1. Introduction
Pressure injury (PI) represents a complex clinical phenomenon that is considered an indicator of the quality of healthcare [
1]. Its incidence and prevalence at various levels of healthcare, ranging from acute hospital facilities to long-term care institutions, underscore the need for systematic and evidence-based approaches to relevant preventive and curative measures. In this context, PI is viewed as the result of a dynamic interaction of biological, organizational, and professional factors with the capacities and characteristics of the affected person [
2].
Treatment represents a significant financial burden for the healthcare system, especially in the advanced stages of disease, where costs increase significantly and often exceed previous estimates [
3]. Despite the large amount of available scientific evidence, the incidence and prevalence of PI remain significant, indicating a gap between the available evidence and its implementation in clinical practice. Preventive interventions such as regular patient repositioning, the use of pressure relief surfaces, and ensuring adequate nutritional support have been shown to reduce the incidence of PI [
4]. However, their effectiveness in clinical practice largely depends on consistent application, interdisciplinary collaboration, and organizational support. In this sense, work protocols and institutional guidelines play a key role in standardizing procedures and reducing variability in care [
5].
An important factor in the successful implementation of preventive and therapeutic measures is the level of knowledge of healthcare professionals, especially nurses, who play a key role in the daily care of patients. In the Republic of Croatia, nurses can obtain professional qualifications through a five-year secondary nursing education program following primary education or through university undergraduate and graduate nursing studies, aligned with the Bologna process and European directives [
6]. Upon completion of secondary nursing education, nurses are eligible for direct entry into the Croatian Nursing Council registry in accordance with defined competencies. Although this level of education does not include a higher education degree, it comprises theoretical instruction and clinical practice in accordance with European standards for nursing education. Admission to undergraduate nursing studies requires the completion of four-year secondary education and passing the national state examination, while admission to graduate nursing studies requires the completion of an undergraduate nursing degree and acquisition of 180 ECTS credits [
7].
The level of knowledge of nurses is shaped by interactions between their formal education, clinical experience, organizational environment, and ability to access, evaluate, and apply expert information. Formal education provides a theoretical basis for understanding the etiology, prevention, and treatment of PI, while the clinical environment enables the application and upgrading of knowledge through everyday practice [
8]. At the same time, the capability to actively search for, critically appraise, and apply scientific evidence is a key component of modern evidence-based nursing practice, contributing to continuous professional development and quality clinical decision-making.
The impact of education on the level of knowledge represents one of the fundamental dimensions of professional development in healthcare [
9]. Knowledge is not viewed solely as the accumulation of information, but as the integration of theoretical knowledge, clinical reasoning, and the ability to apply guidelines in complex care situations [
10].
However, knowledge is only one component of professional competence. Contemporary nursing competency models define competence as the integration of knowledge, practical skills, professional judgment, communication skills, and professional behaviors in real-world clinical situations. However, existing knowledge assessment instruments—including the PZ-PUKT—primarily assess the cognitive component of competence and do not allow for direct assessment of the quality of clinical performance or patient care outcomes. The results of such instruments should therefore be viewed as indicators of the level of knowledge, rather than as a direct measure of overall professional competence [
11].
Empirical evidence indicates that structured educational interventions, including formal education and continuing professional development, lead to significant increases in the level of knowledge of nurses. The most pronounced effects are recorded in programs that combine theoretical background, clinical case analysis, and competency evaluation [
12]. However, the level and sustainability of the acquired knowledge depend on the type of education, teaching methods, and the possibilities for practical application of the content. Increasing the level of knowledge in itself does not necessarily result in changes in clinical practice; the application of knowledge also depends on organizational factors, availability of resources, the culture of the work environment, leadership support, and opportunities for continuous professional development. The lack of coordinated education and limited implementation of guidelines often leads to inconsistent practice and poorer clinical outcomes [
13]. In the modern health system, decision-making for the prevention and treatment of PI is based on the principles of evidence-based practice, with health information technologies playing an increasing role in supporting clinical decision-making [
14]. Professional guidelines emphasize the importance of continuous monitoring of the knowledge and competencies of healthcare professionals and the need for continuing education of nurses [
15].
