Epidemiological and Clinical Determinants of Acute Respiratory Infections among Children Aged 0 - 14 Years in Kamina Health District, Democratic Republic of Congo ()
1. Introduction
Acute respiratory infections (ARIs) remain a leading cause of morbidity and healthcare utilization among children worldwide, particularly in low- and middle-income countries (LMICs) where they contribute substantially to outpatient visits, hospitalizations, and preventable deaths [1] [2]. Despite global progress in child survival, ARIs continue to impose a disproportionate burden in sub-Saharan Africa, driven by persistent environmental and socio-economic risk factors.
While most epidemiological studies and surveillance systems focus on children under five years of age, school-aged children remain an important but underrecognized reservoir of respiratory morbidity and transmission [3]. This population is frequently exposed to overcrowded living conditions, indoor air pollution, and behavioral risk factors that sustain infection dynamics within households and communities [1] [4]. However, data on ARI epidemiology in children aged 5 - 14 years remain limited in many African settings, including the Democratic Republic of Congo.
In addition, the use of simple functional respiratory assessment tools, such as peak expiratory flow (PEF), has been widely documented in chronic respiratory diseases but remains insufficiently explored in the context of acute respiratory infections in children. Understanding whether such tools can contribute to community-based screening strategies is particularly relevant in resource-limited settings where access to advanced diagnostics is constrained.
2. Methods
2.1. Study Design
A community-based cross-sectional study was conducted.
2.2. Study Framework
The study was carried out in the Kamina health District, Haut-Lomami province, Democratic Republic of Congo.
Study population:
The sample size was calculated using a single population proportion formula, assuming an expected ARI prevalence of 50% to maximize sample size in the absence of precise local estimates. A 95% confidence level and a margin of error of 5% were applied.
The initial sample size was calculated as follows:
where:
Z = 1.96 (standard normal value for 95% confidence level);
p = 0.5 (assumed prevalence);
d = 0.05 (margin of error).
This yielded a minimum sample size of 384 children. No design effect adjustment was applied, given the relatively simple sampling design. The final sample size was maintained at 384 participants.
Children aged 0 - 14 years residing in the study area were eligible. A total of 384 children were included.
Data collection:
Data were collected using a structured, pre-tested questionnaire administered to caregivers of eligible children by trained field investigators. The questionnaire was developed based on standard survey tools used in respiratory epidemiology and adapted to the local context. Prior to data collection, data collectors received comprehensive training on study procedures, interview techniques, and measurement protocols to ensure consistency and data quality.
The questionnaire captured the following domains: Socio-demographic characteristics, Clinical symptoms of ARI, Environmental exposures Nutritional status, Vaccination history, Healthcare-seeking behavior, Anthropometric and Functional Measurements, Quality Control.
To ensure data quality:
The questionnaire was pre-tested in a similar population:
1) Daily supervision and verification of collected data were conducted.
2) Data entry included consistency checks and validation procedures.
Statistical analysis:
Data were entered, cleaned, and analyzed using appropriate statistical software Stata version 17, SPSS version 27, and R version 4.3. Prior to analysis, rigorous data quality checks were performed, including verification of data completeness, consistency checks, and identification of outliers and implausible values. Range and logic checks were applied to ensure internal consistency across variables.
Ethical Considerations:
This paper has been approved by the ethics committee of the University of Lubumbashi and the authors have declared no conflict of interest.
3. Results
Table 1. Distribution of respondents according to the socio-demographic characteristics of parents and children.
Variables |
Frequency |
Percentage |
Sex |
|
|
Female |
180 |
46.9 |
Male |
204 |
53.1 |
Parents’ education level |
|
|
None |
63 |
16.4 |
Primary |
105 |
27.3 |
Secondary |
164 |
42.7 |
Higher education |
52 |
13.5 |
Mother’s main occupation |
|
|
Farmer |
122 |
31.8 |
Shopkeeper |
106 |
27.6 |
Seamstress |
15 |
3.9 |
Teacher |
64 |
16.7 |
Civil servant |
15 |
3.9 |
Nurse |
7 |
1.8 |
Homemaker |
55 |
14.3 |
Parents’ marital status |
|
|
Single |
2 |
0.5 |
Married |
313 |
81.5 |
Separated |
55 |
14.3 |
Widowed |
14 |
3.6 |
Children age |
|
|
Continued
<5 ans |
112 |
29.2 |
5 - 9 ans |
156 |
40.6 |
≥10 ans |
116 |
30.2 |
Total |
384 |
100 |
A total of 384 children aged 0 - 14 years were included (mean age: 8.2 ± 3.9 years).
