Cryopreserved Mesenchymal Stromal Cells Are Susceptible to T-Cell Mediated Apoptosis Which Is Partly Rescued by IFNγ
Raghavan Chinnadurai1,2, Ian B Copland1,2,3, Marco A Garcia3
1Department of Hematology and Oncology, Emory University School of Medicine, Atlanta, Georgia, USA.
Abstract:
We have previously demonstrated that cryopreservation and thawing lead to altered Mesenchymal stromal cells (MSC) functionalities. Here, we further analyzed MSC's fitness post freeze-thaw. We have observed that thawed MSC can suppress T-cell proliferation when separated from them by transwell membrane and the effect is lost in a MSC:T-cell coculture system. Unlike actively growing MSCs, thawed MSCs were lysed upon coculture with activated autologous Peripheral Blood Mononuclear Cells (PBMCs) and the lysing effect was further enhanced with allogeneic PBMCs. The use of DMSO-free cryoprotectants or substitution of Human Serum Albumin (HSA) with human platelet lysate in freezing media and use of autophagy or caspase inhibitors did not prevent thaw defects. We tested the hypothesis that IFNγ prelicensing before cryobanking can enhance MSC fitness post thaw. Post thawing, IFNγ licensed MSCs inhibit T cell proliferation as well as fresh MSCs and this effect can be blocked by 1-methyl Tryptophan, an Indoleamine 2,3-dioxygenase (IDO) inhibitor. In addition, IFNγ prelicensed thawed MSCs inhibit the degranulation of cytotoxic T cells while IFNγ unlicensed thawed MSCs failed to do so. However, IFNγ prelicensed thawed MSCs do not deploy lung tropism in vivo following intravenous injection as well as fresh MSCs suggesting that IFNγ prelicensing does not fully rescue thaw-induced lung homing defect. We identified reversible and irreversible cryoinjury mechanisms that result in susceptibility to host T-cell cytolysis and affect MSC's cell survival and tissue distribution. The susceptibility of MSC to negative effects of cryopreservation and the potential to mitigate the effects with IFNγ prelicensing may inform strategies to enhance the therapeutic efficacy of MSC in clinical use. Stem Cells 2016;34:2429-2442.
Insights
Cryopreservation impairs Mesenchymal stromal cells (MSC) function, making them susceptible to T-cell lysis. Pre-treatment with IFNγ enhances thawed MSCs' ability to suppress T-cells but does not fully restore in vivo lung homing.
Area of Science:
- Cell Biology
- Immunology
- Regenerative Medicine
Background:
- Cryopreservation of Mesenchymal Stromal Cells (MSCs) is crucial for clinical applications.
- Freeze-thaw processes can significantly alter MSC functionality and therapeutic potential.
- Understanding cryoinjury mechanisms is vital for improving MSC-based therapies.
Purpose of the Study:
- To investigate the functional integrity of Mesenchymal Stromal Cells (MSCs) after cryopreservation and thawing.
- To identify mechanisms underlying MSC susceptibility to T-cell mediated lysis post-thaw.
- To evaluate the efficacy of interferon-gamma (IFNγ) prelicensing in mitigating cryopreservation-induced defects.
Main Methods:
- Assessing T-cell proliferation suppression by thawed MSCs in transwell and co-culture systems.
- Evaluating thawed MSC lysis by autologous and allogeneic Peripheral Blood Mononuclear Cells (PBMCs).
- Testing the impact of IFNγ prelicensing on thawed MSC immunomodulatory functions and in vivo lung tropism.
Main Results:
- Thawed MSCs exhibited impaired T-cell suppression and were susceptible to lysis by activated PBMCs.
- IFNγ prelicensing restored T-cell proliferation inhibition by thawed MSCs, mediated by Indoleamine 2,3-dioxygenase (IDO).
- IFNγ prelicensed thawed MSCs inhibited cytotoxic T-cell degranulation but did not fully rescue the in vivo lung homing defect.
Conclusions:
- Cryopreservation induces reversible and irreversible damage to MSCs, affecting their survival, immune interactions, and tissue distribution.
- IFNγ prelicensing offers a potential strategy to enhance the immunomodulatory functions of thawed MSCs.
- Further strategies are needed to fully overcome cryoinjury-induced defects and optimize MSC therapeutic efficacy.
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