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10X Genomics microfluidics based platform
Microfluidics Based Platform, supplied by 10X Genomics, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/microfluidics-based+platform/microfluidic+platform/pm41197291-88-8-4
Average 86 stars, based on 1 article reviews
microfluidics based platform - by Bioz Stars, 2026-09
86/100 stars

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Related Articles

Suspension:

Article Title: Tuft Cells Increase Following Ovine Intestinal Parasite Infections and Define Evolutionarily Conserved and Divergent Responses
Article Snippet: .. The cell suspension for each sheep was processed separately using the droplet-based Chromium Controller microfluidic platform (10x Genomics) ( ) with Chromium Single Cell 3’ Reagent Kit (v.3) according to the manufacturer’s protocol by University of Glasgow Polyomics facility using a total of 20,000 input cells in a volume of 46 μl. .. Briefly, cells were partitioned into Gel Beads in Emulsion, followed by lysis, and extracted RNA subject to barcoded reverse transcription. cDNA was amplified (12 cycles), libraries generated and sequenced on an Illumina NextSeq 500 system to a depth of 50,000 read pairs per cell.

Single Cell:

Article Title: Tuft Cells Increase Following Ovine Intestinal Parasite Infections and Define Evolutionarily Conserved and Divergent Responses
Article Snippet: .. The cell suspension for each sheep was processed separately using the droplet-based Chromium Controller microfluidic platform (10x Genomics) ( ) with Chromium Single Cell 3’ Reagent Kit (v.3) according to the manufacturer’s protocol by University of Glasgow Polyomics facility using a total of 20,000 input cells in a volume of 46 μl. .. Briefly, cells were partitioned into Gel Beads in Emulsion, followed by lysis, and extracted RNA subject to barcoded reverse transcription. cDNA was amplified (12 cycles), libraries generated and sequenced on an Illumina NextSeq 500 system to a depth of 50,000 read pairs per cell.

Article Title: Integrated Single-Cell Bioinformatics Analysis Reveals Intrinsic and Extrinsic Biological Characteristics of Hematopoietic Stem Cell Aging
Article Snippet: .. The single cell transcriptome profiles of young and aged mouse bone marrow based on the microfluidic droplet platform (10x Genomics) were shared by the Tabula Muris Consortium ( tabula-muris-senis.ds.czbiohub.org ) ( ; ) and can be downloaded from the Gene Expression Omnibus database (GSE109774 and GSE132042). ..

RNA Sequencing:

Article Title: Piecing the puzzle together: Analyses in plants at the single-cell resolution.
Article Snippet: In recent years, single-cell and single-nuclei-omic technologies have advanced rapidly in plant research, with RNA sequencing being widely adopted, and chromatin accessibility profiling through assay for transposase-accessible chromatin with sequencing steadily expanding.. These approaches have provided unprecedented insight into plant development, cell identity, and stress responses.. Integrating transcriptomic and chromatin accessibility data has made it possible to link regulatory elements with gene expression across diverse plant tissues.

other:

Article Title: OMICs, Epigenetics, and Genome Editing Techniques for Food and Nutritional Security
Article Snippet: The creation of the first high throughput commercial droplet-based platform (10X Genomics Chromium single-cell microfluidics device) allowing generate transcriptomes from single cells [ ] became the starting point for the rapid development of single-cell transcriptomics, first for animals and then for plants.

Article Title: Long-read sequencing and de novo genome assembly of marine medaka ( Oryzias melastigma )
Article Snippet: 10X Genomics provides an integrated microfluidics-based platform for generating linked reads and customized software for their analysis [ , ].

Gene Expression:

Article Title: Integrated Single-Cell Bioinformatics Analysis Reveals Intrinsic and Extrinsic Biological Characteristics of Hematopoietic Stem Cell Aging
Article Snippet: .. The single cell transcriptome profiles of young and aged mouse bone marrow based on the microfluidic droplet platform (10x Genomics) were shared by the Tabula Muris Consortium ( tabula-muris-senis.ds.czbiohub.org ) ( ; ) and can be downloaded from the Gene Expression Omnibus database (GSE109774 and GSE132042). ..



