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Turkalj, S.

Publications and source records attributed to Turkalj, S..

2 recordsLinked to original sources

Rapid clonal selection within early hematopoietic cell compartments presages outcome to ivosidenib combination therapy

Acquired resistance to targeted non-intensive therapies is common in myeloid malignancies. Yet, key questions remain as to how rapidly resistant clones are selected by treatment and in which hematopoietic cell compartments clonal selection occurs. To address this gap, we studied clonal responses to ivosidenib + venetoclax {+/-} azacitidine combination therapy in 8 patients with IDH1-mutant myeloid malignancy. Whilst all 8 patients initially responded to treatment, 6 relapsed and 2 remained in sustained remission for > 4 years. To study longitudinal clonal dynamics through hematopoietic differentiation, we performed high-sensitivity single-cell genotyping in index-sorted sequential patient samples. In all patients who relapsed, therapy-resistant clones were selected rapidly, within 1-3 treatment cycles, at times when hematopoiesis was still largely sustained by either normal or pre-leukemic cells. Selection of therapy-resistant clones preceded overt treatment failure by months or even years. Relapse was associated either with clones harboring newly-detected myeloid driver mutations or expansion of minor pre-existing clones that had reduced fitness prior to treatment. In both cases, resistant clones were selected within immature cell populations previously shown to contain leukemic stem cell (LSC) potential, preceding malignant expansion of these compartments by immunophenotyping. In contrast, in both patients remaining in remission, leukemic clones were eradicated and rapidly replaced by clonal and wild-type hematopoiesis. These observations suggest that, in patients treated with non-intensive ivosidenib combination therapy, rapid clonal selection occurs in populations with LSC potential, where failure to eliminate either genetically evolved or persistent leukemic clones ultimately leads to relapse. Key points- Rapid selection of leukemic clones occurs within small populations with LSC potential, months or years prior to relapse. - Rapid eradication of leukemic clones leads to sustained remission in the context of ivosidenib combination therapy.

cancer biology↗

Selective advantage of mutant stem cells in clonal hematopoiesis occurs by attenuating the deleterious effects of inflammation and aging

Clonal hematopoiesis (CH) arises when hematopoietic stem cells (HSC) acquire mutations in genes, including DNMT3A and TET2, conferring a competitive advantage through a mechanism that remains unclear. To gain insight into how CH mutations enable gradual clonal expansion, we used single-cell multi-omics with high-fidelity genotyping on CH bone marrow samples. Most of the selective advantage of mutant cells occurs within HSCs. DNMT3A and TET2-mutant clones expand further in early progenitors, while TET2 mutations accelerate myeloid maturation in a dose-dependent manner. Unexpectedly, both mutant and non-mutant HSCs from CH samples are enriched for inflammatory and aging transcriptomic signatures, compared to HSC from non-CH samples, revealing a non-cell autonomous mechanism. However, DNMT3A and TET2-mutant HSCs have an attenuated inflammatory response relative to wild-type HSCs within the same sample. Our data support a model whereby CH clones are gradually selected because they are more resistant to the deleterious impact of inflammation and aging.

cancer biology↗