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1.
Nature ; 629(8013): 910-918, 2024 May.
Article in English | MEDLINE | ID: mdl-38693263

ABSTRACT

International differences in the incidence of many cancer types indicate the existence of carcinogen exposures that have not yet been identified by conventional epidemiology make a substantial contribution to cancer burden1. In clear cell renal cell carcinoma, obesity, hypertension and tobacco smoking are risk factors, but they do not explain the geographical variation in its incidence2. Underlying causes can be inferred by sequencing the genomes of cancers from populations with different incidence rates and detecting differences in patterns of somatic mutations. Here we sequenced 962 clear cell renal cell carcinomas from 11 countries with varying incidence. The somatic mutation profiles differed between countries. In Romania, Serbia and Thailand, mutational signatures characteristic of aristolochic acid compounds were present in most cases, but these were rare elsewhere. In Japan, a mutational signature of unknown cause was found in more than 70% of cases but in less than 2% elsewhere. A further mutational signature of unknown cause was ubiquitous but exhibited higher mutation loads in countries with higher incidence rates of kidney cancer. Known signatures of tobacco smoking correlated with tobacco consumption, but no signature was associated with obesity or hypertension, suggesting that non-mutagenic mechanisms of action underlie these risk factors. The results of this study indicate the existence of multiple, geographically variable, mutagenic exposures that potentially affect tens of millions of people and illustrate the opportunities for new insights into cancer causation through large-scale global cancer genomics.


Subject(s)
Carcinoma, Renal Cell , Environmental Exposure , Geography , Kidney Neoplasms , Mutagens , Mutation , Female , Humans , Male , Aristolochic Acids/adverse effects , Carcinoma, Renal Cell/genetics , Carcinoma, Renal Cell/epidemiology , Carcinoma, Renal Cell/chemically induced , Environmental Exposure/adverse effects , Environmental Exposure/analysis , Genome, Human/genetics , Genomics , Hypertension/epidemiology , Incidence , Japan/epidemiology , Kidney Neoplasms/genetics , Kidney Neoplasms/epidemiology , Kidney Neoplasms/chemically induced , Mutagens/adverse effects , Obesity/epidemiology , Risk Factors , Romania/epidemiology , Serbia/epidemiology , Thailand/epidemiology , Tobacco Smoking/adverse effects , Tobacco Smoking/genetics
3.
Dev Cell ; 58(4): 267-277.e5, 2023 02 27.
Article in English | MEDLINE | ID: mdl-36800994

ABSTRACT

The number of cells in tissues is controlled by cell division and cell death, and its misregulation could lead to pathological conditions such as cancer. To maintain the cell numbers, a cell-elimination process called apoptosis also stimulates the proliferation of neighboring cells. This mechanism, apoptosis-induced compensatory proliferation, was originally described more than 40 years ago. Although only a limited number of the neighboring cells need to divide to compensate for the apoptotic cell loss, the mechanisms that select cells to divide have remained elusive. Here, we found that spatial inhomogeneity in Yes-associated protein (YAP)-mediated mechanotransduction in neighboring tissues determines the inhomogeneity of compensatory proliferation in Madin-Darby canine kidney (MDCK) cells. Such inhomogeneity arises from the non-uniform distribution of nuclear size and the non-uniform pattern of mechanical force applied to neighboring cells. Our findings from a mechanical perspective provide additional insight into how tissues precisely maintain homeostasis.


