HEИндивидуална стипендия2023–2025

SERSET · SERS –tweezers enhanced by electro-thermo-plasmonic flow

„Хоризонт Европа“ — Действия „Мария Склодовска-Кюри“

Период
2023-02-01 → 2025-05-31
Финансиране от ЕС
165 313 €
Участници
2
Схема
HORIZON-TMA-MSCA-PF-EF

Линиите свързват координатора с партньорите.

Накратко на български

Нов метод с лазерни пинсети и графен се тества за точно измерване на нивата на допамин в мозъка. Това е важно, за да се разбере по-добре механизмът на заболявания като депресия и болест на Паркинсон.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

SERS –tweezers enhanced by electro-thermo-plasmonic flow

According to World Health Organization, 300 million people around the world are now suffering from depression and 10 million people are affected with Parkinson’s disease, which stems from the deficient release of dopamine in the human brain. However, precise quantification of dopamine secretion in the live human brain remains speculative because of the lack of a consistent technique to estimate dopamine neurotransmission. Therefore, precise quantification of dopamine neurotransmission in-vivo is the call of the time. In the present proposal, the experienced researcher (ER) would like to offer an opto-mechanical route to decipher the long-standing problem of dopamine detection by graphene oxide substrate sheets (GNGO’s). The present approach aims at taking advantage of the lattice defects present in graphene oxide (GO) sheets, where localized surface plasmons generate very intense electric fields, dramatically increasing the scattering signal coming from adsorbed and nearby molecules4. Such signals could be harnessed easily through surface-enhanced Raman spectroscopy (SERS). To incorporate this, the ER proposes to controllably bring GNDs close to the plasmonic pit holes on GO optomechanically using laser tweezers Raman spectroscopy (LTRS), creating a strong electromagnetic coupling that will boost the sensitivity towards dopamine. It has been anticipated that the effect will be sufficient to monitor the Raman shifts due to minute changes in dopamine concentration. In addition, we will explore how the local concentration of dopamine (or any other substance of interest) can be locally increased by inducing electro-thermo-plasmonic (ETP) flow taking advantage of the temperature gradient generated by the heat released at the hotspot. The project “SERS –tweezers enhanced by ElectroThermoplasmonic flow” (SERSET) promotes a simple, cost-effective, non-invasive and reproducible protocol to scale dopamine level. Available techniques for dopamine sensing largely rely on SERS, fluorometric, electrochemical and colourimetric principles. Through a vigorous survey of the literature, Scheme 1 represents the state-of-the-art in dopamine sensing, considering the five most efficient sensing protocols from all the aforementioned techniques, where the negative logarithm of limit of detection (LOD) is taken as the sensitivity parameter. Scheme 1 shows that sensors based on SERS are the most sensitive, and the proposed protocol aims to increase the sensitivity and reproducibility further with concerted electro-thermo-plasmonic (ETP) flow through LTRS. Therefore, the project SERSET aims to go beyond the current state-of-the-art methodology in terms of selectivity and consistency of SERS data, which has been a challenge for the past couple of decades. Table 1 elicits the gaps in state-of-the-art and innovative aspects of SERSET, which consists of the following staircase of objectives: O1. The first objective is to synthesize GNGOs with DNA aptamer functionalized gold nanoparticles. Next, the optical signature of pristine GNGO through LTRS and emission spectroscopy will be studied as a function of the distance between gold monomers. Comparing the shift in SERS signal with the concentration of dopamine, a scale for the quantification of dopamine could be obtained, which has been depicted in work package 1 (WP 1). In the next work package (WP 2), ETP flow will be introduced to enhance the sensitivity of GNGO by employing a suitable AC electric field. The ER will acquire hands-on experience in state-of-the-art technology, increasing their core research skills. O2. The next question naturally arises: what is the effect of GND distance on LTRS shift for a GNGO substrate? And, more significantly, what is the effect of carrier mobility towards the GNGO-dopamine interaction? To find these answers, the ER will study and model the system thoroughly through quantum and electromagnetic simulations in the secondment with Prof. Romain Quidant at ETH Zurich. This objective will lead to the design of a device prototype, which will be aimed at in the third work package (WP3), which will develop advanced research skills of ER. O3. The final objective is to transfer the knowledge through diverse communication and dissemination activities.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Direct quantification of dopamine neurotransmission is one of the unsolved problems that engaged scientific minds for the last fifty years. Such quantification is an extremely important tool to understand the underlying pathways that promote neurodegenerative diseases like Alzheimer's and depression. Since dopamine is secreted only in micro-molar quantities, a novel signal-amplification technique is required to be able to appropriately quantify its concentration. To meet the challenge, we propose a multidisciplinary research program comprised of simultaneous measurements from laser tweezer Raman spectroscopy and fluorescence emission spectroscopy. Our proposal is based on the strong plasmonic interaction between graphene oxide nanosheets and aptamer functionalized gold nanoparticles, which increases the local intensity of the electromagnetic field to an extent that minute changes in ambient dielectric constant due to variations in the concentration of dopamine could bring about a perceptible signal. In the suggested scheme, we will use optical tweezers to place a gold nanoparticle dimer close to the surface of a graphene oxide sheet, and their hybridization will give rise to very strong electromagnetic fields able to dramatically increase the optical emission from dopamine. Moreover, we will increase the local concentration of molecules with electrothermoplasmonic flow towards the sensing area. The SERSET project will be carried out in the Nanoparticle Trapping Lab at the University of Granada, where a state-of-the-art setup combining optical tweezers and confocal Raman spectroscopy is available. A microfluidic chip and theoretical calculations will be carried out in the group of Prof. Romain Quidant at ETH Zurich during the planned secondments. The candidate has a strong background in nanoparticle synthesis, plasmonics, and computational modelling, which will be combined in the present proposal to bring about a new technology able to quantify dopamine secretion.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз