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Uechi, M.

Publications and source records attributed to Uechi, M..

2 recordsLinked to original sources

glmmDMR reveals replicate-level methylation variance as a major determinant of false-positive DMR detection

BackgroundAccurate identification of differentially methylated regions (DMRs) is fundamental to epigenomic research but remains challenging due to biological variability among replicates, heterogeneous effect sizes, and the tendency of adjacent cytosines to share similar methylation states. Many existing methods aggregate methylation measurements before statistical testing or do not explicitly account for replicate-level variability, contributing to elevated false-positive rates. ResultsWe developed glmmDMR, a DMR detection framework that combines generalized linear mixed models with a seed-based strategy for reconstructing DMRs from locally high-confidence signals while explicitly modeling replicate-level variability. Using simulated datasets with known ground-truth DMRs, we demonstrate that false-positive detections are more strongly associated with methylation variance among biological replicates than with the magnitude of methylation differences between groups. glmmDMR achieved higher precision than existing approaches while maintaining competitive recall, particularly for subtle methylation differences. Site-level modeling with beta regression provided the strongest overall performance, and seed-based region construction reduced artificial DMR fragmentation, improving recovery of true DMR boundaries and producing more contiguous, biologically interpretable DMRs. Applied to Arabidopsis thaliana ddm1 methylomes and a rice DEMETER-LIKE DNA demethylase mutant (Osdml3a-1), glmmDMR identified biologically meaningful DMRs, revealing widespread TE-associated hypomethylation and subtle TE-family-specific hypermethylation. ConclusionsReplicate-level methylation variance is an important determinant of DMR detection performance, and explicitly modeling this variance improves discrimination of biologically meaningful methylation changes from high-variance signals. By combining variance-aware statistical modeling with seed-based region construction, glmmDMR provides a robust framework for identifying contiguous, biologically interpretable DMRs across diverse methylome datasets.

genomics↗

Postoperative Automated Platelet Count and Its Predictive Factors in Dogs Undergoing Mitral Valve Repair

ObjectivesThis study aimed to describe early postoperative changes in automated platelet counts (PLT) after mitral valve repair (MVR) in dogs with myxomatous mitral valve disease (MMVD) and to identify factors associated with these changes. DesignSingle-center retrospective cohort study. AnimalsDogs with MMVD that underwent MVR from July 2022 to July 2023. After data extraction, the ten most common breeds were selected, and mixed breeds as well as breeds known for inherent platelet abnormalities (Cavalier King Charles Spaniels and Norfolk Terriers) were excluded. Measurements and Main ResultsA total of 313 dogs representing seven breeds met the inclusion criteria. PLT levels were assessed preoperatively (Day 0) and daily for 4 days postoperatively (Days 1-4). Mean (standard deviation) PLT values were 393{+/-}127 x103/{micro}L on Day 0, 159{+/-}72 on Day 1, 137{+/-}67 on Day 2, 157{+/-}87 on Day 3, and 187{+/-}104 on Day 4. Postoperative thrombocytopenia (<100 x103/{micro}L) occurred in 124 of 313 dogs during Days 1-4. In a multivariable mixed-effects model, PLT declined significantly after surgery (Day 0 to 1; {beta} = -207.17 [x103/{micro}L per day], P < 0.001) and showed a postoperative upward trend (Day 1 to 4; {beta} = 20.62 [x103/{micro}L per day], P = 0.079). Older age was associated with higher PLT; Toy Poodles and Yorkshire Terriers demonstrated lower PLT than Chihuahuas; dogs with ACVIM Stages C- D had higher PLT compared with Stage B2; lower body weight correlated with lower PLT; and intact dogs tended to have higher PLT than neutered dogs. ConclusionsPLT decreased sharply following MVR and demonstrated partial recovery within 5 days. Age, breed, clinical stage, body weight, and neuter status were associated with postoperative PLT patterns, indicating their importance for perioperative assessment and monitoring.

physiology↗