Despite the available scientific knowledge, a comprehensive understanding of the impact of nurses’ knowledge levels on the consistent application of preventive and therapeutic guidelines in clinical practice is lacking. A particular problem is the lack of systematic national data on the level of knowledge of nurses regarding the prevention and treatment of PI in the Republic of Croatia. Although international research has indicated significant differences in the level of knowledge between health systems, these results cannot be directly transferred to the Croatian context due to differences in educational models, healthcare organization, regulatory frameworks, and the professional competencies of nurses. In this regard, national data are particularly useful as they allow for identification of the specific educational needs of Croatian nurses, assessment of the effectiveness of existing educational models, and planning of targeted interventions to improve the quality of care. Such a research gap thus limits the possibility of developing targeted educational interventions and improving the quality of care.
Therefore, the aim of this study is to assess the level of knowledge regarding PI among nurses actively participating in clinical practice in the Republic of Croatia. This study assesses the level of knowledge of nurses with respect to their level of education (secondary school, undergraduate, or graduate), in accordance with the particular educational structure for nurses in the Croatian healthcare system [
16]. Furthermore, specific gaps and concerns related to this topic are identified, and the relationships between the level of knowledge and relevant professional and educational factors are analyzed. The obtained results are expected to contribute to a better understanding of the educational and professional factors associated with nurses’ knowledge of PI, serving as a basis for planning future educational interventions and strategies to improve the quality of care in the Croatian healthcare system.
2. Materials and Methods
2.1. Study Design and Setting
This study was conducted as a national cross-sectional study in the Republic of Croatia, Europe. It included nurses from 19 of the country’s 22 public secondary-level hospitals, providing broad national coverage. This cross-sectional study assessed nurses’ knowledge regarding PI, with particular emphasis on differences according to their educational level and professional education. The study analyzed knowledge related to the prevention, classification, and description of PI, as well as differences in knowledge results with respect to relevant educational and professional characteristics of the respondents. The results are reported in accordance with the STROBE guidelines for observational studies.
2.2. Research Instrument and Reliability
The Croatian version of the Pieper–Zulkowski Pressure Ulcer Knowledge Test, Version 2 (PZ-PUKT) was used in this study to assess the respondents’ knowledge of PI. This instrument was previously translated, culturally adapted, and psychometrically validated according to established cross-cultural adaptation procedures. The validation study demonstrated excellent content validity (S-CVI = 0.981), acceptable internal consistency (KR-20 = 0.79), high split-half reliability (Guttman’s Lambda 6 = 0.89), and excellent test–retest reliability (ICC = 0.91), supporting its use among Croatian healthcare professionals [
17]. Although the instrument provides an objective assessment of PI-related knowledge, it should not be considered a direct measure of overall clinical competence, which additionally depends on practical skills, clinical reasoning, and contextual clinical factors.
The questionnaire used in this study consists of two parts. The first part includes sociodemographic questions and items related to sources and methods of knowledge acquisition. The second part contains 72 items from the PZ-PUKT test, organized into three subscales—prevention (31 items), wound description (20 items), and staging (21 items)—with an additional overall score calculated. Participants respond to each item with “True”, “False”, or “Don’t know”. The total score on the questionnaire ranges from 0 to 72 points. According to the interpretation criteria proposed for the original PZ-PUKT instrument, scores below 70% indicate an unsatisfactory level of knowledge, scores between 70% and 79.9% reflect a satisfactory level, scores from 80% to 89.9% indicate good knowledge, and scores of 90% or higher represent a very good level of knowledge regarding PI [
18].
