DOI: 10.3390/organoids5030032 ISSN: 2674-1172

Efficient Cryopreservation of Human Midbrain Organoids Using Conventional DMSO Protocols with Ice Recrystallization Inhibitors

Ellyssa M. Walsh, Cecilia Rocha, Paula Lépine, Julien Sirois, Thomas M. Durcan, Robert N. Ben

Human midbrain organoids (hMOs) are a powerful stem cell-derived model for studying human neurodevelopment and neurological disease in vitro; however, their broad adoption is limited by long culture times, high cost, and inter-batch variability. Cryopreservation offers a strategy to address these limitations by enabling long-term storage and reducing experimental heterogeneity, but its effectiveness depends on robust cryoprotective strategies. Here, we evaluated hMO cryopreservation using a standard 10% dimethyl sulfoxide (DMSO) protocol, alone and in combination with a panel of five ice recrystallization inhibitors (IRIs), including betaine-derived ammonium salts and N-aryl-d-gluconamides. Across all conditions, hMOs were successfully recovered following freeze–thawing, with preservation of overall structural integrity, including maintained morphology and reduced cellular debris. Importantly, post-thaw viability and cell recovery in the 10% DMSO condition were comparable to those of fresh controls, demonstrating that conventional DMSO-based cryopreservation is sufficient to maintain hMO survival and gross structural preservation. While supplementation with select IRIs, particularly N-ethyl betaine ethyl ester iodide (NEBEE-I), yielded modest improvements in viability relative to DMSO alone and a non-significant trend toward enhanced electrophysiological activity in multielectrode array recordings, these effects were secondary to the robust performance of the baseline DMSO protocol. Collectively, these findings establish standard 10% DMSO cryopreservation as an effective and broadly applicable method for hMO preservation, while suggesting that small-molecule IRIs may provide incremental benefits in selected outcome measures.