Seasonal Influenza Vaccination Uptake and Its Socioeconomic Determinants in Patients and Staff of Hospitals in Shahroud, Northeast of Iran

authors:

avatar Roqayeh Aliyari 1 , avatar Shakiba Imani 2 , avatar Tooba Rezaiy 2 , avatar Mohammad Shariati 3 , avatar Parastoo Hanifehzad Masooleh 4 , avatar Seyed Mohammad Mirrezaie ORCID 5 , *

Department of Epidemiology, School of Public Health, Shahroud University of Medical Sciences, Shahroud, Iran
Student Research Committee, School of Health, Shahroud University of Medical Sciences, Shahroud, Iran
Owzan, Pharmaceutical Department, Social Security Investment Company, Tehran, Iran
Azad University of Medical Sciences, Shahroud, Iran
Center for Health Related Social and Behavioral Sciences Research, Shahroud University of Medical Sciences, Shahroud, Iran

how to cite: Aliyari R , Imani S , Rezaiy T , Shariati M , Hanifehzad Masooleh P , et al. Seasonal Influenza Vaccination Uptake and Its Socioeconomic Determinants in Patients and Staff of Hospitals in Shahroud, Northeast of Iran. Shiraz E-Med J. 2019;20(4):e82898. https://doi.org/10.5812/semj.82898.

Abstract

Background:

Adequate research has been done on many factors associated with influenza vaccine uptake; however, some studies disagree on the relationship between socioeconomic status (SES) and the influenza vaccination.

Objectives:

This study aims to investigate the relationship between SES (and related factors) and seasonal influenza vaccination in northeastern Iran.

Methods:

This cross-sectional study was conducted in two tertiary hospitals in 2014. Demographic data was collected from the participants who were HCP (health care personnel) or were high-risk patients for the influenza disease. A principal component analysis (PCA) of the data was used to determine the participants’ SES. Relevant statistical tests were then used to assess the association between influenza vaccinations and several independent variables, including demographic features, asset indices, and health-related factors.

Results:

Of the 672 participants, 24.7% (166 people) had received an influenza vaccine within the past 12 months. The rate of vaccination in patients was 21.3% and 30.7% in HCPs (P = 0.007). A higher SES was positively associated with a greater likelihood of vaccination in patients (adjusted odds ratio [AOR] = 2.7; 95% confidence interval [CI] = 1.35 - 5.43). However, there was no significant relationship between influenza vaccination and SES among HCPs. History of attending a training course on influenza vaccination was associated with vaccination coverage in both HCPs (AOR = 4.29; 95% CI = 2.39 - 7.69) and high-risk patients (AOR = 2.11; 95% CI = 1.24 - 3.56).

Conclusions:

A low SES was associated with low rates of vaccination among high-risk patients. Higher vaccination rates were associated with attending a training course on the influenza vaccination among both HCPs and high-risk patients.

1. Background

The influenza virus is a major public health problem in our community. Infection increases morbidity, mortality, and duration of hospitalization, particularly in high-risk patients (1, 2). Annual vaccination is the most effective way to prevent influenza and related complications (3, 4). Vaccination of high-risk individuals and HCPs against influenza could help prevent the disease and even prevent or minimize the spread of influenza epidemics (5).

Since 2010 - 2011, the Advisory Committee on Immunization Practices (ACIP) has recommended that all individuals older than six months receive annual vaccinations against the latest influenza strains, which are detected through viral surveillance data (6). Before 2010, only high-risk individuals and HCPs were required to receive the influenza vaccination (7). Currently, the Guidelines for Surveillance and Control of Influenza in Iran do not require that every individual over six months of age receive the vaccination. According to these guidelines, the influenza vaccine is recommended for HCPs, children, the elderly, weak or disabled people, people with chronic medical conditions (such as individuals with respiratory disease, cardiovascular disease, or immunodeficiency), and pregnant women in their third trimester (8). However, in Iran, the influenza vaccine is not free of charge for all of these groups; therefore, the guideline does not guarantee vaccination.

Factors that affect the influenza vaccine uptake are well known and include age, gender, race, co-morbidities, and SES (9, 10). Although SES has been identified as an important factor affecting the influenza vaccination, the relationship between SES and influenza vaccination is still unclear (11, 12). Several studies have found a positive relationship between vaccination and high SES (12-14), while other studies do not report a correlation (11, 15).

