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August 26, 2026PLoS ONE0 citationsOpen Access

Cryopreservation of aldehyde-fixed whole brains

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MGMacy GarroodAKAlicia KeberleASAndria Slaughter

Key Points

  • To develop and evaluate an aldehyde-based cryopreservation protocol for intact whole human brains to enable long-term subzero storage without structural degradation.
  • Designed an aldehyde-based cryopreservation protocol utilizing graded immersion in cryoprotectants reaching a final concentration of 50% (v/v) ethylene glycol and 30% (w/v) sucrose in fixative.
  • Tracked cryoprotectant diffusion and equilibration through intact human brains using computed tomography (CT) imaging.
  • Assessed tissue morphology, ice crystal formation, and cellular ultrastructure using light and electron microscopy.
  • CT imaging revealed that full penetration and signal stabilization of cryoprotectants throughout whole human brains requires approximately 9 months.
  • Freezing prior to complete equilibration produced ice crystal artifacts in white matter, whereas sufficient diffusion time successfully preserved cellular architecture and ultrastructure.

Abstract

Long-term storage of aldehyde-fixed brain tissue is commonly performed in the fluid state. This has the potential to maintain morphology for many decades, but has been found to cause progressive loss of antigenicity over time for some biomolecules, motivating interest in alternative long-term preservation strategies, such as cryopreservation. While cryoprotection and subzero storage has been successfully used for brain tissue sections or blocks, methods for preserving whole brains using this approach have not been widely characterized. Here we present a protocol for preserving fixed whole brains using graded immersion cryoprotection followed by subzero temperature storage. We refer to this general strategy – aldehyde fixation followed by cryoprotectant loading and subzero storage – as aldehyde-based cryopreservation (ABC). Our method uses a gradual ramp-up of the osmotic concentration of cryoprotectants, leading to a final solution containing 50% (v/v) ethylene glycol and 30% (w/v) sucrose in fixative. We used CT imaging to track cryoprotectant penetration, finding that approximately 9 months is required for the CT signal to stabilize throughout whole human brains. In our initial validation experiment, insufficient equilibration time prior to freezing led to ice crystal artifacts in the white matter. After refining the protocol to allow adequate diffusion time, light and electron microscopy showed preserved cellular architecture and ultrastructure. Our approach may be valuable for laboratories seeking a method for long-term subzero storage of fixed whole brain specimens.

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Cite This Study

Garrood et al. (2026) studied this question.

synapsesocial.com/papers/6a8e9bae451774b83f3b483dhttps://doi.org/10.1371/journal.pone.0344932
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