Literature DB >> 27610329

Epidemiological and cost analysis of burn injuries admitted to the emergency department of a tertiary burn center.

Tolga Eser1, Cemil Kavalci1, Cem Aydogan2, Afsin Emre Kayipmaz1.   

Abstract

BACKGROUND: Burn injury is an emergency medical condition that rapidly develops as a result of tissue exposure to electrical, chemical or thermal energy. Therefore, its treatment usually begins at the emergency department. In this study we aimed to perform an epidemiological analysis of burn injuries presenting to the emergency department of a tertiary burn center, and factors affecting the cost of their medical care.
METHODS: Patients who presented to Baskent University Ankara Hospital Adult Emergency Department with burn injuries between January 2012 and December 2014 were studied for age, sex, time of admission, type of burn injury, clinical prognosis, mortality rate, percent burn area, and total cost of care. A total of 264 patients were enrolled. Chi square test was used for the comparison of categorical variables. Non-parametric tests were used for the comparison of continuous variables.
RESULTS: This study included 179 (67.8 %) women and 85 (32.2 %) men. The most common types of burn injuries were hot water burns and scalding. Eleven point seven percent of the patients sustained burn injuries in occupational accidents. 95.1 % of the patients were discharged from the emergency and 4.5 % of them were hospitalized. Only 1 (0.4 %) patient died. There was no significant difference between patient outcomes (discharge vs. hospital admission) with respect to the cost of care (p = 0.846) No significant difference was found between the cost of care of surgical and non-surgical management of burn injuries (p = 0.206). No significant difference was found between the costs of care of different types of burn injuries (p = 0.053). There was a significant difference between burn degrees with respect to the cost of care (p = 0.038). A significant difference was found between the costs of care of patients with a percent burn area of less than 10 % and those with a percent burn area of more than 10 % (p < 0.001), indicating that as percent burn area increased, a proportional increase occurred in the cost of care.
CONCLUSIONS: Burn degree and percent burn area were the main determinants of the cost of care of burn injuries. In conclusion, burn injuries are preventable by taking occupational measures and raising public awareness about domestic accidents.

Entities:  

Keywords:  Burns; Cost analysis; Emergency treatment; Epidemiology

Year:  2016        PMID: 27610329      PMCID: PMC4996807          DOI: 10.1186/s40064-016-3107-3

Source DB:  PubMed          Journal:  Springerplus        ISSN: 2193-1801


Background

Burn injury is an emergency medical condition that rapidly develops as a result of tissue exposure to electrical, chemical or thermal energy. Therefore, its treatment usually begins at the emergency department. Since a significant proportion of patients affected by burn injury are admitted to the emergency department immediately after the incident, healthcare staff working in the emergency department should have a good command of these cases (Alharbi et al. 2012). After providing first medical aid at the emergency department, it is imperative that multiple departments, particularly general surgery and plastic surgery, cooperate for the management of burn injuries (Ilhan et al. 2012). A major proportion of patients with burn injuries are discharged from the emergency department once outpatient treatment and follow-up is scheduled (Yolcu et al. 2013). When hospital admissions are taken into account, however, burn injuries are a significant source of mortality and morbidity (Sever et al. 2011). Furthermore, demanding medical care of these patients gives rise to the high cost of care depending on burn percentage, degree, as well as the duration of hospital stay (Hazar et al. 2013). Hence, taking preventive measures to avoid these injuries is the key to success for their management. Emergency physicians who assume a critical role in the management of burn injuries should necessarily have knowledge of the most common types of burn injuries and their cost of care in the emergency department. In this study we aimed to perform an epidemiological analysis of burn injuries presenting to the emergency department of a tertiary burn center, and factors affecting the cost of their medical care.

Methods

This retrospective descriptive study was conducted after being approved by Baskent University Faculty of Medicine Ethics Committee (Project No: KA14/282 Date of Approval: 15.10.2014). Patients who presented to Baskent University Ankara Hospital Adult Emergency Department with burn injuries between January 2012 and December 2014 were studied for age, sex, time of admission, type of burn injury, clinical prognosis, mortality rate, percent burn area, and total cost of care. A total of 264 patients were enrolled. Hospital automation system was used to access patients’ medical data including age; sex; hour, month, and year of admission; cause and type of burn injury; occupational and suicidal nature of burn injury; burn degree; percent burn area; surgical intervention if performed; indications for admission according to the rule of nines; post-treatment clinical status, regular attendance to follow-up visits; and cost of care denominated in Euro (€). The sum for treatment cost has been obtained by adding up the invoice amounts of the inpatients and all the check-ins to the emergency department and burns outpatient department. International Classification of Diseases (ICD) diagnostic codes T30, T31, and T32 were used to determine and record burn injuries. Statistical analyses were done with “SPSS 17.0 for Windows” software package. Chi-square test was used for the comparison of categorical variables. The distribution of continuous variables was assessed with the Kolmogorov–Smirnov test. Non-parametric tests were used for the comparison of continuous variables. The correlation between various variables and cost of care was analyzed with the Spearman’s correlation test. A p value of less than 0.05 was considered statistically significant.