A survey by Taheri Tanjani et al. found that the rate of the influenza vaccination in older adults in Iran is only 10.4%; the vaccination rate for other high-risk groups and HCPs was uncertain (16). Taheri Tanjani et al. investigated some factors affecting influenza vaccination rates; however, the study did not focus specifically on socioeconomic differences. In addition, their survey included only older adults and failed to examine other high-risk individuals and HCPs.

2. Objectives

To address this gap in the research, the current study will investigate the effect of SES on influenza vaccination rates in high-risk individuals and HCPs.

3. Methods

To assess influenza vaccination rates in HCPs and high-risk individuals (patients), a cross-sectional study was conducted in two tertiary hospitals in Shahroud, a city in northeastern Iran. The study received an ethics code (Ir.shmu.rec.1394.930.64) from Shahroud University of Medical Sciences. The study population included HCPs and patients in two hospitals in Shahroud. Sampling was conducted in two stages from June to August 2014. In the first stage, the quota of each ward in each hospital was calculated based on the proportion of HCPs and patients. In the second stage, participants representing a sample from each ward were randomly selected.

All participants were requested to complete the informed consent, and then they asked to respond to a questionnaire. The questions addressed demographic data, such as age, sex, job, and education. Participants were also questioned in regards to their employment history, health insurance status, disease history, and history of participation in a training course regarding the influenza vaccination. In addition, they were questioned on 33 SES-related factors. These included questions regarding housing conditions, such as home ownership, the number of rooms in the house, home building materials, the presence of showers at home, the number of people living in a housing unit, and the presence of a separate area for cooking. Some SES questions addressed personal property, such as ownership of a private car or motorcycle, of an LCD or LED TV, or of a vacuum cleaner, washing machine, refrigerator, dishwasher, personal computer, or personal mobile phone; participants were also asked about their internet access and type of internet access. They were asked about the type of oven in their homes (microwave, electric, or cooking gas) and the presence of air conditioning or a water purifier in the house. The participants were also asked whether they had received an influenza vaccine in the past year or their lifetimes. Finally, the participants were questioned about their type of health insurance coverage, including basic or complementary health insurance for outpatient services.

3.1. Statistical Analysis

The response rate was 97.1%. Multiple imputation (MI) was used to replace the missing values based on a missing-at-random (MAR) assumption. A t-test and chi-square test were used to examine the univariate associations between influenza vaccine uptake and the independent variables. The SES index was determined using principal component analysis (PCA) (17, 18).

Variables with a P value lower than 0.2 in the univariate analysis were included in the PCA model, and the first component, with a total variance of 19%, and an Eigenvalue of 5.1 was used as the SES score. SES scores above the 80th percentile were categorized as rich, below the 40th percentile as poor, and those in the middle as moderate. The forward LR method was used to fit two separate multiple logistic regression models to HPCs and patients’ groups; influenza vaccination was the outcome variable. SES, education, age, sex, and training on the influenza vaccination were entered simultaneously as independent variables. A two-sided P value < 0.05 was considered statistically significant. The odds ratio and 95% confidence intervals (95% CI) of the main variables were presented in the tables. Only the variables that were statistically significant in the univariate analysis (P < 0.2) are listed. The primary analyses were performed using the Stata (version 11) and SPSS (version 18) software.

4. Results

The participants included 431 patients (64% of total participants) and 241 HCPs (36%). Four subjects were withdrawn due to the fact that they did not complete the questionnaires fully. Of the 672 individuals, 24.7% (166) had received an influenza vaccine within the previous 12 months. The vaccination rate was 21.3% in patients and 30.7% in HCPs (P = 0.007). The mean age of the patients was 49.34 ± 0.97 years (mean ± SE), and the mean age of the HCPs was 30.36 ± 0.89. The mean duration of the patients’ education was 6.84 ± 0.31 years, and the mean duration of the HCPs’ education was 15.43 ± 0.26 years. About 41% of the respondents were male. A total of 135 of the patients (31.3%) and 11 HCPs (4.6%) were living in rural areas. The HCPs included 40 physicians (16.6%), 29 paramedics (12.1%), 148 office workers (61.4%), and 24 administrators (9.9%). The patients included 63 individuals with upper-class jobs (14.6%), 91 with middle-class jobs (21.1%), 32 manual workers (7.4%), and 181 housewives (42.1%). A total of 64 (14.8%) patients were unemployed.

Table 1 shows the univariate analysis. It illustrates the differences in vaccination rates according to SES factors. The variables shown in Table 1 have a P value below 0.2.

