Simulations reveal that different responses to cell crowding determine the expansion of <i>p53</i> and <i>Notch</i> mutant clones in squamous epithelia.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 34637643.
- Also identified by DOI 10.1098/rsif.2021.0607 and PMC identifier 8510697.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
During ageing, normal epithelial tissues progressively accumulate clones carrying mutations that increase mutant cell fitness above that of wild-type cells. Such mutants spread widely through the tissues, yet despite this cellular homeostasis and functional integrity of the epithelia are maintained. Two of the genes most commonly mutated in human skin and oesophagus are <i>p53</i> and <i>Notch1</i>, both of which are also recurrently mutated in cancers of these tissues. From observations taken in human and mouse epithelia, we find that clones carrying <i>p53</i> and <i>Notch</i> pathway mutations have different clone dynamics which can be explained by their different responses to local cell crowding. <i>p53</i> mutant clone growth in mouse epidermis approximates a logistic curve, but feedbacks responding to local crowding are required to maintain tissue homeostasis. We go on to show that the observed ability of <i>Notch</i> pathway mutant cells to displace the wild-type population in the mouse oesophageal epithelium reflects a local density feedback that affects both mutant and wild-type cells equally. We then show how these distinct feedbacks are consistent with the distribution of mutations observed in human datasets and are suggestive of a putative mechanism to constrain these cancer-associated mutants.
Medical subject headings
- Epithelium
- Receptor, Notch1
- Tumor Suppressor Protein p53