Results

This study included 179 (67.8 %) women and 85 (32.2 %) men. Thirty-four (12.9 %) patients were admitted to emergency department between 00:00 and 06:00; 15 (5.7 %) between 06:00 and 12:00; 74 (28 %) between 12:00 and 18:00; and 141 (53.4 %) between 18:00 and 24:00. The monthly distribution of the emergency department admissions for burn injuries was shown in Table 1. Accordingly, patients suffering from burns check into emergency department most frequently between 18:00 and 24:00 and in June.
Table 1

Monthly distribution of admissions for burn injuries

MonthNumber (n)Percentage (%)
January249.1
February259.5
March238.7
April197.2
May2810.6
June3814.4
July3212.1
August207.6
September145.3
October134.9
November186.8
December103.8
Total264100.0
Monthly distribution of admissions for burn injuries Seventy-seven (29.2 %) patients were admitted in 2012; 126 (47.7 %) in 2013; and 61 (23.1 %) in 2014. One hundred and ninety-five (73.9 %) patients were admitted for hot water burns-scalding; 25 (9.5 %) for flame burns; 24 (9.1 %) for hot contact burns; 18 (6.8 %) for chemical and 2 (0.8 %) for electric burns. The most common types of burn injuries were hot water burns and scalding. Thirty-one (11.7 %) patients sustained burn injuries in occupational accidents and 233 (88.3 %) in non-occupational accidents. There was no suicidal burn injury in our study. Two hundred and fifty-one (95.1 %) patients were discharged from the emergency department and 12 (4.5 %) were hospitalized. Only 1 (0.4 %) patient died. 70.8 % of the patients involved (n = 187) are found to have attended to outpatient clinic controls, and 28.8 % have not. There was no significant difference between patient outcomes (discharge vs. hospital admission) with respect to the cost of care (p = 0.846) (Table 2).
Table 2

Comparison of cost of care by patient outcome

OutcomeNumber of patientsMedian (€)IQR p value
Discharge25125.1421.840.846*
Hospital admission1226.1031.58

IQR inter-quartile range

* Mann–Whitney-U test

Comparison of cost of care by patient outcome IQR inter-quartile range * Mann–Whitney-U test It was found that there was no statistically significant difference between the gender-based groups (p = 0.079) (Table 3).
Table 3

Comparison of gender-based groups in terms of costs

GenderNumber of patientsMedian (€)IQR p value
Female17924.2219.260.079*
Male8527.7728.96

IQR inter-quartile range

* Mann–Whitney-U test

Comparison of gender-based groups in terms of costs IQR inter-quartile range * Mann–Whitney-U test It was found that there was no statistically significant difference between the patients who were older versus younger than 50 (p = 0.593) (Table 4).
Table 4

Comparison of age-based groups in terms of costs

AgeNumber of patientsMedian (€)IQR p value
<5021425.2520.710.593
≥505026.1626.99
Comparison of age-based groups in terms of costs There was a significant difference between the years of admission with respect to the cost of care (p < 0.001). Based on the annual analysis, the highest cost of care was incurred in 2012 and the lowest in 2014 (Table 5).
Table 5

Comparison of the cost of burn care in different years of admission

Year of admissionNumber of patientsMedian (€)IQR p value
20127730.2927.50<0.001*
201312626.2420.44
20146117.5010.49

IQR inter-quartile range

* Kruskal–Wallis test

Comparison of the cost of burn care in different years of admission IQR inter-quartile range * Kruskal–Wallis test No significant difference was found between the cost of care of surgical and non-surgical management of burn injuries (p = 0.206) (Table 6).
Table 6

Comparison of costs of care of surgical versus non-surgical management of burn injuries

Surgical interventionNumber of patientsMedian (€)IQRMinMax p value
Not performed25825.0921.615.96190.930.206*
Performed648.29254.239.60475.52

IQR inter-quartile range, min minimum, max maximum

* Mann–Whitney-U test

Comparison of costs of care of surgical versus non-surgical management of burn injuries IQR inter-quartile range, min minimum, max maximum * Mann–Whitney-U test No significant difference was found between the costs of care of different types of burn injuries (p = 0.053) (Table 7).
Table 7

