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Keywords = senescent cell clearance regulation

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23 pages, 1160 KB  
Review
Micro- and Nanoplastic Pollution and Renal Health: Human Evidence, Mechanisms, and Clinical Implications
by Aris Tsalouchos and Pietro Claudio Dattolo
J. Xenobiotics 2026, 16(4), 149; https://doi.org/10.3390/jox16040149 - 13 Aug 2026
Viewed by 71
Abstract
Micro- and nanoplastics (MNPs) are reported in blood, urine, and tissues, including the kidney, raising concern that the urinary system may be both a target and a route of elimination. This narrative review integrates analytical, toxicokinetic, experimental, epidemiological, and dialysis-related evidence on MNPs [...] Read more.
Micro- and nanoplastics (MNPs) are reported in blood, urine, and tissues, including the kidney, raising concern that the urinary system may be both a target and a route of elimination. This narrative review integrates analytical, toxicokinetic, experimental, epidemiological, and dialysis-related evidence on MNPs and renal health. Human studies report polymer-confirmed particles or polymer-associated signals in blood, urine, and kidney-related specimens, supporting systemic presence and compatibility with renal exposure; however, estimates are strongly method-dependent and do not establish anatomical localization, tissue dose, clearance, or a disease threshold. Cell, kidney-organoid, and animal studies consistently identify oxidative and mitochondrial stress, endoplasmic-reticulum dysfunction, inflammation, altered autophagy, regulated cell death, senescence, and fibrotic remodelling. Effects vary with polymer, size, shape, surface ageing, route, dose, and chemical co-exposures, and many experiments remain difficult to map to typical human exposure. Direct human outcome evidence is limited to cross-sectional or exploratory studies; plasticizer epidemiology is informative for chemical co-exposure but cannot establish particle-specific toxicity. Patients with chronic kidney disease may be more susceptible, while kidney dysfunction may also alter measured blood or urinary concentrations. Dialysis introduces an additional, incompletely quantified exposure system. MNP-related renal injury is biologically plausible, but causal contribution to human kidney disease and clinical actionability remain unproven. Standardized methods, paired-matrix kinetics, prospective cohorts, and complete dialysis mass-balance studies are priorities. Full article
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13 pages, 1404 KB  
Article
The Effect of Mechanical Loading on Mitophagy in Aged Myoblasts
by Evangelos Tolis, Eirini Chatzinikita, Athanasios Moustogiannis, Antonios Giannopoulos, Maria Maridaki, Michael Koutsilieris and Anastassios Philippou
Cells 2026, 15(6), 522; https://doi.org/10.3390/cells15060522 - 15 Mar 2026
Cited by 1 | Viewed by 1426
Abstract
Background: During aging, skeletal muscle mass constantly diminishes and myogenic potential declines. At the cellular level, a decline in mitochondrial function is a hallmark of the aging process and the deficiency of the mitochondrial network contributes to a progressive reduction in muscle mass. [...] Read more.
