A Wireless, Multicolor Fluorescence Image Sensor Implant for Real-Time Monitoring in Cancer Therapy

Micah Roschelle1, Rozhan Rabbani1, Surin Gweon1

  • 1Department of Electrical Engineering and Computer Sciences, University of California at Berkeley, Berkeley CA 94720 USA.

Arxiv
|July 9, 2024
PubMed

Insights

A new wireless, implantable sensor enables real-time, multicolor fluorescence imaging deep within tissue. This technology can monitor immune cells and assess cancer immunotherapy response, advancing personalized medicine.

Area of Science:

  • Biomedical Engineering
  • Optical Imaging
  • Medical Devices

Background:

  • Real-time monitoring of biological processes is crucial for understanding disease and treatment efficacy, particularly for cancer immunotherapy with suboptimal response rates.
  • Current imaging techniques lack the necessary molecular contrast, resolution, and chronic usability for timely assessment of treatment response.
  • Advanced imaging tools are needed to provide rapid and accurate insights into therapeutic outcomes.

Purpose of the Study:

  • To develop a fully wireless, miniaturized image sensor for deep-tissue multicolor fluorescence imaging.
  • To enable real-time monitoring of dynamic biological processes, including immune cell activity.
  • To assess the potential for guiding personalized medicine by evaluating therapeutic response.

Main Methods:

  • A 2.5×5 mm2 CMOS integrated circuit was designed for wireless operation via ultrasound (US) at 5 cm depth.
  • The sensor harvests energy using incident US power and backscatters data at 13 kbps with a low bit error rate.
  • In-situ fluorescence excitation is achieved using micro-laser diodes, and an optical frontend enables three-color imaging with high excitation blocking.

Main Results:

  • The wireless sensor achieved deep-tissue imaging at 5 cm depth with <125 μm resolution.
  • Dual-color fluorescence imaging of effector and suppressor immune cells was demonstrated in ex vivo mouse tumor samples.
  • The system successfully operated wirelessly, harvesting energy and transmitting data with high fidelity.

Conclusions:

  • The developed wireless fluorescence imaging sensor shows significant promise for real-time monitoring of biological processes.
  • This technology can provide rapid insights into therapeutic response and resistance in cancer immunotherapy.
  • The findings support the potential of this device for guiding personalized medicine strategies.

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