2.3. Data Collection
Data collection was carried out using a paper-based version of the questionnaire following approval by the relevant ethics committees. The process took place between June and December of 2025. All participants were informed about the aims and purpose of the study and provided written informed consent prior to participation. Completion of the questionnaire was anonymous and voluntary, with an average completion time of approximately 25–30 min. Only fully completed questionnaires were included in the final analysis, ensuring data completeness and reliability of the calculated total and subscale scores. After obtaining approval from the relevant ethics committees, the research team—in collaboration with the assistant directors of nursing and the head nurses of the institutions—organized the implementation of the study and the distribution of the questionnaires in the clinical departments of the participating hospitals. The nurses were informed about the voluntary nature of the study, and no financial or other incentives for participation were used.
2.4. Participants and Sample Size
To obtain data on the population of actively employed nurses at the secondary healthcare level in general and county hospitals in the Republic of Croatia, a list of healthcare institutions was retrieved from the official website of the Ministry of Health of the Republic of Croatia. The study was designed to include general and county hospitals across the Republic of Croatia in a geographically balanced manner. Geographical grouping of institutions was conducted according to the National Development Plan of the Ministry of Health of the Republic of Croatia, with hospitals divided into four geographical regions (Central and Northern, Eastern, Southern, and Western) to ensure proportional regional representation of the target population.
In order to define the total target population, all included institutions were contacted. Requests for information regarding the number of employed nurses at all educational levels were sent to hospital directors and nursing managers. Following this procedure, the total target population was defined as 7778 nurses employed across 22 hospitals. Nineteen of the 22 eligible hospitals participated in the study. These institutions represented approximately 93.9% of the target population and ensured coverage across all four geographical regions of Croatia.
After defining the target population (N = 7778), a representative sample of at least 367 respondents was planned, and proportional stratified sampling according to geographical region was applied. The sample size was calculated using the Cochran formula with a 95% confidence level and a maximum margin of error of ±5%. The calculated sample size for the finite population was 366.3 respondents, rounded to 367 participants.
After obtaining approval from the Ethics Committees of the participating institutions, meetings were conducted with nursing managers to organize the implementation of the study. Nurses employed in various clinical departments, including surgical departments, internal medicine departments, neurology, intensive care and anesthesiology units, psychiatry, pediatrics, and infectious disease departments, were invited to participate. Participation was voluntary and anonymous, and questionnaires were distributed to eligible nurses employed in the participating hospitals.
During the implementation of the study, a larger number of nurses than initially expected expressed willingness to participate, resulting in a final sample of 1139 respondents. Only fully completed questionnaires were included in the final analysis. This large sample size increased the precision of the estimates and reduced the margin of error to approximately 2.7%. Participants were recruited from multiple hospitals and various clinical departments, ensuring greater heterogeneity and representativeness of the sample.
2.5. Data Analysis
The results are presented descriptively using the mean, standard deviation, median, minimum, and maximum for continuous variables, while categorical variables are presented as absolute frequencies, relative frequencies (percentages), and cumulative percentages. The assumption of normal distribution for continuous variables was tested using the Shapiro–Wilk test. Given the results of the Shapiro–Wilk test (and regardless of the large sample size), non-parametric tests were used to test for differences between groups. This approach was chosen due to the nature of the outcome (knowledge test), for which the assumption of normality is often violated. Differences were analyzed with respect to education level, work department, frequency of working with patients with pressure ulcers, participation in pressure ulcer lectures, following guidelines, and searching for information about pressure ulcers. For post hoc analyses, the Dwass–Steel–Critchlow–Fligner (DSCF) test for multiple comparisons was used. The DSCF procedure is a conservative non-parametric method for pairwise comparisons that controls the family-wise Type I error rate across multiple tests [
19]. The effect size was estimated using the epsilon-squared (ε
2) statistic. The interpretation of the effect size was based on the following thresholds: ε
2 ≈ 0.01 (small effect); ε
2 ≈ 0.06 (medium effect); and ε
2 ≥ 0.14 (large effect).
Participants were grouped within multiple hospitals. However, since the aim of the study was primarily to assess knowledge levels descriptively and to explore unadjusted differences between groups of respondents, the potential effect of grouping respondents within hospitals was not specifically modeled. This fact should be taken into account when interpreting the results. Categories with very small numbers of respondents are to be interpreted with caution, due to the limited statistical reliability of the estimates.