Background: During aging, skeletal muscle mass constantly diminishes and myogenic potential declines. At the cellular level, a decline in mitochondrial function is a hallmark of the aging process and the deficiency of the mitochondrial network contributes to a progressive reduction in muscle mass. Autophagic clearance of mitochondria through the process of mitophagy is required to remove impaired or damaged mitochondria, while mitophagy is a key regulator of muscle maintenance. Dysfunctional degradation of mitochondria is increasingly associated with aging (mitophaging), while mechanical stimuli have been shown to ameliorate the aging-induced impaired muscle mass and function; however, less is known about the potential effects of mechanical loading on mitophaging. The aim of the present study was to investigate the effect of mechanical stretching on mitophagy in aged myoblasts, in vitro. Methods: Cell senescence was replicated using a multiple cell division model of C2C12 myoblasts. The control and aged cells were cultured on elastic membranes and underwent passive stretching using a mechanical loading protocol of 15% elongation for 12 h at a frequency of 1 Hz. Cell signaling and gene expression responses of mitophagy-associated and myogenic regulatory factors (MRFs) were assessed through immunoblotting and qRT-PCR of the cell lysates derived from stretched and non-stretched control and aged myoblasts. Results: Mitophagy factor AMP-activated protein kinase (AMPK), mitochondrial biogenesis stimulator peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1a), and mitophagy/mitochondrial biogenesis factor Parkin were downregulated in control stretched myoblasts compared to non-stretched cells, while the specific mechanical loading protocol used also reduced the phosphorylation of unc-51-like autophagy-activating kinase 1 (p-ULK1) (p < 0.05), as well as the expression of myogenic factor 5 (Myf5) and myogenic factor 4 (myogenin) (p < 0.001). Interestingly, this mechanical loading resulted in increased PGC-1a and Parkin expression (p < 0.05) and induced the previously undetected BCL2 interacting protein 3-like (BNIP3L/NIX) and AMPK expression and p-ULK1 activation in the aged myoblasts. In addition, mechanical stretching differentially affected the expression of MRFs in aged cells, upregulating the early differentiation factor, Myf5 (p < 0.01), while downregulating the late differentiation factor myogenin (p < 0.001). Conclusions: These findings suggest the beneficial effects of mechanical loading on the impaired mitophagy and early differentiation in aged myoblasts, as indicated by the mitophagy initiation and the promotion of mitochondrial biogenesis in these cells. The mechanical loading-induced downregulation of mitophagy and myogenesis in the control myoblasts might indicate their loading-specific differential responses compared to the aged cells. Full article
(This article belongs to the Special Issue Cellular Mechanisms in Mitochondrial Function and Calcium Signaling)
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27 pages, 652 KB  
Review
The Role of Cellular Senescence in Oral Health and Disease
by Mahmoud Elashiry, Celine Joyce Cornelius Timothius, Rizwana Zaman, Marisa Elliott, Bryce Crosby, Keshav Bhat, Karim M. Saad and Ranya Elsayed
Int. J. Mol. Sci. 2026, 27(5), 2269; https://doi.org/10.3390/ijms27052269 - 28 Feb 2026
Cited by 2 | Viewed by 1769
Abstract
Cellular senescence is a fundamental biological process characterized by stable cell cycle arrest, resistance to apoptosis, and the acquisition of a pro-inflammatory senescence-associated secretory phenotype (SASP). While senescence plays essential roles in development, tissue homeostasis, and tumor suppression, its accumulation with age and [...] Read more.
Cellular senescence is a fundamental biological process characterized by stable cell cycle arrest, resistance to apoptosis, and the acquisition of a pro-inflammatory senescence-associated secretory phenotype (SASP). While senescence plays essential roles in development, tissue homeostasis, and tumor suppression, its accumulation with age and chronic stress contributes to tissue dysfunction and disease. In the oral cavity, where tissues are continuously exposed to mechanical stress, microbial challenge, and environmental insults, senescence has emerged as a critical regulator of both health and pathology. This review provides an overview of the defining hallmarks of cellular senescence, the molecular mechanisms driving its onset, and its physiological and pathological consequences, with a particular focus on oral tissues. We highlight the beneficial roles of senescence in maintaining oral tissue integrity, facilitating wound repair, suppressing malignant transformation, and promoting immune-mediated clearance of damaged cells. Conversely, we discuss the detrimental effects of persistent senescent cell accumulation, including oral aging phenotypes, chronic inflammation, alveolar bone loss, periodontal breakdown, salivary gland dysfunction, and contributions to oral carcinogenesis. Finally, we examine emerging therapeutic strategies targeting senescence in oral disease management, including senolytic and senomorphic approaches, immune-based clearance mechanisms, and gene- and cell-based interventions aimed at delaying or modulating senescence. Understanding the dualistic nature of cellular senescence in the oral environment may inform novel preventive and therapeutic strategies to promote oral health and mitigate age- and disease-associated oral pathologies. Full article
(This article belongs to the Section Molecular Biology)
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16 pages, 939 KB  
Review
Genetic Mutations and Non-Genomic Dysregulation in Human Preimplantation Embryo Arrest
by Jianan Jiang, Junhua Peng, Lin Li and Min Xu
Int. J. Mol. Sci. 2026, 27(5), 2135; https://doi.org/10.3390/ijms27052135 - 25 Feb 2026
Viewed by 1651
Abstract
Human preimplantation embryo arrest (PREMBA) represents a significant clinical hurdle in assisted reproductive technology (ART), in which approximately 10% of in vitro fertilized (IVF) embryos arrest at the cleavage stages. Whole-exome sequencing (WES) studies have discovered numerous genetic mutations associated with preimplantation embryo [...] Read more.