Table 1.

The Univariate Association Between Outcome Variables and Factors Associated with SES in both Groupsa

Patients (N = 431)HCPs (N = 241)
VariablesFlu Vaccination UptakeP ValueFlu Vaccination UptakeP Value
No (N = 339)Yes (N = 92)No (N = 167)Yes (N = 74)
Personal computer< 0.00010.611
Yes120 (88.9)15 (11.1)40 (66.7)20 (33.3)
No219 (74)77 (26)127 (70)54 (30)
Washing machine0.0020.486
Yes79 (90.8)8 (9.2)21 (75)7 (25)
No260 (75.6)84 (24.4)146 (68.5)67 (31.5)
Microwave0.0360.001
Yes56 (70)24 (30)70 (59.3)48 (40.7)
No283 (80.6)68 (19.4)97 (78.9)26 (21.1)
Private car0.1050.028
Yes134 (74.9)45 (24.1)102 (64.6)56 (35.4)
No205 (81.3)47 (18.7)56 (75.7)18 (24.3)
Air conditioning0.0100.907
Yes18 (60)12 (40)35 (68.6)16 (31.4)
No321 (80)80 (20)132 (69.5)58 (30.5)
Dishwasher0.0030.007
Yes27 (61.4)17 (38.6)43 (57.3)32 (42.7)
No312 (80.6)75 (19.4)124 (74.7)42 (25.3)
Access to the Internet0.0300.438
Yes19 (70.4)8 (29.6)10 (71.4)4 (28.6)
No320 (79.2)84 (20.8)157 (69)70 (31)
Motorcycle ownership0.2950.007
Yes99 (83.2)20 (16.8)47 (84)9 (16)
No247 (77.4)72 (22.6)120 (64.9)65 (35.1)
Private home0.1880.081
Yes250 (77.2)74 (22.7)100 (65.4)53 (34.6)
No89 (83.2)18 (16.8)67 (76)21 (24)
Household water purifier0.3870.197
Yes172 (80.1)42 (19.9)120 (67)59 (33)
No167 (77)50 (23)47 (75.8)15 (24.2)

As Table 2 illustrates, the univariate analysis shows a significant association between vaccination rates and age, job, place of residence, the presence of chronic medical conditions, and attending a training course on the influenza vaccination. In particular, participation in a training course on the influenza vaccination was a strong determinant for vaccine uptake in both groups. Although the mean age of HCP participants had a significant relationship with vaccine uptake, age was a significant factor affecting influenza vaccination rates in all participants when age was divided into two categories: individuals under and over the age of 40. The vaccination rate for patients under 40 is 10.8% and 21.8% for patients over 40 (P = 0.004). The vaccination rate for HCPs under 40 is 32.5% and 53% for HCPs over 40 (P = 0.007). No correlation was found between literacy and influenza vaccination rates.

Table 2.

Univariate Association Between Outcome Variables and Independent Variables in Both Groupsa

Variables/CategoriesPatients (N = 431)HCPs (N = 241)
Flu Vaccination UptakeP ValueFlu Vaccination UptakeP Value
No (N = 339)Yes (N = 92)No (N = 167)Yes (N = 74)
Age, y, mean ± SD48.85 ± 20.3651.59 ± 18.600.24527.53 ± 13.7835.41 ± 10.84< 0.0001
Sex0.1600.256
Male131 (75.3)43 (24.7)74 (73.3)27 (26.7)
Female208 (81.0)49 (19.0)93 (66.4)47 (33.6)
Job position
Unemployed58 (90.6)6 (9.4)< 0.0001---
Housewife148 (81.8)33 (18.2)--
Worker28 (87.5)4 (12.5)--
Middle class job73 (80.2)18 (19.8)--
Upper class job32 (50.8)31 (49.2)--
Physician---27 (67.5)13 (32.5)0.878
Paramedical--20 (69)9 (31)
Staff--102 (68.9)46 (31.1)
Administrative--18 (75)6 (25)
Place of residence0.0060.453
Urban area222 (75)74 (25)159 (69.1)71 (30.9)
Rural area117 (86.7)18 (13.3)8 (72.7)3 (27.3)
Health insurance0.0940.327
Yes311 (78.7)84 (21.3)158 (69)71 (31)
No28 (77.8)8 (22.2)9 (75)3 (25)
Complementary68 (70.8)28 (29.2)54 (70.1)23 (29.9)
Presence of chronic medical conditions0.0170.548
No238 (86)38 (14)146 (69.0)66 (31.0)
At least one101 (65)54 (35)21 (72.4)8 (27.6)
Training on influenza vaccination0.003< 0.0001
Yes51 (66.2)26 (33.8)47 (51.6)44 (48.4)
No288 (81.4)66 (18.6)120 (80)30 (20)
No167 (77)50 (23)47 (75.8)15 (24.2)

At the univariate level, no correlation was found between health insurance and influenza vaccination rates. However, when complementary insurance was assessed, a significant association was observed (P = 0.016). The presence of a chronic medical condition was also associated with a higher rate of influenza uptake (P = 0.017).

