥15 years)DALY per pairDALY per pair per 100 000 population (≥15 years)




200020102016200020102016200020102016200020102016
Established pairs
 Occupational exposure to asbestos
  Trachea, bronchus and lung cancers137 786169 697177 6143.23.43.22 804 2973 197 0633 286 18065.863.459.9
  Ovary cancer4519521454640.10.10.191 95399 889104 2972.22.01.9
  Larynx cancer2933307932990.10.10.167 00666 07369 5641.61.31.3
  Mesothelioma12 70320 56723 1040.30.40.4327 763476 621513 8107.79.49.4
 Occupational exposure to arsenic
  Trachea, bronchus and lung cancers5651689375890.10.10.1183 316218 684236 3614.34.34.3
 Occupational exposure to benzene
  Leukemia1175130414520.00.00.073 68176 94785 0221.71.51.6
 Occupational exposure to beryllium
  Trachea, bronchus and lung cancers1011381650.00.00.04971644271810.10.10.1
 Occupational exposure to cadmium
  Trachea, bronchus and lung cancers2793924520.00.00.011 69615 29217 1720.30.30.3
 Occupational exposure to chromium
  Trachea, bronchus and lung cancers62088410220.00.00.023 88831 77936 0590.60.60.7
 Occupational exposure to diesel engine exhaust
  Trachea, bronchus and lung cancers911612 70914 7280.20.30.3303 473410 674470 6507.18.18.6
 Occupational exposure to formaldehyde
  Nasopharynx cancer2632943270.00.00.016 08216 89418 0560.40.30.3
  Leukemia3503724160.00.00.026 65726 91229 1430.60.50.5
 Occupational exposure to nickel
  Trachea, bronchus and lung cancers5449664173010.10.10.1178 881212 860229 9804.24.24.2
 Occupational exposure to polycyclic aromatic hydrocarbons
  Trachea, bronchus and lung cancers2428336438810.10.10.184 081111 823126 9002.02.22.3
 Occupational exposure to silica
  Trachea, bronchus and lung cancers31 91038 60842 2580.70.80.81 022 9811 207 5011 302 91724.023.923.8
 Occupational exposure to sulfuric acid
  Larynx cancer2 2272 3032 5640.10.00.081 78383 96091 6361.91.71.7
 Occupational exposure to trichloroethylene
  Kidney cancer618250.00.00.01249187723430.00.00.0
 Occupational asthmagens
  Asthma35 29330 56829 6410.80.60.52 106 6282 050 7702 104 42949.440.638.4
 Occupational particulate matter, gases and fumes
  Chronic obstructive pulmonary disease473 725431 992450 38111.18.68.211 053 93510 335 23810 855 103259.4204.8197.9
 Occupational noise
  Other hearing loss0000.00.00.05 917 7327 280 5768 164 140138.9144.3148.9
 Occupational injuries [c]
  Pedestrian road injuries78 79072 03272 1571.81.41.34 547 1654 214 3784 244 768106.783.577.4
  Cyclist road injuries10 91510 52112 0180.30.20.2781 662802 973932 51418.315.917.0
  Motorcyclist road injuries41 94544 31148 1511.00.90.92 805 0942 988 0193 249 27765.859.259.2
  Motor vehicle road injuries67 87970 26876 9461.61.41.44 120 5014 261 9164 639 83396.784.584.6
  Other road injuries1 7641 8071 8590.00.00.0172 682198 907231 2594.13.94.2
  Other transport injuries21 59717 79716 8640.50.40.31 868 3801 587 9341 584 94043.831.528.9
  Poisoning by carbon monoxide7408424937720.20.10.1411 082239 498213 6069.64.73.9
  Poisoning by other means10 477631353300.20.10.1626 837389 740340 19514.77.76.2
  Falls36 80834 06434 9960.90.70.63 535 9433 472 6023 726 06883.068.867.9
  Fire, heat and hot substances16 00211 34210 2340.40.20.21 201 594946 261920 65528.218.816.8
  Drowning33 13526 77926 2810.80.50.51 956 3311 559 3721 530 31245.930.927.9
  Unintentional firearm injuries6348547750790.10.10.1424 086357 843344 83010.07.16.3
  Other exposure to mechanical forces21 30818 12117 4060.50.40.31 900 6791 765 3611 798 10644.635.032.8
  Pulmonary aspiration and foreign body in airway8470794278310.20.20.1420 613383 236380 8829.97.66.9
  Foreign body in other body part7946356490.00.00.0163 163149 381165 7783.83.03.0
  Non-venomous animal contact1495116112130.00.00.0153 866125 943130 0803.62.52.4
  Venomous animal contact9261653563590.20.10.1647 679484 024478 69215.29.68.7
  Other unintentional injuries21 47817 86016 1380.50.40.31 812 6721 600 3091 528 25742.531.727.9
 Occupational ergonomic factors
  Back and neck pain0000.00.00.010 214 92511 342 04112 267 159239.7224.8223.7
Recently added risk pairs
 Exposure to long working hours
  Ischemic heart disease244 844304 200346 6187.96.06.37 548 2259 368 42810 655 256177.1185.7194.3
  Stroke334 724366 524398 3065.77.37.310 352 97811 471 22112 603 247242.9227.4229.8