Human preimplantation embryo arrest (PREMBA) represents a significant clinical hurdle in assisted reproductive technology (ART), in which approximately 10% of in vitro fertilized (IVF) embryos arrest at the cleavage stages. Whole-exome sequencing (WES) studies have discovered numerous genetic mutations associated with preimplantation embryo arrest. These mutations often disrupt critical biological milestones such as maternal mRNA clearance (BTG4, ZFP36L2, ZAR1), subcortical maternal complex (TLE6, PADI6, OOEP, NLRP2, NLRP5, NLRP7, KHDC3L), DNA double-strand break formation and homologous recombination (REC114, TOP6BL, MEI1, MEI4, TRIP13), spindle assembly (TUBB8 and TUBA4A) and cell cycle and checkpoints (FBXO43, MOS, CHEK1, TRIP13, CDC20), as well as nuclear transport and translational regulation (KPNA7, DDOST). However, the cause of most clinical cases remains genetically unexplained. Studies investigating these unexplained arrests have uncovered widespread multi-omics abnormalities, including transcriptional arrest, DNA hypermethylation, higher chromatin accessibility, aberrant histone modification, chromosomal aneuploidy and senescent-like states. This review provides a comprehensive overview of the molecular mechanisms underlying PREMBA, categorized into those that are attributable to known genetic mutations and those with unexplained reasons. Full article
(This article belongs to the Special Issue New Insights into Embryonic Development)
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19 pages, 1388 KB  
Review
SASP Modulation for Cellular Rejuvenation and Tissue Homeostasis: Therapeutic Strategies and Molecular Insights
by Saud Alqahtani, Taha Alqahtani, Krishnaraju Venkatesan, Durgaramani Sivadasan, Rehab Ahmed, Nizar Sirag, Hassabelrasoul Elfadil, Hanem Abdullah Mohamed, Haseena T.A., Rasha Elsayed Ahmed, Pooja Muralidharan and Premalatha Paulsamy
Cells 2025, 14(8), 608; https://doi.org/10.3390/cells14080608 - 17 Apr 2025
Cited by 71 | Viewed by 8735
Abstract
Cellular senescence regulates aging, tissue maintenance, and disease progression through the Senescence-Associated Secretory Phenotype (SASP), a secretory profile of cytokines, chemokines, growth factors, and matrix-remodeling enzymes. While transient SASP aids wound healing, its chronic activation drives inflammation, fibrosis, and tumorigenesis. This review examines [...] Read more.
Cellular senescence regulates aging, tissue maintenance, and disease progression through the Senescence-Associated Secretory Phenotype (SASP), a secretory profile of cytokines, chemokines, growth factors, and matrix-remodeling enzymes. While transient SASP aids wound healing, its chronic activation drives inflammation, fibrosis, and tumorigenesis. This review examines SASP’s molecular regulation, dual roles in health and pathology, and therapeutic potential. The following two main strategies are explored: senescence clearance, which eliminates SASP-producing cells, and SASP modulation, which refines secretion to suppress inflammation while maintaining regenerative effects. Key pathways, including NF-κB, C/EBPβ, and cGAS-STING, are discussed alongside pharmacological, immunotherapeutic, gene-editing, and epigenetic interventions. SASP heterogeneity necessitates tissue-specific biomarkers for personalized therapies. Challenges include immune interactions, long-term safety, and ethical considerations. SASP modulation emerges as a promising strategy for aging, oncology, and tissue repair, with future advancements relying on multi-omics and AI-driven insights to optimize clinical outcomes. Full article
(This article belongs to the Special Issue Cell Death: Cell–Cell Interactions and Signaling Networks)
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20 pages, 597 KB  
Review
Senotherapeutics to Counteract Senescent Cells Are Prominent Topics in the Context of Anti-Ageing Strategies
by Anna Calabrò, Giulia Accardi, Anna Aiello, Calogero Caruso, Damiano Galimberti and Giuseppina Candore
Int. J. Mol. Sci. 2024, 25(3), 1792; https://doi.org/10.3390/ijms25031792 - 1 Feb 2024
Cited by 51 | Viewed by 7889
Abstract
Cellular senescence is implicated in ageing and associated with a broad spectrum of age-related diseases. Importantly, a cell can initiate the senescence program irrespective of the organism’s age. Various stress signals, including those defined as ageing hallmarks and alterations leading to cancer development, [...] Read more.