Table 3 shows the association between influenza vaccination rates and SES as determined using the PCA method. Among HCPs, no relationship was identified between influenza vaccination rates and SES. However, there is a significant correlation between SES and vaccination rate among patients.

Table 3.

Association Between Influenza Vaccination and SESa

Socioeconomic StatusPatientsHCPs
Receiving Influenza VaccinationNot Receiving Influenza VaccinationReceiving Influenza VaccinationNot Receiving Influenza Vaccination
Poor60 (28.2)153 (71.8)19 (33.9)37 (66.1)
Moderate61 (39.4)94 (60.6)48 (43.3)63 (56.7)
Rich30 (47.6)33 (52.4)36 (48.6)38 (51.4)
P value0.0010.094

As shown in Table 4, logistic regression models were fitted in the patient and HCP groups. Influenza vaccination was the outcome variable. Age, SES, and participation in training on influenza vaccination were the independent variables.

Table 4.

Comparing the Multiple Logistic Regression Models in Both Groups

VariablesPatientsHCPs
OR (95% CI for OR)P ValueOR (95% CI for OR)P Value
Age1.03 (1.015 - 1.41)0.0001.05 (1.021 - 1.070)0.000
Training on influenza vaccination2.11 (1.241 - 3.582)0.0064.29 (2.390 - 7.690)0.000
SES (ref. group: Poor)0.0110.231
Rich2.70 (1.110 - 7.411)0.0052.94 (0.170 - 6.803)0.149
Moderate1.64 (0.312 - 1.202)0.1544.76 (0.105 - 8.219)0.091
Constant0.780.5090.130.000

Among HCPs, the odds of influenza vaccination increased by 5% with every year of age. The odds of influenza vaccination were twice as high among patients who had attended a training on the influenza vaccination as among those who had not; they were four times higher among HCPs who had attended such training. Furthermore, the odds of the influenza vaccination among wealthy patients were 2.7 times higher than poor patients. However, there was no significant association between income and vaccination among HCPs.

5. Discussion

Of the participants in the present study, around one-fifth of the patients and one-third of HCPs had received an influenza vaccination in the previous year. Patients with low SES were less likely to be vaccinated than those with a higher SES. Other factors, such as age and history of attending a training course on influenza vaccination, were associated with a higher rate of vaccine uptake in both groups (HCPs and patients). Overall, the highest OR of the influenza vaccination in both groups was among those who had attended a training course on the influenza vaccination.

This study also found that the rate of influenza vaccination was higher among HCPs than among patients. This finding is consistent with the results of studies in other parts of the world (6, 7, 19). However, only about one-third of the HCPs in this study had received vaccines. This suggests that the vaccination rate among HCPs in Iran does not comply with the recommendations of the WHO and the Ministry of Health; according to WHO recommendations, the vaccination of HCPs must be considered a priority in all countries (19). Although in a cross-sectional study on 144 health workers to assess their attitude and knowledge regarding the influenza vaccine, in Tehran, the coverage of the influenza vaccination in 2008 - 2009 was reported at 66.9%. The reason for the difference may be due to the greater availability of vaccine in the center of the country (20). Studies in other parts of the world have also found suboptimal influenza vaccination rates; according to three studies, the rate of influenza vaccinations among HCPs is 16.36% in Greece, 20.8% in Italy, and 33.9% in France (2, 21, 22). Some other countries have also reported a low rate of the influenza vaccination among HCPs (23-27). In contrast, one report found that 89.6% of HCPs working in US hospitals received the influenza vaccine in 2012 - 2013 (28).

The current study also found a suboptimal vaccination rate among at-risk patients, which is also in line with previous research. Other studies have reported patient vaccination rates of 17.3% in Italy and 33% in the US (10). A recent study in Iran found that influenza vaccination coverage was about 10%; however, the subjects of that study were chosen exclusively from among the elderly (16).

