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Transcription factors (TFs) drive significant cellular changes in response to environmental cues and intercellular signaling. Neighboring cells influence TF activity and, consequently, cellular fate and function. Spatial transcriptomics (ST) captures mRNA expression patterns across tissue samples, enabling characterization of the local microenvironment. However, these datasets have not been fully leveraged to systematically estimate TF activity governing cell identity. Here, we present STAN ( S patially informed T ranscription factor A ctivity N etwork), a linear mixed-effects computational method that predicts spot-specific, spatially informed TF activities by integrating curated TF-target gene priors, mRNA expression, spatial coordinates, and morphological features from corresponding imaging data. We tested STAN using lymph node, breast cancer, and glioblastoma ST datasets to demonstrate its applicability by identifying TFs associated with specific cell types, spatial domains, pathological regions, and ligand‒receptor pairs. STAN augments the utility of STs to reveal the intricate interplay between TFs and spatial organization across a spectrum of cellular contexts.
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http://dx.doi.org/10.1101/2024.06.26.600782 | DOI Listing |
JMIR Public Health Surveill
September 2025
Department of Preventive Medicine, College of Medicine, Korea University, 73 Goryeodae-ro, Seoungbuk-gu, Seoul, 02841, Republic of Korea, 82 2-2286-1169.
Background: Scrub typhus (ST), also known as tsutsugamushi disease, is a common febrile vector-borne illness in South Korea, transmitted by trombiculid mites infected with Orientia tsutsugamushi, with rodents serving as the main hosts. Although vector-borne diseases like ST require both a One Health approach and a spatiotemporal perspective to fully understand their complex dynamics, previous studies have often lacked integrated analyses that simultaneously address disease dynamics, vectors, and environmental shifts.
Objective: We aimed to explore spatiotemporal trends, high-risk areas, and risk factors of ST by simultaneously incorporating host and environmental information.
Epidemiol Serv Saude
September 2025
Universidade Estadual do Norte do Paraná, Programa de Pós-Graduação em Enfermagem em Atenção Primária à Saúde Bandeirantes, PR, Brazil.
Objectives: To analyze the temporal trend and identify spatial clusters of breast cancer mortality in Paraná state between 2012 and 2021.
Methods: This was a time series study, with spatial analysis of breast cancer mortality rates in the 399 municipalities of Paraná. Data were selected from the Mortality Information System.
Cien Saude Colet
August 2025
Programa de Pós-Graduação em Ciências da Saúde, Universidade do Sul de Santa Catarina. Av. José Acácio Moreira 787, Humaitá. 88704-900 Tubarão SC Brasil.
The aim is to review the temporal trend and spatial distribution of reported cases of sexual violence in Brazil from 2013 to 2022. This is a mixed ecological study, descriptive of multiple groups, with a temporal trend analysis. Notifications of sexual violence from the Information System for Notifiable Diseases were reviewed.
View Article and Find Full Text PDFCien Saude Colet
August 2025
Faculdade de Farmácia Odontologia e Enfermagem, Universidade Federal do Ceará. Fortaleza CE Brasil.
Population-based studies related to pre-eclampsia are scarce. The aim was to analyze the spatial and temporal distribution of deaths due to pre-eclampsia in Brazil from 2009 to 2020, characterizing the sociodemographic profile, distribution pattern, and presence of spatio-temporal clusters. It involved an ecological, population-based study using the Brazilian territory as the unit of analysis.
View Article and Find Full Text PDFPhys Rev Lett
August 2025
University of Southern Denmark, Centre for Nano Optics, Campusvej 55, Odense M DK-5230, Denmark.
Controlling the spontaneous emission of nanoscale quantum emitters (QEs) is crucial for developing advanced photon sources required in many areas of modern nanophotonics, including quantum information technologies. Conventional approaches to shaping photon emission are based on using bulky configurations, while approaches recently developed in quantum metaphotonics suffer from limited capabilities in achieving desired polarization states and directionality, failing to provide on-demand photon sources tailored precisely to technological needs. Here, we propose a universal approach to designing versatile photon sources using on-chip QE-coupled meta-optics that enable direct transformations of QE-excited surface plasmon polaritons into spatially propagating photon streams with arbitrary polarization states, directionality, and amplitudes via both resonance and geometric phases supplied by scattering meta-atoms.
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