Defined as per the Global Burden of Disease Study classification (26).

Defined as per the burden of disease classification of the WHO Global Health Estimates (27) with the exception of injuries, which are defined as per Global Burden of Disease Study classification (26).

Throughout this report the term “Occupational injuries” is used as defined by Ezzati et al. (22, 23) to represent an occupational risk factor within the framework of the global Comparative Risk Assessment. This definition differs from that adopted by the 1982 Thirteenth International Conference of Labour Statisticians, and was revised by the 1998 Sixteenth International Conference of Labour Statisticians to mean “any personal injury, disease or death resulting from an occupational accident”.

Total numbers of attributable deaths and disability-adjusted life years (DALY), and numbers of deaths and DALY per 100 000 working-age population (≥15 years) and total population (all ages), by pair of occupational risk factor and health outcome, globally, 183 countries, for 2000, 2010 and 2016. Data source: WHO & ILO (20) Defined as per the Global Burden of Disease Study classification (26). Defined as per the burden of disease classification of the WHO Global Health Estimates (27) with the exception of injuries, which are defined as per Global Burden of Disease Study classification (26). Throughout this report the term “Occupational injuries” is used as defined by Ezzati et al. (22, 23) to represent an occupational risk factor within the framework of the global Comparative Risk Assessment. This definition differs from that adopted by the 1982 Thirteenth International Conference of Labour Statisticians, and was revised by the 1998 Sixteenth International Conference of Labour Statisticians to mean “any personal injury, disease or death resulting from an occupational accident”.

Estimation methods

For each pair, the total number of deaths and DALY for each health outcome in the WHO Global Health Estimates total disease envelopes for 2000, 2010 and 2016 (27) were multiplied by the pair’s PAF. This resulted in the estimates of the numbers of deaths and DALY from the health outcome that are attributable to its respective occupational risk factor. For pairs for which there are larger PAF, a larger fraction of the total burden of disease from the health outcome will be estimated.

Recently added pairs

Following scoping reviews, 16 additional pairs of occupational risk factors and health outcomes were selected, which may contribute substantially to the work-related burden of disease. Systematic reviews and meta-analyses were conducted for these pairs to gather evidence for the WHO/ILO Joint Estimates on the prevalence of exposure to occupational risk factors and on the effect of exposure to these risk factors on health outcomes (2–19). The new methods used (28) have been published in an international academic journal (29). WHO and ILO determined that there were two pairs for which there was sufficient quality and strength of evidence to proceed to burden of disease estimation: exposure to long working hours (defined as working ≥55 hours per week) and the health outcomes of ischemic heart disease and stroke. It should be noted that evaluation of the evidence for some of these pairs is ongoing. To provide exposure data for these two new pairs, new WHO/ILO databases on exposure to long working hours were developed from data shared by Member States with one or more of WHO, ILO and Eurostat. The databases provided data on the number of workers exposed to long working hours. They used results from 2324 surveys (mostly labor force surveys) from 154 countries, as well as 1742 quarterly datasets of labor force surveys conducted in 46 countries (25). Prevalence of exposure. We used an established multilevel model and data from direct exposure measurements provided by the two new WHO/ILO databases to predict the geographical and temporal prevalence of exposure to long working hours (30). As is essential in modelling studies, several modelling assumptions needed to be made. Based on advice from a WHO/ILO technical advisory group and available evidence, an exposure window of ten years, evenly spaced around a lag time of ten years, was agreed upon (ie, to estimate burden of disease in 2016 for example, exposure was modelled for the time window of 2001–2010). The annual prevalence of exposure to long working hours for each year within this window was used in exposure modelling (25). Sensitivity analyses (eg, altering the lag time and the length of the time window) were conducted to test our assumptions. Burden of disease. As for the established risk factors, the burden of disease attributable to exposure to long working hours was estimated within the CRA framework (22, 23). From the systematic reviews, a pooled risk ratio (RR) of 1.17 [95% confidence interval (CI) 1.05–1.31] was found for risk of ischemic heart disease following exposure to long working hours (≥55 hours/week) (9); for stroke, a pooled RR of 1.35 (95% CI 1.13–1.61) was found (3). These pooled RR, along with the prevalence estimates produced by WHO and ILO, were used to calculate the PAF for these two new pairs. These PAF were then applied to the health outcomes’ total disease burden envelopes from the WHO Global Health Estimates for the years 2000, 2010 and 2016 (27), as described above for the established pairs, yielding the number of deaths and DALY from each health outcome attributable to exposure to long working hours (25). Inequalities. To improve workers’ health equity between and within countries, health inequalities in the work-related burden of disease must be monitored. For describing inequalities between regions, sexes and age groups, we used the global number of deaths or DALY per 100 000 working-age (≥15 years) population as the reference. For specific regions, sexes or age groups, we calculated (i) the rate difference: the rate for the specific group minus the reference rate (an absolute inequality measure); and (ii) the rate ratio: the rate for the specific group divided by the reference rate (a relative inequality measure) (31). Uncertainty. All estimates of exposure to occupational risk factors and of burden of disease were produced with their 95% UR (25), using bootstrapping (32). Consistent with previous global health estimates (33–36), the 2.5% and 97.5% quantiles of the random deviates of the exposures were calculated and assigned as the lower and upper limits of the UR, respectively. Here, we present 95% UR for key estimates in the text; however, they are available for all estimates in the online estimates repository (www.who.int/teams/environment-climate-change-and-health/monitoring/who-ilo-joint-estimates).

Results

Main findings

Globally in 2016, exposure to the 19 selected occupational risk factors was attributable for an estimated 1 879 890 (95% UR 1 835 140–1 924 640) deaths and 89.72 (95% UR 88.61–90.83) million DALY due to the respective health outcomes. Table 1 shows the numbers of deaths and DALY corresponding to each occupational risk factor – health outcome pair, with rates per 100 000 working-age population [rates per 100 000 total population are available in the Global Monitoring Report (20)]. The pair with the highest number of deaths was chronic obstructive pulmonary disease attributable to occupational exposure to particulate matter, gases and fumes (450 381 deaths, 95% UR 430 248–470 514). The pair with the highest number of DALY was stroke attributable to exposure to long working hours (12.60 million DALY, 95% CI 11.82–13.39 million). Figure 1 displays deaths and DALY by occupational risk factor and figure 2 displays deaths and DALY by health outcome. Figures 3 and 4 show the rates of deaths and DALY per 100 000 of working-age population by country (numbers provided in the supplementary material, www.sjweh.fi/article/4001, table S1).
Figure 1

Total number of work-related deaths and DALYs, by occupational risk factor, 183 countries, for the year 2016. Source: WHO and ILO (20).

Figure 2

Total number of work-related deaths and DALYs, by health outcome, 183 countries, for the year 2016. Source: WHO and ILO (20).

Figure 3

Death rates (per 100 000 working-age population, ie, age ≥15 years) in 2016 from the 41 pairs of occupational risk factors and health outcomes. Source: WHO and ILO (20).

Figure 4

DALY rates (per 100 000 working-age population, ie, age ≥15 years) in 2016 from the 41 pairs of occupational risk factors and health outcomes. Source: WHO and ILO (20).

Total number of work-related deaths and DALYs, by occupational risk factor, 183 countries, for the year 2016. Source: WHO and ILO (20). Total number of work-related deaths and DALYs, by health outcome, 183 countries, for the year 2016. Source: WHO and ILO (20). Death rates (per 100 000 working-age population, ie, age ≥15 years) in 2016 from the 41 pairs of occupational risk factors and health outcomes. Source: WHO and ILO (20). DALY rates (per 100 000 working-age population, ie, age ≥15 years) in 2016 from the 41 pairs of occupational risk factors and health outcomes. Source: WHO and ILO (20). The two new pairs of risk factor and health outcome contributed substantially to the burden of work-related disease. Exposure to long working hours and ischemic heart disease, and exposure to long working hours and stroke combined were responsible for 39.6% of deaths (744 924, 95% UR 744 924–784 328) and 25.9% of DALY (23.26 million, 95% UR 22.15–24.37 million), making this previously unquantified occupational risk factor the one with the largest attributable burden of disease. Detailed breakdowns and interpretations of these findings can be found elsewhere (20, 25). Additionally, the WHO/ILO Joint Estimates are available for each pair, disaggregated by sex and age group, and at global, region and country levels, from dedicated websites hosted by WHO (www.who.int/teams/environment-climate-change-and-health/monitoring/who-ilo-joint-estimates) and the ILO (www.ilo.org/global/topics/safety-and-health-at-work/programmes-projects/WCMS_674797/lang--en/index.htm).

Trends over time

In absolute terms, the global number of occupational risk factor-related deaths from 2000 to 2016 increased by 177 914 between 2000 and 2016. Global work-related DALY increased by 9.67 million from 2000 to 2016. In terms of rates, globally between 2000 and 2016 rates of total deaths attributable to exposure to occupational risk factors decreased from 39.9 to 34.3 deaths per 100 000 working-age population; this corresponds to a 14.2% decrease in the rate. Similarly, global DALY rates decreased from 1878.4 to 1635.9 DALY per 100 000 working-age population.

Inequalities in work-related burden of disease

By geographic region. The absolute differences in death rates by WHO region, compared with the global rate, ranged from 10.7 (in the South-East Asia Region) to -12.0 deaths per 100 000 working-age population (in the Region of the Americas). For DALY, in absolute terms, rate differences by WHO region ranged from 463.3 DALY per 100 000 working-age population in South-East Asia to -564.1 DALY per 100 000 working-age population in the Americas. For both deaths and DALY, the rate ratios varied from 1.3 for South-East Asia to 0.7 for the Americas. By sex. The death rate per 100 000 working-age males is 51.4, 17.1 per 100 000 higher and 1.5 times the rate for both sexes. The death rate of 17.2 per 100 000 working-age females is lower compared with the rate for both sexes, this is 17.1 per 100 000 lower and 0.5 times this rate. For DALY, a similar pattern was seen. By age group. Older age groups carried disproportionally greater disease burden, with the age group 85–89 years having the highest rate difference (higher than the global rate by 212.6 deaths per 100 000 working-age population) and highest risk ratio (7.2). Conversely, the rate for the age group 15–19 years was 4.3 deaths per 100 000 working-age population, yielding a rate difference of -30.0 and a rate ratio of 0.1 compared to the global rate. Similarly for DALY, the older age groups were more burdened.

Discussion

WHO and ILO have produced the first set of the WHO/ILO Joint Estimates of the Work-related Burden of Disease and Injury (20). Multiple data sources across all WHO regions have been used to quantify the burden of specific health outcomes attributable to some key occupational risk factors. The WHO/ILO Joint Estimates are available to users disaggregated by sex and age group, at the global, regional and national levels. Target 8.8 of the SDGs aims to “Protect labour rights and promote safe and secure working environments for all workers, including migrant workers, in particular women migrants, and those in precarious employment”. Although indicator 8.8.1 refers to the “frequency rates of fatal and non-fatal occupational injuries”, injuries accounted for only 19.3% of deaths and 29.5% of DALY attributable to occupational risk factors in 2016. An additional, complementary indicator for Target 8.8, quantifying the burden of deaths from diseases attributable to exposure to occupational risk factors, would more accurately capture the extent of the burden of the work-related disease. The WHO/ILO Joint Estimates can support Member States reporting on indicator 8.8.1 and the proposed indicator, especially where dedicated reporting systems for such deaths may not yet exist.