Cellular senescence is implicated in ageing and associated with a broad spectrum of age-related diseases. Importantly, a cell can initiate the senescence program irrespective of the organism’s age. Various stress signals, including those defined as ageing hallmarks and alterations leading to cancer development, oncogene activation, or loss of cancer-suppressive functions, can trigger cellular senescence. The primary outcome of these alterations is the activation of nuclear factor (NF)-κB, thereby inducing the senescence-associated secretory phenotype (SASP). Proinflammatory cytokines and chemokines, components of this phenotype, contribute to chronic systemic sterile inflammation, commonly referred to as inflamm-ageing. This inflammation is linked to age-related diseases (ARDs), frailty, and increased mortality in older individuals. Additionally, senescent cells (SCs) accumulate in multiple tissues with age and are believed to underlie the organism functional decline, as demonstrated by models. An escalating effort has been dedicated to identify senotherapeutics that selectively target SCs by inducing apoptosis; these drugs are termed senolytics. Concurrently, small molecules that suppress senescent phenotypes without causing cell death are known as senomorphics. Both natural and synthetic senotherapeutics, along with immunotherapies employing immune cell-mediated clearance of SCs, currently represent the most promising strategies to combat ageing and ARDs. Indeed, it is fascinating to observe that information regarding the immune reaction to SCs indicates that regulation by specific lymphocyte subsets, elevated in the oldest centenarians, plays a role in attaining extreme longevity. Regardless, the application of methods already utilized in cancer treatment, such as CAR cells and monoclonal antibodies, broadens the spectrum of potential approaches to be utilized. Full article
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15 pages, 1792 KB  
Review
Mitochondrial Signaling Pathways Associated with DNA Damage Responses
by Tsutomu Shimura
Int. J. Mol. Sci. 2023, 24(7), 6128; https://doi.org/10.3390/ijms24076128 - 24 Mar 2023
Cited by 55 | Viewed by 7671
Abstract
Under physiological and stress conditions, mitochondria act as a signaling platform to initiate biological events, establishing communication from the mitochondria to the rest of the cell. Mitochondrial adenosine triphosphate (ATP), reactive oxygen species, cytochrome C, and damage-associated molecular patterns act as messengers in [...] Read more.
Under physiological and stress conditions, mitochondria act as a signaling platform to initiate biological events, establishing communication from the mitochondria to the rest of the cell. Mitochondrial adenosine triphosphate (ATP), reactive oxygen species, cytochrome C, and damage-associated molecular patterns act as messengers in metabolism, oxidative stress response, bystander response, apoptosis, cellular senescence, and inflammation response. In this review paper, the mitochondrial signaling in response to DNA damage was summarized. Mitochondrial clearance via fusion, fission, and mitophagy regulates mitochondrial quality control under oxidative stress conditions. On the other hand, damaged mitochondria release their contents into the cytoplasm and then mediate various signaling pathways. The role of mitochondrial dysfunction in radiation carcinogenesis was discussed, and the recent findings on radiation-induced mitochondrial signaling and radioprotective agents that targeted mitochondria were presented. The analysis of the mitochondrial radiation effect, as hypothesized, is critical in assessing radiation risks to human health. Full article
(This article belongs to the Special Issue Mitochondria as a Core of Cell Signals)
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20 pages, 9441 KB  
Article
Caveolin-1 Regulation and Function in Mouse Uterus during Early Pregnancy and under Human In Vitro Decidualization
by Zhuo Song, Bo Li, Meng-Yuan Li, Jia-Mei Luo, Yu-Qi Hong, Yu-Ying He, Si-Ting Chen, Zhen-Shan Yang, Chen Liang and Zeng-Ming Yang
Int. J. Mol. Sci. 2022, 23(7), 3699; https://doi.org/10.3390/ijms23073699 - 28 Mar 2022
Cited by 18 | Viewed by 4416
Abstract
Decidualization is essential to rodent and primate pregnancy. Senescence is increased during decidualization. Failure of senescence clearance during decidualization will cause pregnancy abnormality. Caveolin-1 is located in plasmalemmal caveolae and involved in senescence. However, whether caveolin-1 is involved in decidualization remains undefined. In [...] Read more.
