HEИндивидуална стипендия2023–2025

Plas_OpMap · Towards faster super-resolution DNA optical mapping using plasmon-enhanced fluorescence

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

Период
2023-07-01 → 2025-06-30
Финансиране от ЕС
188 548 €
Участници
1
Схема
HORIZON-TMA-MSCA-PF-EF

Линиите свързват координатора с партньорите.

Накратко на български

Оптичното картографиране на ДНК чрез златни наноструктури позволява по-бързото визуализиране на цели молекули, например при анализ на микробиома в червата. Това помага за по-доброто разбиране на структурата на генома и начина, по който микробните общности се променят с времето.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Towards faster super-resolution DNA optical mapping using plasmon-enhanced fluorescence

The human gut microbiome is increasingly recognized as a key player in health and disease, with influence over digestion, immunity, and even neurological conditions. However, studying how this complex microbial community evolves over time remains a major challenge. Existing DNA sequencing technologies, although powerful, often fall short when it comes to capturing large-scale genome structures or delivering results quickly enough for real-time or longitudinal studies. This project, Plas_OpMap, tackles this gap by advancing an emerging technology known as optical DNA mapping. Unlike conventional sequencing, which fragments DNA into short pieces, optical mapping visualises entire DNA molecules, allowing scientists to observe large-scale structural variations. This approach is particularly useful for understanding microbiome composition and dynamics. But despite its promise, optical mapping is currently limited by slow imaging speeds and the need for lengthy data acquisition, making it impractical for high-throughput applications. A major innovation proposed in Plas_OpMap is the use of plasmon-enhanced fluorescence to significantly boost the speed and precision of DNA imaging. This involves placing fluorescently labelled DNA on specially engineered plasmonic substrates-surfaces coated with gold nanostructures that amplify the emission of light from fluorescent tags. By enhancing photon output, these substrates reduce the time needed to capture each image, allowing faster data collection without sacrificing resolution. The project focuses on developing a reliable and scalable plasmonic substrate using wet-chemically synthesized gold nanotriangles. These nanoparticles are deposited uniformly across a glass surface, creating a dense, stable, and optically active layer. Their unique geometry and material properties support strong plasmon resonances that enhance fluorescence signals from DNA molecules positioned nearby. This design avoids the complexity of conventional nanofabrication and can be adapted to existing imaging setups. Three key objectives guide the project: 1.Develop and optimize plasmonic substrates with high nanoparticle coverage. 2.Validate the enhancement effect on fluorescence imaging of labelled DNA molecules. 3.Demonstrate optical mapping of DNA extracted from human gut microbiota using the new substrate. By combining nanomaterials, microscopy, molecular biology, and bioinformatics, Plas_OpMap brings together expertise across several scientific domains. The long-term goal is to enable faster, more scalable genomic analysis tools that support real-time monitoring of microbial populations that are critical for personalized medicine, diagnostics, and environmental health. While the project is focused on gut microbiome research, the underlying platform has broader potential across biomedical fields. Faster optical mapping could improve how we track infections, study disease progression, and even respond to public health challenges. In this way, Plas_OpMap contributes to the EU’s broader goals in health innovation, research infrastructure, and digital health technologies.

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

Цел на проекта

Human microbiome science is advancing, showing promise of having important impacts on human health with new insights into disease etiology and general human biology. Accordingly, DNA sequencing platforms have been developed rapidly, expanding the scope in microbiome research. Among others, optical mapping technique, capable of imaging single DNA molecules provides access to genetic information on single molecules up to ~1 Mbp in length. It uses fluorescence imaging of linearly stretched DNA molecules labelled at specific sites to probe information patterns along the molecules. The precision of the method is further improved by resolving single molecules below the diffraction limit through super-resolution imaging. However, requirement of large photon budget slows down the speed of imaging, as long acquisitions are required to build up sufficient photons for precise localization. This affects the throughput of DNA optical mapping which involves imaging large areas, thereby limiting its capabilities in providing real-time information of the microbiome on daily basis. Enhancing the emission rates from single molecules can overcome this limitation to permit faster image acquisition. Here we propose to use plasmon-enhanced fluorescence by employing substrate made out of wet-chemically synthesized gold nanotriangles for optical mapping of human gut microbiome. Plasmonic nanostructures can confine incident electromagnetic field into small area near their surface leading to strong light absorption and higher emission rates from fluorophores in their vicinity. The use of wet-chemical plasmonic substrate exhibiting strong plasmon resonance can significantly increase the number of photons released from the labelled DNA, allowing faster image acquisition. With the improved speed, the time required for optical mapping analysis can be significantly shortened, enabling longitudinal metagenomic analysis with practical implications for quicker diagnosis and personalized health care.

Оригинален текст от CORDIS (на английски).

Участници

  • KATHOLIEKE UNIVERSITEIT LEUVEN · LeuvenКоординаторБелгия

Връзки

Данни: CORDIS, © Европейски съюз