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Hematopoietic stem cell transplant effectively rescues lymphocyte differentiation and function in DOCK8-deficient patients
Bethany A. Pillay, Danielle T. Avery, Joanne M. Smart, Theresa Cole, Sharon Choo, Damien Chan, Paul E. Gray, Katie Frith, Richard Mitchell, Tri Giang Phan, Melanie Wong, Dianne E. Campbell, Peter Hsu, John B. Ziegler, Jane Peake, Frank Alvaro, Capucine Picard, Jacinta Bustamante, Benedicte Neven, Andrew J. Cant, Gulbu Uzel, Peter D. Arkwright, Jean-Laurent Casanova, Helen C. Su, Alexandra F. Freeman, Nirali Shah, Dennis D. Hickstein, Stuart G. Tangye, Cindy S. Ma
Bethany A. Pillay, Danielle T. Avery, Joanne M. Smart, Theresa Cole, Sharon Choo, Damien Chan, Paul E. Gray, Katie Frith, Richard Mitchell, Tri Giang Phan, Melanie Wong, Dianne E. Campbell, Peter Hsu, John B. Ziegler, Jane Peake, Frank Alvaro, Capucine Picard, Jacinta Bustamante, Benedicte Neven, Andrew J. Cant, Gulbu Uzel, Peter D. Arkwright, Jean-Laurent Casanova, Helen C. Su, Alexandra F. Freeman, Nirali Shah, Dennis D. Hickstein, Stuart G. Tangye, Cindy S. Ma
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Research Article Immunology Infectious disease

Hematopoietic stem cell transplant effectively rescues lymphocyte differentiation and function in DOCK8-deficient patients

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Abstract

Biallelic inactivating mutations in DOCK8 cause a combined immunodeficiency characterized by severe pathogen infections, eczema, allergies, malignancy, and impaired humoral responses. These clinical features result from functional defects in most lymphocyte lineages. Thus, DOCK8 plays a key role in immune cell function. Hematopoietic stem cell transplant (HSCT) is curative for DOCK8 deficiency. While previous reports have described clinical outcomes for DOCK8 deficiency following HSCT, the effect on lymphocyte reconstitution and function has not been investigated. Our study determined whether defects in lymphocyte differentiation and function in DOCK8-deficient patients were restored following HSCT. DOCK8-deficient T and B lymphocytes exhibited aberrant activation and effector function in vivo and in vitro. Frequencies of αβ T and MAIT cells were reduced, while γδT cells were increased in DOCK8-deficient patients. HSCT improved abnormal lymphocyte function in DOCK8-deficient patients. Elevated total and allergen-specific IgE in DOCK8-deficient patients decreased over time following HSCT. Our results document the extensive catalog of cellular defects in DOCK8-deficient patients and the efficacy of HSCT in correcting these defects, concurrent with improvements in clinical phenotypes. Overall, our findings reveal mechanisms at a functional cellular level for improvements in clinical features of DOCK8 deficiency after HSCT, identify biomarkers that correlate with improved clinical outcomes, and inform the general dynamics of immune reconstitution in patients with monogenic immune disorders following HSCT.

Authors

Bethany A. Pillay, Danielle T. Avery, Joanne M. Smart, Theresa Cole, Sharon Choo, Damien Chan, Paul E. Gray, Katie Frith, Richard Mitchell, Tri Giang Phan, Melanie Wong, Dianne E. Campbell, Peter Hsu, John B. Ziegler, Jane Peake, Frank Alvaro, Capucine Picard, Jacinta Bustamante, Benedicte Neven, Andrew J. Cant, Gulbu Uzel, Peter D. Arkwright, Jean-Laurent Casanova, Helen C. Su, Alexandra F. Freeman, Nirali Shah, Dennis D. Hickstein, Stuart G. Tangye, Cindy S. Ma

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Figure 5

Dysregulated cytokine production by DOCK8-deficient CD4+ T cells is greatly improved following HSCT.

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Dysregulated cytokine production by DOCK8-deficient CD4+ T cells is grea...
Naive and memory CD4+ T cells were sort-purified from the peripheral blood of healthy donors (n = 7–25), untransplanted DOCK8-deficient patients (n = 2–7), and DOCK8-deficient patients following HSCT (DOCK8 pHSCT) (n = 6–18). The cells were labeled with CFSE and then cultured under Th0 conditions (TAE beads; naive and memory), or Th1- (+IL-12), Th2- (+ IL-4), or Th17-polarizing (IL-1β, IL-6, IL-21, IL-23, TGF-β, prostaglandin E2) conditions (naive only) for 5 days. (A and B) Cells and culture supernatants were harvested to assess proliferation of (CFSE dilution) and cytokine secretion of (A) Th1 cytokines (IFN-γ/TNF-α), Th2 cytokines (IL-4/IL-5/IL-13), or Th17 cytokines (IL-17A/IL-17F) by memory CD4+ T cells, and of (B) of Th1 cytokines (IFN-γ/TNF-α), Th2 cytokines (IL-5/IL-13), or Th17 cytokines (IL-17A/IL-17F) naive CD4+ T cells. (C and D) Cells were restimulated with PMA/ionomycin before permeabilization and intracellular staining to determine proportions of cells expressing Th1 (IFN-γ, TNF-α) and Th2 (IL-4, IL-13) cytokines. Data are presented as (C) the ratio of cells expressing Th2 versus Th1 cytokines and (D) the combined percentage of cells from individual donors and patients expressing Th1 (i.e., %IFN-γ+/TNF-α+/IFN-γ+TNF-α+ cells) versus Th2 (i.e., %IL-4+/IL-13+/IL-4+IL-13+ cells) cytokines. (E and F) Intracellular expression of IL-21 by memory CD4+ T cells (E) and naive CD4+ T cells cultured under Th0- or Th1-polarizing conditions (F) cells was measured. Graphs show mean ± SEM. Statistical performed with Prism using unpaired t test with Welch’s correction; *P < 0.05, **P < 0.01, ***P < 0.005, ****P < 0.001.

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