Subject(s)
Apoptosis , Mechanotransduction, Cellular , Animals , Dogs , Apoptosis/physiology , Cell Death , Cell Division , Madin Darby Canine Kidney Cells , Cell Proliferation/physiology
4.
Nat Protoc ; 17(5): 1266-1305, 2022 05.
Article in English | MEDLINE | ID: mdl-35322210

ABSTRACT

Human skin uses millions of hairs and glands distributed across the body surface to function as an external barrier, thermoregulator and stimuli sensor. The large-scale generation of human skin with these appendages would be beneficial, but is challenging. Here, we describe a detailed protocol for generating hair-bearing skin tissue entirely from a homogeneous population of human pluripotent stem cells in a three-dimensional in vitro culture system. Defined culture conditions are used over a 2-week period to induce differentiation of pluripotent stem cells to surface ectoderm and cranial neural crest cells, which give rise to the epidermis and dermis, respectively, in each organoid unit. After 60 d of incubation, the skin organoids produce hair follicles. By day ~130, the skin organoids reach full complexity and contain stratified skin layers, pigmented hair follicles, sebaceous glands, Merkel cells and sensory neurons, recapitulating the cell composition and architecture of fetal skin tissue at week 18 of gestation. Skin organoids can be maintained in culture using this protocol for up to 150 d, enabling the organoids to be used to investigate basic skin biology, model disease and, further, reconstruct or regenerate skin tissue.


Subject(s)
Organoids , Pluripotent Stem Cells , Cell Differentiation , Hair , Hair Follicle , Humans , Skin
5.
Nat Commun ; 12(1): 397, 2021 01 15.
Article in English | MEDLINE | ID: mdl-33452264

ABSTRACT

Apoptotic extrusion is crucial in maintaining epithelial homeostasis. Current literature supports that epithelia respond to extrusion by forming a supracellular actomyosin purse-string in the neighbors. However, whether other actin structures could contribute to extrusion and how forces generated by these structures can be integrated are unknown. Here, we found that during extrusion, a heterogeneous actin network composed of lamellipodia protrusions and discontinuous actomyosin cables, was reorganized in the neighboring cells. The early presence of basal lamellipodia protrusion participated in both basal sealing of the extrusion site and orienting the actomyosin purse-string. The co-existence of these two mechanisms is determined by the interplay between the cell-cell and cell-substrate adhesions. A theoretical model integrates these cellular mechanosensitive components to explain why a dual-mode mechanism, which combines lamellipodia protrusion and purse-string contractility, leads to more efficient extrusion than a single-mode mechanism. In this work, we provide mechanistic insight into extrusion, an essential epithelial homeostasis process.


Subject(s)
Actomyosin/metabolism , Apoptosis/physiology , Cell Adhesion/physiology , Epithelium/physiology , Models, Biological , Animals , Dogs , Madin Darby Canine Kidney Cells , Pseudopodia/physiology
6.
Mol Biol Cell ; 29(4): 380-388, 2018 02 15.
Article in English | MEDLINE | ID: mdl-29282282

ABSTRACT

The shaping of a multicellular body and repair of adult tissues require fine--tuning of cell adhesion, cell mechanics, and intercellular transmission of mechanical load. Adherens junctions (AJs) are the major intercellular junctions by which cells sense and exert mechanical force on each other. However, how AJs adapt to mechanical stress and how this adaptation contributes to cell-cell cohesion and eventually to tissue-scale dynamics and mechanics remains largely unknown. Here, by analyzing the tension-dependent recruitment of vinculin, α-catenin, and F-actin as a function of stiffness, as well as the dynamics of GFP-tagged wild-type and mutated α-catenins, altered for their binding capability to vinculin, we demonstrate that the force-dependent binding of vinculin stabilizes α-catenin and is responsible for AJ adaptation to force. Challenging cadherin complexes mechanical coupling with magnetic tweezers, and cell-cell cohesion during collective cell movements, further highlight that tension-dependent adaptation of AJs regulates cell-cell contact dynamics and coordinated collective cell migration. Altogether, these data demonstrate that the force-dependent α-catenin/vinculin interaction, manipulated here by mutagenesis and mechanical control, is a core regulator of AJ mechanics and long-range cell-cell interactions.