Decidualization is essential to rodent and primate pregnancy. Senescence is increased during decidualization. Failure of senescence clearance during decidualization will cause pregnancy abnormality. Caveolin-1 is located in plasmalemmal caveolae and involved in senescence. However, whether caveolin-1 is involved in decidualization remains undefined. In this study, we examined the expression, regulation and function of Caveolin-1 during mouse early pregnancy and under mouse and human in vitro decidualization. From days 1 to 8 of pregnancy, Caveolin-1 signals are mainly located in endothelium and myometrium. Estrogen stimulates Caveolin-1 expression in endothelium. Deficiency of estrogen receptor α significantly promotes Caveolin-1 level in uterine stromal cells. Progesterone upregulates Caveolin-1 expression in luminal epithelium. During mouse in vitro decidualization, Caveolin-1 is significantly increased. However, Caveolin-1 is obviously decreased during human in vitro decidualization. Caveolin-1 overexpression and siRNA suppress and upregulate IGFBP1 expression under in vitro decidualization, respectively. Blastocysts-derived tumor necrosis factor α (TNFα) and human Chorionic Gonadotropin (hCG) regulate Caveolin-1 in mouse and human decidual cells, respectively. Caveolin-1 levels are also regulated by high glucose and insulin. In conclusion, a low level of Caveolin-1 should be beneficial for human decidualization. Full article
(This article belongs to the Special Issue Endometrium and Pregnancy Immune Tolerance)
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20 pages, 2634 KB  
Review
Molecular Mechanisms of Kidney Injury and Repair
by Sandra Rayego-Mateos, Laura Marquez-Expósito, Raquel Rodrigues-Diez, Ana B. Sanz, Roser Guiteras, Nuria Doladé, Irene Rubio-Soto, Anna Manonelles, Sergi Codina, Alberto Ortiz, Josep M. Cruzado, Marta Ruiz-Ortega and Anna Sola
Int. J. Mol. Sci. 2022, 23(3), 1542; https://doi.org/10.3390/ijms23031542 - 28 Jan 2022
Cited by 82 | Viewed by 14810
Abstract
Chronic kidney disease (CKD) will become the fifth global cause of death by 2040, thus emphasizing the need to better understand the molecular mechanisms of damage and regeneration in the kidney. CKD predisposes to acute kidney injury (AKI) which, in turn, promotes CKD [...] Read more.