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A) Comparison of SAFAARI’s performance with the selected reference-based cell-type annotation models in both open-set and closed-set settings. The scRNA-seq data from eight different tissues in the Tabula Muris cell atlas was obtained where the gene counts were derived using two techniques: 10x Genomics and FACS-based cell capture in plates (FACS). For the performance assessment, either FACS or 10x was considered as the source dataset, and the other as the target dataset, to evaluate reference-based cell type annotation or label transfer in the presence of a technology-based domain-shift or batch effect. Two scenarios were considered: the closed-set, where only cell types common to both source and target datasets were included, and the open-set, where the target dataset contained an unknown cell type not present in the source dataset . B) Heatmap representing the confusion matrix across eight tissues (target: FACS), showing cell-type-specific annotation performance. Columns represent the actual cell labels, while rows show the predicted cell labels. The cell type coloured in navy blue represents the unknown cell type whose instances were removed from the source dataset. Colours in the viridis palette and indicate the proportion of cells relative to the sum of the column (i.e., values across columns should add up to 1.0). This represents the proportion of correct classifications (diagonal values) and misclassifications for each particular cell type represented by the column names. C) UMAP of open-set Label transfer result of SAFAARI on four human pancreas datasets generated with different technologies, including <t>microfluidic</t> (Fluidigm C), droplet-based (InDrops) and plate-based scRNA-seq (CEL-seq2, Smart-seq2) as detailed in . It demonstrates SAFAARI’s superior batch mixing, cell separation and unknown cell type detection.
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Image Search Results


 Microfluidic-based  studies for biomolecular detection

Journal: BioImpacts : BI

Article Title: Microfluidics as a promising technology for personalized medicine

doi: 10.34172/bi.29944

Figure Lengend Snippet: Microfluidic-based studies for biomolecular detection

Article Snippet: Porous membrane based microfluidic platforms also can simply separate microvesicles from biofluids.

Techniques: Amplification, Labeling, Isolation, Binding Assay, Hybridization, SPR Assay, Control

 Microfluidic-based  studies for drug screening

Journal: BioImpacts : BI

Article Title: Microfluidics as a promising technology for personalized medicine

doi: 10.34172/bi.29944

Figure Lengend Snippet: Microfluidic-based studies for drug screening

Article Snippet: Porous membrane based microfluidic platforms also can simply separate microvesicles from biofluids.

Techniques: Isolation, Drug discovery, Microscopy

Cancer on a chip studies

Journal: BioImpacts : BI

Article Title: Microfluidics as a promising technology for personalized medicine

doi: 10.34172/bi.29944

Figure Lengend Snippet: Cancer on a chip studies

Article Snippet: Porous membrane based microfluidic platforms also can simply separate microvesicles from biofluids.

Techniques: Membrane, Cell Culture, Activation Assay, In Vitro, Shear

Organ-on-a -chip studies

Journal: BioImpacts : BI

Article Title: Microfluidics as a promising technology for personalized medicine

doi: 10.34172/bi.29944

Figure Lengend Snippet: Organ-on-a -chip studies

Article Snippet: Porous membrane based microfluidic platforms also can simply separate microvesicles from biofluids.

Techniques: Cell Culture, Diffusion-based Assay, Shear, Functional Assay, Membrane, Construct, Derivative Assay, Generated, Polymer, Fluorescence

IsoLight single T-cell live functional immune proteomics profiling workflow.

Journal: Translational Lung Cancer Research

Article Title: Quantitative peripheral live single T-cell dynamic polyfunctionality profiling predicts lung cancer checkpoint immunotherapy treatment response and clinical outcomes

doi: 10.21037/tlcr-24-260

Figure Lengend Snippet: IsoLight single T-cell live functional immune proteomics profiling workflow.