Preventive actions

Actions required vary by occupational risk factor, to reduce the burden related to many of the established risk factors and their health impacts (as here quantified), governments should develop interventions to reduce risk factors with the active involvement of employers and workers or their representatives, as part of a hierarchy of controls (39). Where it is not possible to eliminate risk factors or use less hazardous substitutions, engineering controls can be introduced, followed by administrative controls. As a last and least-preferred option, workers can be protected with personal protective equipment. The burden of stroke and ischemic heart disease attributable to exposure to long working hours was previously unquantified. The generation of the first estimates for this burden may motivate actors to address this risk factor. ILO Conventions define the maximum limits of working hours in industrial and services sectors (40, 41) as 48 hours per week (with some specific exceptions). Human resources management and work organization management can be used to prevent exposure to long working hours, in particular for some specific working modalities (eg, teleworking, self-employment and freelancing) (42). Additionally, occupational health services can play an important role. All workers should be covered (43), and occupational health risk assessments should consider numbers of working hours and other cardiovascular risk factors (eg, obesity, physical activity, smoking and diet) that exposure to long working hours could influence. The introduction of social protection floors would enable people to stop working unhealthy long hours, by guaranteeing access to essential health care and basic income security. This would particularly benefit disadvantaged workers (eg, those in the informal economy, and vulnerable groups such as pregnant women, older people and migrant workers) (44).

Strengths and limitations

The WHO/ILO Joint Estimates have used established methods to quantify the work-related burden of disease attributable to 19 occupational risk factors (22, 23). A pair was only proceeded for estimation if WHO and ILO judged there to be sufficient quality and strength of evidence for the pair, providing confidence that the burden of disease estimates reported are attributable to the occupational risk factor. As a result, the organizations have estimated that 1.9 million deaths and 89.7 million DALY are attributable to the selected 41 pairs of occupational risk factor and health outcome. There are some limitations that should be considered when interpreting the estimates. First, these estimates are affected by the source and quality of input data, and the type and complexity of the models of exposure and health estimates. A wide range of approaches have been used to collect and synthesize data. Although estimates have been included only if the underlying body of evidence was judged to be of sufficient quality and strength, some are based on exposure data from limited sources and from areas of limited country and regional coverage. To improve future estimates, more large-scale global official datasets of exposure to occupational risk factors are needed, ideally from direct measurement or through strong proxies such as occupation and industrial sector. Similarly, more primary studies need to be conducted on the effect of exposure to occupational risk factors on health outcomes (29). In particular, more evidence is needed from low- and middle-income countries. Second, while estimates have been included only if WHO and ILO, supported by a large number of individual experts, judged the underlying body of evidence to be of sufficient quality and strength, this is based on judgement. As this is subjective it may be that other organizations or individuals reach a different judgement. This was demonstrated by a commentary indicating disagreement with the rating of “sufficient evidence for harmfulness” that there is of long working hours with regard to ischemic heart disease (45). The WHO/ILO Working Group, composed of a large number of individual experts, acknowledged and responded to the commentary, elaborating on why the assigned rating is supported by the evidence (46). WHO and the ILO are collaborating on the WHO/ILO Joint Estimates with over 200 individual experts based around the world, to ensure that judgements made represent the views of a diverse and representative expert group. Third, it must be noted that not all occupational risk factors and attributable burdens of disease have yet been quantified. The production of estimates for some pairs was not possible in this estimation cycle, such as: occupational exposure to biological risk factors and infectious diseases; occupational exposure to psycho-social risk factors and mental health outcomes; and occupational exposure to ambient air pollution and its various health outcomes. Further, while there are established methods for estimating the burdens of silicosis, asbestosis, coal worker’s pneumoconiosis and unspecified pneumoconiosis attributable to occupational exposure to dusts and fibers, WHO and the ILO are currently reviewing these methods and the available bodies of evidence (10); these pairs were therefore not included in this estimation cycle. While this means that the work-related burden of disease is almost certainly higher than the current estimate of selected pairs, the addition of such pairs in future will broaden the scope of these estimates and capture the work-related burden of disease more comprehensively. Fourth, estimates by their nature are modelled based on certain assumptions (like the appropriate time window of exposure). While the assumptions made draw from the latest evidence base and are transparently reported, as evidence develops, it is possible that new evidence may emerge in the future which could lead us to alter these assumptions. Sensitivity analyses were performed and reported to assess the impact of alternative assumptions related to exposure to long working hours (25).