Razavy et al. also showed a rate of 10.7% influenza vaccine intakes in Iranian pilgrims (29). Due to the presence of pilgrims in high-risk groups, it is similar to the results of the present study.

According to a study that was conducted by Fazlollahi et al. the influenza vaccination was current in 103 (59.54%) pediatric asthmatic patients (30). Getting more vaccine in their samples may be due to the recruiting of patients from a national registration center.

Previous studies on the socioeconomic determinants of the influenza vaccination rates have found a range of results. Jones et al. found no association between immunization rates and the household income of the respondents (31). However, the current study found a significant relationship between SES and influenza vaccination rates among high-risk patients. This is consistent with the results of a study by Landi et al. which found that SES is significantly associated with vaccination rates. According to that global study, lower SES is associated with low influenza vaccination rates (32). Another study in Italy also found a correlation between low SES and lower rates of the influenza vaccination (14). In contrast, Shuangsheng Wu et al. in China (30), and Ryu et al. in South Korea (15), found that individuals with a lower SES are more likely to receive the influenza vaccine. A US study also reported a direct association between low SES and higher vaccination rates in individuals over 50 years old (31).

In the present study, no significant relationship was found between SES and influenza vaccination rates among HCPs. This lack of association may be due to hospital vaccination policies, due to the fact that many hospitals provide free vaccines to employees. This suggests that it is necessary to adopt a nationwide vaccination policy (33). Lee et al. found that the vaccination rate among eligible individuals nearly doubles when the vaccine is provided free of charge (34). In a recent study in Beijing, the implementation of a free vaccination policy led to a significant increase in vaccination rates (35).

In accordance with previous reports, this study also found that influenza vaccination rates increase with age (16, 31). This is due to the fact that older people are more likely to visit healthcare centers and receive more information and services; therefore, they are more likely to receive vaccines (30). Another reason for the higher rate of influenza immunization among the elderly is the presence of morbidity conditions in this age group. Some studies have found that influenza vaccination rates decrease in the absence of chronic medical conditions (15, 31, 36, 37). The current study also found that the influenza vaccination rate was significantly higher in subjects with at least one reported chronic medical condition.

Although many other studies have reported an association between higher education level and vaccination rates (38-41), this study found no correlation between educational level and influenza immunization. This finding is consistent with the results of the studies by Jones et al. (31), Sarria-Santamera and Timoner et al. (36), and Andrew et al. (37) The current study also found that attending a training course on influenza vaccination was associated with a higher vaccination rate.

In contrast to some other studies, this study did not find any correlation between influenza vaccination rates and basic insurance status in the studied group (41). However, a positive relationship was identified between complementary health insurance and vaccine uptake. In Iran, having complementary health insurance for outpatient services does not guarantee an influenza vaccination (42). This finding is consistent with the results of a recent study in Iran (16), which found an association between high insurance levels and access to preventive health care services as well as a better understanding of healthy lifestyles and, consequently, the importance of vaccination.

So far, few studies have examined the correlation between SES and influenza vaccination rates in high-risk individuals and HCPs. However, this study has several limitations. The first is one of the usual limitations of retrospective surveys, i.e., recall bias since it was based on self-reports. Second, this study included only a small sample of HCPs, which might have caused the lack of significant relationships between some variables and influenza vaccine uptake. Third, data was collected only from a small geographic area and not nationwide.

5.1. Conclusions

Low SES was associated with low vaccination rates in at-risk populations. Furthermore, higher vaccination rates were associated with attending a training course on influenza vaccination in both HCPs and high-risk individuals. No significant association was identified between vaccination rates and education levels.

Acknowledgements

References

  • 1.

    Trucchi C, Paganino C, Orsi A, De Florentiis D, Ansaldi F. Influenza vaccination in the elderly: Why are the overall benefits still hotly debated? J Prev Med Hyg. 2015;56(1):E37-43. [PubMed ID: 26789831]. [PubMed Central ID: PMC4718343].

  • 2.

    Vaux S, Van Cauteren D, Guthmann JP, Le Strat Y, Vaillant V, de Valk H, et al. Influenza vaccination coverage against seasonal and pandemic influenza and their determinants in France: A cross-sectional survey. BMC Public Health. 2011;11:30. [PubMed ID: 21226919]. [PubMed Central ID: PMC3025842]. https://doi.org/10.1186/1471-2458-11-30.

  • 3.

