ANAT-MEC · Developing 2-photon optical imaging for neural-network studies in medial entorhinal cortex of freely moving mice
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2019-05-01 → 2021-04-30
- Финансиране от ЕС
- 214 159 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Миниатюрни микроскопи се разработват, за да се наблюдава дейността на хиляди неврони в мозъка на мишки, докато те се движат свободно. Това помага за разбирането на невронните динамики и изчислителните алгоритми, които управляват поведението на животните.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Developing 2-photon optical imaging for neural-network studies in medial entorhinal cortex of freely moving mice
New generations of portable microscopes for calcium imaging enable observation of simultaneous activity in hundreds-to-thousands of distinguishable neurons while animals perform experimental tasks, allowing researchers to identify the underlying neural dynamics and computational algorithms, goals that would be out of reach if cells were recorded one by one or a few at the time. Among these new miniature microscopy techniques, the miniature two-photon microscopes -2P miniscopes- is of particular interest for applications that require high anatomical resolution and the ability to distinguish between recorded cells based on their genetic expression, somatic location, or axonal projection pattern. Early versions of 2P miniscopes did not catch on, however, because they lacked the capacity to image sensitive calcium indicators such as GCaMP6, because their scanning speed was slow, because the miniscopes were heavy and difficult to carry for rodents, or because optical cables were stiff and inflexible. These constraints motivated the development of a new generation of 2P miniscopes with benchtop-comparable 2P resolution, fast speed, Z-scanning capability, and a large field of view (FOV). However, while these 2P miniscopes represented major advances in imaging quality, their applicability in tasks that require movement is still limited, due to heavyweight, stiff optical cable connections, low cell yield, and high system complexity. As of today, calcium imaging technology is thus not suitable for recording activity at the scale of hundreds to thousands of neurons, and at the high spatial and temporal resolution, during spatially dispersed behavior in freely-moving animals. Therefore, the aim of the ANAT-MEC project is to develop a new generation of 2P miniscope that enables the study of neural activity, at high sampling rates and with high spatial resolution, in thousands of individually identifiable cells in cortices with different architectures and locations, while mice move freely in the environment. The new 2P miniscope developed in this project will open many new doors to the neuroscientists to image large-scale cellular and subcellular structures in actively moving animals and will bring us closer than ever before to understanding the fundamental principles underlying complex behaviors. The overall objectives include 1) developing a new 2P miniscope that enables the study of neural activity, at high sampling rates and with high spatial resolution, while mice move freely in the environment, 2) demonstrating the feasibility of large-scale imaging through prisms implanted along the elongated dorsoventrally surface of MEC to study the anatomical organization of grid cells, and 3) providing the open-source materials for building this 2P miniscope system so it can be easily duplicated in any biology lab with basic optics and electronic experience.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The medial entorhinal cortex (MEC) and the adjacent pre- and parasubiculum are thought to create an internal map of self-position that animals may use for goal-directed navigation. This map uses a set of functionally specific and largely non-overlapping cell types: grid cells, border cells, speed cells, object-vector cells, and head-direction cells. The presence of multiple distinct functional cell types, matched in specificity only by cell populations in some of the sensory and motor cortices, allows us to examine input-output transformations and computational algorithms in association cortices with unprecedented power and detail. In order to examine these algorithms, however, an obvious and crucial first step is to map the division of function across cells in anatomical space. This requires recording of hundreds of cells at the same time in freely-behaving animals exploring open spatial environments. Unfortunately the absence of appropriate methods for neural recording at the population level has so far prevented a clear understanding of the broader organization of multi-cell-type and multi-layer networks of MEC, at both micro and macro scales. During my PhD, I invented a technique called “fast high-resolution miniaturized two-photon microscopy (FHIRM-TPM)”, which, through the use of a portable light-weight (2g) two-photon microscope, allows animals to move freely while large scale, single-cell-resolution calcium imaging is performed. In ANAT-MEC, I will refine this optical imaging method to study neural activity during spatial navigation in two-dimensional environments. I shall characterize in detail the anatomical organization of distinct cell types in MEC while mice engage in naturalistic, exploratory behavior in open spaces. Besides shedding light on this specific question, the project will – by developing a new technology - also open doors to unravel fundamental mechanisms of neural code formation in the mammalian space circuit.
Оригинален текст от CORDIS (на английски).
Участници
- NORGES TEKNISK-NATURVITENSKAPELIGE UNIVERSITET NTNU · TrondheimКоординаторНорвегия
Връзки
Данни: CORDIS, © Европейски съюз
