Benno Schwikowski

27 posts

Benno Schwikowski

Benno Schwikowski

@bennos

Researcher in #SystemsBiology at @InstitutPasteur

Paris, France Katılım Aralık 2008
77 Takip Edilen101 Takipçiler
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Biology+AI Daily
Biology+AI Daily@BiologyAIDaily·
Comparative evaluation of feature reduction methods for drug response prediction @SciReports 1. This study is the first to compare nine feature reduction (FR) methods for drug response prediction (DRP) on cell line and tumor transcriptomes, using over 6,000 machine learning (ML) model runs for robust analysis. 2. A key finding is that Transcription Factor (TF) activities outperform other FR methods on tumor data, distinguishing sensitive from resistant tumors for seven out of 20 drugs tested. 3. The researchers analyzed both knowledge-based methods (e.g., pathway and TF activities) and data-driven approaches (e.g., principal components), providing a broad perspective on FR for DRP. 4. Ridge regression emerged as the most effective ML model across all FR methods, highlighting its ability to handle correlated gene expression data. 5. Cross-validation on cell lines showed that sparse principal components and drug pathway genes performed best, while tumor validation emphasized the robustness of TF activities. 6. The study revealed that effective FR methods often depend on the drug and dataset type, underlining the need for tailored approaches in DRP. 7. TF activities proved to be a compact and interpretable representation of functional cellular states, bridging biological relevance and predictive accuracy in tumor DRP. 8. The findings emphasize the importance of robust FR methods to address the dimensionality challenges in molecular profiling, paving the way for precision medicine. @bennos @janbaumbach @behnam_bme @Faren_FIR 💻Code: github.com/faren-f/FS4DRP… 📜Paper: nature.com/articles/s4159… #DrugResponsePrediction #MachineLearning #FeatureReduction #CancerResearch #PrecisionMedicine
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Tirosh Lab
Tirosh Lab@TiroshLab·
Excited to share our preprint on pan-cancer analysis of intra-tumor heterogeneity (ITH), led by Avishai Gavish and Mike Tyler. After exploring ITH in small patient cohorts, we now curated scRNA-seq data from >1,000 tumors to broadly define ITH patterns. biorxiv.org/content/10.110…
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Olli Carpen
Olli Carpen@OlliCarpen·
Pleased to inform that our 1st @deciderproject article is published. Fascinating what AI can achieve @precisionpathology. Artificial intelligence-based image analysis can predict outcome in high-grade serous carcinoma via histology alone disq.us/t/41hgk1e
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Sampsa Hautaniemi
Sampsa Hautaniemi@Sampsa_H·
I am grateful to EU #H2020 for supporting our #ovariancancer research. The main goals of @deciderproject are 1) understand mechanisms causing chemoresistance in #ovariancancer patients and 2) deliver tools for personalized diagnosis and treatment options.
Deciderproject@deciderproject

Excited to announce the new #EU #H2020 funded #DECIDERproject where experts from 14 organizations across Europe work together to improve diagnostics and treatment of #ovariancancer with the help of #AI #WorldCancerDay @amchelsinki helsinki.fi/en/news/health…

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Chris Evelo
Chris Evelo@Chris_Evelo·
Interesting new Sage-DREAM challenge to find the (best method to find) the networks (not just the genes) involved in BREAST cancer #sagecon
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