Aims: To develop a multidisciplinary health research agenda (HRA) utilizing expertise from various disciplines to identify and prioritize evidence uncertainties in orthopaedics, thereby reducing research waste.
Methods: We employed a novel, structured framework to develop a HRA. We started by systematically collecting all evidence uncertainties from stakeholders with an interest in orthopaedic care, categorizing them into 13 sub-themes defined by the Dutch Orthopaedic Association (NOV). Subsequently, a modified two-phased Delphi study (two rounds per phase), adhering to the Conducting and REporting DElphi Studies (CREDES) guideline, was conducted. In Phase 1, board members assessed the collected evidence uncertainties on a three-point Likert scale to confirm knowledge gaps. In Phase 2, diverse stakeholders, including orthopaedic surgeons, rated the confirmed knowledge gaps on a seven-point Likert scale. Panel members rated one self-selected sub-theme and two randomly assigned sub-themes. The results from Phase 2 were ranked based on the overall average score for each uncertainty. Finally, a focus group discussion with patient associations' representatives identified their top-ranked uncertainty from a predefined consensus process, leading to the final HRA. An advisory board, the Federation of Medical Specialists, and the NOV research coordinator oversaw the process.
Results: Of the 687 collected evidence uncertainties, 160 (zero to 33 per theme) were confirmed by 41 panel members (three to five per theme). In Phase 2, 124 panel members prioritized 41 evidence uncertainties (zero to five per theme). The focus group members identified 12 key evidence uncertainties leading to the final HRA. The remaining 29 evidence uncertainties will be addressed after research on the HRA's prioritized evidence uncertainty is completed.
Conclusion: Our framework resulted in a multidisciplinary HRA, enabling an inclusive approach to consensus-building among healthcare professionals and patients on future research priorities within orthopaedic care. We anticipate this innovative framework will enhance inclusivity and transparency, leading to broader acceptance and optimized resource allocation, ultimately reducing research waste.
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http://dx.doi.org/10.1302/2633-1462.62.BJO-2024-0053.R1 | DOI Listing |
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Injury, Recovery and Inflammation Sciences Academic Unit, School of Medicine and National Institute for Health and Care Research, Nottingham Biomedical Research Centre, University of Nottingham, Nottingham, UK.
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Due to their self-renewal and differentiation capabilities, pluripotent stem cells hold immense potential for advancing our understanding of human disease and developing cell-based or pharmacological interventions. Realizing this potential, however, requires a thorough understanding of the basal cellular mechanisms which occur during differentiation. Lipids are critical molecules that define the morphological, biochemical, and functional role of cells.
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Institute of Structural Steels, Central Iron and Steel Research Institute, Beijing 100081, China.
High-strength low-alloy (HSLA) steels have garnered significant attention owing to their widespread applications across various industries, with weldability being a particularly critical aspect. However, the impact toughness of the coarse-grained heat-affected zone (CGHAZ) remains a notable challenge under high-heat-input welding conditions. Despite existing research acknowledging the beneficial effects of micro-alloying elements on steel properties, there are still numerous uncertainties and controversies regarding the specific influence of these elements on the microstructure and impact toughness of the CGHAZ under specific welding conditions.
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