H2020Индивидуална стипендия2016–2018

HEMOTECT · Hemozoin Detection using Nitrogen-Vacancy centers in Diamond

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

Период
2016-04-01 → 2018-03-31
Финансиране от ЕС
171 461 €
Участници
1
Схема
MSCA-IF-EF-ST

Линиите свързват координатора с партньорите.

Накратко на български

Сензорът в диамант се разработва за откриване на хемозоин – кристали, които се образуват в кръвта при малария. Ранната диагностика помага за навременното лечение на заболяването, което застрашава милиарди хора по света.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Hemozoin Detection using Nitrogen-Vacancy centers in Diamond

"The HEMOTECT project aims at the development and implementation of a sensitive sensor for the detection of paramagnetic systems and, in particular, of hemozoin crystals. Hemozoin crystals (HzC) are the byproduct of malaria infection. The Plasmodium parasite, the agent of malaria, during its intraerythrocytic cycle digests hemoglobin and releases heme which is highly toxic for itself. Detoxification is achieved by the transformation of heme into an iron-containing porphyrin crystal, namely the HzC.The HzC has magnetic and optical properties distinct from any other component of blood. Malaria transmission has declined by ~40% in the period of 2010-2015 and the possibility of elimination (reduction of transmission to zero in a dened geographical area) in the current decade has been, for the 1rst time in years, considered. Approximately 3.4 billion people are at risk of malaria worldwide, with 627,000 deaths just in 2012, while by the year 2016 there were an estimated 216 million cases of malaria in 91 countries (an increase of 5 million cases over 2015). Malaria is an entirely preventable and treatable disease, provided the recommended interventions are properly implemented, such as early diagnosis and timely treatment with appropriate anti-malaria medication. Currently, the most reliable and sensitive malaria diagnostic tools are (a) the observation of blood smears using microscopy, and (b) rapid-diagnostic tests (RDTs), which are antigen-based detectors. These tools are the diagnostic ""gold standards standards"", but they come at a cost. Microscopy is labor intensive and requires trained staff, well equipped laboratories, and cannot be used for high-throughput screening in areas of low-parasitemia levels. RDTs are expected to become more sensitive and cheaper (current cost 75 cents), but they still produce false positives, are susceptible to high-temperature environments, and require 15 minutes to produce a result. It is therefore apparent that at present, there is a large need for a new diagnostic method that will allow the rapid and denitive diagnosis of infected, asymptomatic, cases that remain undetectable by the currently used field methods. A new physical tool has recently emerged as a unique magnetic-field sensor for physics and biology and it is based on the exploitation of the spin properties of one particular color center in diamond, known as the Nitrogen-Vacancy (NV) center. The NV center is formed by a substitutional nitrogen atom and a vacancy on adjacent lattice sites of the diamond crystal lattice, and possesses remarkable magneto-optic properties which allow for the highly sensitive detection of magnetic fields (as well as electric fields, pressure, and temperature) at the nanometer scale. The main goal of the HEMOTECT project is to develop a novel technology that would allow for the label-free detection of HzC with sensitivity limits better than the currently used malaria diagnostic ""gold standards"". The implementation of an sensor using NV centers in diamonds allows for the detection of HzC with higher sensitivities and acquisition times faster than the current diagnostic ""gold standards"", and paves the way towards a novel malaria diagnostic technique. Our scientific breakthrough is the demonstration of the principles towards a versatile and easy-to-use and cost-effective instrumentation that could be used for the early diagnosis of malaria, and therefore, contribute to the eradication of one of the deadliest diseases in the world. "

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

Цел на проекта

Advances in chemistry, biology and medicine have been historically promoted by physical tools, with notable examples x-ray crystallography, nuclear magnetic resonance spectroscopy and microscopy. A new physical tool has recently emerged as a unique electromagnetic-field sensor and it is based on the exploitation of the remarkable magneto-optic properties of one particular color center in diamond, known as the Nitrogen-Vanancy (NV) center. In recent years, nano-scale sensors using NV centers have enabled the detection of nanoscale ensembles of nuclear and/or electron spins, and high-resolution imaging of living cells, to name few of the most outstanding sensing demonstrations using NV centers. We propose the development and implementation of a high-throughput sensor utilizing NV centers in diamonds, for the sensitive, quantitative and rapid detection of ensembles of paramagnetic spins in liquids and crystals. Sensitive paramagnetic-spin sensors will enable the possibility for nanoscale sensing and imaging of the structure and electron configuration of biomolecules, and most importantly, of real-time observations of chemical and biological processes. The principal motivation for the proposed project is the implementation of the developed sensor for the detection of paramagnetic crystals, and in particular of synthetic hemozoin crystals. Synthetic hemozoin crystals have identical magneto-optic properties with naturally-grown hemozoin crystals, a byproduct of malaria infection. A label-free, high-throughput sensor of hemozoin crystals, with sensitivity limits better than the currently used malaria diagnostic techniques will pave the way for a new diagnostic tool that could be used for the early diagnosis of malaria, and therefore, contribute to the eradication of one of the deadliest diseases in the world.

Оригинален текст от CORDIS (на английски).

Участници

  • JOHANNES GUTENBERG-UNIVERSITAT MAINZ · MainzКоординаторГермания

Връзки

Данни: CORDIS, © Европейски съюз