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Updated: Mar 15, 2026

Phospho Flow Cytometry with Fluorescent Cell Barcoding for Single Cell Signaling Analysis and Biomarker Discovery
Published on: October 4, 2018
Phosphorylation of a constrained azacyclic FTY720 analog enhances anti-leukemic activity without inducing S1P
A N McCracken1, R J McMonigle1, J Tessier2
1Department of Developmental and Cell Biology, University of California, Irvine, CA, USA.
Abstract:
The frequency of poor outcomes in relapsed leukemia patients underscores the need for novel therapeutic approaches. The Food and Drug Administration-approved immunosuppressant FTY720 limits leukemia progression by activating protein phosphatase 2A and restricting nutrient access. Unfortunately, FTY720 cannot be re-purposed for use in cancer patients due to on-target toxicity associated with S1P receptor activation at the elevated, anti-neoplastic dose. Here we show that the constrained azacyclic FTY720 analog SH-RF-177 lacks S1P receptor activity but maintains anti-leukemic activity in vitro and in vivo. SH-RF-177 was not only more potent than FTY720, but killed via a distinct mechanism. Phosphorylation is dispensable for FTY720's anti-leukemic actions. However, chemical biology and genetic approaches demonstrated that the sphingosine kinase 2 (SPHK2)-mediated phosphorylation of SH-RF-177 led to engagement of a pro-apoptotic target and increased potency. The cytotoxicity of membrane-permeant FTY720 phosphonate esters suggests that the enhanced potency of SH-RF-177 stems from its more efficient phosphorylation. The tight inverse correlation between SH-RF-177 IC50 and SPHK2 mRNA expression suggests a useful biomarker for SH-RF-177 sensitivity. In summary, these studies indicate that FTY720 analogs that are efficiently phosphorylated but fail to activate S1P receptors may be superior anti-leukemic agents compared to compounds that avoid cardiotoxicity by eliminating phosphorylation.
Insights
Novel FTY720 analogs, like SH-RF-177, show potent anti-leukemic activity without S1P receptor activation. Efficient phosphorylation, not S1P signaling, drives their efficacy, suggesting a new therapeutic strategy for leukemia.
Area of Science:
- Oncology
- Pharmacology
- Biochemistry
Background:
- Relapsed leukemia presents poor outcomes, necessitating novel therapies.
- FTY720, an immunosuppressant, has anti-leukemic effects but is limited by S1P receptor toxicity.
- Developing FTY720 analogs with improved safety and efficacy is crucial.
Purpose of the Study:
- To investigate the anti-leukemic potential of SH-RF-177, a constrained azacyclic FTY720 analog.
- To elucidate the mechanism of action for SH-RF-177, differentiating it from FTY720.
- To identify potential biomarkers for SH-RF-177 sensitivity.
Main Methods:
- In vitro and in vivo anti-leukemic activity assays.
- Chemical biology and genetic approaches to study drug mechanisms.
- Analysis of sphingosine kinase 2 (SPHK2) mRNA expression.
Main Results:
- SH-RF-177 demonstrated potent anti-leukemic activity in vitro and in vivo, lacking S1P receptor activity.
- SH-RF-177's efficacy is mediated by sphingosine kinase 2 (SPHK2)-dependent phosphorylation, distinct from FTY720.
- A strong inverse correlation between SH-RF-177 IC50 and SPHK2 mRNA suggests SPHK2 as a predictive biomarker.
Conclusions:
- FTY720 analogs like SH-RF-177, which are efficiently phosphorylated but do not activate S1P receptors, represent promising anti-leukemic agents.
- Targeting SPHK2-mediated phosphorylation offers a potential therapeutic strategy for leukemia.
- SH-RF-177's distinct mechanism and identified biomarker suggest superior therapeutic potential over FTY720.
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