Rice Engineers Set Sights on Implantable 'Living Pharmacy'
May 13, 2021 | Rice UniversityEstimated reading time: 4 minutes
Five Rice University engineering laboratories are part of a $33 million national effort to develop a wireless, fully implantable device that can control the body’s circadian clock, halving the time it takes to recover from jet lag and similar disruptions to the body’s sleep/wake cycles.
Led by Northwestern University and funded by the Defense Advanced Research Projects Agency (DARPA), the project will blend bioelectronics, synthetic biology and traditional electronics to create a “living pharmacy” that produces the same peptide molecules the body naturally makes to regulate sleep cycles. The device could be a powerful tool for military personnel, who frequently travel across multiple time zones, as well as first responders and other shift workers who oscillate between overnight and daytime shifts.
Faculty in Rice’s Brown School of Engineering will lead the development of key components of the proposed technology. Omid Veiseh, assistant professor of bioengineering, will oversee the creation of engineered cells that produce the therapeutic biomolecules, and Jacob Robinson, associate professor of electrical and computer engineering, will oversee the development of the wireless bioelectronic implant that houses the engineered cells and regulates drug production.
Called NTRAIN (Normalizing Timing of Rhythms Across Internal Networks of Circadian Clocks), the project is part of DARPA’s Advanced Acclimation and Protection Tool for Environmental Readiness (ADAPTER) program to help address the challenges of travel, including jet lag, fatigue and gastrointestinal issues.
“Sleep control is something we can track while we develop this implant, but the real innovation here is being able to produce drugs inside the patient,” Veiseh said.
The NTRAIN team will engineer cells to produce peptides to regulate sleep cycles. The engineered cells will respond to light, which will be delivered via bioelectronic controls that adjust timing and dose. Veiseh, who’s leading the effort, said pharmaceutical companies often make drugs using industrial scale bioengineering.
“If we can bring all of that manufacturing right into the patient and produce high-quality compounds on an as-needed basis, the possibilities are infinite,” Veiseh said. For a start, the technology could be used to manage diabetes and other chronic diseases where people regularly inject themselves with drugs.
The implant’s power and communications will be delivered by a weak magnetic field generated by a wearable device. In a pioneering demonstration in 2020, Robinson and colleagues showed “magnetoelectric” technology could provide both power and communications for neural stimulators no larger than a grain of rice.
Robinson said the technology will provide plenty of power while enhancing device security.
“We’ll design the device so it can only communicate in the near field, meaning only over a couple of centimeters,” he said. “So you’d essentially have to be in contact with the device in order to hack it.”
Veiseh and Robinson said an additional safety feature will allow a user to deactivate the device permanently by sending a signal for the engineered cells to immediately kill themselves.
The first phase of the highly interdisciplinary program will focus on developing the implant. The second phase, contingent on the first, will validate the device. If that milestone is met, then researchers will test the device in human trials as part of the third phase. The full funding corresponds to $33 million over 4 1/2 years.
Rice electrical engineer Kaiyuan Yang will design an application-specific integrated circuit to handle back-end functions and integrate with the bioelectronic controls. Rice bioengineer Isaac Hilton will optimize the cells’ drug-making abilities, and Rice neuroengineer Caleb Kemere will test implants in rodents in the leadup to human trials.
Circadian clock research will be led by sleep experts at Northwestern’s Center for Sleep and Circadian Biology. Engineers from Northwestern, Carnegie Mellon University and Blackrock Microsystems will also develop bioelectronic components.
“This control system allows us to deliver a peptide of interest on demand, directly into the bloodstream,” said NTRAIN principal investigator Jonathan Rivnay, an assistant professor of biomedical engineering in Northwestern’s McCormick School of Engineering. “No need to carry drugs, no need to inject therapeutics and — depending on how long we can make the device last — no need to refill the device. It’s like an implantable pharmacy on a chip that never runs out.”
Robinson and Kemere are each associate professors of electrical and computer engineering and of bioengineering. Yang is an assistant professor of electrical and computer engineering, and Hilton is an assistant professor of bioengineering and of biosciences. Veiseh, Robinson, Kemere and Yang are members of the Rice Neuroengineering Initiative, and Veiseh and Hilton are CPRIT Scholars of the Cancer Prevention and Research Institute of Texas.
Other members of the NTRAIN team are Fred Turek, Martha Hotz Vitaterna, Josiah Hester, Guillermo Ameer, Peng Jiang and Phyllis Zee, all of Northwestern; Doug Weber, Tzahi Cohen-Karni, Darcy Griffin, Carl Olson and Matt Smith, all of Carnegie Mellon; Karrie Fitzpatrick of the University of Minnesota; Florian Solzbacher of the University of Utah; and Rob Franklin of Blackrock Microsystems.
Read the original article here.
Testimonial
"In a year when every marketing dollar mattered, I chose to keep I-Connect007 in our 2025 plan. Their commitment to high-quality, insightful content aligns with Koh Young’s values and helps readers navigate a changing industry. "
Brent Fischthal - Koh YoungSuggested Items
Light-curable Solutions for Reliable Electronics in Space Applications
10/15/2025 | Virginia Hogan, DymaxDesigning electronics for space environments, particularly those in low Earth orbit (LEO), requires careful consideration of materials that can withstand extreme conditions while supporting long-term reliability. Engineers designing satellite systems, aerospace instrumentation, and high-altitude platforms face a familiar set of challenges: contamination control, mechanical stress, thermal cycling, and manufacturability.
Analog Devices Launches ADI Power Studio™ and New Web-Based Tools
10/14/2025 | Analog Devices, Inc.Analog Devices, Inc., a global semiconductor leader, announced the launch of ADI Power Studio, a comprehensive family of products that offers advanced modeling, component recommendations and efficiency analysis with simulation. In addition, ADI is introducing early versions of two new web-based tools with a modernized user experience under the Power Studio umbrella:
Electronics U Expands Global Workforce Training for the Electronics Industry
10/13/2025 | Global Electronics AssociationThe Global Electronics Association unveiled Electronics U, the new name and expanded vision for its workforce training and certification platform.
Keysight Unveils 3GPP AI Simulation Platform to Accelerate AI-enabled 6G Communications
10/01/2025 | BUSINESS WIREKeysight Technologies, Inc. announced the release of WirelessPro 3GPP AI Simulation Platform (WirelessPro), a next-generation software platform designed to meet the evolving needs of wireless communication system engineers.
Fresh PCB Concepts: Investing in Tomorrow's PCB Experts Today
09/24/2025 | Team NCAB -- Column: Fresh PCB ConceptsPeople often describe the PCB industry as one of the most critical yet invisible foundations of modern electronics. Every project needs a PCB, but few college programs or engineering curricula cover the complexity of board design, stackups, or manufacturability. That means the responsibility for developing the next generation of PCB experts falls on the industry itself.