Related Experiment Video
Updated: Jul 12, 2025

Conducting Multiple Imaging Modes with One Fluorescence Microscope
Published on: October 28, 2018
Multicolor fluorescence microscopy for surgical guidance using a chip-scale imager with a low-NA fiber optic plate
Abstract:
In curative-intent cancer surgery, intraoperative fluorescence imaging of both diseased and healthy tissue can help to ensure successful removal of all gross and microscopic disease with minimal damage to neighboring critical structures, such as nerves. Current fluorescence-guided surgery (FGS) systems, however, rely on bulky and rigid optics that incur performance-limiting trade-offs between sensitivity and maneuverability. Moreover, many FGS systems are incapable of multiplexed imaging. As a result, clinical FGS is currently limited to millimeter-scale detection of a single fluorescent target. Here we present a scalable, lens-less fluorescence imaging chip, VISION, capable of sensitive and multiplexed detection within a compact form factor. Central to VISION is a novel optical frontend design combining a low-numerical-aperture fiber optic plate (LNA-FOP) and a multi-bandpass interference filter, which is affixed to a custom CMOS image sensor. The LNA-FOP acts as a planar collimator to improve resolution and compensate for the angle-sensitivity of the interference filter, enabling high-resolution and multiplexed fluorescence imaging without lenses. We show VISION is capable of detecting tumor foci of less than 100 cells at near video framerates and, as proof of principle, can simultaneously visualize both tumor and nerves in ex vivo prostate tissue.
Insights
A new lens-less fluorescence imaging chip, VISION, offers sensitive, multiplexed detection for cancer surgery. This compact system can visualize tiny tumors and critical nerves, improving surgical precision.
Area of Science:
- Medical imaging
- Biomedical optics
- Surgical technology
Background:
- Current fluorescence-guided surgery (FGS) systems have limitations in sensitivity, maneuverability, and multiplexed imaging.
- Existing FGS technology is restricted to detecting single fluorescent targets at millimeter scales.
- There is a need for advanced imaging solutions to improve cancer resection and minimize damage to healthy tissues.
Approach:
- Developed a scalable, lens-less fluorescence imaging chip named VISION.
- Integrated a low-numerical-aperture fiber optic plate (LNA-FOP) with a multi-bandpass filter on a CMOS sensor.
- The LNA-FOP functions as a planar collimator, enhancing resolution and compensating for filter angle sensitivity.
Key Points:
- VISION achieves sensitive, multiplexed fluorescence imaging in a compact, lens-less design.
- The system can detect tumor foci comprising fewer than 100 cells at near video frame rates.
- Demonstrated simultaneous visualization of tumor and nerves in ex vivo prostate tissue.
Conclusions:
- The VISION chip represents a significant advancement over current FGS systems.
- This technology has the potential to enhance surgical precision and improve patient outcomes in cancer surgery.
- Further development could enable real-time, multi-target imaging during complex surgical procedures.
Related Concept Videos
Super-resolution Fluorescence Microscopy
Confocal Fluorescence Microscopy

