In this work we propose to advance the state of the art in two-photon, three-dimensional molecular tracking and create a unique microscopy system to explore open questions in subcellular trafficking and spatial distribution of receptor tyrosine kinases (RTKs) in cancer cells. Mounting evidence indicates that EGFR (epidermal growth factor receptor, an RTK) can be shuttled from the cell surface to a variety of cellular organelles, including Golgi apparatus, ER, mitochondria, and nucleus. Clearly, EGFR serves specific biological functions while residing inside these organelles, but we have very limited knowledge of EGFR's translocation routes and the associated subcellular signaling pathways. This is mainly due to the fact that we lack proper tools that can clearly map EGFR trafficking trajectories to cellular compartments and organelles in 3D space and observe protein-protein interactions along the transport route in real time. Here we propose to integrate a uniquely designed 3D molecular tracking system with the STED (stimulated emission depletion) super-resolution imaging technique to achieve real-time, superimposed molecular trajectories of EGFRs on super-resolution images of organelles. Moreover, with protein-protein interaction analysis capability, we will be able to study EGFR trafficking accompanied by the associated proteins in real time. Information acquired from our innovative system will shed light on both receptor biology and potential therapeutic targets of anti-EGFR therapies for clinical applications. As a strategic goal for NIH, personalized medicine currently emphasizes on molecular signatures such as genetic, epigenetic and proteomic variations of individual tumors. Variations in the subcellular trafficking and distribution of RTKs within cancer cells coul also serve as an additional molecular signature for therapeutic choice, as those variations could have a dramatic impact on therapeutic efficacy.

Public Health Relevance

: Aberrant subcellular trafficking and spatial distribution of receptor tyrosine kinases (RTKs) represent a major yet underappreciated cancer development mechanism. Mapping the relationship between the spatial distribution dynamics of RTKs and cancer could yield a fundamental understanding of the mechanisms governing tumor progression and therapeutic resistance, leading to alternative treatment strategies. We are developing a new tool to unambiguously map the 3D subcellular trafficking trajectories of RTKs with intracellular compartments inside live cells or tumor spheroids in real time.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Exploratory/Developmental Grants (R21)
Project #
5R21CA193038-02
Application #
9070631
Study Section
Special Emphasis Panel (ZCA1)
Program Officer
Knowlton, John R
Project Start
2015-06-01
Project End
2018-05-31
Budget Start
2016-06-01
Budget End
2017-05-31
Support Year
2
Fiscal Year
2016
Total Cost
Indirect Cost
Name
University of Texas Austin
Department
Biomedical Engineering
Type
Biomed Engr/Col Engr/Engr Sta
DUNS #
170230239
City
Austin
State
TX
Country
United States
Zip Code
78712
Le, Victoria; Lee, Jason; Chaterji, Somali et al. (2018) Syndecan-1 in mechanosensing of nanotopological cues in engineered materials. Biomaterials 155:13-24
Li, Chia-Wei; Lim, Seung-Oe; Chung, Ezra M et al. (2018) Eradication of Triple-Negative Breast Cancer Cells by Targeting Glycosylated PD-L1. Cancer Cell 33:187-201.e10
Liu, Cong; Obliosca, Judy M; Liu, Yen-Liang et al. (2017) 3D single-molecule tracking enables direct hybridization kinetics measurement in solution. Nanoscale 9:5664-5670
Perillo, Evan P; Jarrett, Jeremy W; Liu, Yen-Liang et al. (2017) Two-color multiphoton in vivo imaging with a femtosecond diamond Raman laser. Light Sci Appl 6:
Liu, Yen-Liang; Perillo, Evan P; Liu, Cong et al. (2016) Segmentation of 3D Trajectories Acquired by TSUNAMI Microscope: An Application to EGFR Trafficking. Biophys J 111:2214-2227
Liu, Cong; Liu, Yen-Liang; Perillo, Evan P et al. (2016) Single-Molecule Tracking and Its Application in Biomolecular Binding Detection. IEEE J Sel Top Quantum Electron 22:
Perillo, Evan P; McCracken, Justin E; Fernée, Daniel C et al. (2016) Deep in vivo two-photon microscopy with a low cost custom built mode-locked 1060 nm fiber laser. Biomed Opt Express 7:324-34
Liu, C; Liu, Y-L; Perillo, E P et al. (2015) Improving z-tracking accuracy in the two-photon single-particle tracking microscope. Appl Phys Lett 107:153701
Perillo, Evan P; Liu, Yen-Liang; Huynh, Khang et al. (2015) Deep and high-resolution three-dimensional tracking of single particles using nonlinear and multiplexed illumination. Nat Commun 6:7874