Wearable Biosensors for Glucose Monitoring in Sweat: A Patent Analysis †
Abstract
1. Introduction
2. Materials and Methods
- Patent applications or those granted using sweat as the biological fluid dedicated to the measurement of glucose levels.
- Patent applications or those granted filed in a 20-year period, starting from January 2005 and before 16 December 2024.
- Patents or patent applications pertaining to a wearable device designed for the continuous monitoring of glucose levels in sweat.
3. Results and Discussion
3.1. Academic and Industrial Research
3.2. IP Exploitation and Patented Products on the Market
- The minor reliability of the technologies based on sweat with respect to the blood sampling techniques: Even if the performances are quite good, the lack of selectivity in sweat is still shown and the sensitivity is still to be improved considering low glucose concentration, ranging from 0.02 to 0.6 mM [4], to reach the same accuracy.
- The occurrence of new long-term sensors deployed in the market: Continuous Glucose Monitoring through a small patch able to measure glucose levels in the interstitial fluid for up to 14 days is today the gold-standard reference of the technology. With this system, blood sampling is no longer required, and the mobile app can directly read the glucose levels with a simple gesture. Its reliability and simplicity of use are far from being achieved by sweat analysis devices. These systems were first introduced to the market in fall 2014. Its clinical adoption was gradual but rapidly grew for its revolution in the users’ lifestyles. With the new CGM sensor generations released to the market (today we are at the third generation), after a few years, they have become the reference devices; this is the most probable reason for the decrease in patent activity for sweat sensors after 2021.
- Medical resilience is another barrier: Doctors are quite stable in their device adoption because they have also developed efficient diabetes management strategies for categories of patients (with the possibility of customization programs) with large numbers of subjects. The availability of a new technology implies a long period of knowledge acquisition and testing with several patients before reaching the same level of awareness and efficacy in the development of customizable clinical programs.
- The regulatory constraints are the final remark to be considered: The new MDR 645/2017 regulation—entered into force in 2021 in Europe—requires more investments and activity to fulfill its obligations.
3.3. Patent Strategies and Freedom-to-Operate Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
FTO | Freedom-to-Operate search |
TAC | Title Abstract Claim |
CPC | Cooperative Patent Classification |
IPC | International Patent Classification |
PCT | Patent Cooperation Treaty |
CNTs | Carbon nanotubes |
GOx | Glucose Oxidase |
FAD | Flavin adenine dinucleotide |
rGO | Reduced Graphene Oxide |
MOF | Metal–Organic Framework |
GDH | Glucose dehydrogenase |
LIG | Laser-induced graphene |
LOx | Lactate oxidase |
Appendix A
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CPC Codes | % | Definition |
---|---|---|
A61B5/145 | 57.47% | Measuring the concentration of an analyte in a body fluid |
A61B5/14532 | 47.13% | For measuring glucose |
A61B5/14517 | 36.78% | For sweat |
G01N27/327 | 33.33% | Biochemical electrodes |
A61B5/14546 | 26.44% | For measuring analytes not otherwise provided |
A61B5/00 | 22.99% | Measuring for diagnostic purposes |
A61B5/1477 | 22.99% | Non-invasive |
A61B5/6833 | 18.39% | Adhesive patches |
A61B5/1486 | 17.24% | Using enzyme electrodes (e.g., with immobilized oxidase) |
A61B5/01 | 14.94% | Measuring temperature of body parts |
A61B5/681 | 13.79% | Wristwatch-type devices |
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Barbieri, M.; Andreoni, G. Wearable Biosensors for Glucose Monitoring in Sweat: A Patent Analysis. Eng. Proc. 2025, 106, 1. https://doi.org/10.3390/engproc2025106001
Barbieri M, Andreoni G. Wearable Biosensors for Glucose Monitoring in Sweat: A Patent Analysis. Engineering Proceedings. 2025; 106(1):1. https://doi.org/10.3390/engproc2025106001
Chicago/Turabian StyleBarbieri, Massimo, and Giuseppe Andreoni. 2025. "Wearable Biosensors for Glucose Monitoring in Sweat: A Patent Analysis" Engineering Proceedings 106, no. 1: 1. https://doi.org/10.3390/engproc2025106001
APA StyleBarbieri, M., & Andreoni, G. (2025). Wearable Biosensors for Glucose Monitoring in Sweat: A Patent Analysis. Engineering Proceedings, 106(1), 1. https://doi.org/10.3390/engproc2025106001