High-Throughput Single-Cell Biochip System for Functional Interrogation of Protein Interactions in Living Cells

  • Small. 2026 May;22(30):e73336. doi: 10.1002/smll.73336.
Feng Liu  1  2 Chengbao Wu  3 Chaojuan Yang  1 Yihang Tong  1  2 Chengzheng Tai  1 Hong Sun  4 Liye Liu  3 Mengyu Du  1  2 Jiawen Zhu  1  2 Ruowen Zhang  1  2 Honglin Chen  3 Desheng Yu  1  2 Jing Zhang  1 Lingqian Chang  3 Yanli Jiao  5 Zaizai Dong  1  2
Affiliations
  • 1. School of Engineering Medicine, Beihang University, Beijing, China.
  • 2. Qingdao Research Institute, Beihang University, Qingdao, China.
  • 3. School of Biomedical Engineering, Anhui Medical University, Hefei, China.
  • 4. Beijing Chest Hospital, Capital Medical University & Beijing Tuberculosis and Thoracic Tumor Research Institute Translational Medicine Center, Beijing, China.
  • 5. Department of Biomedical Engineering, City University of Hong Kong, Hong Kong, China.
Abstract

In live cells, investigating protein-protein interactions (PPIs) with single-cell resolution provides critical insights into endogenous regulatory mechanisms underlying heterogeneous cellular behaviors, such as migration and proliferation. Conventional live-cell PPI detection techniques, which rely on the delivery of high-molecular-weight fluorescent protein-tagged plasmids into large cell populations, are constrained by low delivery efficiency and inadequate single-cell analytical capability. To address these, we report "Pixar," for protein interaction examination and real-time behavior monitoring. This platform enables efficient PPI detection in living cells through focused electric field-based delivery of peptide-tagged protein plasmids and specific probes (both delivery efficiency and cell viability > 90%), avoiding the steric interference associated with conventional bulky labeling approaches. Its high-throughput single-cell capture array allows for the dynamic profiling of the tumor-associated AKT-mTOR protein interaction in regulating heterogeneous cell migration and proliferation across thousands of individual cells. The Pixar system establishes a versatile strategy for exploring protein function and cellular behavioral phenotypes with single-cell precision.

Keywords
DNA probe; biochip; electroporation; protein interaction; single‐cell analysis.
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