bioRxiv Science⌕ Search

Biology subjects

Cani, A.

Publications and source records attributed to Cani, A..

2 recordsLinked to original sources

Single-cell multiomic profiling reveals lineage plasticity in pediatric B-lineage Acute Lymphoblastic Leukemia during the early phase of treatment

The biological bases of transient myelomonocytic switch (mmSW) during induction therapy in B-cell precursor acute lymphoblastic leukemia (BCP-ALL) remains largely undefined. Here we integrated single-cell transcriptomic and surface marker profiling with genomic and DNA methylation analyses of pediatric BCP-ALLs, including matched diagnosis (Dx) and Day+15 samples from mmSW-positive (mmSWpos) and mmSW-negative cases. At Dx, mmSWpos leukemia samples were enriched for hematopoietic stem/progenitor-like cell subpopulations. Trajectory and entropy analyses identified a pre-existing "fate-uncertain" cell compartment co-expressing both lymphoid and myeloid programs. Longitudinal single-cell data showed that, in mmSWpos samples, this population undergoes complete transdifferentiation. mmSWpos are enriched for Ras pathway and chromatin regulation mutations and display a specific DNA hypermethylation pattern at Dx. These findings indicate that transient mmSW arises from intrinsic leukemic plasticity, in which immature transcriptomic and distinct epigenetic states at diagnosis enable lineage switching under the pressure of ALL treatment.

Cancer Biology↗

Leukemic Cells Manipulate MSCs Bioelectrical Signals to Reshape the Bone Marrow Niche

Mesenchymal stromal cells (MSCs) are key components of the tumor microenvironment (TME), influencing leukemia progression through poorly understood mechanisms. We investigated the bioelectrical properties of MSCs derived from pediatric AML patients (AML-MSCs) and identified a significant depolarization of their resting membrane potential (Vmem, -14.7mV) compared to healthy MSCs (h-MSCs, -28.5mV), accompanied by downregulation of CaV1.2 L-type calcium channel expression. AML-MSCs displayed increased spontaneous calcium oscillations, suggesting altered ion homeostasis. Notably, h-MSCs exposed to AML blasts underwent a similar Vmem depolarization (-11.8mV) and CaV1.2 downregulation, indicating that leukemic cells actively reprogram MSCs. Functionally, Vmem depolarization in h-MSCs promoted a pro-leukemic phenotype, whereas hyperpolarization of AML-MSCs restored a normal behavior. CaV1.2 over-expression by lentiviral vectors in AML-MSCs shifted Vmem toward hyperpolarization and partially reversed their leukemia-supportive properties, in part through CaV1.2 transfer via tunneling nanotubes. These findings reveal that AML blasts impose a bioelectrical signature on MSCs, modulating ion channel activity to sustain a leukemic niche. Targeting this electrical reprogramming through CaV1.2 restoration represents a potential strategy to re-establish homeostasis in the bone marrow microenvironment.

cancer biology↗