Tosamaganga Regional Referral Hospital
Tosamaganga, Iringa, P.O. Box 11, Tanzania
NCT Number: NCT07665164
The goal of this clinical trial is to build capacity and assess the teaching effectiveness of a new simulator for manual neonatal ventilation in third-year nursing and clinical officer students, as well as healthcare professionals from the neonatology, gynecology, and pediatric departments.
The main questions it aims to answer are:
* Does the high-fidelity active setup of the simulator improve the percentage of target pressure achieved and the mean ventilation frequency compared to other configurations? * How do different simulator configurations affect the training outcomes of unexperienced and experienced personnel, based on objective evaluations by expert clinicians and knowledge surveys? * What is the self-reported usability and perceived usefulness of the different simulator configurations among the trainees? Researchers will compare a medium-fidelity passive setup, a high-fidelity passive setup with mechanical feedback, and a high-fidelity active setup with both mechanical and sensor feedback to see if the high-fidelity active configuration results in significantly higher clinical performance scores and better achievement of ventilation targets.
Participants will:
* Attend theoretical frontal lectures covering manual emergency ventilation procedures and medical simulation. * Complete pre-training and post-training surveys to assess baseline knowledge, evaluate acquired skills, and report on the simulator's usability. * Participate in hands-on simulator training, practicing the clinical procedure (positioning the newborn, positioning the mask, and ventilating) three times. * Undergo a final simulation session for evaluation, where performance is objectively scored by a tutor and automatically recorded by the simulator's sensors.
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Interventional
Not applicable
Tosamaganga, Iringa, P.O. Box 11, Tanzania
Background and Rationale
Neonatal mortality in sub-Saharan Africa remains disproportionately high-26 deaths per 1,000 live births in 2023, which is 8.7 times higher than rates in Europe and North America. A significant portion of these deaths are attributable to preventable and treatable conditions occurring during birth. While skilled birth attendance can prevent up to 40% of neonatal deaths, assistance rates in sub-Saharan Africa are drastically low (40%) compared to high-income countries (90%). Consequently, strengthening the capacity of the health workforce to deliver essential newborn care is a critical priority.
Neonatal resuscitation is a complex, time-sensitive procedure. Due to severe limitations in access to advanced respiratory technologies in these regions, manual ventilation using a self-inflating bag and face mask constitutes the primary method of respiratory support. Because manual ventilation is highly operator-dependent and can cause substantial harm if performed incorrectly, technical proficiency is paramount. Simulation-based training is internationally recommended to improve provider competence, yet data on the real-world implementation, acceptability, and educational effectiveness of low-cost, high-fidelity simulators tailored to low-resource settings remains limited. This study evaluates a newly designed simulator developed specifically for the Tanzanian environment to ensure healthcare workers can acquire and maintain resuscitation skills.
Study Objectives
The specific objectives of this study are:
Investigational Device Details
The novel, low-cost, high-fidelity neonatal simulator is designed to replicate neonatal airway anatomy and ventilation mechanics while providing objective performance feedback.
Anatomical Construction: The simulator integrates a physical manikin with internal anatomy designed to mimic the upper airways, lungs, and stomach.
Physiological Mechanics: The device mimics physiological movements, specifically the visible rise of the chest and abdomen during successful ventilation. It also features a mechanical obstruction of the esophagus if the head is not correctly placed in the required "sniffing" position.
Sensory and Digital Interface: The system incorporates pressure sensors and connects to a mobile user interface (app) that enables real-time data acquisition. The app provides the operator with real-time visual and auditory feedback regarding ventilation rate and pressure.
Study Design and Allocation
This is a prospective, randomized, and controlled study conducted at the Tosamaganga Regional Referral Hospital (TRRH) and the Tosamaganga Institute of Health and Allied Sciences (TIHAS) in the Iringa region of Tanzania.
The study population consists of two cohorts: second-year undergraduate clinical officer students at TIHAS (with no prior manual ventilation experience) and local health professionals (nursing, midwifery, and neonatal care) working at TRRH. A total of 42 students and 37 health professionals were enrolled.
Participants within each cohort were randomly assigned to one of three groups to evaluate the teaching effectiveness of different simulator configurations:
Study Protocol and Workflow
The training course was delivered over four consecutive days (June 17-20, 2025).
Data Collection and Statistical Analysis Plan
All data were anonymized using unique numeric identifiers to link datasets across sessions. Data triangulation was achieved through three primary streams: automated simulator data, expert tutor evaluations, and self-reported surveys.
Healthy volunteers accepted: Yes
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Medical training on manual neonatal ventilation with phisical simulator
Time frame: Day 2, Day 3 and Day 4
The primary outcome, used to assess the Objective 1, was the ventilatory performance measured by the simulator, i.e. Peak Inspiratory Pressure (PIP) during hands-on training on Day 2 and Day 3, and the evaluation session on Day 4. In accordance with international guidelines, we considered as gold-standard a PIP of 25 cmH₂O (centimeters of water). For each participant and trial, we computed the mean and standard deviation of PIP.
Time frame: Day 2, Day 3 and Day 4
The other primary outcome, used to assess the Objective 1, was the ventilatory performance measured by the simulator, i.e. Ventilation Rate during hands-on training on Day 2 and Day 3, and the evaluation session on Day 4. In accordance with international guidelines, we considered as gold-standard a Ventilation Rate of 40 breaths per minute. For each participant and trial, we computed the mean and standard deviation of the Ventilation Rate .
Time frame: Day 1 and day 4
The secondary outcomes, used to evaluate Objectives 2 and 3, were acquisition and reinforcement of manual ventilation knowledge and skills, assessed through: (1) data from the simulator sensors acquired during the final evaluation session, (2) objective tutor-based performance evaluation using a structured quantitative scoring sheet on a three-point scale (0 = poor, 0.5 = average, 1 = good, eTable 16 in Supplement 1), (3) theoretical knowledge assessment (pre and post-training true/false questionnaire).
Time frame: Day 4
The tertiary outcome used to evaluate Objective 4, were user-reported measures of simulator acceptability over the four dimensions of the TAM scale (Technology Acceptance Model): Perceived Usefulness (PU), Perceived Ease-of-Use (PEU), Behavioural Intention (BI), and Fidelity of the Simulator (FS). The items were tailored to the characteristics of the simulator and rated on 7 points Likert scales. A final aggregated score was obtained.
Scuola Superiore di Studi Universitari e di Perfezionamento Sant'Anna
Other
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View the official ClinicalTrials.gov record (opens in a new tab)This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.