    Phonrat B, Pitisuttithum P, Chamnanchanunt S, Puthavathana P, Ngaosuwankul N, Louisirirotchanakul S, et al. Safety and immune responses following administration of H1N1 live attenuated influenza vaccine in Thais. Vaccine. 2013;31(11):1503-9. [PubMed ID: 23318149]. https://doi.org/10.1016/j.vaccine.2012.12.082.

  • 4.

    Lang PO, Mendes A, Socquet J, Assir N, Govind S, Aspinall R. Effectiveness of influenza vaccine in aging and older adults: Comprehensive analysis of the evidence. Clin Interv Aging. 2012;7:55-64. [PubMed ID: 22393283]. [PubMed Central ID: PMC3292388]. https://doi.org/10.2147/CIA.S25215.

  • 5.

    Pearson ML, Bridges CB, Harper SA, Healthcare Infection Control Practices Advisory C, Advisory Committee on Immunization P. Influenza vaccination of health-care personnel: Recommendations of the Healthcare Infection Control Practices Advisory Committee (HICPAC) and the Advisory Committee on Immunization Practices (ACIP). MMWR Recomm Rep. 2006;55(RR-2):1-16. [PubMed ID: 16498385].

  • 6.

    Bridges CB, Harper SA, Fukuda K, Uyeki TM, Cox NJ, Singleton JA, et al. Prevention and control of influenza. Recommendations of the Advisory Committee on Immunization Practices (ACIP). MMWR Recomm Rep. 2003;52(RR-8):1-34. quiz CE1-4. [PubMed ID: 12755288].

  • 7.

    Fiore AE, Shay DK, Broder K, Iskander JK, Uyeki TM, Mootrey G, et al. Prevention and control of influenza: Recommendations of the Advisory Committee on Immunization Practices (ACIP), 2008. MMWR Recomm Rep. 2008;57(RR-7):1-60. [PubMed ID: 18685555].

  • 8.

    Janati A, Hosseiny M, Gouya MM, Moradi G, Ghaderi E. Communicable disease reporting systems in the world: A systematic review article. Iran J Public Health. 2015;44(11):1453-65. [PubMed ID: 26744702]. [PubMed Central ID: PMC4703224].

  • 9.

    Bryant WK, Ompad DC, Sisco S, Blaney S, Glidden K, Phillips E, et al. Determinants of influenza vaccination in hard-to-reach urban populations. Prev Med. 2006;43(1):60-70. [PubMed ID: 16684559]. https://doi.org/10.1016/j.ypmed.2006.03.018.

  • 10.

    Schwartz KL, Neale AV, Northrup J, Monsur J, Patel DA, Tobar R Jr, et al. Racial similarities in response to standardized offer of influenza vaccination. A MetroNet study. J Gen Intern Med. 2006;21(4):346-51. [PubMed ID: 16686810]. [PubMed Central ID: PMC1484713]. https://doi.org/10.1111/j.1525-1497.2006.00401.x.

  • 11.

    Kee SY, Lee JS, Cheong HJ, Chun BC, Song JY, Choi WS, et al. Influenza vaccine coverage rates and perceptions on vaccination in South Korea. J Infect. 2007;55(3):273-81. [PubMed ID: 17602750]. https://doi.org/10.1016/j.jinf.2007.04.354.

  • 12.

    Bohmer MM, Walter D, Falkenhorst G, Muters S, Krause G, Wichmann O. Barriers to pandemic influenza vaccination and uptake of seasonal influenza vaccine in the post-pandemic season in Germany. BMC Public Health. 2012;12:938. [PubMed ID: 23113995]. [PubMed Central ID: PMC3527143]. https://doi.org/10.1186/1471-2458-12-938.

  • 13.

    Endrich MM, Blank PR, Szucs TD. Influenza vaccination uptake and socioeconomic determinants in 11 European countries. Vaccine. 2009;27(30):4018-24. [PubMed ID: 19389442]. https://doi.org/10.1016/j.vaccine.2009.04.029.

  • 14.

    Damiani G, Federico B, Visca M, Agostini F, Ricciardi W. The impact of socioeconomic level on influenza vaccination among Italian adults and elderly: A cross-sectional study. Prev Med. 2007;45(5):373-9. [PubMed ID: 17707499]. https://doi.org/10.1016/j.ypmed.2007.07.007.

  • 15.

