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Ten years after : The evolution of projectification in Germany, Norway, and Iceland
(2025-02) Wald, Andreas; Ingason, Helgi Thor; Fridgeirsson, Thordur Vikingur; Department of Engineering
Theory of projectification suggests that an increasing use of projects is a reaction to an increasing need for innovation and adaptation to changes in the environment of firms. The degree of projectification of an economy was first measured in 2013 for Germany followed by Norway and Iceland. Over the last ten years, significant changes have taken place in the three countries which can be assumed to spur a further increase in projectification. This paper presents the results of a new series of studies. The results reveal a high level of projectification in the three economies, but also that a plateauing has been reached. In addition to the degree of projectification, the present study assesses and compares the project landscapes in the three countries and examines if the high projectification corresponds to a professionalization of project management in the form of project careers and central project organizations.
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Innovative Diagnostic Approaches for Predicting Knee Cartilage Degeneration in Osteoarthritis Patients : A Radiomics-Based Study
(2025-02) Angelone, Francesca; Ciliberti, Federica Kiyomi; Tobia, Giovanni Paolo; Jónsson, Halldór; Ponsiglione, Alfonso Maria; Gislason, Magnus Kjartan; Tortorella, Francesco; Amato, Francesco; Gargiulo, Paolo; Department of Engineering
Osteoarthritis (OA) is a common joint disease affecting people worldwide, notably impacting quality of life due to joint pain and functional limitations. This study explores the potential of radiomics — quantitative image analysis combined with machine learning — to enhance knee OA diagnosis. Using a multimodal dataset of MRI and CT scans from 138 knees, radiomic features were extracted from cartilage segments. Machine learning algorithms were employed to classify degenerated and healthy knees based on radiomic features. Feature selection, guided by correlation and importance analyses, revealed texture and shape-related features as key predictors. Robustness analysis, assessing feature stability across segmentation variations, further refined feature selection. Results demonstrate high accuracy in knee OA classification using radiomics, showcasing its potential for early disease detection and personalized treatment approaches. This work contributes to advancing OA assessment and is part of the European SINPAIN project aimed at developing new OA therapies.
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HeartMAP : A multi-chamber spatial framework for cardiac cell-cell communication
(2025-01) Kgabeng, Tumo; Wang, Lulu; Ngwangwa, Harry; Pandelani, Thanyani; Department of Engineering
Understanding cell-cell communication within and between the four distinct cardiac chambers is fundamental to elucidating cardiac function and disease mechanisms. Each chamber exhibits unique cellular and molecular characteristics that reflect specialised physiological roles, yet existing frameworks for mapping chamber-specific intercellular networks have remained limited. Here, we present HeartMAP (Heart Multi-chamber Analysis Platform), a computational framework that infers cardiac cell-cell communication networks at chamber resolution through integration of single-cell RNA-seq co-expression patterns and ligand-receptor interaction databases. Using a dataset of 287,269 cells from seven healthy human heart donors (Single Cell Portal SCP498), we identified chamber-specific cell populations, communication networks, and therapeutic targets. HeartMAP employs a progressive three-tier analytical approach comprising basic pipeline analysis, advanced communication modelling and multi-chamber atlas construction to reveal both conserved and chamber-specific signalling pathways; cross-chamber correlation analysis demonstrated the highest similarity between ventricles (r = 0.985) and the lowest between left atrium and left ventricle (r = 0.870), reflecting functional specialisation. Communication hub analysis identified atrial cardiomyocytes and adipocytes as key signalling centres with hub scores of 0.037–0.047, while differential expression analysis revealed over 150 significantly different genes per chamber pair. These findings establish a molecular foundation for precision cardiology approaches, enabling chamber-specific therapeutic strategies that could improve treatment outcomes for cardiovascular diseases. HeartMAP is freely available as a Python package than can be installed using “pip install heartmap”, the package's documentation can be found on https://pypi.org/project/heartmap/, it can also be accessed via a user-friendly web interface freely available at https://huggingface.co/spaces/Tumo505/heartmap-cell-analysis.
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VALID Care Pathways : A Framework for Meaningful Digital Platform Design
(2025) Schmitz, Lisa; Richert, Elena; Jóhannsdóttir, Kamilla Rún; Arnardottir, Erna Sif; Islind, Anna Sigridur; Department of Engineering; Department of Psychology; Department of Computer Science
Despite the advancement in design, development, and use of digital platforms in general, data-driven platforms and novel use of emerging technologies in healthcare, in particular, have been lagging behind. Sleep is one of the fundamental pillars of health and the cognitive functioning connected to sleep deprivation has, to date, not been researched to a large extent. Moreover, cognitive functioning is usually measured in an in-laboratory setting, although digital measuring at-home would be beneficial. Thus, digitally measuring cognitive functioning over an extended period of time can provide valuable insights into sleep health. Based on findings from a two-year action design research project, dimensions of the design and development of a digital platform to deliver at-home measuring of cognitive functioning were explored. The digital platform was designed with the primary objective of achieving high usability while preserving the validity of relevant clinical measurements. The main contribution of this paper consists of conceptualizing and theorizing care pathways through digital platforms based on our novel findings from co-designing and evaluating the platform with professionals and 55 participants, leading to the formulation of VALID framework to inform the ongoing design and development process of digital platforms of the future.
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Synthetic 3D printed tibial plateau with gradient material properties for biomechanical accuracy
(2025) Coato, Damiano; Dolino, Gianmarco; Berardo, Alice; Belluzzi, Elisa; Pozzuoli, Assunta; Ruggieri, Pietro; Carniel, Emanuele Luigi; Gargiulo, Paolo; Department of Engineering
Introduction: This study presents the design and fabrication of a synthetic 3D printed tibial plateau, complete with tibial cartilages, developed to replicate the mechanical behavior of its natural counterpart. Methods: Patient-specific anatomical data were used to design the model, which was fabricated using advanced PolyJet™ multi-material printing. Gradient material properties were integrated within the construct to reproduce the stiffness variations observed in native cartilage. Three different material mixes were developed and tested under indentation loading, and the optimal configuration (Mix 3) was selected based on its mechanical fidelity to biological tissue. Results: Mix 3 successfully reproduced the regional stiffness variations of native tibial cartilage. The instantaneous modulus (IM) of the synthetic cartilage closely matched that of the biological sample, with values of 3.19 (Formula presented.) 1.95 (Formula presented.) vs. 3.31 (Formula presented.) 2.33 (Formula presented.) in the lateral compartment and 3.71 (Formula presented.) 1.38 (Formula presented.) vs. 3.72 (Formula presented.) 2.56 (Formula presented.) in the medial compartment. Statistical analysis confirmed that most regional comparisons showed no significant differences (p (Formula presented.) 0.05), supporting the strong mechanical agreement between synthetic and native cartilage. Conclusion: This study demonstrates the potential of Digital Anatomy materials produced with PolyJet™ technology as a viable method for 3D printing anatomically and mechanically accurate models of the human tibial plateau. Overall, this approach provides a reproducible and ethically sustainable alternative to biological specimens, with implications for preclinical testing, implant design optimization, and the advancement of high-fidelity surgical training models.

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