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Biology subjects

Sell, T.

Publications and source records attributed to Sell, T..

2 recordsLinked to original sources

RUCova: Removal of Unwanted Covariance in mass cytometry data

High dimensional mass cytometry is confounded by unwanted covariance due to variations in cell size and staining efficiency, making analysis and interpretation challenging. We present RUCova, a novel method designed to address confounding factors in mass cytometry data. RUCova removes unwanted covariance using multivariate linear regression on Surrogates of Unwanted Covariance (SUCs), and Principal Component Analysis (PCA). We exemplify the use of RUCova and show that it effectively removes unwanted covariance while preserving genuine biological signals. Our results demonstrate the efficacy of RUCova in elucidating complex data patterns, facilitating the identification of activated signalling pathways, and improving the classification of important cell populations. By providing a robust framework for data normalization and interpretation, RUCova enhances the accuracy and reliability of mass cytometry analyses, contributing to advancements in our understanding of cellular biology and disease mechanisms. The R package is available on https://github.com/molsysbio/RUCova. Detailed documentation, data, and the code required to reproduce the results are available on https://doi.org/10.5281/zenodo.10913464. Supplementary material: Available at bioRxiv.

bioinformatics↗

Oncogenic signalling is coupled to colorectal cancer cell differentiation state

Colorectal cancer progression is intrinsically linked to stepwise deregulation of the intestinal differentiation trajectory. In this process, sequential mutations of APC/Wnt, KRAS, TP53 and SMAD4 stepwisely enable an oncogenic signalling network. Here, we developed a novel mass cytometry antibody panel to analyse colorectal cancer cell differentiation and signalling in human isogenic colorectal cancer organoids and in patient-derived cultures. We define a differentiation axis following EphrinB2 abundance in all tumour progression states from normal to cancer. We show that during colorectal cancer progression, oncogenes decrease dependence on external factors and shape distribution of cells along the differentiation axis. In this regard, subsequent mutations can have stem cell-promoting or restricting effects. Individual nodes of the signalling network remain coupled to the differentiation state, regardless of the presence of oncogenic signals. Our work underscores the key role of cell plasticity as a hallmark of cancer that is gradually unlocked during colorectal cancer progression.

cancer biology↗