Study-Registry_04-2026 / data /registry.json
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[
{
"title": "SPHERE-I-SCIENCE",
"sphere": "science",
"track": "Root sphere repo",
"entryType": "repository",
"status": "active",
"summary": "Computational science research across oncology, plant science, metabolomics, neuroscience, ecology, and life systems.",
"tags": [
"science",
"root sphere repo",
"s",
"repository",
"sphere-i-science",
"computational",
"oncology"
],
"links": [
{
"label": "Repo",
"href": "https://github.com/K-RnD-Lab/SPHERE-I-SCIENCE"
},
{
"label": "README",
"href": "https://github.com/K-RnD-Lab/SPHERE-I-SCIENCE/blob/main/README.md"
}
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"validationStage": "taxonomy"
},
{
"title": "S1 Biomedical And Oncology",
"sphere": "science",
"track": "S1",
"entryType": "lane",
"status": "active",
"summary": "S1 is the biomedical and translational oncology block inside SPHERE-I-SCIENCE.",
"tags": [
"science",
"s1",
"s",
"lane",
"biomedical",
"oncology",
"translational"
],
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"href": "https://github.com/K-RnD-Lab/SPHERE-I-SCIENCE/blob/main/S1%20%E2%80%94%20%F0%9F%A9%BA%20%20Biomedical%20%26%20Oncology/README.md"
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{
"title": "OpenVariant: An Open-Source Variant Pathogenicity Classifier Benchmarked Against AlphaMissense",
"sphere": "science",
"track": "S1-A-R1",
"entryType": "study",
"status": "active",
"summary": "Model performance: AUC-ROC = 0.942 (XGBoost, target 0.939) | AUC-ROC = 0.935 (AlphaMissense placeholder, target 0.934) | Dataset: N = 1,804 (⚠ SIMULATED)",
"tags": [
"science",
"s1-a-r1",
"s+t",
"research-tool",
"openvariant",
"open-source",
"variant"
],
"links": [
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{
"title": "Identification of Tumor Suppressor miRNAs Silenced in BRCA2-Mutant Breast Cancer: A Multi-Dataset Meta-Analysis",
"sphere": "science",
"track": "S1-B-R1",
"entryType": "study",
"status": "active",
"summary": "Model performance: 25 significant DE miRNAs identified (padj ≤ 0.05, |log2FC| ≥ 0.3) | Dataset: N = 300 (13 BRCA2-mutant, 287 wildtype) — ⚠️ SIMULATED DATA",
"tags": [
"science",
"s1-b-r1",
"s",
"hypothesis",
"identification",
"tumor",
"suppressor"
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"links": [
{
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"validationStage": "exploratory"
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{
"title": "Computational Identification of siRNA Synthetic Lethal Targets in TP53-Mutant Lung Adenocarcinoma",
"sphere": "science",
"track": "S1-B-R2",
"entryType": "study",
"status": "active",
"summary": "Pipeline validation: PLK1 and CDK1 recovered as positive clinical controls | Dataset: N = 566 (295 TP53-mut + 271 WT) [SIMULATED]",
"tags": [
"science",
"s1-b-r2",
"s+e+t",
"research-tool",
"computational",
"identification",
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],
"links": [
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"validationStage": "prototype"
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{
"title": "lncRNA Regulatory Networks Controlling TREM2-Dependent Microglial Inflammation: Implications for Alzheimer's Therapy",
"sphere": "science",
"track": "S1-B-R3",
"entryType": "study",
"status": "active",
"summary": "Data type: Simulated iPSC-derived microglia RNA-seq (TREM2-KO vs WT) | Dataset: 2 independent simulated datasets × 12 samples each (not biological replicates of one another)",
"tags": [
"science",
"s1-b-r3",
"s",
"hypothesis",
"lncrna",
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"href": "https://github.com/K-RnD-Lab/SPHERE-I-SCIENCE/blob/main/S1%20%E2%80%94%20%F0%9F%A9%BA%20%20Biomedical%20%26%20Oncology/S1-B%20%C2%B7%20%F0%9F%94%AC%20PHYLO-RNA/S1-B-R3%20%C2%B7%20lncRNA%20%2B%20ASO/R3a-lncrna-trem2/README.md"
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{
"title": "Computational Discovery of Small Molecules Targeting FGFR3 mRNA for Bladder Cancer",
"sphere": "science",
"track": "S1-C-R1",
"entryType": "study",
