Targeting TPC2 sensitizes acute lymphoblastic leukemia cells to chemotherapeutics by impairing lysosomal function

Franz Geisslinger1, Martin Müller1, Yu-Kai Chao2

  • 1Ludwig-Maximilians University, Departement of Pharmacy, Pharmaceutical Biology, Munich, Germany.

Cell Death & Disease
|August 1, 2022
PubMed

Insights

Targeting the lysosomal channel TPC2 (Two-Pore-Channel 2) can overcome chemoresistance in acute lymphoblastic leukemia (ALL). Inhibiting TPC2 sensitizes leukemia cells to chemotherapy by enhancing drug delivery and inducing lysosomal cell death.

Area of Science:

  • Cell Biology
  • Molecular Oncology
  • Pharmacology

Background:

  • Chemoresistance is a major obstacle in acute lymphoblastic leukemia (ALL) treatment.
  • Lysosomes are emerging as key regulators of cell death and chemotherapy response.
  • Increased expression of the lysosomal cation channel Two-Pore-Channel 2 (TPC2) is observed in drug-resistant ALL cells.

Purpose of the Study:

  • To investigate the role of TPC2 in chemoresistance in ALL.
  • To explore TPC2 as a potential therapeutic target for chemosensitization.

Main Methods:

  • TPC2 knockout (KO) in drug-resistant ALL cell lines.
  • Treatment with cytostatics and TPC2 inhibitors (naringenin, tetrandrine).
  • Analysis of drug accumulation, lysosomal pH, lysosomal stability, and cell death markers (e.g., cathepsin B, Bid).
  • Validation in patient-derived xenograft ALL cells.

Main Results:

  • TPC2 KO sensitized drug-resistant ALL cells to chemotherapy.
  • Inhibition of TPC2 led to increased nuclear drug accumulation due to impaired lysosomal sequestration.
  • Loss of TPC2 function induced lysosomal damage and subsequent lysosomal cell death (LCD).
  • TPC2 inhibition demonstrated chemosensitizing effects in various cell lines and patient-derived xenografts.

Conclusions:

  • TPC2 is a druggable target for overcoming chemoresistance in ALL.
  • Targeting TPC2 offers a dual mechanism for chemosensitization: enhanced drug delivery and induced LCD.
  • Pharmacological inhibition of TPC2 presents a promising strategy for future ALL combination therapies.