All collected data were transferred to Microsoft Office Excel, where they were coded for further processing. Statistical analyses were performed using IBM SPSS for Windows (Statistical Package for the Social Sciences), version 26.0 (IBM Corp.: Armonk, NY, USA), and R (version 4.3.1).
2.6. Research Ethics
The study was conducted in accordance with the ethical principles outlined in the Declaration of Helsinki (2013 revision). Participant anonymity and data confidentiality were ensured throughout the research process. Prior to participation, all respondents were informed about the purpose of the study, the intended use of the data, and the voluntary nature of their involvement, after which informed consent was obtained. Participants were also informed of their right to withdraw from the study at any time without any consequences. The study was carried out using a paper-based questionnaire. Ethical approval for the study was obtained from the relevant Institutional Ethics Committees prior to data collection. The list and reference numbers of the ethics committee approvals are provided in the Institutional Review Board Statement.
4. Discussion
Participants with secondary education generally achieved lower PZ-PUKT scores than those with bachelor’s or master’s degrees, consistent with previous studies reporting an association between higher educational attainment and greater knowledge of pressure injury prevention and management [
15,
20,
21].
Nevertheless, the findings across countries remain inconsistent. While some studies have reported similar associations, others found no significant differences according to educational level or even higher scores among nurses with lower formal qualifications [
22,
23]. Such inconsistencies suggest that the relationship between education and knowledge may be influenced by contextual factors, including the structure of educational programs and opportunities for continuing professional development.
The present findings contribute to this body of evidence by demonstrating a similar pattern at the national level in Croatia.
However, although statistically significant, the observed effect sizes were very small—particularly for prevention knowledge—indicating the limited practical significance of the differences observed between educational groups.
Differences in knowledge scores were also observed across clinical departments. Higher scores were generally observed among nurses working in intensive care, surgical, and pediatric settings, whereas lower scores were recorded in emergency and internal medicine departments. One possible explanation for this observation is that differences in clinical exposure and organizational context may influence opportunities to acquire and maintain PI-related knowledge [
24]. However, due to the cross-sectional study design, causal interpretations cannot be made. Although some differences between departments were observed, the median scores in most domains remained below the 70% threshold proposed by the original PZ-PUKT authors, except for those in the prevention domain. This pattern is broadly consistent with studies from several countries reporting moderate knowledge levels among nurses regarding the prevention and management of PI [
25,
26,
27,
28,
29,
30], although higher scores have occasionally been reported [
31].
Importantly, the effect sizes for departmental differences were also small, indicating that work setting accounted for only a limited proportion of the variability in knowledge scores. This observation is consistent with previous research showing that departmental differences are neither universal nor consistently observed [
22]. Furthermore, even individuals working in departments involving frequent exposure to pressure injuries may demonstrate insufficient knowledge levels when structured educational programs and standardized clinical protocols are lacking. No statistically significant association was found between the frequency of working with patients with pressure injuries and PZ-PUKT scores, although descriptive analyses suggested a slight upward trend in knowledge scores with increasing exposure. This finding is consistent with studies reporting weak or inconsistent relationships between clinical experience and PI knowledge [
25,
32]. One possible explanation is that clinical exposure alone may not be sufficient for knowledge acquisition without complementary educational activities and access to evidence-based resources [
33]. The discrepancy between exposure and knowledge may reflect differences in the quality of clinical experience, opportunities for reflection, and engagement in continuing education [
34]. Overall, the findings suggest that knowledge is influenced by multiple factors and cannot be explained by clinical exposure alone.
