Related Experiment Video
Updated: Jan 5, 2026

Enhancing Tumor Content through Tumor Macrodissection
Published on: February 12, 2022
Pharmacological DNA demethylation restores SMAD1 expression and tumor suppressive signaling in diffuse large B-cell
Anna Stelling1, Cheuk-Ting Wu1, Katrin Bertram1
1Institute of Molecular Cancer Research, Zurich, Switzerland.
Abstract:
The sphingosine-1-phosphate (S1P) receptor S1PR2 and its downstream adaptor Gα13 are recurrently mutationally inactivated in the germinal center B-cell subtype of diffuse large B-cell lymphoma (DLBCL) and are silenced by the S1PR2 repressor FOXP1 in the activated B-cell like subtype of the disease. Loss of S1PR2 signaling relieves the germinal center confinement that is maintained by an S1P gradient and allows cells to resist S1P-induced apoptosis. We have shown previously that S1PR2 expression is induced in normal B cells through a newly described transforming growth factor-β (TGF-β)/TGF-βRII/SMAD1 signaling axis that is inactivated in >85% of DLBCL patients. DLBCL cell lines lacking S1PR2, TGFBRII, or SMAD1 as the result of genomic editing all have a strong growth advantage in vitro, as well as in subcutaneous and orthotopic xenotransplantation models. Here, we show that the TGF-β signaling pathway in DLBCL is blocked at the level of SMAD1 in DLBCL cell lines and patient samples by hypermethylation of CpG-rich regions surrounding the SMAD1 transcription start site. The pharmacologic restoration of SMAD1 expression by the demethylating agent decitabine (DAC) sensitizes cells to TGF-β-induced apoptosis and reverses the growth of initially SMAD1- cell lines in ectopic and orthotopic models. This effect of DAC is reduced in a SMAD1-knockout cell line. We further show that DAC restores SMAD1 expression and reduces the tumor burden in a novel patient-derived orthotopic xenograft model. The combined data lend further support to the concept of an altered epigenome as a major driver of DLBCL pathogenesis.
Insights
Restoring SMAD1 expression with decitabine combats diffuse large B-cell lymphoma (DLBCL) by sensitizing cancer cells to apoptosis and reducing tumor growth, highlighting the role of epigenetics in DLBCL.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Sphingosine-1-phosphate receptor 2 (S1PR2) signaling is crucial for B-cell confinement and apoptosis sensitivity.
- S1PR2 is inactivated in diffuse large B-cell lymphoma (DLBCL) through mutation or repression.
- Transforming growth factor-beta (TGF-β)/SMAD1 signaling induces S1PR2 in normal B cells but is inactivated in most DLBCL.
Purpose of the Study:
- To investigate the mechanism of TGF-β/SMAD1 pathway inactivation in DLBCL.
- To evaluate the therapeutic potential of restoring SMAD1 expression in DLBCL.
Main Methods:
- Analysis of DLBCL cell lines and patient samples for SMAD1 expression and methylation.
- Genomic editing to create S1PR2, TGFBRII, or SMAD1 deficient DLBCL models.
- In vitro and in vivo (xenotransplantation) studies using decitabine (DAC) to restore SMAD1 expression.
- Assessment of cell apoptosis, growth advantage, and tumor burden.
Main Results:
- The TGF-β/SMAD1 pathway is blocked by hypermethylation of SMAD1 in DLBCL.
- Decitabine (DAC) treatment restores SMAD1 expression, sensitizes DLBCL cells to TGF-β-induced apoptosis, and inhibits tumor growth in vitro and in vivo.
- DAC's efficacy is linked to SMAD1 restoration, as shown in SMAD1-knockout models.
Conclusions:
- Epigenetic alterations, specifically SMAD1 hypermethylation, are key drivers in DLBCL pathogenesis.
- Pharmacologic restoration of SMAD1 using decitabine represents a promising therapeutic strategy for DLBCL.
More Related Videos
11:06Genome-wide Analysis of HDAC Inhibitor-mediated Modulation of microRNAs and mRNAs in B Cells Induced to Undergo Class-switch DNA Recombination and Plasma Cell Differentiation
Published on: September 20, 2017
13:47Lentiviral Vector Platform for the Efficient Delivery of Epigenome-editing Tools into Human Induced Pluripotent Stem Cell-derived Disease Models
Published on: March 29, 2019