Concluding remarks

The WHO/ILO Joint Estimates report that globally in 2016 1.88 million deaths and 89.72 million DALY from health outcomes were estimated to be attributable to the 19 occupational risk factors covered. A disproportionately large work-related burden of disease is observed in the WHO African Region (for DALY), South-East Asia Region and the Western Pacific Region (for deaths), males and older age groups. Future steps should include estimation of disease burden for more occupational risk factor and health outcome pairs, as more high-quality data and evidence become available, to ensure more of the work-related burden of disease is captured. The WHO/ILO Joint Estimates have widened the scope of the global CRA and strengthened the global capacity for modelling disease burden in occupational health. They allow the global monitoring of exposure to occupational risk factors and the work-related burden of disease, to detect inequalities and trends over time. This will enable policy-makers and institutions to plan, cost, implement and evaluate actions to prevent exposure to occupational risk factors and their attributable burden of disease.

Disclaimers

The authors alone are responsible for the views expressed in this article and they do not necessarily represent the views, decisions or policies of the institutions with which they are affiliated. The designations employed and the presentation of the material in this publication do not imply the expression of any opinion whatsoever on the part of WHO concerning the legal status of any country, territory, city or area or of its authorities, or concerning the delimitation of its frontiers or boundaries. Dotted and dashed lines on maps represent approximate border lines for which there may not yet be full agreement. Terminology used to refer to countries, territories, and areas as well as representation of countries, territories, and areas, including delimitation of frontiers or boundaries, and any direct or indirect attribution of status in this publication follow exclusively the institutional style and practice of WHO. All reasonable precautions have been taken by WHO to verify the information contained in this publication. However, the published material is being distributed without warranty of any kind, either expressed or implied. The responsibility for the interpretation and use of the material lies with the reader. In no event shall WHO be liable for damages arising from its use.

Funding sources

Financial support for the preparation of this publication was provided by the United States Centers for Disease Control and Prevention National Institute for Occupational Safety and Health through its cooperative agreement with WHO (grant nos 1E11 OH0010676-02, 6NE11OH010461-02-01 and 5NE11OH010461-03-00); the German Federal Ministry of Health (BMG Germany) under the BMG–WHO Collaborative Programme 2020–2023 (WHO specified award reference 70672); and the Spanish Agency for International Cooperation (AECID) (WHO specified award reference 71208). The European Union also provided financial support to the ILO through the Vision Zero Fund (VZF) project on filling data and knowledge gaps on occupational safety and health in global supply chains, implemented within the framework of the ILO Flagship Programme “Safety + Health for All”. The study sponsors had no role in the study design, collection, analysis and interpretation of the data, writing of the report, or the decision to submit the paper for publication.
  30 in total

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Journal:  J Water Health       Date:  2013-03       Impact factor: 1.744

2.  The effect of exposure to long working hours on depression: A systematic review and meta-analysis from the WHO/ILO Joint Estimates of the Work-related Burden of Disease and Injury.

