Comparator-Dependent Druggability and Safety of Spiro-Terpenoid Scaffolds: A Proteome-Scale Pocket-Transfer Screen

Proteome-scale screening is attractive for polypharmacology and safety assessment but is often dominated by computationally expensive docking and opaque target-prediction models. We developed a ligand-conditioned pocket-transfer workflow that combines public chemical structures, experimentally observed template ligands, and precomputed human pocket similarities. A new 60-compound dataset comprised 23 spiro-terpenoids and 37 structured controls. Morgan-fingerprint similarity, APoc pocket similarity, one bounded propagation step, 41 ADMET-AI endpoints, and a four-axis weight-robust analysis generated 1,215,300 compound–protein scores across 20,255 human proteins. Among 36 benchmark drugs with evaluable targets, the median first-target rank was 10.5; macro recall at ranks 100 and 500 was 0.148 and 0.217, or 30.0- and 8.80-fold random enrichment. NR3C2, the known eplerenone target, was unreachable and ranked 20,256, exposing a decisive coverage failure. Spiro-terpenoids showed no universal target-opportunity or composite-safety advantage over nonspiro terpenoids, whereas predicted liabilities were lower than for planar-drug controls. Khusimone combined Fsp3 0.786 with predicted hERG and DILI probabilities of 0.114 and 0.099; spirojatamol combined Fsp3 0.867 with low predicted DILI (0.028) but higher hERG probability (0.288), illustrating compound-specific trade-offs. HSD17B1, ESR2, and PXR hypotheses define a minimal orthogonal testing panel. The CPU-light, fully reproducible scores prioritize experiments rather than estimate binding affinity or clinical safety.

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Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-15
DOI
https://doi.org/10.5281/zenodo.22770001
Primary Topic
Computational Drug Discovery Methods
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article
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Comparator-Dependent Druggability and Safety of Spiro-Terpenoid Scaffolds: A Proteome-Scale Pocket-Transfer Screen

Ying Ye
Zenodo (CERN European Organization for Nuclear Research)
Computational Drug Discovery Methods
article

Comparator-Dependent Druggability and Safety of Spiro-Terpenoid Scaffolds: A Proteome-Scale Pocket-Transfer Screen

Ying Ye
article en

Abstract

Proteome-scale screening is attractive for polypharmacology and safety assessment but is often dominated by computationally expensive docking and opaque target-prediction models. We developed a ligand-conditioned pocket-transfer workflow that combines public chemical structures, experimentally observed template ligands, and precomputed human pocket similarities. A new 60-compound dataset comprised 23 spiro-terpenoids and 37 structured controls. Morgan-fingerprint similarity, APoc pocket similarity, one bounded propagation step, 41 ADMET-AI endpoints, and a four-axis weight-robust analysis generated 1,215,300 compound–protein scores across 20,255 human proteins. Among 36 benchmark drugs with evaluable targets, the median first-target rank was 10.5; macro recall at ranks 100 and 500 was 0.148 and 0.217, or 30.0- and 8.80-fold random enrichment. NR3C2, the known eplerenone target, was unreachable and ranked 20,256, exposing a decisive coverage failure. Spiro-terpenoids showed no universal target-opportunity or composite-safety advantage over nonspiro terpenoids, whereas predicted liabilities were lower than for planar-drug controls. Khusimone combined Fsp3 0.786 with predicted hERG and DILI probabilities of 0.114 and 0.099; spirojatamol combined Fsp3 0.867 with low predicted DILI (0.028) but higher hERG probability (0.288), illustrating compound-specific trade-offs. HSD17B1, ESR2, and PXR hypotheses define a minimal orthogonal testing panel. The CPU-light, fully reproducible scores prioritize experiments rather than estimate binding affinity or clinical safety.

Zenodo (CERN European Organization for Nuclear Research)
Institut de Technologie Alimentaire (SN)
Partnerships for the goals
Openalex Percentile: Top 8%
Computational Drug Discovery Methods
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Comparator-Dependent Druggability and Safety of Spiro-Terpenoid Scaffolds: A Proteome-Scale Pocket-Transfer Screen — Ying Ye · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS