Search bioRxiv⌕ Search

Biology subjects

Mensurado, S.

Publications and source records attributed to Mensurado, S..

2 recordsLinked to original sources

Generation and proof-of-concept for allogeneic CD123 CAR-Delta One T (DOT) cells in Acute Myeloid Leukemia

Chimeric Antigen Receptor (CAR)-T cells have emerged as a breakthrough treatment for relapse/refractory (r/r) hematological tumors, showing impressive complete remission rates in B-cell malignancies. However, around 50% of the patients relapse before 1-year post-treatment. T-cell "fitness" is critical to prolong the persistence and activity of the adoptively transferred product. Allogeneic T cells from healthy donors are less dysfunctional or exhausted than autologous patient-derived T cells, enabling a very attractive and cost-effective "off-the-shelf" therapy option. In this context, Delta One T cells (DOTs), a recently described cellular product based on MHC/HLA-independent V{delta}1+ {gamma}{delta} T cells generated from the peripheral blood of healthy donors, represent a robust platform of allogeneic effector T cells. Here we generated and pre-clinically validated 4-1BB-based CAR-DOTs directed against the IL-3 chain receptor (CD123), a target antigen widely expressed on acute myeloid leukemia (AML) blasts. CD123CAR-DOTs showed vigorous, superior to control DOTs, cytotoxicity against AML cell lines and primary samples both in vitro and in vivo. Continuous administration of IL-15 supported the long-term persistence of a single-dose CD123CAR-DOTs in patient-derived xenograft models, sustaining their anti-leukemic efficacy as demonstrated in a re-challenge assay in vivo. Our results provide proof-of-concept for an allogeneic next-generation therapy based on CD123CAR-DOTs for r/r AML patients. KEY POINTS- CD123CAR-DOTs exert specific and robust cytotoxicity in vitro and anti-leukemic activity in vivo against AML cell lines and primary cells. - CD123CAR-DOTs show IL-15-dependent long-term persistence in vivo and vigorous anti-leukemic activity upon re-challenge.

immunology↗

Maternal γδ T Cells Shape Offspring Pulmonary Type-2 Immunity In A Microbiota-Dependent Manner

Immune system development is greatly influenced by vertically transferred cues. However, beyond antibody-producing B cells, little is known about the role of other cell subsets of the maternal immune system in regulating offspring immunity. We reasoned {gamma}{delta} T cells to be attractive candidates based on their tissue distribution pattern: abundant in the skin, mammary glands and female reproductive tract. Here we found that mice born from {gamma}{delta} T cell-deficient (TCR{delta}-/-) dams display, early after birth, a pulmonary milieu selectively enriched in type-2 cytokines such as IL-33, IL-4, IL-5, and IL-13, and type-2-polarized immune cells, when compared to the progeny of {gamma}{delta} T cell-sufficient dams. In addition, upon helminth infection, mice born from TCR{delta}-/- dams sustained an increased type-2 inflammatory response. Critically, this was independent of the genotype of the pups. Despite similar levels of circulating antibodies in mothers and progeny, the intestinal microbiota in the offspring of TCR{delta}-/- and TCR{delta}+/- dams harbored distinct bacterial communities acquired during birth and fostering. These differences were accompanied by changes in the intestinal short-chain fatty acids (SCFA) profile. Importantly, antibiotic treatment abrogated the differences observed in the pulmonary milieu, and exogenous SCFA supplementation suppressed first-breath- and infection-induced inflammation. In summary, maternal {gamma}{delta} T cells control the establishment of a neonatal gut-lung axis by conditioning the postnatal microbial colonization of the off-spring and bacterial-derived metabolite availability; ultimately impacting on the development of pulmonary type-2 immunity in the offspring.

immunology↗