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      Lysosomes and Cancer Progression: A Malignant Liaison

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          Abstract

          During primary tumorigenesis isolated cancer cells may undergo genetic or epigenetic changes that render them responsive to additional intrinsic or extrinsic cues, so that they enter a transitional state and eventually acquire an aggressive, metastatic phenotype. Among these changes is the alteration of the cell metabolic/catabolic machinery that creates the most permissive conditions for invasion, dissemination, and survival. The lysosomal system has emerged as a crucial player in this malignant transformation, making this system a potential therapeutic target in cancer. By virtue of their ubiquitous distribution in mammalian cells, their multifaced activities that control catabolic and anabolic processes, and their interplay with other organelles and the plasma membrane (PM), lysosomes function as platforms for inter- and intracellular communication. This is due to their capacity to adapt and sense nutrient availability, to spatially segregate specific functions depending on their position, to fuse with other compartments and with the PM, and to engage in membrane contact sites (MCS) with other organelles. Here we review the latest advances in our understanding of the role of the lysosomal system in cancer progression. We focus on how changes in lysosomal nutrient sensing, as well as lysosomal positioning, exocytosis, and fusion perturb the communication between tumor cells themselves and between tumor cells and their microenvironment. Finally, we describe the potential impact of MCS between lysosomes and other organelles in propelling cancer growth and spread.

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          Most cited references182

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          The biology, function, and biomedical applications of exosomes

          The study of extracellular vesicles (EVs) has the potential to identify unknown cellular and molecular mechanisms in intercellular communication and in organ homeostasis and disease. Exosomes, with an average diameter of ~100 nanometers, are a subset of EVs. The biogenesis of exosomes involves their origin in endosomes, and subsequent interactions with other intracellular vesicles and organelles generate the final content of the exosomes. Their diverse constituents include nucleic acids, proteins, lipids, amino acids, and metabolites, which can reflect their cell of origin. In various diseases, exosomes offer a window into altered cellular or tissue states, and their detection in biological fluids potentially offers a multicomponent diagnostic readout. The efficient exchange of cellular components through exosomes can inform their applied use in designing exosome-based therapeutics.
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            Microenvironmental regulation of tumor progression and metastasis.

            Cancers develop in complex tissue environments, which they depend on for sustained growth, invasion and metastasis. Unlike tumor cells, stromal cell types within the tumor microenvironment (TME) are genetically stable and thus represent an attractive therapeutic target with reduced risk of resistance and tumor recurrence. However, specifically disrupting the pro-tumorigenic TME is a challenging undertaking, as the TME has diverse capacities to induce both beneficial and adverse consequences for tumorigenesis. Furthermore, many studies have shown that the microenvironment is capable of normalizing tumor cells, suggesting that re-education of stromal cells, rather than targeted ablation per se, may be an effective strategy for treating cancer. Here we discuss the paradoxical roles of the TME during specific stages of cancer progression and metastasis, as well as recent therapeutic attempts to re-educate stromal cells within the TME to have anti-tumorigenic effects.
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              Tumour exosome integrins determine organotropic metastasis

              Ever since Stephen Paget’s 1889 hypothesis, metastatic organotropism has remained one of cancer’s greatest mysteries. Here we demonstrate that exosomes from mouse and human lung-, liver- and brain-tropic tumour cells fuse preferentially with resident cells at their predicted destination, namely lung fibroblasts and epithelial cells, liver Kupffer cells and brain endothelial cells. We show that tumour-derived exosomes uptaken by organ-specific cells prepare the pre-metastatic niche. Treatment with exosomes from lung-tropic models redirected the metastasis of bone-tropic tumour cells. Exosome proteomics revealed distinct integrin expression patterns, in which the exosomal integrins α6β4 and α6β1 were associated with lung metastasis, while exosomal integrin αvβ5 was linked to liver metastasis. Targeting the integrins α6β4 and αvβ5 decreased exosome uptake, as well as lung and liver metastasis, respectively. We demonstrate that exosome integrin uptake by resident cells activates Src phosphorylation and pro-inflammatory S100 gene expression. Finally, our clinical data indicate that exosomal integrins could be used to predict organ-specific metastasis.
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                Author and article information

                Contributors
                Journal
                Front Cell Dev Biol
                Front Cell Dev Biol
                Front. Cell Dev. Biol.
                Frontiers in Cell and Developmental Biology
                Frontiers Media S.A.
                2296-634X
                26 February 2021
                2021
                : 9
                : 642494
                Affiliations
                [1] 1Department of Genetics, St. Jude Children’s Research Hospital , Memphis, TN, United States
                [2] 2Department of Anatomy and Neurobiology, College of Graduate Health Sciences, University of Tennessee Health Science Center , Memphis, TN, United States
                Author notes

                Edited by: Simone Patergnani, University of Ferrara, Italy

                Reviewed by: Alessandro Rimessi, University of Ferrara, Italy; Qiong Gao, University of Michigan, United States; Maria-Isabel Yuseff, Pontificia Universidad Católica de Chile, Chile

                *Correspondence: Alessandra d’Azzo, sandra.dazzo@ 123456stjude.org

                This article was submitted to Signaling, a section of the journal Frontiers in Cell and Developmental Biology

                Article
                10.3389/fcell.2021.642494
                7952443
                33718382
                61b78245-2c01-4340-804e-09a72ae0b64a
                Copyright © 2021 Machado, Annunziata, van de Vlekkert, Grosveld and d’Azzo.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

                History
                : 16 December 2020
                : 08 February 2021
                Page count
                Figures: 6, Tables: 1, Equations: 0, References: 182, Pages: 19, Words: 0
                Funding
                Funded by: National Institutes of Health 10.13039/100000002
                Funded by: National Institutes of Health 10.13039/100000002
                Funded by: Assisi Foundation of Memphis 10.13039/100000985
                Funded by: American Lebanese Syrian Associated Charities 10.13039/100012524
                Categories
                Cell and Developmental Biology
                Review

                lysosome movement,lysosome positioning,lysosomal exocytosis,lysosomal membrane contact sites,cancer progression

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