Dissecting Discoidin Domain Receptor 2 Dynamics in Fibrosis with a Programmable Collagen-Mimetic Probe

  • ACS Nano. 2026 Jun 23;20(24):17518-17535. doi: 10.1021/acsnano.6c04093.
Yinghua Liu  1 Xufei Wang  1 Xiaotong Ma  1 Lu Huang  1 Penghui Yang  2 Tao Li  1  3 Wenjun Wu  1 Daoning Zhou  1 Jin Su  2 Yang Li  1
Affiliations
  • 1. Guangdong Provincial Engineering Research Center of Molecular Imaging, Guangdong-Hong Kong-Macao University Joint Laboratory of Interventional Medicine, the Fifth Affiliated Hospital, Sun Yat-sen University, Zhuhai, Guangdong 519000, China.
  • 2. State Key Laboratory of Respiratory Diseases, National Clinical Research Center for Respiratory Diseases, Guangzhou Institute of Respiratory Health, The First Affiliated Hospital of Guangzhou Medical University, Guangzhou, Guangdong 510000, China.
  • 3. Department of Cardiovascular Surgery, the Fifth Affiliated Hospital, Sun Yat-sen University, Zhuhai, Guangdong 519000, China.
Abstract

Collagen receptors orchestrate vital extracellular matrix signaling, yet the inability to distinguish functional receptor activation from mere expression in real-time has obscured our understanding of fibrotic progression. Here, we develop a fluorescent triple-helical collagen-mimetic peptide (CMP) probe, [GVMGFO]3, designed to selectively target the ligand-engaging conformation of Discoidin Domain Receptor 2 (DDR2)─the sole receptor tyrosine kinase family that signals Collagen. In pulmonary fibrosis, this probe identifies active fibrotic niches in vivo and directly tethers to disease-driving activated fibroblasts to enable precise ex vivo mapping, all without perturbing baseline signaling. Utilizing this tool, we decipher the long-standing mystery of DDR2's characteristically slow, hours-long activation kinetics. We reveal that while monomeric Collagen engagement fails to override constitutive DDR2 internalization, supramolecular fibrillar Collagen provides a multivalent physical anchor that arrests DDR2 trafficking at the cell-matrix interface to sustain receptor clustering and phosphorylation. To recapitulate this biophysical requirement, we engineered Zn2+-coordinated supramolecular assemblies of a histidine-modified CMP, [H-GVMGFO-H]3, triggering rapid DDR2 activation within minutes. Our work transforms CMPs from structural models of Collagen into programmable chemical tools for dissecting the spatiotemporal dynamics of collagen-receptor interplay, offering a platform for imaging and modulating fibrotic disease.

Keywords
cell-collagen signaling; fibrillar activation; live-cell imaging; precision-cut lung slices; pulmonary fibrosis imaging; targeted cellular profiling.
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