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In association with cases of Dengue Haemorrhagic Fever (DHF), Indonesia's Breteau Index has consistently fallen below the national standard of 95% over the past 12 years (2007-2019). Currently, the country relies on survey methods to map DHF spread, but these methods are costly and require substantial resource support since monitoring DHF cases necessitates considering both spatial and temporal aspects. As an alternative, we proposed a pilot study utilizing a localized version of the hierarchical Bayesian spatiotemporal conditional autoregressive model (LHBSTCARM) to predict the DHF cases in Makassar City, Indonesia. Using this approach, we examined the relationship between DHF and the normalized difference built-up index (NDBI), the Normalized Difference Vegetation Index (NDVI), and the Normalized Difference Water Index (NDWI) that were downloaded from the Sentinel-2 satellite. Based on these datasets, we identified an optimal LHBSTCARM model that classified areas in Makassar City into distinct spatial risk groups based on the likelihood of dengue occurrence. Specifically, the model identified four districts with low relative risk, one with high relative risk and the remaining districts with moderate relative risk. Incorporating covariates, the model also revealed that NDVI and NDWI were significant predictors for dengue outbreaks, whereas NDBI was not. Both significant covariates showed negative effects, with a one-unit increase in NDVI and NDWI associated with reductions in DHF cases by 84.5% and 81.5%, respectively. Thus, NDVI and NDWI are the environmental variables of choice for the prediction of DHF incidence.
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http://dx.doi.org/10.4081/gh.2025.1379 | DOI Listing |
Mov Disord
September 2025
University Medical Center Göttingen, Department of Experimental Neurodegeneration, Center for Biostructural Imaging of Neurodegeneration, Göttingen, Germany.
Background: Parkinson's disease (PD) is a complex multifactorial disorder with a genetic component in about 15% of cases. Multiplications and point mutations in SNCA gene, encoding α-synuclein (aSyn), are linked to rare familial forms of PD.
Objective: Our goal was to assess the clinical presentation and the biological effects of a novel K58N aSyn mutation identified in a patient with PD.
BMC Oral Health
August 2025
Faculty of Dentistry, Cukurova University, Adana, Turkey.
Background: Implant surgery in the maxilla, particularly in regions with D3-D4 bone quality, poses significant challenges due to the low-density nature of the bone. In such cases, clinicians often need to deviate from standard drilling protocols recommended by implant manufacturers to optimize primary stability. These modifications may include omitting the use of a countersink drill or ending the osteotomy preparation one step earlier, based on the clinical judgement of the operator.
View Article and Find Full Text PDFCatheter Cardiovasc Interv
August 2025
Shiraz University of Medical Sciences, Shiraz, Iran.
Background: The association between patent foramen ovale (PFO) and cerebrovascular events and major adverse cardiovascular events (MACE) is less explored.
Aims: This study evaluates the effectiveness of PFO closure versus non-closure on the risk of MACE and cerebrovascular events in patients with or without a CVA history.
Methods: This retrospective cohort study included patients diagnosed with PFO who were younger than 60 years old and referred to the Professor Kojuri Cardiovascular Clinic between 2010 and 2023.
Geospat Health
July 2025
Statistics and Data Science Study Program, School of Data Science, Mathematics, and Informatics, IPB University, Dramaga, Bogor.
In association with cases of Dengue Haemorrhagic Fever (DHF), Indonesia's Breteau Index has consistently fallen below the national standard of 95% over the past 12 years (2007-2019). Currently, the country relies on survey methods to map DHF spread, but these methods are costly and require substantial resource support since monitoring DHF cases necessitates considering both spatial and temporal aspects. As an alternative, we proposed a pilot study utilizing a localized version of the hierarchical Bayesian spatiotemporal conditional autoregressive model (LHBSTCARM) to predict the DHF cases in Makassar City, Indonesia.
View Article and Find Full Text PDFAnal Chem
July 2025
Spectroscopic and Sensing Devices Research Group, National Electronics and Computer Technology (NECTEC), National Science and Technology Development Agency (NSTDA), Pathum Thani 12120, Thailand.
This study introduces a novel approach to dengue diagnostics by leveraging surface-enhanced Raman spectroscopy (SERS) coupled to machine learning. This method addresses the critical need for rapid and accurate identification of dengue virus (DENV) infection and prediction of the disease severity. For the first time, a commercialized SERS substrate is applied to analyze plasma samples from 60 pediatric patients, equally distributed among other febrile illnesses (OFI), dengue fever (DF), and dengue hemorrhagic fever (DHF) cases.
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