In 53.1% of cases, the parents were male, married (81.5%), farmers (Mothers) (31.8%), and had a secondary education (42.7%). Most children were between 5 and 9 years (40.6%) (See Table 1).
Table 2. Prevalence of acute respiratory infections among children.
Variables |
Frequency |
Percentage |
ARI |
N = 384 |
|
Yes |
338 |
88.0 |
No |
46 |
12.0 |
Age |
|
|
<5 ans |
106 |
94.6 |
5 - 9 ans |
136 |
87.2 |
≥10 ans |
96 |
82.8 |
Frequent symptoms |
N = 338 |
|
Cough |
308 |
91 |
Rhinorrhea |
264 |
78 |
Fever |
213 |
63 |
Rapide breathing |
95 |
28 |
The prevalence of acute respiratory infections is 88%, and children under 5 years of age are the most affected (94.6%), while cough is the most common symptom (91%) (See Table 2).
Table 3. Distribution of respondents according to health area.
Area |
Frequence |
Percentage |
Most represented areas |
161 |
41.9 |
Areas with moderate representation |
124 |
32.3 |
Areas with low representation |
99 |
25.8 |
Total |
384 |
100 |
Most represented areas: Q. 52, Congo, Q. Katuba 2, Q. Katuba 4 (28.9%).
Areas with moderate representation: Q. 53, Q. base, Q. Katuba 3, Q.14, Kinkuki, Q. Katuba 1, Kiabukwa, Q. 82 (46.1%) (See Table 3).
Areas with low representation: Mwitobwe, Rva, CU, Cinquantenaire, SNCC, Alliance: (25%).
Table 4. Household characteristics (size, income and type of housing).
Variables |
Terms and conditions (Modality) |
Frequency |
Percentage |
Number of children in the household |
1 - 3 children |
97 |
25.3 |
4 - 6 children |
191 |
49.7 |
7 - 9 children |
76 |
19.8 |
10 or more children |
20 |
5.2 |
Monthly household income |
Low (< 50.000) |
68 |
17.7 |
Medium (50.000 - 100.000) |
166 |
43.2 |
High (100.001 - 300.000) |
106 |
27.6 |
Very high (> 300.000) |
44 |
11.5 |
Type of accommodation |
Moderne |
244 |
63.5 |
Traditionnel |
140 |
36.5 |
Number of people in the household |
2 - 4 peoples |
58 |
15.1 |
5 - 7 peoples |
172 |
44.8 |
8 - 10 peoples |
120 |
31.3 |
11 peoples and more |
34 |
8.9 |
Total |
384 |
100 |
The distribution of respondents according to household characteristics highlights important trends related to family size, income level, and housing conditions.
Households with between 4 and 6 children were the majority (49.7%), the average monthly income was medium (43.2%), households living in types of accommodation considered modern (63.5%), and households with between 5 and 7 people (44.8%) (See Table 4).
Table 5. Epidemiological profile and clinical manifestations of acute respiratory infections in children.
Variable |
Frequency |
Percentage |
IRA in the last 14 days |
|
|
Yes |
338 |
88 |
No |
46 |
12 |
Current presence of signs of ARI |
|
|
Yes |
253 |
65.9 |
No |
131 |
34.1 |
Continued
History of IRA |
|
|
Yes |
231 |
60.2 |
No |
153 |
39.8 |
Number of ARI episodes (last 12 months) |
|
|
1 episode |
29 |
12.6 |
2 episodes |
142 |
61.5 |
3 or more episodes |
60 |
25.9 |
No |
99 |
25.8 |
Persistent cough |
|
|
Yes |
285 |
74.2 |
No |
99 |
25.8 |
Number of cough episodes (last 6 months) |
|
|
1 épisode |
32 |
11.2 |
2 épisodes |
145 |
50.9 |
3 épisodes et plus |
108 |
37.9 |
Presence of fever |
|
|
Yes |
273 |
71.1 |
No |
111 |
28.9 |
Total |
384 |
100 |
Indeed, 88.0% of children experienced an episode of acute respiratory infection in the past 14 days; 65.9% of children still presented with signs of infection at the time of the survey; 60.2% of children had previously suffered from an acute respiratory infection, confirming the recurrent nature of this illness. Most children experienced two episodes in the past 12 months (61.5%), while 25.9% experienced three or more episodes, reflecting repeated exposure to risk factors (See Table 5).
