Skin Interstitial Fluid-Based SERS Tags Labeled Microneedles for Tracking of Peritonitis Progression and Treatment Effect.
Rongchao MeiYunqing WangXizhen ZhaoShang ShiXiaoyan WangNa ZhouDazhong ShenQi KangLingxin ChenPublished in: ACS sensors (2023)
Skin interstitial fluid (ISF)-based microneedle (MN) sensing has recently exhibited wide promise for the minimally invasive and painless diagnosis of diseases. However, it is still a great challenge to diagnose more disease types due to the limited in situ sensing techniques and insufficient ISF biomarker sources. Herein, ISF is employed to pioneer the tracking of acute peritonitis progression via surface-enhanced Raman scattering (SERS) tags labeled MNs patch technique. Densely deposited core-satellite gold nanoparticles and 3-mercaptophenylboronic acid as a Raman reporter enable the developed MNs patch with high sensitivity and selectivity in the determination of H 2 O 2 , an indicator of peritonitis development. Importantly, the MNs patch not only reliably tracks the different states of peritonitis but also evaluates the efficacy of drugs in the treatment of peritonitis, as evidenced by the altered SERS signal consistent with plasma pro-inflammatory factor (TNF-α) and peritoneum pathological manifestations. Interestingly, the major source of H 2 O 2 in ISF of acute peritonitis investigated may not be through conventional blood capillary filtration pathway. This work provides a new route and technique for the early diagnosis of acute peritonitis and the evaluation of drug therapy effects. The developed MNs patch is promising to serve as a universal sensing tool to greatly enrich the variety and prospect of ISF-based disease diagnosis.
Keyphrases
- gold nanoparticles
- liver failure
- drug induced
- minimally invasive
- respiratory failure
- sensitive detection
- raman spectroscopy
- aortic dissection
- emergency department
- rheumatoid arthritis
- machine learning
- stem cells
- mesenchymal stem cells
- soft tissue
- pet imaging
- label free
- hepatitis b virus
- reduced graphene oxide
- high resolution
- combination therapy
- computed tomography
- quantum dots
- molecularly imprinted
- deep learning
- atomic force microscopy
- cell therapy
- artificial intelligence
- high speed
- positron emission tomography
- mechanical ventilation