Chronic kidney disease (CKD) will become the fifth global cause of death by 2040, thus emphasizing the need to better understand the molecular mechanisms of damage and regeneration in the kidney. CKD predisposes to acute kidney injury (AKI) which, in turn, promotes CKD progression. This implies that CKD or the AKI-to-CKD transition are associated with dysfunctional kidney repair mechanisms. Current therapeutic options slow CKD progression but fail to treat or accelerate recovery from AKI and are unable to promote kidney regeneration. Unraveling the cellular and molecular mechanisms involved in kidney injury and repair, including the failure of this process, may provide novel biomarkers and therapeutic tools. We now review the contribution of different molecular and cellular events to the AKI-to-CKD transition, focusing on the role of macrophages in kidney injury, the different forms of regulated cell death and necroinflammation, cellular senescence and the senescence-associated secretory phenotype (SAPS), polyploidization, and podocyte injury and activation of parietal epithelial cells. Next, we discuss key contributors to repair of kidney injury and opportunities for their therapeutic manipulation, with a focus on resident renal progenitor cells, stem cells and their reparative secretome, certain macrophage subphenotypes within the M2 phenotype and senescent cell clearance. Full article
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13 pages, 2101 KB  
Article
Increased CD47 and MHC Class I Inhibitory Signals Expression in Senescent CD1 Primary Mouse Lung Fibroblasts
by Elisa Hernández-Mercado, Jessica Lakshmi Prieto-Chávez, Lourdes Andrea Arriaga-Pizano, Salomon Hernández-Gutierrez, Fela Mendlovic, Mina Königsberg and Norma Edith López-Díazguerrero
Int. J. Mol. Sci. 2021, 22(19), 10215; https://doi.org/10.3390/ijms221910215 - 23 Sep 2021
Cited by 15 | Viewed by 4600
Abstract
Cellular senescence is more than a proliferative arrest in response to various stimuli. Senescent cells (SC) participate in several physiological processes, and their adequate removal is essential to maintain tissue and organism homeostasis. However, SC accumulation in aging and age-related diseases alters the [...] Read more.
Cellular senescence is more than a proliferative arrest in response to various stimuli. Senescent cells (SC) participate in several physiological processes, and their adequate removal is essential to maintain tissue and organism homeostasis. However, SC accumulation in aging and age-related diseases alters the tissue microenvironment leading to deterioration. The immune system clears the SC, but the specific scenarios and mechanisms related to recognizing and eliminating them are unknown. Hence, we aimed to evaluate the existence of three regulatory signals of phagocytic function, CD47, major histocompatibility complex class I (MHC-I), and calreticulin, present in the membrane of SC. Therefore, primary fibroblasts were isolated from CD1 female mice lungs, and stress-induced premature senescence (SIPS) was induced with hydrogen peroxide. Replicative senescence (RS) was used as a second senescent model. Our results revealed a considerable increment of CD47 and MHC-I in RS and SIPS fibroblasts. At the same time, no significant changes were found in calreticulin, suggesting that those signals might be associated with evading immune system recognition and thus averting senescent cells clearance. Full article
(This article belongs to the Section Biochemistry)
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25 pages, 1400 KB  
Review
Skeletal Aging and Osteoporosis: Mechanisms and Therapeutics
by Abhishek Chandra and Jyotika Rajawat
Int. J. Mol. Sci. 2021, 22(7), 3553; https://doi.org/10.3390/ijms22073553 - 29 Mar 2021
Cited by 246 | Viewed by 22170
Abstract
Bone is a dynamic organ maintained by tightly regulated mechanisms. With old age, bone homeostasis, which is maintained by an intricate balance between bone formation and bone resorption, undergoes deregulation. Oxidative stress-induced DNA damage, cellular apoptosis, and cellular senescence are all responsible for [...] Read more.
Bone is a dynamic organ maintained by tightly regulated mechanisms. With old age, bone homeostasis, which is maintained by an intricate balance between bone formation and bone resorption, undergoes deregulation. Oxidative stress-induced DNA damage, cellular apoptosis, and cellular senescence are all responsible for this tissue dysfunction and the imbalance in the bone homeostasis. These cellular mechanisms have become a target for therapeutics to treat age-related osteoporosis. Genetic mouse models have shown the importance of senescent cell clearance in alleviating age-related osteoporosis. Furthermore, we and others have shown that targeting cellular senescence pharmacologically was an effective tool to alleviate age- and radiation-induced osteoporosis. Senescent cells also have an altered secretome known as the senescence associated secretory phenotype (SASP), which may have autocrine, paracrine, or endocrine function. The current review discusses the current and potential pathways which lead to a senescence profile in an aged skeleton and how bone homeostasis is affected during age-related osteoporosis. The review has also discussed existing therapeutics for the treatment of osteoporosis and rationalizes for novel therapeutic options based on cellular senescence and the SASP as an underlying pathogenesis of an aging bone. Full article
(This article belongs to the Special Issue Molecular Mechanisms Underlying an Aging Skeleton)
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15 pages, 891 KB  
Review
Bcl-xL as a Modulator of Senescence and Aging
by Cristina Mas-Bargues, Consuelo Borrás and Jose Viña
Int. J. Mol. Sci. 2021, 22(4), 1527; https://doi.org/10.3390/ijms22041527 - 3 Feb 2021
Cited by 34 | Viewed by 7773
Abstract
Many features of aging result from the incapacity of cells to adapt to stress conditions. When cells are overwhelmed by stress, they can undergo senescence to avoid unrestricted growth of damaged cells. Recent findings have proven that cellular senescence is more than that. [...] Read more.
