H2020Обмен на изследователи2021–2026

Micro4Nano · Multifunctional nanocarriers for nonlinear microscopy: new tools for biology and medicine

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2021-10-01 → 2026-09-30
Финансиране от ЕС
786 600 €
Участници
15
Схема
MSCA-RISE

Линиите свързват координатора с партньорите.

Накратко на български

Мултифункционални наноносители се разработват за 3D визуализация на дебели биологични тъкани чрез специална микроскопия. Тези инструменти помагат за по-доброто разбиране на структурата и функциите на тъканите, което е полезно за медицината и доставянето на лекарства.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Multifunctional nanocarriers for nonlinear microscopy: new tools for biology and medicine

Multifunctional Nanocarriers for Nonlinear Microscopy: New Tools for Biology and Medicine (Micro4Nano) Micro4Nano promotes the career development of early-stage and experienced researchers by offering advanced training opportunities in 11 academic and 2 non-academic (SMEs) research laboratories distributed across 10 countries in Europe (Croatia, Finland, France, Italy, Poland, Spain) and abroad (Argentina, Brazil, Israel, Malaysia, USA). The project proposes an ambitious research agenda aimed at establishing and optimizing new tools, materials, and techniques for the 3D visualization of thick biological tissues. Micro4Nano technology will be validated in advanced biomedical and drug delivery applications, but it holds enormous potential for wider applications in materials science, biology, and beyond. The project’s primary goal is to address four challenging technical objectives (TOs) that must be met simultaneously to achieve the 3D functional imaging of thick tissues. This imaging will extract reliable information about tissue structure, biochemical composition, and function: TO1: Design and production of innovative fluorescent nanocarriers, developed through various molecular and supramolecular synthetic strategies. These will be characterized and optimized using powerful optical spectroscopy and theoretical chemistry tools. TO2: Multiphoton microscopy of ex vivo animal tissues for real-time monitoring of large tissue areas (up to 1-2 mm in depth). Techniques such as multicolor detection, FRET microscopy, and spectrally resolved imaging (hyperspectral microscopy) will be used to extract complete data on tissue function and structure. TO3: Development of new microfluidic systems for maintaining the vitality of cells/tissues and for real-time bioimaging using multiphoton and Raman microscopy. TO4: Validation of materials and methods in drug delivery and nanomedicine applications. Multifunctional nanocarriers, loaded with anti-inflammatory drugs and fluorescent labels, will be tested in advanced drug-delivery studies on ex vivo animal tissues. These will allow monitoring of the distribution and diffusion of nanocarriers and their functional cargo within tissue, with assessments carried out on their impact on cells and tissues in microfluidic systems under a microscope. The research conducted within the Micro4Nano project has the potential to significantly advance biomedical science and medicine, with broad implications for society. The development of novel imaging tools, such as those based on multifunctional nanocarriers, will enable deeper, more accurate investigations of biological tissues. This could revolutionize our understanding of diseases, such as cancer and neurological disorders, where current imaging techniques are limited in depth and resolution. Furthermore, these new technologies will improve the precision of drug delivery systems, reducing side effects and improving the efficacy of treatments. The integration of cutting-edge imaging and microfluidic technologies will not only drive advances in drug development but will also facilitate the creation of personalized medicine solutions. In the long term, these advancements could lead to improved patient outcomes, more efficient healthcare systems, and ultimately, better quality of life for individuals worldwide.

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

Цел на проекта

The direct 3D visualization of large sections of biological tissues, made possible by multiphoton microscopy, has the potential to revolutionize our understanding of the relation between the structure and function of biological tissues, opening the way to impressive applications in biomedicine and drug delivery, in phytotherapy, and agricultural and food industries. In an ambitious multidisciplinary effort, Micro4Nano will develop new approaches and methods towards the 3D visualization of biological tissues, up to 1 mm in depth, combining hyperspectral imaging of autofluorescent species, with structural information from second-harmonic generation signals, functional information from multifunctional fluorescent labels and chemical information from Raman microscopy. A new generation of multifunctional nanocarriers for two-photon microscopy and drug delivery will be designed and extensively exploited towards real-time monitoring of living cells and tissues. In an intersectoral endeavour, microscopy will be combined with microfluidics to investigate the tissue behaviour under controlled perfusion conditions. Micro4Nano promotes international and multidisciplinary collaborations between experts in complementary fields, including microscopy, drug delivery, spectroscopy, chemical synthesis, theoretical and computational chemistry. The collaboration is implemented through 50 secondments (173 person month) of early-stage and experienced researchers, the organization of three network-wide events and a rich and coherent program of training activities. The network promotes an effective integrate training of researchers, boosting their career development, and promotes enhanced collaboration schemes between participant organizations. The direct involvement of industrial partners guarantees the timely exploitation of original results from advanced research laboratories towards innovative products and services.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз