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Updated: Aug 21, 2025

High-throughput and Comprehensive Drug Surveillance Using Multisegment Injection-Capillary Electrophoresis-Mass Spectrometry
Published on: April 23, 2019
Quantitative analysis of drug distribution in heterogeneous tissues using dual-stacking capillary
Shigehiro Koganemaru1, Takayuki Kawai2,3, Hirobumi Fuchigami4
1Department of Experimental Therapeutics, National Cancer Center Hospital East, Kashiwa, Japan.
Background And Purpose:
Intratumour heterogeneity frequently leads to drug resistance, which is a major issue in drug discovery. Drug distribution is one of the key factors for elucidating the resistance mechanism; however, quantitative and regional drug measurement is challenging. Here, we developed a novel ultra-sensitive analytical method and applied it to HER3-targeting antibody-drug conjugate patritumab deruxtecan (HER3-DXd), aiming to explore its payload (DXd) distribution within heterogeneous tissues.
Experimental Approach:
The developed analytical method is named LDMS-CE-MS, a capillary electrophoresis-mass spectrometry (CE-MS) coupled with a novel sample preconcentration/separation method called "large-volume dual-sample stacking by micelle collapse and sweeping (LDMS)". First, the analytical performance of LDMS-CE-MS for DXd detection was evaluated. Subsequently, we evaluated the bystander effect of HER3-DXd, where tumour tissues were excised from xenograft models and clinical specimens after administration of HER3-DXd. HER3-high expression, adjacent, and HER3-low expression regions were then sampled by laser microdissection to quantify the released DXd.
Key Results:
LDMS concentrated DXd by 1000-fold and separated it from the hydrophilic bio-matrix through continuous capture and release by the charged micelles, allowing quantification at sub-attomole-level. DXd concentrations decreased in the order of antigen-high expression > adjacent > antigen-low expression regions in the tumour xenograft model, whereas in clinical specimens, adjacent and antigen-high expression regions had approximately the same concentration. These distributions represent a bystander effect.
Conclusions And Implications:
Our LDMS-CE-MS successfully visualized the attomole-level drug distributions in heterogeneous clinical specimens. This new platform opens a new era of quantitative pharmacokinetic analysis, facilitating drug discovery and development.
Insights
A new ultra-sensitive method, LDMS-CE-MS, quantifies drug distribution in heterogeneous tumors. This reveals payload (DXd) concentration differences based on HER3 expression, aiding drug discovery.
Area of Science:
- Pharmacology
- Analytical Chemistry
- Oncology
Background:
- Intratumour heterogeneity causes drug resistance, a major challenge in drug discovery.
- Quantitative regional drug measurement is difficult but crucial for understanding resistance mechanisms.
Purpose of the Study:
- To develop an ultra-sensitive analytical method for quantifying drug distribution in heterogeneous tissues.
- To apply this method to patritumab deruxtecan (HER3-DXd) to explore its payload (DXd) distribution.
Main Methods:
- Developed LDMS-CE-MS (large-volume dual-sample stacking by micelle collapse and sweeping coupled with capillary electrophoresis-mass spectrometry).
- Evaluated LDMS-CE-MS for DXd detection and quantified released DXd in HER3-high, adjacent, and HER3-low regions of xenograft and clinical tumor specimens.
Main Results:
- LDMS-CE-MS achieved 1000-fold concentration and sub-attomole-level quantification of DXd.
- DXd concentrations were higher in HER3-high regions in xenografts, while clinical specimens showed similar concentrations in adjacent and HER3-high regions, indicating a bystander effect.
Conclusions:
- LDMS-CE-MS enables visualization of attomole-level drug distribution in heterogeneous clinical samples.
- This platform advances quantitative pharmacokinetic analysis, supporting drug discovery and development.
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