Many features of aging result from the incapacity of cells to adapt to stress conditions. When cells are overwhelmed by stress, they can undergo senescence to avoid unrestricted growth of damaged cells. Recent findings have proven that cellular senescence is more than that. A specific grade of senescence promotes embryo development, tissue remodeling and wound healing. However, constant stresses and a weakening immune system can lead to senescence chronicity with aging. The accumulation of senescent cells is directly related to tissue dysfunction and age-related pathologies. Centenarians, the most aged individuals, should accumulate senescent cells and suffer from their deleterious effects, however, they enjoy a compression of morbidity. We have shown that they overexpress B-cell lymphoma-extra large (Bcl-xL). Bcl-xL could avoid an excessive burden of senescent cells through the regulation of intrinsic apoptosis, mitochondrial bioenergetics and oxidative stress. On the other hand, Bcl-xL maintains a fully functional immune system that ensures an efficient clearance of senescent cells. Moreover, there is a paradox, as inhibitors of Bcl-xL have been employed as senolytic agents, which have been shown to protect from aging in animal models. In this review, we aim to discuss how Bcl-xL could modulate senescence-associated harmful effects in centenarians, protecting them from the burden of accumulation of senescent cells. Full article
(This article belongs to the Special Issue Aging and Senescence)
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31 pages, 2487 KB  
Review
Cell Senescence, Multiple Organelle Dysfunction and Atherosclerosis
by Gisela Machado-Oliveira, Cristiano Ramos, André R. A. Marques and Otília V. Vieira
Cells 2020, 9(10), 2146; https://doi.org/10.3390/cells9102146 - 23 Sep 2020
Cited by 61 | Viewed by 10671
Abstract
Atherosclerosis is an age-related disorder associated with long-term exposure to cardiovascular risk factors. The asymptomatic progression of atherosclerotic plaques leads to major cardiovascular diseases (CVD), including acute myocardial infarctions or cerebral ischemic strokes in some cases. Senescence, a biological process associated with progressive [...] Read more.
Atherosclerosis is an age-related disorder associated with long-term exposure to cardiovascular risk factors. The asymptomatic progression of atherosclerotic plaques leads to major cardiovascular diseases (CVD), including acute myocardial infarctions or cerebral ischemic strokes in some cases. Senescence, a biological process associated with progressive structural and functional deterioration of cells, tissues and organs, is intricately linked to age-related diseases. Cell senescence involves coordinated modifications in cellular compartments and has been demonstrated to contribute to different stages of atheroma development. Senescence-based therapeutic strategies are currently being pursued to treat and prevent CVD in humans in the near-future. In addition, distinct experimental settings allowed researchers to unravel potential approaches to regulate anti-apoptotic pathways, facilitate excessive senescent cell clearance and eventually reverse atherogenesis to improve cardiovascular function. However, a deeper knowledge is required to fully understand cellular senescence, to clarify senescence and atherogenesis intertwining, allowing researchers to establish more effective treatments and to reduce the cardiovascular disorders’ burden. Here, we present an objective review of the key senescence-related alterations of the major intracellular organelles and analyze the role of relevant cell types for senescence and atherogenesis. In this context, we provide an updated analysis of therapeutic approaches, including clinically relevant experiments using senolytic drugs to counteract atherosclerosis. Full article
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31 pages, 1971 KB  
Review
Targeting Cardiac Stem Cell Senescence to Treat Cardiac Aging and Disease
by Eleonora Cianflone, Michele Torella, Flavia Biamonte, Antonella De Angelis, Konrad Urbanek, Francesco S. Costanzo, Marcello Rota, Georgina M. Ellison-Hughes and Daniele Torella
Cells 2020, 9(6), 1558; https://doi.org/10.3390/cells9061558 - 26 Jun 2020
Cited by 100 | Viewed by 12571
Abstract
Adult stem/progenitor are a small population of cells that reside in tissue-specific niches and possess the potential to differentiate in all cell types of the organ in which they operate. Adult stem cells are implicated with the homeostasis, regeneration, and aging of all [...] Read more.
