Active Cancer Heart, Stroke & Blood

Distinct clonal alloimmune T cell responses drive the human Graft Versus Leukaemia effect and Graft Versus Host Disease

In plain English

AI plain-English summary

A bone marrow transplant can cure leukaemia, but it can also kill the patient—doctors need to boost the cancer-killing immune response without triggering a deadly attack on healthy tissue. The graft versus leukaemia effect (GVL) is the therapeutic part of a transplant, where donor immune cells destroy residual cancer cells. Graft versus host disease (GVHD) is the dangerous side effect, where those same cells attack the patient’s skin and organs. Both are driven by T cells, and while they often occur together, they can be separated—some patients achieve long-term remission without GVHD, while others suffer severe GVHD yet still relapse. This project uses single-cell RNA sequencing to compare T cells from skin (where GVHD strikes), bone marrow (where GVL works), and blood from the same patient at the same time. The goal is to identify distinct T cell clones, their tissue-homing signals, and the environmental cues that push them toward cancer-killing or tissue-damaging behaviour. If successful, this could reveal drug targets that suppress GVHD without weakening the anti-leukaemia effect, or that amplify GVL without triggering GVHD. That would directly improve survival rates for the thousands of patients who undergo bone marrow transplants each year.

View original technical description
The graft versus leukaemia effect (GVL) is the alloimmune therapeutic mechanism of allogeneic bone marrow transplantation (BMT), whilst acute graft versus host disease (GVHD) is unwanted alloimmune targeting of other tissues and is the main cause of non-relapse death. Both are T cell mediated and clinically correlate but can be separated - long term survival due to successful GVL occurs frequently in the absence of GVHD, and GVL failure occurs despite significant GVHD. I have constructed a large single cell RNA sequencing (scRNAseq) GVHD atlas of 490,943 cells mainly from epidermis, dermis and PBMC, and implicated specific T cell populations (CD4 cytotoxic lymphocytes) and homing mechanisms (CXCL9/10/11 amongst others). The purpose of this study is to apply scRNAseq for gene expression and antigen receptor profiling to GVL and GVHD simultaneously to test the hypothesis that they are separable by clonotype, spatial distribution and T cell phenotype. Using parallel sampling of skin, blood and bone marrow from the same individual at key time points (skin at GVHD onset, BM at D30 and D100) I will determine: 1) T cell clonotypes expanded in GVHD and GVL target organs (skin and BM) 2) Differential spatial distribution between skin (GVHD), bone marrow (GVL) and peripheral blood, and receptor ligand pairings driving tissue tropism 3) Differential regulation of phenotype and activation state of dominant T cell clones in GVHD and GVL target tissues through micro-environmental signals My long-term objective is to identify potential therapeutic targets to treat GVHD or augment GVL to improve BMT survival.

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Researchers

Callum Wright (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Graft versus Leukaemia (GvL): Identification & characterisation of GVL antigens and cognate T cell responses in Acute Myeloid Leukaemia
A multi-disciplinary approach to understanding the immunological basis and potential prevention of graft versus host disease.
Repair of tissue and organ damage in refractory chronic graft versus host disease after hematopoietic stem cell transplantation by the infusion of purified allogeneic donor regulatory T lymphocytes
High dimensional analysis of the composition of peripheral blood stem cell donations and the impact on clinical outcome following allogeneic haemopoietic stem cell transplantation
Ectopic lymphoid tissue development in chronic allograft vasculopathy.

Original classification

Starter Grant for Clinical Lecturers

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