A click-compatible BmTyr platform for biotin-free proximity labeling and subcellular proteome profiling in primary T cells

  • Biochem Biophys Res Commun. 2026 Jul 16:822:153918. doi: 10.1016/j.bbrc.2026.153918.
Xin-Nan Zheng  1 Jing-Min Zeng  1 Han-Ying Huang  1 Chuang Zhao  1 Sheng-Suo Ma  1 Lin Feng  1 Hao Zhu  2 Lin Tian  3
Affiliations
  • 1. State Key Laboratory of Oncology in South China, Guangdong Provincial Clinical Research Center for Cancer, Sun Yat-sen University Cancer Center, Guangzhou, 510060, PR China.
  • 2. SANKEN, The University of Osaka, 8-1 Mihogaoka, Ibaraki-shi, Osaka, 567-0047, Japan.
  • 3. State Key Laboratory of Oncology in South China, Guangdong Provincial Clinical Research Center for Cancer, Sun Yat-sen University Cancer Center, Guangzhou, 510060, PR China. Electronic address: [email protected].
Abstract

Proximity labeling has revolutionized the study of dynamic subcellular proteomes by enabling the capture of transient protein interactions within living cells, yet the application of existing platforms to hard-to-transfect primary cells remains challenging. Here, we leverage a bioorthogonal proximity labeling platform based on the copper-dependent Tyrosinase BmTyr to profile subcellular proteomes in primary T cells. This system catalyzes the subcellular incorporation of an alkyne-phenol probe, enabling subsequent click-compatible conjugation to versatile azide-bearing tags for fluorescence imaging and affinity enrichment for mass spectrometry. To expand the proximity labeling toolkit, we developed a custom azide-HiBiT/His tag mixture, which enables direct, antibody-independent validation using the same alkyne-phenol labeling chemistry, coupled with efficient elution and ultrasensitive Chemiluminescent Detection for low-input samples. Applying this platform to primary T cells not only validated known nuclear components of the TNFα signaling pathway but also revealed a previously unappreciated chromatin-associated localization for NKAP, providing new mechanistic insight beyond its previously described nuclear translocation. Collectively, our work establishes a powerful and flexible tool for sensitive, context-specific proteomic mapping in challenging physiological systems.

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