A persistent cough appears to be a frequent symptom, affecting 74.2% of children. Among them, more than half (50.9%) experienced two episodes of cough in the past six months, and 37.9% experienced three or more episodes. Fever was observed in 71.1% of children during these episodes, highlighting the potential severity of acute respiratory infections in this population.
Table 6. Clinical characteristics and vaccination of children with acute respiratory infection.
Variables |
Frequency |
Percentage |
Main symptoms |
|
|
Cough + Difficulty breathing + Fever |
339 |
88.3 |
Chest pain + Cough + Difficulty breathing + Fever |
35 |
9.1 |
Difficulté respiratoire + Toux + Fièvre |
10 |
2.6 |
Continued
Duration of symptoms |
|
|
Less than 5 days |
120 |
31.3 |
Between 5 and 9 days |
139 |
36.2 |
More than 9 days |
125 |
32.6 |
Type of ARI |
|
|
Rhinitis |
184 |
47.9 |
Rhinopharyngitis |
124 |
32.3 |
Bronchitis |
31 |
8.1 |
Bronchiolitis |
22 |
5.7 |
Pneumonia |
20 |
5.2 |
Bronchopneumonia |
3 |
0.8 |
Treatment received |
|
|
Traditional |
244 |
63.5 |
Cough suppressants (alone or in combination) |
75 |
19.6 |
Antibiotics (alone or in combination) |
59 |
15.4 |
Vaccination |
|
|
Has a vaccination card |
375 |
97.7 |
Does not have a card |
9 |
2.3 |
Age at last vaccination (years) |
|
|
1 - 5 |
122 |
31.9 |
6 - 10 |
151 |
39.5 |
11 - 14 |
72 |
18.8 |
Not specified |
2 |
0.5 |
Cough was the most frequently observed symptom (88.3%), with treatment lasting between 5 and 9 days (36.2%). Rhinitis was the most common acute respiratory infection (47.9%), and recourse to traditional treatment was frequent (63.5%). Most women presented their vaccination card (97.7%), and for 39.5%, their last vaccination had been between 6 and 10 years prior (See Table 6).
Table 7. Measures of central tendency and dispersion of the main quantitative variables of children and their households.
Variable |
Minimum |
Maximum |
Standard deviation |
Mean |
Median |
Interquartile range (Q1 - Q3) |
Age (in years) |
0.08 (1 months) |
14 |
3.73 |
8.15 |
8 |
5 - 11 |
Total number of children in the household |
1 |
14 |
2.35 |
5.21 |
5 |
3 - 7 |
Number of people living in the household |
2 |
16 |
2.43 |
7.04 |
7 |
5 - 9 |
Continued
Body temperature (˚C) |
36 |
39 |
0.86 |
36.82 |
37 |
36.2 - 37.5 |
Respiratory rate (respiratory rate/min) |
18 |
30 |
3.76 |
26.38 |
26 |
24 - 29 |
Estimated monthly income (Local currency: FC) |
10,000 |
950,000 |
144105.71 |
145820.31 |
50,000 |
30,000 - 150,000 |
The average age of the children and the average number of children are 8.15 years (±3.7) and 5.21 (±2.35), respectively. The average number of people living in the household is 7.5 (±2.4); the average temperature is 36.8˚C (±0.86˚C) with an average respiratory rate of 26.38 (±3.76). The average monthly income is $64 (±21.8) (See Table 7).
