Improving fibroblast characterization using single-cell RNA sequencing: an optimized tissue disaggregation and data processing pipeline.

Access Granted
Updated February 14, 2025

Single-cell RNA sequencing (scRNA-Seq) provides a valuable platform for characterising multicellular ecosystems. Fibroblasts are a heterogeneous cell type involved in many physiological and pathological processes, but remain poorly-characterised. Analysis of fibroblasts is challenging: these cells are difficult to isolate from tissues, and are therefore commonly under-represented in scRNA-seq datasets. Here, we describe an optimised approach for fibroblast isolation from human lung tissues. We demonstrate the potential for this procedure in characterising stromal cell phenotypes using scRNA-Seq, analyse the effect of tissue disaggregation on gene expression, and optimise data processing to improve clustering quality. Overall design: mRNA profiles of human lung samples (tumour, inflamed and normal lung) from 3 patients.

Christopher J HanleyUniversity of SouthamptonHanley@soton.ac.uk
Sara Waise1
Rachel Parker1
Matthew JJ Rose-Zerilli1
David M Layfield1
Oliver Wood1
Jonathan West1
Christian H Ottensmeier1
Gareth J Thomas1
Christopher J Hanley1
1University of Southampton
Ami Day

To reference this project, please use the following link:

https://explore.data.humancellatlas.org/projects/0562d2ae-0b8a-459e-bbc0-6357108e5da9
None
INSDC Project Accessions:
GEO Series Accessions:
INSDC Study Accessions:

Atlas

None

Analysis Portals

None

Project Label

HumanFibroblastCharacterisation

Species

Homo sapiens

Sample Type

cellLines

Anatomical Entity

lung

Organ Part

Unspecified

Selected Cell Types

fibroblast

Model Organ

lung

Disease Status (Specimen)

3 disease statuses

Disease Status (Donor)

3 disease statuses

Development Stage

human adult stage

Library Construction Method

Drop-seq

Nucleic Acid Source

single cell

Paired End

false

Analysis Protocol

raw_matrix_generation

File Format

3 file formats

Cell Count Estimate

3.2k

Donor Count

3
fastq16 file(s)txt.gz1 file(s)xlsx1 file(s)
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