H2020Individual fellowship2017–2020

umCryofix · A microfluidic cryofixation method for time-resolved correlative microscopy

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2017-06-01 → 2020-09-05
EU contribution
€171,461
Participants
1
Scheme
MSCA-IF

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Results in brief

A microfluidic cryofixation method for time-resolved correlative microscopy

Detailed characterization of the function of various cellular components provides researchers with a fundamental understanding of normal cellular function. Further, linking changes in cellular function to alterations in the cells smallest structures provides a pathway to determine the underlying cause of disease when abnormalities arise. This is not only important for fundamental science but also to prevent, diagnose, and develop targeted treatments for virtually any affliction, ranging from Alzheimer’s disease, to HIV, to cancer. Yet, no single measurement technique is able to relate functional information from live imaging of whole cells (~microscale) with the smallest structures, or building blocks, of the relevant cellular components (~nanoscale). Correlative light and electron microscopy (CLEM) addresses this problem by combining the advantages of two imaging techniques. First, the well-known light microscope is used to map cellular functions. The biological sample must then be fixated to stop the biological process. With the process stopped, a higher-resolution electron microscope is used to “zoom-in” on the ultra-fine structures that form the building blocks of the cell. Current CLEM methods, however, suffer from limited time resolution, meaning the light microscope and electron microscope images are not taken at the same timepoint of the biological process. The goal of this project is to develop a new cryofixation, or ultra-fast freezing, method that will enable time-resolved CLEM studies of dynamic cellular processes. Cryofixation, or cooling the sample at a rate of 10,000°C/s or higher, is widely accepted as the gold-standard fixation method for high-resolution imaging of biological samples. The key to attaining high-quality sample preservation with cryofixation is to avoid ice crystallization, so as to leave the sample in a near-native, glass-like frozen state. However, none of the current methods lend themselves to the cryofixation of dynamic cellular processes on a time scale of seconds and faster. After a region and time of interest is located in the light microscope, the sample must be transferred to a dedicated cryofixation instrument, or ultra-fast freezer. With state-of-the-art robotic systems the transfer step requires at least one second, though transfer times up to a few minutes are still common. During this transfer time the biological process continues to progress. Through this action, we developed a new microfluidic cryofixation method for time-resolved correlative live imaging and electron microscopy. Our method eliminates the need to transfer the sample from the light microscope to a dedicated machine for rapid freezing. The key idea is to combine the light microscope and a new freezing technology into just one instrument. First, a biological sample is loaded into a microfluidic device, which is mounted onto a microscale heater. The heater itself is mounted onto a -196°C copper block. The self-contained microfluidc chip, heater, copper block assembly is mounted directly in the viewing path of the light microscope. During live imaging, the heater maintains the sample in the microchannel at 25°C. At the desired moment in the biological process, the heater is switched off, and the sample cools rapidly through the contact with the -196°C copper block. The newly developed system allows, for the first time, continuous live-imaged videos of the sample before, during, and after the freezing event. Since the biological process is stopped at a known time, the time resolution is decreased from seconds to milliseconds, which is the time it takes for the sample to freeze. Therefore, once the last image of the dynamic biological process is taken with the light microscope, the process progresses just a few milliseconds before it is fully frozen for high-resolution electron microscopy. The objectives which we achieved through this action are: 1. We developed a self-contained microfluidic cryofixation system with a cooling rate greater than 10,000ºC/s. 2. We developed procedures to move the already frozen sample from the light microscope system to the electron microscope system. This is a challenge because the sample had to remain below -140°C during this process to avoid the formation of ice crystals that would destroy the sample. 3. We imaged the ultrastructure of the sample and characterized the quality of the cryofixation using electron microscopy.

Data: CORDIS, © European Union

Project objective

Correlative microscopy, connecting live-cell fluorescence microscopy with electron microscopy (EM), is a powerful tool to relate a dynamic cellular process to the relevant cellular ultrastructure leading to better understanding of fundamental mechanisms, and further, the underlying cause of disease. This is not only important for fundamental science but can guide diagnostic and treatment efforts for virtually any affliction, ranging from Alzheimer’s disease, to HIV, to cancer. In this work, I propose a novel microfluidic cryofixation method that enables time-resolved correlative microscopy. The new method dramatically improves the time resolution with which live images can be correlated to EM images by eliminating the need to transfer the sample from the light microscope to a dedicated cryofixation machine. Current state-of-the-art systems require at least one second while preparation times up to a few minutes are common. Here I propose a new microfluidics-based paradigm that will overcome this barrier by carrying out cryofixation directly within the field of view of a light microscope. This method allows a dynamic process to be arrested at a known time, so that it can be correlated to cellular ultrastructure in EM images. This new method is a critical advance for studying dynamic processes such as membrane trafficking, cell division, and synaptic transmission. This action opens vast possibilities for multidisciplinary collaborations between microfluidic and engineering specialists, who developed a new method (Burg group), and experts in microscopy for biological sciences (i.e. within histology, cell biology, structural biology) to advance the fundamental understanding of dynamic cellular processes that occur on the time scale of milliseconds. Through this multidisciplinary work I will become well-established in my future field of interest, microfluidic devices for biological applications, ensuring the best possible career opportunities for me as a group leader.

Original text from CORDIS.

Participants

  • MAX-PLANCK-GESELLSCHAFT ZUR FORDERUNG DER WISSENSCHAFTEN EV · MUNCHENCoordinatorGermany

Links

Data: CORDIS, © European Union