Factor analytic mixed models for national crop variety testing programs have the potential to improve industry productivity through appropriate modelling and reporting to growers of variety by environment interaction. Crop variety testing programs are conducted in many countries world-wide. Within each program, data are combined across locations and seasons, and analysed in order to provide information to assist growers in choosing the best varieties for their conditions. Despite major advances in the statistical analysis of multi-environment trial data, such methodology has not been adopted within national variety testing programs. The most commonly used approach involves a variance component model that includes variety and environment main effects, and variety by environment (V × E) interaction effects. The variety predictions obtained from such an analysis, and subsequently reported to growers, are typically on a long-term regional basis. In Australia, the variance component model has been found to be inadequate in terms of modelling V × E interaction, and the reporting of information at a regional level often masks important local V × E interaction. In contrast, the factor analytic mixed model approach that is widely used in Australian plant breeding programs, has regularly been found to provide a parsimonious and informative model for V × E effects, and accurate predictions. In this paper we develop an approach for the analysis of crop variety evaluation data that is based on a factor analytic mixed model. The information obtained from such an analysis may well be superior, but will only enhance industry productivity if mechanisms exist for successful technology transfer. With this in mind, we offer a suggested reporting format that is user-friendly and contains far greater local information for individual growers than is currently the case.
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http://dx.doi.org/10.1007/s00122-014-2412-x | DOI Listing |
Curr Top Med Chem
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Shobhaben Pratapbhai Patel School of Pharmacy & Technology Management, SVKM's NMIMS Deemed to be University, Vile Parle West, Mumbai, Maharashtra, India-400056.
The development of Hypoxia-Inducible Factor Prolyl Hydroxylase Inhibitors (HIFPHIs), such as Roxadustat (ROX), Enarodustat (ENA), Desidustat (DES), Vadadustat (VAD), Molidustat (MOL), and Daprodustat (DAP), has significant effects on anemia in chronic kidney disease. This review presents comprehensive information about the synthesis, pharmacology, and analysis of HIF-PHIs across several matrices. The literature has presented several approaches for quantifying HIF-PHIs in diverse sample matrices.
View Article and Find Full Text PDFNeurooncol Adv
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Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, Saint Louis, Missouri, USA.
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Mayo Clin Proc Innov Qual Outcomes
February 2025
Department of Medical and Molecular Genetics, Indiana University School of Medicine, Indianapolis, IN.
Objective: To determine the financial impact of Ehlers-Danlos syndromes (EDS) on patients in the United States by examining the medical expenses incurred by patients.
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J Family Med Prim Care
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Senior Resident, Department of General Medicine, Dr. Baba Saheb Ambedkar Hospital and Medical College, Rohini, New Delhi, India.
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View Article and Find Full Text PDFKidney Med
January 2025
Center for Global Health, Weill Cornell Medicine, New York, NY.
Rationale & Objective: Longitudinal research on chronic kidney disease (CKD) in sub-Saharan Africa is sparse, especially among people living with HIV (PLWH). We evaluated the incidence of CKD among PLWH compared with HIV-uninfected controls in Tanzania.
Study Design: Prospective cohort study.
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