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Durable hematopoiesis and tolerance after vertebral bone marrow transplant from a deceased lung transplant donor
Paul Szabolcs, Xiaohua Chen, Marian G. Michaels, Memphis Hill, Evelyn Garchar, Zarreen Amin, Heather M. Stanczak, Shawna McIntyre, Aleksandra Petrovic, Dhivyaa Rajasundaram, Ansuman Chattopadhyay, Jonathan E. Spahr, Peter D. Wearden, Geoffrey Kurland
Paul Szabolcs, Xiaohua Chen, Marian G. Michaels, Memphis Hill, Evelyn Garchar, Zarreen Amin, Heather M. Stanczak, Shawna McIntyre, Aleksandra Petrovic, Dhivyaa Rajasundaram, Ansuman Chattopadhyay, Jonathan E. Spahr, Peter D. Wearden, Geoffrey Kurland
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Research Article Clinical Research Hematology Immunology

Durable hematopoiesis and tolerance after vertebral bone marrow transplant from a deceased lung transplant donor

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Abstract

We hypothesized that bone marrow transplantation (BMT) using marrow extracted from the vertebral bodies (VBs) of an unrelated deceased lung transplant donor would be able to establish persistent hematopoiesis and generate immunity and tolerance. A teenager with severe combined immunodeficiency with lung failure due to recurrent pneumonias underwent lung transplantation in 2016 from a 1/8 HLA allele–matched unrelated donor, followed by BMT 4 months later using T cell/B cell–depleted, cryopreserved VB marrow. Rapid engraftment was followed by accelerating immune competence at 6 months, with independence from immunosuppression by 16 months. Donor T cell (>95%) and myeloid chimerism (7%–10%) has persisted for over 9 years. At 2 years after BMT, circulating T cells were hyporesponsive to host dendritic cells in vitro. T cell receptor clonotyping revealed the disappearance of host-reactive clones, and T cell RNA sequencing exhibited downmodulated signaling pathways for cytotoxicity/rejection, paired with upregulated immunomodulatory pathways, suggesting active suppression. In parallel, host monocytes upregulated certain signaling pathways, indicating active interactions between post-thymic donor T cells and host monocytes. In summary, for the first time to our knowledge, durable hematopoietic engraftment, immunity, and tolerance were demonstrable in a recipient of BMT obtained from a VB graft.

Authors

Paul Szabolcs, Xiaohua Chen, Marian G. Michaels, Memphis Hill, Evelyn Garchar, Zarreen Amin, Heather M. Stanczak, Shawna McIntyre, Aleksandra Petrovic, Dhivyaa Rajasundaram, Ansuman Chattopadhyay, Jonathan E. Spahr, Peter D. Wearden, Geoffrey Kurland

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Figure 3

Immune reconstitution after BMT.

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Immune reconstitution after BMT.
(A) Numerical lymphocyte reconstitution...
(A) Numerical lymphocyte reconstitution before BMT (including baseline [BSL] and post-BOLT/pre-BMT) and during post-BMT thymopoiesis. The y axis shows absolute cell numbers per microliter over time (x axis). (B) Thymic output assessed by sjTREC and TCRβ spectratype over time. The left y axis represents the spectratype complexity score (SCS), while the right y axis shows sjTREC copies per 105 T cells. (C) Acquisition of TCR repertoire diversity. Each box represents a “family” of T cell clones with a specific TCR Vβ. Individual peaks correspond to distinct TCRs based on their CDR3 length. The cumulative number of peaks is expressed as SCS, shown below each figure at the respective time point. (D) T cell responses illustrated by IFN-γ ELISPOT images following stimulation with overlapping peptide pools from BK virus and CMV at 6 months after BMT. Both donor and recipient were CMV negative.

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ISSN 2379-3708

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