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Updated: Dec 23, 2025

Real-time Live Imaging of T-cell Signaling Complex Formation
Published on: June 23, 2013
Lattice complex assembled by noncompetitive anti-EGFR antibodies regulates actin cytoskeletal reorganization
Dianshuai Huang1, Tianqi Lu1, Xingyu Du1
11Institute of Frontier Medical Science, Jilin University, No.1163 Xinmin Street, Changchun, 130021 Jilin People's Republic of China.
Background:
Recent evidence of clinical trials highlights that the combination of two noncompetitive anti-EGFR antibodies can benefit patients with several cancers. Previous studies propose that a lattice complex assembled by antibodies and EGFR down-regulates surface EGFR by rapid internalization of the complex. However, there remains a paucity of evidence and understanding on the existence of a lattice complex on cell surface and its cellular processes of internalization.
Methods:
Herein, we used three dimensions structured illumination microscopy to directly observe the actual morphology of the lattice complex formed on Hela cell membrane after noncompetitive anti-EGFR antibody combinations, and we explored the internalized mechanism of noncompetitive antibody combinations by constructing a PIP2 consumption system.
Result:
We observed the lattice complex (length > 1 μm) on the surface of living cell after preincubation with Cetuximab and H11, but combination of Cetuximab and single domain antibody 7D12 fails to assemble the lattice, these results demonstrates the importance of symmetrical structure of conventional antibody for lattice formation. Interestingly, the lattice complex assembles along with cytoskeletal fibers, and its internalization recruits a large amount of PIP2 and triggers the rearrangement of F-actin.
Conclusions:
The above data suggests that large-size lattice complex affects membrane fluidity and dynamic reorganization of cytoskeletal, which may be responsible for its rapid internalization. These new insight will aid in current rational combination design of anti-EGFR antibodies.
Insights
Noncompetitive anti-EGFR antibodies form large lattice complexes on cell surfaces, driving rapid internalization. This finding is crucial for designing effective anti-EGFR antibody combinations for cancer therapy.
Area of Science:
- Cell Biology
- Immunology
- Cancer Research
Background:
- Clinical trials show benefits of combining noncompetitive anti-EGFR antibodies in cancer treatment.
- Previous studies suggest antibody-EGFR lattice complexes down-regulate EGFR via internalization.
- Understanding of lattice complex formation and internalization mechanisms is limited.
Purpose of the Study:
- To directly visualize the morphology of anti-EGFR antibody-formed lattice complexes on cell membranes.
- To investigate the internalization mechanism of these antibody complexes.
Main Methods:
- Utilized 3D structured illumination microscopy to observe lattice complex morphology.
- Employed a PIP2 consumption system to explore internalization mechanisms.
Main Results:
- Observed lattice complexes (>1 μm) formed by Cetuximab and H11 on Hela cell membranes.
- Demonstrated the necessity of symmetrical antibody structure for lattice formation.
- Found lattice complex assembly along cytoskeletal fibers, recruiting PIP2 and triggering F-actin rearrangement during internalization.
Conclusions:
- Large lattice complexes impact membrane fluidity and cytoskeletal dynamics, facilitating rapid internalization.
- These insights support rational design of anti-EGFR antibody combinations for improved cancer therapy.
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