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Alarcon, J.

Publications and source records attributed to Alarcon, J..

2 recordsLinked to original sources

Integrated histopathologic modeling of detailed tumor subtypes and actionable biomarkers

Accurate cancer subtyping with accompanying molecular characterization is critical for precision oncology. While machine learning approaches have been applied to both digital pathology and cancer genomics, previous work has been limited in sample size and has typically aggregated granular cancer subtypes into coarse groupings, likely obfuscating informative molecular and prognostic associations and phenotypic variation of more detailed tumor subtypes. Accordingly, we collated 378,123 hematoxylin and eosin (H&E)-stained whole-slide images (WSIs) with matched targeted DNA clinical sequencing results and OncoTree detailed cancer subtypes from a real-world cohort of 71,142 patients. Using this scaled, granular dataset and a cancer subtype knowledge graph, we developed Mosaic: a family of calibrated machine learning models using H&E WSI embeddings to classify tumors and identify molecular phenotypes across 163 detailed subtypes. The cancer subtyping module (Aeon) achieved an area under the receiver operating characteristic curve (AUROC) of 0.992 overall, with 161/163 subtypes reaching an AUROC [≥] 0.90 and improved performance over a state-of-the-art genomics-based classifier. The genomic inference module (Paladin) achieved an AUROC [≥] 0.80 for 167 pairs of detailed subtypes and genomic targets. We further used the learned histopathologic representations to i) identify key associations of the histopathologic embeddings with clinical biomarkers; ii) identify unsupervised sub-clusters of tumors with genomic determinants of tumor phenotype; iii) specify granular diagnoses for cancers of unknown primary, evaluated by genomic associations and expected clinical outcome distributions; iv) annotate functional significance for variants of uncertain significance (VUS); and v) identify cases that mimic the phenotypic effect of known DNA variants on H&E in the absence of detectable DNA alterations. Taken together, this work advances our understanding of phenotypic variation of granular tumor subtypes, their relevance to enhanced diagnostics, and their potential utility in risk stratification with multimodal machine learning in cancer.

cancer biology↗

Spatiotemporal distribution and species diversity of pathogenic Vibrios in estuarine recreational waters of southeast Louisiana

Vibrio bacteria occur naturally in brackish water and can cause illnesses through recreational water exposure. Vibrio infections have shown a notable increase in recent years worldwide. In this study, bacterial culture and molecular methods were used to assess the prevalence and diversity of Vibrio species in the estuary of Lake Pontchartrain, the second largest inland brackish body in the United States. Water samples (n= 101) were collected from 9 recreational sites from November 2023 to November 2024. During the summer months (June, July, and August), the average Vibrio species. concentration was 5.2 x 104 colony-forming unit (CFU)/L. While in the winter months (December, January, and February), the average Vibrio spp. concentration was 3.2 x 103 CFU/L. Likewise, the temperature differed between summer and winter, with the average water temperatures being 30.39 {degrees}C and 14.45 {degrees}C, respectively. Linear modelling showed water temperature and salinity were found to be significant (p < 0.05) predictors of Vibrio concentrations from both culture methods and quantitative PCR, while precipitations were only significant for bacterial culture. The toxR genes of Vibrio cholerae, Vibrio vulnificus, and Vibrio parahaemolyticus persisted throughout the year, and 14.8% (n=9) of sequenced samples were identified as the O139 serotype of V. cholerae. Bacterial isolate sequencing revealed more than 100 Vibrio species in the lake with V. cholerae, V. vulnificus, and V. mimicus making up the largest proportion of the community. Continuous environmental monitoring of Vibrio is warranted in informing public health preparedness and expanding our understanding of the ecology of this pathogen. ImportanceGlobally, the diverse bacterial genus Vibrio is an important group of pathogens in coastal water environments. These bacteria are responsible for waterborne and seafood-borne illnesses as well as skin infections from recreational activities. Despite the rising incidence of Vibrio infections, routine monitoring of Vibrio species (spp.) in the environment remains limited. This gap hinders our understanding of their distribution, especially in estuarine areas, and potential public health risks linked to recreational activities. This study employed multiple techniques including bacterial culture, quantitative PCR, and genome sequencing to assess the prevalence, distribution, and diversity of Vibrios in the estuary. This study shows that Vibrio cholerae were prevalent in recreational water of a non-endemic region. The findings underscore the need for regular monitoring of Vibrio levels in recreational water and educating the public on the risks.

microbiology↗