Participants who reported more recent attendance of PI educational activities achieved higher PZ-PUKT scores across all knowledge domains, when compared to those who had never attended such education. This finding is consistent with previous studies demonstrating an association between participation in educational activities and higher levels of PI knowledge [
35]. Previous intervention studies have suggested that structured educational programs may improve knowledge and support evidence-based clinical practice [
36,
37,
38]. However, as a cross-sectional study design was used, the observed associations cannot be interpreted as evidence of a causal effect of educational activities. Respondents who reported more recent attendance of educational activities achieved higher knowledge scores than those whose last such education had occurred several years earlier, consistent with previous studies suggesting that knowledge may decline over time without continued reinforcement and repeated exposure to educational content [
34]. However, the observed effect sizes were small, indicating that participation in educational activities accounted for only a limited proportion of the variability in knowledge scores. This finding suggests that knowledge is influenced by multiple factors, including professional experience, clinical context, and engagement in continuing professional development [
39]. Although participants who had never attended educational activities consistently achieved the lowest scores, the cross-sectional study design does not allow for conclusions regarding causality. It is also possible that individuals with greater professional interest or motivation are more likely to participate in educational activities and consequently demonstrate higher knowledge levels. Nevertheless, the observed associations are consistent with previous studies reporting higher knowledge scores among nurses who participate in educational programs [
27,
40]. The differences were most apparent in the classification and wound description domains, whereas prevention knowledge showed smaller variation between groups—a pattern that has also been described in previous research.
Respondents who reported engagement with the professional literature and clinical guidelines achieved higher PZ-PUKT scores than those who had not consulted such resources, with higher scores generally observed among participants who had accessed such information within the previous year.
This finding is consistent with studies emphasizing the importance of access to evidence-based resources for maintaining professional knowledge [
13]. Previous intervention studies have shown that the implementation of evidence-based guidelines may improve preventive practices and reduce the incidence of PI [
41,
42,
43,
44]. However, such outcomes were not assessed in the present study; therefore, the clinical significance of the observed knowledge differences remains uncertain.
The association between recent literature consultation and higher scores may reflect knowledge maintenance through continued engagement with professional information [
45]. As observed for educational activities, larger differences were found in the classification and wound description domains than in prevention knowledge. Previous studies have similarly suggested that more complex cognitive domains may require ongoing learning and updating of knowledge [
20,
46,
47].
Participants who reported actively searching for information on pressure injuries during the previous year achieved higher knowledge scores across all PZ-PUKT domains. Nevertheless, the corresponding effect sizes were small, indicating that information-seeking behavior explains only a limited proportion of the variability in knowledge. This association is consistent with studies highlighting the roles of self-directed learning and information literacy in professional development [
46,
48,
49].
Previous studies have suggested that access to up-to-date information and decision-support resources may facilitate evidence-based practice [
31,
38,
50,
51]. However, neither clinical behaviors nor patient outcomes were assessed in the present study, precluding any conclusions regarding the practical impacts of the observed knowledge differences.
The greater variability among respondents who did not seek information may reflect more heterogeneous knowledge levels within this group [
52].
Importantly, the presented findings should not be interpreted as evidence that information-seeking behavior directly increases knowledge. It is equally plausible that nurses with greater knowledge, motivation, or professional interest are more likely to seek information. Future longitudinal studies are needed to clarify the direction and magnitude of these relationships. Nevertheless, the results support the value of fostering information literacy and facilitating access to evidence-based resources within clinical settings.
Strengths, Limitations, and Future Directions
The main strengths of this study are its large national sample, multicenter design, and the use of the validated PZ-PUKT instrument. The inclusion of various clinical settings and factors related to knowledge enabled a comprehensive assessment of nurses’ knowledge regarding the prevention and management of PI at the national level.
This study has several limitations. Participation was voluntary, which may have introduced self-selection bias, as nurses with greater professional interest in PI prevention may have been more likely to participate. Due to the cross-sectional design and the absence of multivariable analyses, causal relationships and the independent contributions of individual factors to knowledge scores could not be determined. Potential clustering effects within hospitals were not analyzed. In addition, respondent fatigue associated with the 72-item PZ-PUKT questionnaire cannot be excluded.
Therefore, future studies should use multivariable, longitudinal, and intervention designs to identify independent determinants of PI knowledge, as well as to evaluate whether increased knowledge leads to improvements in clinical practice and patient outcomes.