"status": "active",
"summary": "Model performance: Top-2 RNA-binding score = 0.793 / 0.789 (SIMULATED) | Dataset: N = 200 compounds (SIMULATED virtual screen)",
"tags": [
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{
"title": "Machine Learning Prediction of Protein Corona Composition in Lipid Nanoparticles from Physicochemical Properties",
"sphere": "science",
"track": "S1-D-R1",
"entryType": "study",
"status": "active",
"summary": "Model performance: Macro-OvR AUC = 0.791 (reported) / 0.836 [SIMULATED-CIRCULAR] | Dataset: N = 19,200 (LNPDB, simulated for this demo)",
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{
"title": "Machine Learning Prediction of Protein Corona Composition in Lipid Nanoparticles from Physicochemical Properties",
"sphere": "science",
"track": "S1-D-R2",
"entryType": "study",
"status": "active",
"summary": "Model performance: XGBoost AUC = 0.877 (5-fold CV, simulated; target spec: 0.791) | Corona PoC AUC = 0.834 (LOOCV) | Dataset: N = 19,200 (SIMULATED)",
"tags": [
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{
"title": "Predicting Protein Corona Remodeling in Lipid Nanoparticles Under Physiological Flow: Closing the Static-Dynamic Gap",
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"track": "S1-D-R2",
"entryType": "study",
"status": "active",
"summary": "Model performance: RF Train R² = 0.781 | LOOCV R² = −0.281 (underpowered, N=32) | Dataset: N = 32 matched pairs (SIMULATED)",
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"validationStage": "prototype"
},
{
"title": "Ionizable Lipid Properties Predicting ApoE Enrichment in LNP Protein Corona for Blood-Brain Barrier Crossing in Glioblastoma",
"sphere": "science",
"track": "S1-D-R3",
"entryType": "study",
"status": "active",
"summary": "Model performance: LOO-CV R² = 0.542 (overall; dominated by lipid-type confound — within-group ionizable R²=−1.571), Pearson r = 0.780, MAE = 4.9% | Dataset: N = 22 (SIMULATED — literature-grounded ranges)",
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],
"links": [
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"href": "https://github.com/K-RnD-Lab/SPHERE-I-SCIENCE/blob/main/S1%20%E2%80%94%20%F0%9F%A9%BA%20%20Biomedical%20%26%20Oncology/S1-D%20%C2%B7%20%F0%9F%A7%AA%20PHYLO-LNP/S1-D-R3%20%C2%B7%20Brain%20BBB/R3a-lnp-bbb/README.md"
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},
{
"title": "AutoCorona: An NLP Pipeline for Automated Extraction of LNP Protein Corona Data from Scientific Literature",
"sphere": "science",
"track": "S1-D-R4",
"entryType": "study",
"status": "active",
"summary": "Model performance: F1 = 0.71 (proteinsource) | Dataset: N = 43 entries (22 GS + 21 new)",
"tags": [
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"s1-d-r4",
"s+t",
"research-tool",
"autocorona",
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],
"links": [
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},
{
"title": "K R&D Lab — LNP Corona Research Projects",
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"track": "S1-D-R4",
"entryType": "study",
"status": "active",
"summary": "![Demo](https://huggingface.co/spaces/K-RnD-Lab/Learning-Playground03-2026)",
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"title": "Machine Learning Prediction of Protein Corona Composition in Lipid Nanoparticles from Physicochemical Properties",
"sphere": "science",
"track": "S1-D-R4",
"entryType": "study",
"status": "scaffold",
"summary": "Model performance: XGBoost AUC = 0.791 (5-fold CV) | Dataset: N = 19,200 transfection records",
"tags": [
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},
{
"title": "Machine Learning Prediction of LNP Transfection Efficacy from Physicochemical and Formulation Features",
"sphere": "science",
"track": "S1-E-R1",
"entryType": "study",
"status": "active",
"summary": "Model performance: XGBoost AUC = 0.782 (5-fold CV) | Dataset: N = 19,200 (SIMULATED — based on LNPDB statistics)",
"tags": [
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],
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