Comparison of the costs of care of different types of burn injury

Cause of burn injuryNumber of patientsMedian (€)IQR p value
Hot water-scalding19525.9621.270.053*
Flame2529.0573.05
Contact with hot2418.3713.43
Chemical1818.6024.92
Electric223.74

IQR inter-quartile range

* Kruskal–Wallis test

Comparison of the costs of care of different types of burn injury IQR inter-quartile range * Kruskal–Wallis test There was a significant difference between burn degrees with respect to the cost of care (p = 0.038). The second degree burns incurred the highest cost of care while the third degree burns led to the lowest cost of care (Table 8).
Table 8

Comparison of treatment costs by burn degree

Burn degreeNumber of patientsMedian (€)IQR p value
1. Degree4923.2916.210.038*
2. Degree20826.2424.28
3. Degree714.704.63

* Kruskal–Wallis test

IQR inter-quartile range

Comparison of treatment costs by burn degree * Kruskal–Wallis test IQR inter-quartile range A significant difference was found between the costs of care of patients with a percent burn area of less than 10 % and those with a percent burn area of more than 10 % (p = 0.001), indicating that as percent burn area increased, a proportional increase occurred in the cost of care (Table 9).
Table 9

Comparison of cost of care by percent burn area

Percent burn areaNumber of patientsMedian (€)IQR p value
Percent burn area < %1025024.9320.17<0.001*
Percent burn area ≥ %101475.0075.54

IQR inter-quartile range

* Mann–Whitney-U test

Comparison of cost of care by percent burn area IQR inter-quartile range * Mann–Whitney-U test There was a significant positive correlation between age and treatment cost (r = 0.184, p = 0.003), and also between percent burn area and treatment cost (r = 0.804, p < 0.001). According to the descriptive statistics table, it was found that those who have 2.degree burns belong to the highest age group and those who have 3.degree burns belong to the lowest age group (Table 10).
Table 10

Age of the patients versus burn degree

Median (year)IQR
1. Degree29.0019.00
2. Degree35.0023.00
3. Degree30.0011.00
Age of the patients versus burn degree According to the descriptive statistics table, the most frequent reason of burns for the older age group is flame burnt while the most frequent reason for young age groups is contacted with hot objects (Table 11).
Table 11

Patient age versus reason of burns

Cause of burn injuryMedian (year)IQR
Hot water-scalding32.0022.00
Flame37.0021.00
Contact with hot26.5025.00
Chemical31.0013.00
Electric31.50
Patient age versus reason of burns Of the patients, those who were applied surgical intervention were older than those who were not applied surgical intervention (Table 12).
Table 12

Patient age versus surgical intervention

Surgical interventionMedian (year)IQR
Not performed32.5021.00
Performed38.0038.00
Patient age versus surgical intervention Hospitalized patients are of higher age group while those who were discharged from hospital were the lowest (Table 13).
Table 13

Age of patient versus clinical outcome

Median (year)IQR
Discharge32.0021.00
Hospital admission37.0028.00
Age of patient versus clinical outcome