Table 8. Association between the prevalence level of health areas and the occurrence of acute respiratory infections (ARIs).
|
Acute respiratory infections (ARI) |
|
Variable |
Yes (%) |
No (%) |
PR (IC 95%) |
χ2 |
p |
Health area |
|
|
|
|
|
High Prevalence (≥85%) |
230 (95%) |
12 (5%) |
6[3.0 - 12,1] |
30.6 |
<0.001 |
Low Prevalence (<85%) |
108 (76%) |
34 (24%) |
1 |
|
|
Children living in high-prevalence health areas are more likely to develop ARIs than those living in low-prevalence health areas (PR: 6; p: 0.0000) (See Table 8).
Table 9. Determinants related to history and clinical manifestations of ARI.
Variables |
ARI Yes (%) |
ARI No (%) |
PR [IC 95%] |
p-value |
Current signs of ARI |
|
|
|
|
Yes |
245 (64.0%) |
8 (2.1%) |
12.5 [5.63 - 27.8] |
<0.001 |
No |
93 (24.2%) |
38 (9.9%) |
1 |
|
History of ARI |
|
|
|
|
Yes |
219 (57.0%) |
12 (3.1%) |
5.21 [2.60 - 10.45] |
<0.001 |
No |
119 (30.9%) |
34 (8.9%) |
1 |
|
Persistent cough |
|
|
|
|
Yes |
264 (68.8%) |
21 (5.5%) |
4.25 [2.25 - 8.01] |
<0.001 |
No |
74 (19.3%) |
25 (6.5%) |
1 |
|
Fever |
|
|
|
|
Yes |
251 (65.4%) |
22 (5.7%) |
3.15 [1.68 - 5.90] |
<0.001 |
No |
87 (22.7%) |
24 (6.3%) |
1 |
|
Difficulty breathing |
|
|
|
|
Yes |
166 (43.2%) |
12 (3.1%) |
2.73 [1.37 - 5.46] |
0.004 |
No |
172 (44.8%) |
34 (8.9%) |
1 |
|
Children with clinical signs of ARI at the time of the survey have an extremely high risk of developing ARI in the past 14 days (RR = 12.5; 95% CI = 5.63 - 27.8; p < 0.001) (See Table 9).
A history of ARI is also a determining factor, with a relative risk of 5.21 (95% CI = 2.60 - 10.45; p < 0.001).Persistent cough (RR = 4.25; 95% CI = 2.25 - 8.01; p < 0.001) and fever (RR = 3.15; 95% CI = 1.68 - 5.90; p < 0.001) also emerged as important determinants. The presence of dyspnea or rapid breathing is associated with a significant risk of developing ARI (RR = 2.73; 95% CI = 1.37 - 5.46; p = 0.004), indicating that the intensity of respiratory symptoms is an additional indicator of severity, useful for risk stratification and priority management (See Table 9).
Table 10. Contextual and environmental determinants of IRA.
Variables |
Modalites |
ARI Yes n (%) |
ARI No n (%) |
PR [IC 95%] |
p-value |
Hospital consultation |
Yes |
294 (76.6%) |
29 (7.6%) |
3.92 [1.99 - 7.71] |
<0.001 |
No |
44 (11.5%) |
17 (4.4%) |
1 |
|
Season |
Rainy |
245 (63.8%) |
34 (8.9%) |
1.08 [0.53 - 2.17] |
0.838 |
Dry |
93 (24.2%) |
12 (3.1%) |
1 |
|
Similar cases in the patient’s circle |
Yes |
168 (43.8%) |
12 (3.1%) |
2.80 [1.40 - 5.59] |
0.003 |
No |
170 (44.3%) |
34 (8.9%) |
1 |
|
Children who attended the hospital had a significantly higher risk of developing Acute Respiratory Infections (ARI) (RR = 3.92; 95% CI = 1.99 - 7.71; p < 0.001) (See Table 10).
The presence of other cases of ARI in the immediate environment was a significant determinant (RR = 2.80; 95% CI = 1.40 - 5.59; p = 0.003).
Table 11. Medical determinants of ARI.