Adult stem/progenitor are a small population of cells that reside in tissue-specific niches and possess the potential to differentiate in all cell types of the organ in which they operate. Adult stem cells are implicated with the homeostasis, regeneration, and aging of all tissues. Tissue-specific adult stem cell senescence has emerged as an attractive theory for the decline in mammalian tissue and organ function during aging. Cardiac aging, in particular, manifests as functional tissue degeneration that leads to heart failure. Adult cardiac stem/progenitor cell (CSC) senescence has been accordingly associated with physiological and pathological processes encompassing both non-age and age-related decline in cardiac tissue repair and organ dysfunction and disease. Senescence is a highly active and dynamic cell process with a first classical hallmark represented by its replicative limit, which is the establishment of a stable growth arrest over time that is mainly secondary to DNA damage and reactive oxygen species (ROS) accumulation elicited by different intrinsic stimuli (like metabolism), as well as external stimuli and age. Replicative senescence is mainly executed by telomere shortening, the activation of the p53/p16INK4/Rb molecular pathways, and chromatin remodeling. In addition, senescent cells produce and secrete a complex mixture of molecules, commonly known as the senescence-associated secretory phenotype (SASP), that regulate most of their non-cell-autonomous effects. In this review, we discuss the molecular and cellular mechanisms regulating different characteristics of the senescence phenotype and their consequences for adult CSCs in particular. Because senescent cells contribute to the outcome of a variety of cardiac diseases, including age-related and unrelated cardiac diseases like diabetic cardiomyopathy and anthracycline cardiotoxicity, therapies that target senescent cell clearance are actively being explored. Moreover, the further understanding of the reversibility of the senescence phenotype will help to develop novel rational therapeutic strategies. Full article
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19 pages, 1009 KB  
Review
Immune Clearance of Senescent Cells to Combat Ageing and Chronic Diseases
by Ping Song, Junqing An and Ming-Hui Zou
Cells 2020, 9(3), 671; https://doi.org/10.3390/cells9030671 - 10 Mar 2020
Cited by 172 | Viewed by 22347
Abstract
Senescent cells are generally characterized by permanent cell cycle arrest, metabolic alteration and activation, and apoptotic resistance in multiple organs due to various stressors. Excessive accumulation of senescent cells in numerous tissues leads to multiple chronic diseases, tissue dysfunction, age-related diseases and organ [...] Read more.
Senescent cells are generally characterized by permanent cell cycle arrest, metabolic alteration and activation, and apoptotic resistance in multiple organs due to various stressors. Excessive accumulation of senescent cells in numerous tissues leads to multiple chronic diseases, tissue dysfunction, age-related diseases and organ ageing. Immune cells can remove senescent cells. Immunaging or impaired innate and adaptive immune responses by senescent cells result in persistent accumulation of various senescent cells. Although senolytics—drugs that selectively remove senescent cells by inducing their apoptosis—are recent hot topics and are making significant research progress, senescence immunotherapies using immune cell-mediated clearance of senescent cells are emerging and promising strategies to fight ageing and multiple chronic diseases. This short review provides an overview of the research progress to date concerning senescent cell-caused chronic diseases and tissue ageing, as well as the regulation of senescence by small-molecule drugs in clinical trials and different roles and regulation of immune cells in the elimination of senescent cells. Mounting evidence indicates that immunotherapy targeting senescent cells combats ageing and chronic diseases and subsequently extends the healthy lifespan. Full article
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