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Updated: Oct 3, 2025

Multiplexed Single Cell mRNA Sequencing Analysis of Mouse Embryonic Cells
Published on: January 7, 2020
Comparative analysis of antibody- and lipid-based multiplexing methods for single-cell RNA-seq
Viacheslav Mylka1,2, Irina Matetovici1,3, Suresh Poovathingal3
1VIB Tech Watch, VIB Headquarters, Ghent, Belgium.
This study compares antibody and lipid hashing for multiplexing single-cell RNA sequencing (scRNA-seq) samples. Antibody hashing is most efficient for cells, while lipid hashing excels for nuclei and mouse brain samples, offering cost-effective solutions for large studies.
Area of Science:
- Genomics
- Molecular Biology
- Bioinformatics
Background:
- Multiplexing in single-cell RNA sequencing (scRNA-seq) reduces costs and batch effects.
- Hashing techniques using oligo-conjugated antibodies or lipids barcode samples for multiplexing.
Purpose of the Study:
- To compare the hashing performance of antibody-based and lipid-based methods.
- To evaluate hashing efficiency across different sample types (cells, nuclei) and species (human, mouse).
- To identify optimal hashing strategies for scRNA-seq and single-nucleus RNA-seq (snRNA-seq).
Main Methods:
- Comparison of TotalSeq-A/C antibodies, custom lipids, and MULTI-seq lipid hashes.
- Evaluation on cell lines, human PBMCs, and primary mouse tissues for scRNA-seq and snRNA-seq.
- Assessment of hashing efficiency using intrinsic genetic variation and clinical samples.
Main Results:
- Both antibody and lipid hashing enable accurate demultiplexing of human cells and nuclei.
- Antibody hashing is most efficient for cells, while lipid hashing performs best on nuclei and mouse brain.
- Antibody hashing shows better performance on mouse spleen and lung tissues.
Conclusions:
- Antibody and lipid hashing are effective for scRNA-seq and snRNA-seq multiplexing.
- The optimal hashing strategy depends on the sample type and tissue.
- Hashing provides a cost-effective approach for large-scale clinical sequencing studies.
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