Variables |
Modalites |
ARI Yes (%) |
ARI No (%) |
PR [IC 95%] |
p-value |
Respiratory allergies |
Oui |
42 (10.9%) |
12 (3.1%) |
4.54 [0.61 - 34.1] |
0.107 |
Non |
296 (77.1%) |
34 (8.9%) |
1 |
|
Chronic illnesses |
Oui |
231 (60.2%) |
18 (4.7%) |
1.77 [1.22 - 2.57] |
<0.001 |
Non |
107 (27.9%) |
28 (7.3%) |
1 |
|
Children with a history of chronic diseases have a significantly higher risk of developing ARI (PR = 1.77; 95% CI = 1.22 - 2.57; p < 0.001) (See Table 11).
There is no association between the occurrence of ARI and the types of ARI or the type of treatment (See Table 12).
Table 12. Advanced clinical and therapeutic determinants of ARI.
Variables |
Modalites |
ARI Yes n (%) |
ARI No n (%) |
PR [IC 95%] |
p-value |
Type of ARI |
Severe forms |
75 (19.5%) |
1 (0.3%) |
2.1 [0.98 - 4.50] |
0.053 |
Mild forms |
263 (68.5%) |
45 (11.7%) |
1 |
|
Treatment |
Modern |
102 (26.6%) |
11 (2.9%) |
1.85 [0.96 - 3.55] |
0.087 |
Traditional |
236 (61.5%) |
35 (9.1%) |
1 |
|
Table 13. Factors associated with acute respiratory infections in children (multivariate logistic regression).
Variables |
Adjusted OR |
CI 95% |
p-value |
High Prevalence Health Area |
1.32 |
1.05 - 1.67 |
0.018 |
Current Signs of ARI |
8.74 |
4.10 - 18.62 |
<0.001 |
History of ARI |
3.96 |
2.01 - 7.81 |
<0.001 |
Persistent Cough |
2.84 |
1.55 - 5.21 |
0.001 |
Fever |
2.21 |
1.18 - 4.12 |
0.013 |
Difficulty Breathing |
1.78 |
1.02 - 3.10 |
0.041 |
Similar Cases in Close Contacts |
2.49 |
1.28 - 4.83 |
0.007 |
Chronic Diseases (Asthma/Tuberculosis) |
1.69 |
1.10 - 2.60 |
0.017 |
Respiratory Allergies |
1.42 |
0.72 - 2.82 |
0.310 |
Type of Severe ARI |
1.58 |
0.95 - 2.64 |
0.078 |
Modern Treatment |
1.21 |
0.72 - 2.03 |
0.472 |
Hospital Consultation |
1.36 |
0.78 - 2.36 |
0.271 |
Current clinical signs of ARI (aOR = 8.74; 95% CI: 4.10 - 18.62; p < 0.001), History of ARI (aOR = 3.96; 95% CI: 2.01 - 7.81; p < 0.001), Respiratory symptoms such as persistent cough (aOR = 2.84; p = 0.001), fever (aOR = 2.21; p = 0.013), and shortness of breath (aOR = 1.78; p = 0.041) (See Table 13).
Environmentally, residence in a high-prevalence health area is significantly associated with ARI (aOR = 1.32; p = 0.018), as is the presence of similar cases in the immediate environment (aOR=2.49; p=0.007), highlighting the important role of community and intra-familial transmission.
Chronic diseases (asthma and tuberculosis) also constitute an independent risk factor (ORa = 1.69; p = 0.017), highlighting the increased vulnerability of children with chronic conditions.
4. Discussion
This study highlights a very high burden of acute respiratory infections (ARIs) in children aged 0 to 14 years, with an overall prevalence exceeding 80% and a peak in children under 5 years old (94.6%) (Table 1 and Table 2). Multivariate analysis confirms a pediatric endemicity fueled by the interaction of closely linked individual, environmental, and social factors.
The study population is slightly male dominated (53.1%) (Table 1), a trend described in several studies attributing a slightly increased susceptibility of males to respiratory infections during childhood [5]. Parental education (Table 1) levels remain generally low to intermediate, with approximately 43% to 45% having limited schooling, reflecting a structural vulnerability that influences prevention practices and early access to healthcare [6]. Maternal activities are predominantly informal and agricultural (over 50%), a profile associated with precarious living conditions, increased exposure to household fumes, and overcrowding, recognized as major risk factors for acute respiratory infections (ARIs) [7]. Marital status is dominated by stable households (81.5% of parents are married), which does not offer sufficient protection against economic and environmental constraints.
