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Model-Based Optimization of Solid-Supported Micro-Hotplates for Microfluidic Cryofixation

Thiem, Daniel B. ; Szabo, Greta ; Burg, Thomas P. (2024)
Model-Based Optimization of Solid-Supported Micro-Hotplates for Microfluidic Cryofixation.
In: Micromachines, 2024, 15 (9)
doi: 10.26083/tuprints-00028069
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Item Type: Article
Type of entry: Secondary publication
Title: Model-Based Optimization of Solid-Supported Micro-Hotplates for Microfluidic Cryofixation
Language: English
Date: 16 September 2024
Place of Publication: Darmstadt
Year of primary publication: September 2024
Place of primary publication: Basel
Publisher: MDPI
Journal or Publication Title: Micromachines
Volume of the journal: 15
Issue Number: 9
Collation: 18 Seiten
DOI: 10.26083/tuprints-00028069
Corresponding Links:
Origin: Secondary publication DeepGreen
Abstract:

Cryofixation by ultra-rapid freezing is widely regarded as the gold standard for preserving cell structure without artefacts for electron microscopy. However, conventional cryofixation technologies are not compatible with live imaging, making it difficult to capture dynamic cellular processes at a precise time. To overcome this limitation, we recently introduced a new technology, called microfluidic cryofixation. The principle is based on micro-hotplates counter-cooled with liquid nitrogen. While the power is on, the sample inside a foil-embedded microchannel on top of the micro-hotplate is kept warm. When the heater is turned off, the thermal energy is drained rapidly and the sample freezes. While this principle has been demonstrated experimentally with small samples (<0.5 mm²), there is an important trade-off between the attainable cooling rate, sample size, and heater power. Here, we elucidate these connections by theoretical modeling and by measurements. Our findings show that cooling rates of 10⁶ K s⁻¹, which are required for the vitrification of pure water, can theoretically be attained in samples up to ∼1 mm wide and 5 μm thick by using diamond substrates. If a heat sink made of silicon or copper is used, the maximum thickness for the same cooling rate is reduced to ∼3 μm. Importantly, cooling rates of 10⁴ K s⁻¹ to 10⁵ K s⁻¹ can theoretically be attained for samples of arbitrary area. Such rates are sufficient for many real biological samples due to the natural cryoprotective effect of the cytosol. Thus, we expect that the vitrification of millimeter-scale specimens with thicknesses in the 10 μm range should be possible using micro-hotplate-based microfluidic cryofixation technology.

Uncontrolled Keywords: cryofixation, vitrification, cooling rate, heat conduction model
Identification Number: Artikel-ID: 1069
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-280697
Additional Information:

This article belongs to the Special Issue Application of Microfluidic Technology in Bioengineering

Classification DDC: 600 Technology, medicine, applied sciences > 621.3 Electrical engineering, electronics
Divisions: 18 Department of Electrical Engineering and Information Technology > Integrated Micro- and Nanosystems
Interdisziplinäre Forschungsprojekte > Centre for Synthetic Biology
Date Deposited: 16 Sep 2024 11:11
Last Modified: 30 Sep 2024 07:48
SWORD Depositor: Deep Green
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/28069
PPN: 521764211
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