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Passweg, J. R.

Publications and source records attributed to Passweg, J. R..

2 recordsLinked to original sources

IGLV3-21-R110-directed bispecific antibodies activate T cells and promote killing in a high-risk subset of chronic lymphocytic leukemia

We previously used a disease-specific B cell receptor (BCR) point mutation (IGLV3-21R110) for selective targeting of a poor-risk subset of chronic lymphocytic leukemia (CLL) with chimeric antigen receptor (CAR) T cells. Since CLL is a disease of the elderly and a significant fraction of patients is not able to physically tolerate CAR T cell treatment, we explored bispecific antibodies as an alternative for precision targeting of this tumor mutation. Heterodimeric IgG1-based antibodies consisting of a fragment crystallizable region (Fc) attached to either an anti-IGLV3-21R110 Fab or an anti-CD3 (UCHT1) single chain variable fragment (R110-bsAb) selectively killed cell lines engineered to express high levels of the neoepitope as well as primary CLL cells using healthy donor and CLL patient-derived T cells as effectors. R110-bsAb spared polyclonal human B cells (as opposed to CD19-targeting Blinatumomab) as well as CD34+ human stem cells. Yet, R110-bsAb induced lower T cell activation than Blinatumomab with primary CLL cells likely due to lower expression of target antigen. In vivo, R110-bsAb specifically killed IGLV3-21R110-expressing cell lines and CLL cells while sparing peripheral blood mononuclear cells. These findings highlight bispecific antibodies as a promising, off-the-shelf immunotherapy for high-risk CLL patients, offering selective targeting while preserving healthy B cells.

cancer biology↗

Impact of clonal architecture on clinical course and prognosis in patients with myeloproliferative neoplasms

Myeloproliferative neoplasms (MPNs) are caused by a somatic gain-of-function mutation in one of three "disease driver" genes JAK2, MPL or CALR. About half of MPN patients also carry additional somatic mutations that modify the clinical course. The order of acquisition of these gene mutations has been proposed to influence the phenotype and evolution of the disease. We studied 50 JAK2-V617F-positive MPN patients who carried at least one additional somatic mutation and determined the clonal architecture of their hematopoiesis by sequencing DNA from single cell derived colonies. In 22 of these patients we also side-by-side applied Tapestri single-cell DNA sequencing (scDNAseq) with cells from the same blood sample. The clonal architectures derived by the two methods showed good overall concordance. scDNAseq showed higher sensitivity for mutations with low variant allele fraction, but had more difficulties distinguishing between heterozygous and homozygous mutations. By unsupervised analysis of clonal architecture data from all 50 MPN patients we defined 4 distinct clusters that differed by the order of acquisition of the mutations, and the complexity of the subclonal structure. Cluster 4, characterized by more complex subclonal structure without a preferred order of acquisition, correlated with reduced overall survival, and in multivariate analysis represented a risk factor independent of the MPN subtype or the age at diagnosis. Our results suggest that deciphering the clonal architecture in patients with MPN that carry multiple gene mutations can improve the molecular prognostic stratification that until now was primarily based on the number and type of gene mutations.

cancer biology↗