The epidemiological data shows a high recurrence rate of infections: 88% of recent episodes, 65.9% of cases still symptomatic, and over 25% of children having experienced at least three episodes per year (Table 5). This recurrence of episodes reflects continuous exposure to risk factors, particularly among young children, whose high vulnerability is well documented and linked to immune immaturity [1] [8]. The gradual decline with age reflects the gradual acquisition of immunity.
Household living conditions reinforce this situation (Table 4). The high average household size (7.04 people) and the frequency of large families (nearly 70% with at least five children) promote household transmission. Incomes, predominantly low to middle (around 60%), limit access to healthcare and preventive measures (Table 4). Even though 63.5% of dwellings are considered modern, occupancy density and inadequate ventilation maintain an environment conducive to the transmission of infections [9].
Clinical data reveal a symptomatology dominated by the triad of cough, fever, and dyspnea, with a high frequency of persistent cough (74.2%), fever (71.1%), and recurrences (over 85% with at least two episodes) (Table 6, Table 9). Mild forms remain predominant (>80%), but nearly one-fifth of cases present with more severe forms, indicating a significant potential for progression. The predominant use of traditional treatments (63.5%) (Table 6).
Multivariate analysis (Table 13) reveals a core set of factors independently associated with acute respiratory infections (ARIs). Current clinical signs are the strongest determinant (aOR = 8.74), followed by a history of ARIs (aOR = 3.96), reflecting a strong tendency for recurrence and persistent susceptibility. Persistent cough (aOR = 2.84), fever (aOR = 2.21), and respiratory distress (aOR = 1.78) are reliable clinical markers of severity.
Environmental factors also play a significant role, with a significant association between the presence of cases in the immediate environment (aOR = 2.49) and residence in areas with high prevalence (aOR = 1.32), confirming the major contribution of community transmission and territorial inequalities [10]. Chronic diseases (asthma and tuberculosis) also increase the risk (aOR = 1.69), reflecting increased biological vulnerability.
In contrast, respiratory allergies, clinical severity, use of modern treatments, and hospital consultation did not show any significant independent associations after adjustment. These variables appear to reflect clinical presentation or healthcare-seeking behaviors rather than true risk factors.
Overall, acute respiratory infections (ARIs) in children appear to be the result of a combination of age-related biological fragility, unfavorable socioeconomic conditions, and high levels of intrafamilial and community transmission, consistent with models described in the international literature [11]-[16].
5. Conclusion
Acute respiratory infections in children aged 0 to 14 years in the Kamina health zone appear to be a major public health problem, with a very high prevalence and a high concentration in children under 5 years of age. Their occurrence results from a close interaction between individual vulnerability, unfavorable living conditions, and high levels of community transmission. The most significant risk factors are a history of acute respiratory infections (ARIs), the presence of current respiratory symptoms, chronic illnesses, and living with similar cases in the immediate environment. Despite generally satisfactory vaccination coverage, the persistence of recurrent and sometimes severe forms of the disease highlights shortcomings in prevention and management.
Author Contributions
Conceptualisation and methodology: Chancelle Nasoro Abiba, Georges Banza Maloba, Guillaume Ngoie Mwamba, Celestin Muleka Kimpanga and Oscar luboya Numbi; Software: Chancelle Nasoro Abiba, Georges Banza Maloba; Validation: Hancelle Nasoro Abiba, Oscar Luboya Numbi and Celestin Muleka Kimpanga; Formal analysis: Simon Ilunga Kandolo and Michel Kabamba Nzaji; Investigation: Chancelle Nasoro Abiba; Resources: Chancelle Nasoro Abiba; Data curation: Simon Ilunga Kandolo; Writing review and editing: Chancelle Nasoro Abiba, Simon ilunga Kandolo and Georges Banza Maloba; Visualisation: Chancelle Nasoro Abiba, Simon ilunga Kandolo, Georges Banza Maloba, Celestin Muleka Kimpanga and Oscar Luboya Numbi; Project administration: Chancelle Nasoro Abiba; Funding acquisition: Chancelle Nasoro Abiba. All authors read and agreed to the published manuscript.