Article Snippet: In this proof-of-concept analysis, we adopted a microfluidics-based multiplexed lab-on-chip proteomics assay platform, IsoLight (Bruker Cellular Analysis, Branford, CT, USA; formerly IsoPlexis), to functionally interrogate live peripheral T-lymphocyte subsets at the single-cell level in a discovery study of T-lymphocytes polyfunctionality as a potential predictive biomarker for ICI treatment response and clinical outcomes correlation in NSCLC.

Techniques: Functional Assay

A) Comparison of SAFAARI’s performance with the selected reference-based cell-type annotation models in both open-set and closed-set settings. The scRNA-seq data from eight different tissues in the Tabula Muris cell atlas was obtained where the gene counts were derived using two techniques: 10x Genomics and FACS-based cell capture in plates (FACS). For the performance assessment, either FACS or 10x was considered as the source dataset, and the other as the target dataset, to evaluate reference-based cell type annotation or label transfer in the presence of a technology-based domain-shift or batch effect. Two scenarios were considered: the closed-set, where only cell types common to both source and target datasets were included, and the open-set, where the target dataset contained an unknown cell type not present in the source dataset . B) Heatmap representing the confusion matrix across eight tissues (target: FACS), showing cell-type-specific annotation performance. Columns represent the actual cell labels, while rows show the predicted cell labels. The cell type coloured in navy blue represents the unknown cell type whose instances were removed from the source dataset. Colours in the viridis palette and indicate the proportion of cells relative to the sum of the column (i.e., values across columns should add up to 1.0). This represents the proportion of correct classifications (diagonal values) and misclassifications for each particular cell type represented by the column names. C) UMAP of open-set Label transfer result of SAFAARI on four human pancreas datasets generated with different technologies, including microfluidic (Fluidigm C), droplet-based (InDrops) and plate-based scRNA-seq (CEL-seq2, Smart-seq2) as detailed in . It demonstrates SAFAARI’s superior batch mixing, cell separation and unknown cell type detection.

Journal: bioRxiv

Article Title: Single-Cell Data Integration and Cell Type Annotation through Contrastive Adversarial Open-set Domain Adaptation

doi: 10.1101/2024.10.04.616599

Figure Lengend Snippet: A) Comparison of SAFAARI’s performance with the selected reference-based cell-type annotation models in both open-set and closed-set settings. The scRNA-seq data from eight different tissues in the Tabula Muris cell atlas was obtained where the gene counts were derived using two techniques: 10x Genomics and FACS-based cell capture in plates (FACS). For the performance assessment, either FACS or 10x was considered as the source dataset, and the other as the target dataset, to evaluate reference-based cell type annotation or label transfer in the presence of a technology-based domain-shift or batch effect. Two scenarios were considered: the closed-set, where only cell types common to both source and target datasets were included, and the open-set, where the target dataset contained an unknown cell type not present in the source dataset . B) Heatmap representing the confusion matrix across eight tissues (target: FACS), showing cell-type-specific annotation performance. Columns represent the actual cell labels, while rows show the predicted cell labels. The cell type coloured in navy blue represents the unknown cell type whose instances were removed from the source dataset. Colours in the viridis palette and indicate the proportion of cells relative to the sum of the column (i.e., values across columns should add up to 1.0). This represents the proportion of correct classifications (diagonal values) and misclassifications for each particular cell type represented by the column names. C) UMAP of open-set Label transfer result of SAFAARI on four human pancreas datasets generated with different technologies, including microfluidic (Fluidigm C), droplet-based (InDrops) and plate-based scRNA-seq (CEL-seq2, Smart-seq2) as detailed in . It demonstrates SAFAARI’s superior batch mixing, cell separation and unknown cell type detection.

Article Snippet: These methods range from microfluidic droplet-based platforms (such as 10x Genomics Chromium, Drop-seq, and inDrops) to plate-based scRNA-seq technologies like Smart-seq, Smart-seq2, and Smart-seq3, resulting in substantial heterogeneity across datasets.

Techniques: Comparison, Derivative Assay, Generated