Discussion

According to our study, there is no statistically significant difference between the patients’ discharged from the hospital versus hospitalized statuses in terms of costs (p = 0.846). We consider that the reason for above concern is that the cost analysis figures were including the costs arising from patients’ subsequent applications to burns outpatient department. Accordingly, we think that outpatient treatment versus inpatient treatment does not make a difference in terms of treatment costs. And despite the apparently higher costs of the patients who were applied surgical intervention; our statistical analysis has shown that there was no significant difference between the two groups (p = 0.206). Considering the variables such as the need for general anesthesia, the materials used, the necessity of multidisciplinary approach we expect the cost of the patients who are subject to surgical intervention, be higher. As a result of our study, we observed no significant difference between the cost versus the reason of the burns (p = 0.053). However, it is observed that the burns which occur due to flame exposure result in remarkably higher costs. No statistically significant data has been observed between patient age versus cost (p = 0.593). There is a statistically significant difference between the degree of the burn versus cost (respectively p < 0.001 and p = 0.038). This means that the cost is determined by the burnt area and its degree rather than the patient’s age. Our study revealed that, among burn survivors admitted to our emergency department, female burn survivors were 2.1 times more common than male burn survivors. This was in contrast to a study by Saritas et al. (2011), which reported that 65 % of burn survivors who were admitted to the emergency department were male. We believe that more female survivors were admitted in our series due to the proximity of our hospital to residential areas and small-sized workplaces and its remoteness to industrial areas. The median age of our study population was 33 years. Kowal-Vern et al. (2014) similarly reported a median age of 30 years for burn injury survivors. We think that the reason for young adults suffering from burns is observed more frequently is because these individuals are more active at home and at work. Young adults are more open to traumas and therefore the burns due to their motor-vehicle use, alcohol consumption and that they can work under heavy-duty labor requirements. The most frequent time period for admissions was between 18:00 and 00:00 (54.4 %). DeKoning et al. (2009) also reported that admissions for burn injuries most commonly took place between 18:00 and 19:00. We considered that spending more time in low-safety, uncontrolled places and at kitchen during this period caused an increase in the burn injuries. In our study, the most common types of burn injury were, in descending order of frequency, hot water burns-scalding, flame burns, and burns by contact with hot substances/surfaces. This finding was in agreement with that reported by Kowal-Vern et al. (2014). However, Avsarogullari et al. (2003) and Ahn and Maitz (2012) reported that flame burns were the most common types of burn injury followed by scalding. The study of Avsarogullari et al. (2003), as it can be seen in our study, consists of burn patients who check into the emergency department. As for Ahn and Maitz’s (2012) study, it did not consist of emergency service patients but inpatients of the burns unit. This can be one of the authentic properties of our study among other studies within the literature. Our finding may be a reflection of our hospital’s proximity to residential areas and small-sized workplaces. As the majority of our cases were minor burn injuries, the median percent burn area was only 2 %. In the literature, percent burn area has been variably reported (Kowal-Vern et al. 2014; Avsarogullari et al. 2003; Aksoy et al. 2014; Sahin et al. 2011). This suggests that in our patients burn injuries may have occurred in different ways at home, workplace, or many other different settings, and thus the range of burn degrees may have been diverse. Our study demonstrated that second-degree burns were the most common burn degree (78.78 %), a finding that was similarly reported by many other studies (DeKoning et al. 2009; Avsarogullari et al. 2003; Burton et al. 2009). Although it may show variability by different causes of burn injury, it is possible that the second-degree burn injuries were more common in patients with flame or scalding burn injuries. According to our results, 11.7 % of burn injuries occurred in occupational accidents. Karami Matin et al. (2012) reported that occupational burn injuries constituted 28.5 % of their cases. This finding suggests that recent national measures taken for occupational health and safety have raised workers’ awareness about burn injuries and transformed workplaces to safer environments. In our study we found that surgical treatment was used in 2.3 % patients with burn injuries. This low number possibly resulted from the mildness of burn injuries in our patients. Similar to what Sahin et al. (2011) reported, we found that cost of care was not significantly different between various causes of burn injuries. We determined that flame burns were associated with higher cost of care, as Karami Matin et al. (2012) reported. The cost of care of burn injuries with a percent burn area of less than 10 % was lower than that of burn injuries occupying more than 10 % of body surface area. This suggests that cost of care is affected by percent burn area. Ahn and Maitz (2012) also demonstrated that an increase in percent burn area was the primary factor leading to a proportional increase in cost of care. In patients with a greater percent burn area, hospitalization may be prolonged and complications may develop. Furthermore, increased use of workforce and medical materials lead to increased cost of care (Ahn and Maitz 2012). We found a significant difference between burn degrees with regard to the cost of care. Burn degree and depth are similarly known to affect patient prognosis. In our study, the cost of care of second-degree burns was greater than third degree burns. Follow-up appointments of second-degree burn injuries are recommended to be spaced more closely to avoid complications. This probably led to a higher cost by increasing the number of procedures performed and medical equipment used at each visit, increasing overall cost in our study. We failed to detect any significant difference between the cost of care of patients managed surgically versus non-surgically (p = 0.206). Jansen et al. (2012), however, reported that early surgery allowed cost saving by decreasing the duration of hospital stay.

Conclusions

The proximity to our hospital to residential areas and small-sized workplaces led to a greater percentage of hot water-scalding injuries that presented to our emergency department. Burn degree and percent burn area were the main determinants of the cost of care of burn injuries. In conclusion, burn injuries are preventable by taking occupational measures and raising public awareness about domestic accidents.
  10 in total

1.  Epidemiology of burn injuries presenting to North Carolina emergency departments in 2006-2007.

Authors:  Elisha P DeKoning; Anne Hakenewerth; Timothy F Platts-Mills; Judith E Tintinalli
Journal:  Burns       Date:  2009-05-30       Impact factor: 2.744

Review 2.  Demographic Comparison of Burn Emergency Only Visits and Admissions in an Urban Burn Center.