    Ryu SY, Kim SH, Park HS, Park J. Influenza vaccination among adults 65 years or older: A 2009-2010 community health survey in the Honam region of Korea. Int J Environ Res Public Health. 2011;8(11):4197-206. [PubMed ID: 22163202]. [PubMed Central ID: PMC3228566]. https://doi.org/10.3390/ijerph8114197.

  • 16.

    Taheri Tanjani P, Babanejad M, Najafi F. Influenza vaccination uptake and its socioeconomic determinants in the older adult Iranian population: A national study. Am J Infect Control. 2015;43(5):e1-5. [PubMed ID: 25798776]. https://doi.org/10.1016/j.ajic.2015.02.001.

  • 17.

    Cortinovis I, Vella V, Ndiku J. Construction of a socio-economic index to facilitate analysis of health data in developing countries. Soc Sci Med. 1993;36(8):1087-97. [PubMed ID: 8475425]. https://doi.org/10.1016/0277-9536(93)90127-P.

  • 18.

    Wagstaff A, O'Donnell O, Van Doorslaer E, Lindelow M. Analyzing health equity using household survey data: A guide to techniques and their implementation. World Bank Publications; 2007.

  • 19.

    The Strategic Advisory Group of Experts (SAGE) on Immunization. WHO recommendations on pandemic (H1N1) 2009 vaccines. World Health Organization; 2009. Available from: http://www.who.int/csr/disease/swineflu/notes/h1n1_vaccine_20090713/en/.

  • 20.

    Khazaeipour Z, Ranjbarnovin N, Hoseini N. Influenza immunization rates, knowledge, attitudes and practices of health care workers in Iran. J Infect Dev Ctries. 2010;4(10):636-44. [PubMed ID: 21045356]. https://doi.org/10.3855/jidc.1152.

  • 21.

    Maltezou HC, Maragos A, Halharapi T, Karagiannis I, Karageorgou K, Remoudaki H, et al. Factors influencing influenza vaccination rates among healthcare workers in Greek hospitals. J Hosp Infect. 2007;66(2):156-9. [PubMed ID: 17482717]. https://doi.org/10.1016/j.jhin.2007.03.005.

  • 22.

    Barbadoro P, Marigliano A, Di Tondo E, Chiatti C, Di Stanislao F, D'Errico MM, et al. Determinants of influenza vaccination uptake among Italian healthcare workers. Hum Vaccin Immunother. 2013;9(4):911-6. [PubMed ID: 24064543]. [PubMed Central ID: PMC3903913]. https://doi.org/10.4161/hv.22997.

  • 23.

    Murray SB, Skull SA. Poor health care worker vaccination coverage and knowledge of vaccination recommendations in a tertiary Australia hospital. Aust N Z J Public Health. 2002;26(1):65-8. [PubMed ID: 11895030]. https://doi.org/10.1111/j.1467-842X.2002.tb00273.x.

  • 24.

    Smedley J, Palmer C, Baird J, Barker M. A survey of the delivery and uptake of influenza vaccine among health care workers. Occup Med (Lond). 2002;52(5):271-6. [PubMed ID: 12181376].

  • 25.

    Weingarten S, Riedinger M, Bolton LB, Miles P, Ault M. Barriers to influenza vaccine acceptance. A survey of physicians and nurses. Am J Infect Control. 1989;17(4):202-7. [PubMed ID: 2774292]. https://doi.org/10.1016/0196-6553(89)90129-6.

  • 26.

    Russell ML, Henderson EA. The measurement of influenza vaccine coverage among health care workers. Am J Infect Control. 2003;31(8):457-61. [PubMed ID: 14647106]. https://doi.org/10.1016/S0196-6553(03)00085-3.

  • 27.

    Russell DW, Cameron DJ, Lockey RF, Behnke RH, Sinnott JT, Ganguly R. Influenza vaccination acceptance among health care professionals. Vaccine. 1991;9(9):691-2. [PubMed ID: 1950102]. https://doi.org/10.1016/0264-410X(91)90206-L.

  • 28.

    Wu S, Yang P, Li H, Ma C, Zhang Y, Wang Q. Influenza vaccination coverage rates among adults before and after the 2009 influenza pandemic and the reasons for non-vaccination in Beijing, China: A cross-sectional study. BMC Public Health. 2013;13:636. [PubMed ID: 23835253]. [PubMed Central ID: PMC3708734]. https://doi.org/10.1186/1471-2458-13-636.

  • 29.

    Razavy S, Dabiran S, Ziaee Ardekani H. The incidence of influenza like illness and determination of the efficacy of flu vaccine in Iranian pilgrims during Hajj pilgrimage. Acta Med Iran. 2004;42(6):397-401.

