BrainWatch · Transient micromachined pressure-monitoring implants for chronic brain disorders
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2019-11-01 → 2021-10-31
- EU contribution
- €157,356
- Participants
- 1
- Scheme
- MSCA-IF
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Results in brief
Transient micromachined pressure-monitoring implants for chronic brain disorders
During this two-year project, we focused on the development of a biodegradable micromachined pressure sensor specifically for intracranial pressure measurement applications. Work packages include 1) design of a micromachined pressure sensor, 2) development of a biodegradable substrate, 3) microfabrication of a pressure sensor specifically for intracranial pressure range. Unlike most other cells in our body, adult brain cells cannot divide and regrow which makes brain damages have permanent effects. The majority of the brain damage cases occur through traumatic events that blow or jolt to the head or indirectly through blockage of an artery known as stroke. Traumatic brain injury (TBI) is a major public health problem worldwide and is the most common cause of death and morbidity in young people. TBI incidence is increasing in high-income countries, especially in people aged >65. It is one of the major reasons for long-term disability and is highly associated with increased mortality. In European countries, >1.3M hospital discharges and >33K deaths related to TBI were identified in 2012 only. Currently, monitoring of TBI spans a narrow time window after the surgery followed by periodic hospital visits. Hydrocephalus is another major CBD that is excessive accumulation of cerebrospinal fluid (CSF) in the brain. It is the most common childhood brain disorder and the incidence rate of infantile hydrocephalus is 110 per 100,000 live births in a European cohort. There is no treatment for hydrocephalus and a shunt is used to drain excess fluid in the brain to the abdominal cavity. TBI and hydrocephalus require extensive care and monitoring after the patient is discharged from the hospital to prevent further damage to the brain. Intracranial pressure (ICP) is one of the most critical parameters to monitor for understanding disease progression. However, in current medical settings, post-surgical monitoring of pressure is inconsistently done, if at all. Therefore, oftentimes, abnormal pressures are not noted until the opportunity to prevent further damage to the brain has passed, making a repeat intervention required. The goal of this project is to develop implants that can monitor ICP outside hospital settings and provide important insights that could allow early diagnosis and give time for medical interventions and therapies. A transient implant was proposed in this project, by integrating biodegradable-MEMS (B-MEMS) sensor and antenna for wireless continuous ICP monitoring applications. The implant allows monitoring outside hospital settings and would lead to better diagnostics and treatment approaches without the need for implant extraction surgery and infection risk. The main results achieved during the project period are: • Multiphysics simulations were carried out by considering 1 mm2 footprint for the pressure sensor. As a conclusion design parameters were clarified and optimized for the related pressure range. • We developed a micromachining process considering standard cleanroom equipment and limitations. • We developed an electrochemical setup to obtain a porous silicon, which enables us to utilize silicon substrate as a biodegradable material. • The device was successfully fabricated in a cleanroom as a single pressure sensor and in array form to increase capacitance output per pressure input. • In vitro characterization step is ongoing.
Data: CORDIS, © European Union
Project objective
Millions of people worldwide are living with chronic brain disorder causing direct and indirect cost of 100s of billion euros for health budgets. Majority of this cost incurs during the treatment and can be eliminated by developing tools to monitor critical parameters after patients are discharged from hospital settings. Because of the absence of such technology, abnormal changes cannot be detected until the opportunity to prevent further damage to the brain has passed. Recently developments in micromachining and biodegradable materials have revolutionized sensor and drug delivery/stent industry. Advances in micromachining can be combined with the unique features of biodegradable materials to realize transient implants that do not pose infection or inflammation risk and does not require an extraction surgery. The objective of this proposal is to design, fabricate and characterize transient micromachined pressure monitoring implants capable of wireless communication for brain disorders. This technology will allow continuous monitoring outside hospital settings and development of personalized and preventative treatments which aligns with the Horizon2020 health goal of providing more effective and timely therapies. Combining biodegradability to micromachined sensors comes with challenges and limitations in design, fabrication and integration, which this proposal aims to overcome with novel approaches. Dr. Levent Beker’s expertise in micromachined and flexible sensor development combined with the expertise of the supervisor and collaborators in nano-patterning, biodegradable materials, wireless communication and neurosurgery will help to accomplish goals of the proposal. This two-year fellowship at Koc University, TR with, a secondment at ETH Zurich, CH, will help Dr. Beker to expand his scientific skill sets, develop research management skills to become an independent researcher while effectively transferring experience to host institutions.
Original text from CORDIS.
Participants
- KOC UNIVERSITY · IstanbulCoordinatorTürkiye
Links
Data: CORDIS, © European Union
