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SCALE:Scalable Conditional Atlas-Level Endpoint transport for virtual cell perturbation prediction

Shuizhou Chen Lang Yu Xueqin Lin Xinjie Mao Songming Zhang Xinyu Gu Hao Wu Sheng Xu Kedu Jin Lei Bai Quan Qian Qin Chen Qiang Gao Siqi Sun Zhangyang Gao
Sep 2026
Artificial Intelligence Machine Learning

Abstract

Virtual-cell models aim to predict how cell populations respond to perturbations, but control and treated cells are measured as unpaired populations, complicating the learning of perturbation-specific effects. We present SCALE, a conditional transport model that represents cells as unordered sets and predicts treated populations without cell-level matching. A shared set-aware encoder and conditional DiT backbone learn latent transport, making endpoint supervision directly delta-aligned without an auxiliary delta objective. Across genetic, chemical, developmental and immune perturbations, SCALE recovered gene-expression changes, response directions and population structure. In CRISPR data with dominant cell-line effects, SCALE outperformed competing methods across seven metrics and maintained separation among gene-target representations rather than collapsing them into a shared region. SCALE further prioritized cytokines predicted to produce distinct immune activation and inflammatory responses. Experiments using matched PBMC samples from three donors confirmed these predicted differences. Together, SCALE enables perturbation-specific prediction from unpaired populations and supports experimental prioritization.

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