Authors:  Reiner Rugulies; Kathrine Sørensen; Cristina Di Tecco; Michela Bonafede; Bruna M Rondinone; Seoyeon Ahn; Emiko Ando; Jose Luis Ayuso-Mateos; Maria Cabello; Alexis Descatha; Nico Dragano; Quentin Durand-Moreau; Hisashi Eguchi; Junling Gao; Lode Godderis; Jaeyoung Kim; Jian Li; Ida E H Madsen; Daniela V Pachito; Grace Sembajwe; Johannes Siegrist; Kanami Tsuno; Yuka Ujita; JianLi Wang; Amy Zadow; Sergio Iavicoli; Frank Pega
Journal:  Environ Int       Date:  2021-06-15       Impact factor: 9.621

3.  WHO/ILO work-related burden of disease and injury: Protocol for systematic reviews of exposure to long working hours and of the effect of exposure to long working hours on ischaemic heart disease.

Authors:  Jian Li; Chantal Brisson; Els Clays; Marco M Ferrario; Ivan D Ivanov; Paul Landsbergis; Nancy Leppink; Frank Pega; Hynek Pikhart; Annette Prüss-Üstün; Reiner Rugulies; Peter L Schnall; Gretchen Stevens; Akizumi Tsutsumi; Yuka Ujita; Johannes Siegrist
Journal:  Environ Int       Date:  2018-08-17       Impact factor: 9.621

Review 4.  WHO/ILO work-related burden of disease and injury: Protocol for systematic reviews of exposure to long working hours and of the effect of exposure to long working hours on stroke.

Authors:  Alexis Descatha; Grace Sembajwe; Michael Baer; Fabio Boccuni; Cristina Di Tecco; Clément Duret; Bradley A Evanoff; Diana Gagliardi; Ivan D Ivanov; Nancy Leppink; Alessandro Marinaccio; Linda L Magnusson Hanson; Anna Ozguler; Frank Pega; John Pell; Fernando Pico; Annette Prüss-Üstün; Matteo Ronchetti; Yves Roquelaure; Erika Sabbath; Gretchen A Stevens; Akizumi Tsutsumi; Yuka Ujita; Sergio Iavicoli
Journal:  Environ Int       Date:  2018-07-10       Impact factor: 9.621

Review 5.  Guidelines for Accurate and Transparent Health Estimates Reporting: the GATHER statement.

Authors:  Gretchen A Stevens; Leontine Alkema; Robert E Black; J Ties Boerma; Gary S Collins; Majid Ezzati; John T Grove; Daniel R Hogan; Margaret C Hogan; Richard Horton; Joy E Lawn; Ana Marušić; Colin D Mathers; Christopher J L Murray; Igor Rudan; Joshua A Salomon; Paul J Simpson; Theo Vos; Vivian Welch
Journal:  Lancet       Date:  2016-06-28       Impact factor: 79.321

6.  The prevalence of occupational exposure to noise: A systematic review and meta-analysis from the WHO/ILO Joint Estimates of the Work-related Burden of Disease and Injury.

Authors:  Liliane R Teixeira; Frank Pega; Wagner de Abreu; Marcia S de Almeida; Carlos A F de Andrade; Tatiana M Azevedo; Angel M Dzhambov; Weijiang Hu; Marta R V Macedo; Martha S Martínez-Silveira; Xin Sun; Meibian Zhang; Siyu Zhang; Denise T Correa da Silva
Journal:  Environ Int       Date:  2021-04-16       Impact factor: 9.621

7.  WHO/ILO work-related burden of disease and injury: Protocol for systematic reviews of exposure to occupational ergonomic risk factors and of the effect of exposure to occupational ergonomic risk factors on osteoarthritis of hip or knee and selected other musculoskeletal diseases.

Authors:  Carel T J Hulshof; Claudio Colosio; Joost G Daams; Ivan D Ivanov; K C Prakash; Paul P F M Kuijer; Nancy Leppink; Stefan Mandic-Rajcevic; Frederica Masci; Henk F van der Molen; Subas Neupane; Clas-Håkan Nygård; Jodi Oakman; Frank Pega; Karin Proper; Annette M Prüss-Üstün; Yuka Ujita; Monique H W Frings-Dresen
Journal:  Environ Int       Date:  2018-12-22       Impact factor: 9.621

8.  WHO/ILO work-related burden of disease and injury: Protocol for systematic reviews of exposure to long working hours and of the effect of exposure to long working hours on alcohol consumption and alcohol use disorders.

Authors:  Lode Godderis; Emma Boonen; Ana L Cabrera Martimbianco; Ellen Delvaux; Ivan D Ivanov; Marie-Claire Lambrechts; Carolina O C Latorraca; Nancy Leppink; Frank Pega; Annette M Prüss-Ustün; Rachel Riera; Yuka Ujita; Daniela V Pachito
Journal:  Environ Int       Date:  2018-07-25       Impact factor: 9.621

9.  The effect of occupational exposure to noise on ischaemic heart disease, stroke and hypertension: A systematic review and meta-analysis from the WHO/ILO Joint Estimates of the Work-Related Burden of Disease and Injury.

Authors:  Liliane R Teixeira; Frank Pega; Angel M Dzhambov; Alicja Bortkiewicz; Denise T Correa da Silva; Carlos A F de Andrade; Elzbieta Gadzicka; Kishor Hadkhale; Sergio Iavicoli; Martha S Martínez-Silveira; Małgorzata Pawlaczyk-Łuszczyńska; Bruna M Rondinone; Jadwiga Siedlecka; Antonio Valenti; Diana Gagliardi
Journal:  Environ Int       Date:  2021-02-18       Impact factor: 9.621

10.  Systematic reviews and meta-analyses for the WHO/ILO Joint Estimates of the Work-related Burden of Disease and Injury.

Authors:  Frank Pega; Natalie C Momen; Yuka Ujita; Tim Driscoll; Paul Whaley
Journal:  Environ Int       Date:  2021-05-26       Impact factor: 9.621

View more
  5 in total

1.  Estimating population burdens of occupational disease.

Authors:  David Coggon
Journal:  Scand J Work Environ Health       Date:  2021-12-15       Impact factor: 5.492

2.  Assessing the quality of evidence in studies estimating prevalence of exposure to occupational risk factors: The QoE-SPEO approach applied in the systematic reviews from the WHO/ILO Joint Estimates of the Work-related burden of disease and Injury.

Authors:  Frank Pega; Natalie C Momen; Diana Gagliardi; Lisa A Bero; Fabio Boccuni; Nicholas Chartres; Alexis Descatha; Angel M Dzhambov; Lode Godderis; Tom Loney; Daniele Mandrioli; Alberto Modenese; Henk F van der Molen; Rebecca L Morgan; Subas Neupane; Daniela Pachito; Marilia S Paulo; K C Prakash; Paul T J Scheepers; Liliane Teixeira; Thomas Tenkate; Tracey J Woodruff; Susan L Norris
Journal:  Environ Int       Date:  2022-02-16       Impact factor: 9.621

3.  Assessor burden, inter-rater agreement and user experience of the RoB-SPEO tool for assessing risk of bias in studies estimating prevalence of exposure to occupational risk factors: An analysis from the WHO/ILO Joint Estimates of the Work-related Burden of Disease and Injury.

Authors:  Natalie C Momen; Kai N Streicher; Denise T C da Silva; Alexis Descatha; Monique H W Frings-Dresen; Diana Gagliardi; Lode Godderis; Tom Loney; Daniele Mandrioli; Alberto Modenese; Rebecca L Morgan; Daniela Pachito; Paul T J Scheepers; Daria Sgargi; Marília Silva Paulo; Vivi Schlünssen; Grace Sembajwe; Kathrine Sørensen; Liliane R Teixeira; Thomas Tenkate; Frank Pega
Journal:  Environ Int       Date:  2021-11-30       Impact factor: 9.621

4.  Modelling the global economic costs of tobacco product waste.

Authors:  Juleen Lam; John Schneider; Ron Shadbegian; Frank Pega; Simone St Claire; Thomas E Novotny
Journal:  Bull World Health Organ       Date:  2022-08-22       Impact factor: 13.831

5.  Long Working Hours and the Risk of Glucose Intolerance: A Cohort Study.

Authors:  Yesung Lee; Eunhye Seo; Woncheol Lee
Journal:  Int J Environ Res Public Health       Date:  2022-09-19       Impact factor: 4.614

  5 in total

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