  • 30.

    Fazlollahi MR, Shaabani A, Pourpak Z, Dashti R, Movahedi M, Gharagozlou M, et al. Environmental and occupational respiratory diseases – 1038. Efficacy of influenza vaccination on pediatric asthma control. World Allergy Organ J. 2013;6(S1):P37. https://doi.org/10.1186/1939-4551-6-s1-p37.

  • 31.

    Jones TF, Ingram LA, Craig AS, Schaffner W. Determinants of influenza vaccination, 2003-2004: shortages, fallacies and disparities. Clin Infect Dis. 2004;39(12):1824-8. [PubMed ID: 15578406]. https://doi.org/10.1086/427153.

  • 32.

    Landi F, Onder G, Carpenter I, Garms-Homolova V, Bernabei R. Prevalence and predictors of influenza vaccination among frail, community-living elderly patients: An international observational study. Vaccine. 2005;23(30):3896-901. [PubMed ID: 15917110]. https://doi.org/10.1016/j.vaccine.2005.03.008.

  • 33.

    Lee KC, Han K, Kim JY, Nam GE, Han BD, Shin KE, et al. Socioeconomic status and other related factors of seasonal influenza vaccination in the South Korean adult population based on a nationwide cross-sectional study. PLoS One. 2015;10(2). e0117305. [PubMed ID: 25646847]. [PubMed Central ID: PMC4315610]. https://doi.org/10.1371/journal.pone.0117305.

  • 34.

    Lee YK, Kwon Y, Kim DW, Song KM, Cho H, Kim CH, et al. 2009-2010 novel influenza A (H1N1) vaccination coverage in the Republic of Korea. Am J Infect Control. 2012;40(5):481-3. [PubMed ID: 21868134]. https://doi.org/10.1016/j.ajic.2011.05.015.

  • 35.

    Higashi T, Wenger NS, Adams JL, Fung C, Roland M, McGlynn EA, et al. Relationship between number of medical conditions and quality of care. N Engl J Med. 2007;356(24):2496-504. [PubMed ID: 17568030]. https://doi.org/10.1056/NEJMsa066253.

  • 36.

    Sarria-Santamera A, Timoner J. Influenza vaccination in old adults in Spain. Eur J Public Health. 2003;13(2):133-7. [PubMed ID: 12803411]. https://doi.org/10.1093/eurpub/13.2.133.

  • 37.

    Andrew MK, McNeil S, Merry H, Rockwood K. Rates of influenza vaccination in older adults and factors associated with vaccine use: A secondary analysis of the Canadian Study of Health and Aging. BMC Public Health. 2004;4:36. [PubMed ID: 15306030]. [PubMed Central ID: PMC514709]. https://doi.org/10.1186/1471-2458-4-36.

  • 38.

    Link MW, Ahluwalia IB, Euler GL, Bridges CB, Chu SY, Wortley PM. Racial and ethnic disparities in influenza vaccination coverage among adults during the 2004-2005 season. Am J Epidemiol. 2006;163(6):571-8. [PubMed ID: 16443801]. https://doi.org/10.1093/aje/kwj086.

  • 39.

    Christenson B, Lundbergh P. Comparison between cohorts vaccinated and unvaccinated against influenza and pneumococcal infection. Epidemiol Infect. 2002;129(3):515-24. [PubMed ID: 12558334]. [PubMed Central ID: PMC2869913]. https://doi.org/10.1017/S095026880200780X.

  • 40.

    Petersen RL, Saag K, Wallace RB, Doebbeling BN. Influenza and pneumococcal vaccine receipt in older persons with chronic disease: A population-based study. Med Care. 1999;37(5):502-9. [PubMed ID: 10335752]. https://doi.org/10.1097/00005650-199905000-00009.

  • 41.

    Gu Q, Sood N. Do people taking flu vaccines need them the most? PLoS One. 2011;6(12). e26347. [PubMed ID: 22164202]. [PubMed Central ID: PMC3229476]. https://doi.org/10.1371/journal.pone.0026347.

  • 42.

    Borhani-Haghighi A, Safari R, Heydari ST, Soleimani F, Sharifian M, Yektaparast Kashkuli S, et al. Hospital mortality associated with stroke in southern Iran. Iran J Med Sci. 2013;38(4):314-20. [PubMed ID: 24293785]. [PubMed Central ID: PMC3838983].