Subject(s)
Actins/metabolism , Adherens Junctions/metabolism , Vinculin/metabolism , alpha Catenin/metabolism , Animals , Cell Adhesion , Cells, Cultured , Dogs , Fluorescent Antibody Technique , Humans , Madin Darby Canine Kidney Cells , Mechanical Phenomena , Mechanotransduction, Cellular , Protein Binding
7.
Curr Biol ; 26(21): 2942-2950, 2016 11 07.
Article in English | MEDLINE | ID: mdl-27746027

ABSTRACT

The control of tissue growth, which is a key to maintain the protective barrier function of the epithelium, depends on the balance between cell division and cell extrusion rates [1, 2]. Cells within confluent epithelial layers undergo cell extrusion, which relies on cell-cell interactions [3] and actomyosin contractility [4, 5]. Although it has been reported that cell extrusion is also dependent on cell density [6, 7], the contribution of tissue mechanics, which is tightly regulated by cell density [8-12], to cell extrusion is still poorly understood. By measuring the multicellular dynamics and traction forces, we show that changes in epithelial packing density lead to the emergence of distinct modes of cell extrusion. In confluent epithelia with low cell density, cell extrusion is mainly driven by the lamellipodia-based crawling mechanism in the neighbor non-dying cells in connection with large-scale collective movements. As cell density increases, cell motion is shown to slow down, and the role of a supracellular actomyosin cable formation and its contraction in the neighboring cells becomes the preponderant mechanism to locally promote cell extrusion. We propose that these two distinct mechanisms complement each other to ensure proper cell extrusion depending on the cellular environment. Our study provides a quantitative and robust framework to explain how cell density can influence tissue mechanics and in turn regulate cell extrusion mechanisms.


Subject(s)
Cell Communication , Epithelial Cells/physiology , Animals , Cell Count , Dogs , Madin Darby Canine Kidney Cells
8.
Integr Biol (Camb) ; 7(10): 1228-41, 2015 Oct.
Article in English | MEDLINE | ID: mdl-26402903

ABSTRACT

Collective migration of cells is of fundamental importance for a number of biological functions such as tissue development and regeneration, wound healing and cancer metastasis. The movement of cell groups consisting of multiple cells connected by cell-cell junctions depends on both extracellular and intercellular contacts. Epithelial cell assemblies are thus regulated by a cross-talk between cell-substrate and cell-cell interactions. Here, we investigated the onset of collective migration in groups of cells as they expand from a few cells into large colonies as a function of extracellular matrix (ECM) protein coating. By varying the amount of ECM presented to the cells, we observe that the mode of colony expansion, as well as their overall geometry, is strongly dependent on substrate adhesiveness. On high ECM protein coated surfaces, cells at the edges of the colonies are well spread exhibiting large outward-pointing protrusive activity, whereas cellular colonies display more circular and convex shapes on less adhesive surfaces. Actin structures at the edge of the colonies also show different organizations with the formation of lamellipodial structures on highly adhesive surfaces and a pluricellular actin cable on less adhesive ones. The analysis of traction forces and cell velocities within the cellular assemblies confirm these results. By increasing ECM protein density, cells exert higher traction forces together with a higher outward motility at the edges. Furthermore, tuning cell-cell adhesion of epithelial cells modified the mode of expansion of the colonies. Finally, we used a recently developed computational model to recapitulate the emergent experimental behaviors of expanding cell colonies and extract that the main effect of the different cell-substrate interactions is on the ability of edge cells to form outward lamellipodia-driven motility. Overall, our data suggest that switching behaviors of epithelial cell assemblies result in a tug-of-war between friction forces at the cell-substrate interface and cell-cell interactions.


Subject(s)
Cell Adhesion/physiology , Cell Movement/physiology , Epithelial Cells/cytology , Epithelial Cells/physiology , Actomyosin/physiology , Animals , Biomechanical Phenomena , Cell Communication/physiology , Coated Materials, Biocompatible , Computer Simulation , Dogs , Extracellular Matrix Proteins/physiology , Fibronectins/physiology , Madin Darby Canine Kidney Cells , Microscopy, Atomic Force , Models, Biological , Pseudopodia/physiology , Surface Properties
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