Authors:  Areta Kowal-Vern; Faran Bokhari; Stathis Poulakidas
Journal:  J Burn Care Res       Date:  2016 May-Jun       Impact factor: 1.845

3.  Cost analysis of acute burn patients treated in a burn centre: the Gulhane experience.

Authors:  I Sahin; S Ozturk; D Alhan; C Açikel; S Isik
Journal:  Ann Burns Fire Disasters       Date:  2011-03-31

4.  A population-based study of the epidemiology of acute adult burn injuries in the Calgary Health Region and factors associated with mortality and hospital length of stay from 1995 to 2004.

Authors:  Kirsteen R Burton; Vishal K Sharma; Robertson Harrop; Robert Lindsay
Journal:  Burns       Date:  2009-02-08       Impact factor: 2.744

5.  Epidemiological data, outcome, and costs of burn patients in Kermanshah.

Authors:  B Karami Matin; R Karami Matin; T Ahmadi Joybari; N Ghahvehei; M Haghi; M Ahmadi; S Rezaei
Journal:  Ann Burns Fire Disasters       Date:  2012-12-31

6.  Reduced length of stay in hospital for burn patients following a change in practice guidelines: financial implications.

Authors:  Leigh A Jansen; Sally L Hynes; Sheina A Macadam; Anthony Papp
Journal:  J Burn Care Res       Date:  2012 Nov-Dec       Impact factor: 1.845

7.  Adult burn injuries in an Emergency Department in Central Anatolia, Turkey: a 5-year analysis.

Authors:  Levent Avşaroğullari; Erdoğan Sözüer; Ibrahim Ikizceli; Zeynep Kekeç; Yusuf Yürümez; Seda Ozkan
Journal:  Burns       Date:  2003-09       Impact factor: 2.744

8.  The true cost of burn.

Authors:  Chris S Ahn; Peter K M Maitz
Journal:  Burns       Date:  2012-07-13       Impact factor: 2.744

9.  Treatment of burns in the first 24 hours: simple and practical guide by answering 10 questions in a step-by-step form.

Authors:  Ziyad Alharbi; Andrzej Piatkowski; Rolf Dembinski; Sven Reckort; Gerrit Grieb; Jens Kauczok; Norbert Pallua
Journal:  World J Emerg Surg       Date:  2012-05-14       Impact factor: 5.469

10.  A Retrospective Analysis of the Burn Injury Patients Records in the Emergency Department, an Epidemiologic Study.

Authors:  Nilgün Aksoy; Senay Arli; Ozlem Yigit
Journal:  Emerg (Tehran)       Date:  2014
  10 in total
  6 in total

1.  Burn Injury-Associated MHCII+ Immune Cell Accumulation Around Lymphatic Vessels of the Mesentery and Increased Lymphatic Endothelial Permeability Are Blocked by Doxycycline Treatment.

Authors:  Walter E Cromer; Scott D Zawieja; Karen M Doersch; Hayden Stagg; Felicia Hunter; Binu Tharakan; Ed Childs; David C Zawieja
Journal:  Lymphat Res Biol       Date:  2018-01-23       Impact factor: 2.589

Review 2.  Burns in the Elderly: Potential Role of Stem Cells.

Authors:  Margarita Elloso; Ankita Kambli; Ayesha Aijaz; Alex van de Kamp; Mark G Jeschke
Journal:  Int J Mol Sci       Date:  2020-06-29       Impact factor: 5.923

3.  Epidemiological Characteristics and Disease Burden of Burns in Children in Northern Guizhou, China.

Authors:  Tao Wang; Chan Nie; Hong Zhang; Xue-Qin Zeng; Hui-Ting Yu; Shang-Peng Shi; Zai-Rong Wei; Xiu-Quan Shi
Journal:  Chin Med J (Engl)       Date:  2018-09-05       Impact factor: 2.628

4.  Cost-effectiveness and value of information analysis of a low-friction environment following skin graft in patients with burn injury.

Authors:  Rebecca Kandiyali; Howard Thom; Amber E Young; Rosemary Greenwood; Nicky J Welton
Journal:  Pilot Feasibility Stud       Date:  2020-01-31

5.  The Epidemiology of Chemical Burns Among the Patients Referred to Burn Centers in Shiraz, Southern Iran, 2008-2018.

Authors:  Hosein Abbasi; Ali Dehghani; Ali Akbar Mohammadi; Tayyeb Ghadimi; Abdolkhalegh Keshavarzi
Journal:  Bull Emerg Trauma       Date:  2021-10

Review 6.  The Costs of Burn Victim Hospital Care around the World: A Systematic Review.

Authors:  Pamela Alejandra Escalante Saavedra; Jessica Vick De Oliveira Leal; Camila Alves Areda; Dayani Galato
Journal:  Iran J Public Health       Date:  2021-05       Impact factor: 1.429

  6 in total

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