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Keywords = telomere end protection

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12 pages, 3484 KB  
Article
ESCO2 Interacts with TRF1/2 and Facilitates Telomere Maintenance
by Jiahui Guo, Jingjing Ji, Jinfeng Liu and Mengfan Tang
Int. J. Mol. Sci. 2026, 27(6), 2635; https://doi.org/10.3390/ijms27062635 - 13 Mar 2026
Viewed by 651
Abstract
Establishment of sister chromatid cohesion N-acetyltransferase 2 (ESCO2) is an acetyltransferase involved in sister chromatid cohesion. Here we demonstrated that ESCO2 has a new role in telomere maintenance through its binding with telomeric repeat-binding factor TRF1 and TRF2. Loss of ESCO2 induces aberrant [...] Read more.
Establishment of sister chromatid cohesion N-acetyltransferase 2 (ESCO2) is an acetyltransferase involved in sister chromatid cohesion. Here we demonstrated that ESCO2 has a new role in telomere maintenance through its binding with telomeric repeat-binding factor TRF1 and TRF2. Loss of ESCO2 induces aberrant DNA damage at telomeres and leads to dramatic telomere shortening. ESCO2 associates with several proteins involved in DNA replication and repair, including BLM, WRN, TopBP1, BRIP1, BRCA1, and MUS81. Moreover, we show that ESCO2 acts in epistasis with BLM in promoting telomere stability. Taken together, our data suggest that ESCO2 is required for the maintenance of telomere stability, presumably by coordinating multiple replication and repair factors to facilitate telomere replication and protection. Full article
(This article belongs to the Special Issue Molecular Diagnostics and Genomics of Tumors, 2nd Edition)
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12 pages, 2754 KB  
Article
Exploring Telomere Association in Donor–Recipient Pairs: Implications for Kidney Graft Longevity
by Zeinab Abdelrahman, Alexander P. Maxwell and Amy Jayne McKnight
Life 2026, 16(2), 216; https://doi.org/10.3390/life16020216 - 28 Jan 2026
Viewed by 871
Abstract
Introduction: Telomeres, which protect chromosome ends, are important in cell replication and are altered by ageing. In the realm of organ transplantation, telomere length has emerged as a potential biomarker for predicting both graft survival and recipient longevity. This study explores the correlation [...] Read more.
Introduction: Telomeres, which protect chromosome ends, are important in cell replication and are altered by ageing. In the realm of organ transplantation, telomere length has emerged as a potential biomarker for predicting both graft survival and recipient longevity. This study explores the correlation of telomere length with transplant outcomes to assess whether longer telomere length is associated with better long-term graft function and patient survival. Methods: Telomere length (TL) was analysed in 274 European renal transplant pairs (donors/recipients). Recipient DNA was collected before and after kidney transplantation, and donor DNA just prior to transplant surgery. Results: Donor TL was not significantly associated with graft survival. Donor age was a significant predictor of graft failure (1.02, 95% CI: 1.01–1.03, p < 0.01). Post-transplant recipient TL had a significant association with graft survival. Longer TL was associated with an up to 90% reduction in risk of graft failure (HR = 0.10, 95% CI: 0.015–0.71, p = 0.02). Conclusions: In this study, kidney transplant recipients with longer telomere length demonstrated significantly better long-term graft survival. If validated in additional kidney transplant cohorts, recipient telomere length could serve as a valuable biomarker for improving graft failure risk stratification and enhancing the long-term care of transplant recipients. Full article
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19 pages, 1426 KB  
Review
Telomeres, Telomerase, and Curcumin: A New Frontier in Cancer Therapy: A Narrative Review
by Hind Muteb Albadrani and Abeer Fouad Zakariyah
Biomedicines 2025, 13(11), 2721; https://doi.org/10.3390/biomedicines13112721 - 6 Nov 2025
Cited by 3 | Viewed by 3574
Abstract
Telomeres, which serve as protective ends on chromosomes, and telomerase, the enzyme that preserves telomere length, play crucial roles in ensuring genomic stability and delaying cellular aging. Dysregulation of these proteins is a key characteristic of cancer development. This review aimed to explore [...] Read more.
Telomeres, which serve as protective ends on chromosomes, and telomerase, the enzyme that preserves telomere length, play crucial roles in ensuring genomic stability and delaying cellular aging. Dysregulation of these proteins is a key characteristic of cancer development. This review aimed to explore the complex processes involved in telomere and telomerase dysregulation in cancer and evaluate the therapeutic potential of curcumin. Curcumin has attracted significant interest due to its anticancer, antioxidant, and anti-inflammatory properties. Curcumin modulates telomere dynamics and inhibits telomerase activity, leading to cancer cell senescence and telomere shortening. Curcumin downregulates human telomerase reverse transcriptase expression and reduces telomerase activity in various cancer cell lines. Despite its potential, its clinical use is restricted by its poor water solubility and limited bioavailability. This review underscores the critical role of telomere/telomerase dysregulation in cancer and highlights curcumin as a promising modulator of these pathways, thereby offering potential novel strategies for cancer treatment. This review integrates the literature published up to September 2025 to ensure the inclusion of the most recent advances in curcumin-related telomerase modulation. Full article
(This article belongs to the Special Issue The Role of Telomere and Telomerase in Human Disease—2nd Edition)
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21 pages, 4701 KB  
Review
Maternal Lifestyle During Pregnancy and Its Influence on Offspring’s Telomere Length
by Elena Vakonaki, Maria Theodora Vitiadou, Eleftherios Panteris, Manolis Tzatzarakis, Aristides Tsatsakis and Eleftheria Hatzidaki
Life 2025, 15(8), 1250; https://doi.org/10.3390/life15081250 - 6 Aug 2025
Cited by 3 | Viewed by 4453
Abstract
Telomeres are protective DNA sequences located at chromosome ends, essential to maintaining genomic stability. This narrative review examines how maternal lifestyle factors during pregnancy influence fetal telomere length (TL). Positive associations have been identified between offspring’s TL and maternal consumption of nutrients such [...] Read more.
Telomeres are protective DNA sequences located at chromosome ends, essential to maintaining genomic stability. This narrative review examines how maternal lifestyle factors during pregnancy influence fetal telomere length (TL). Positive associations have been identified between offspring’s TL and maternal consumption of nutrients such as vitamins C and D, folate, and magnesium. Additionally, adherence to a Mediterranean diet and regular physical activity during pregnancy are correlated with increased placental TL, supporting fetal genomic integrity. Conversely, maternal dietary patterns high in carbohydrates, fats, or alcohol, as well as exposure to triclosan and sleep-disordered breathing, negatively correlate with offspring’s TL. Maternal infections may also shorten TL through heightened inflammation and oxidative stress. However, evidence regarding the impact of other lifestyle factors—including maternal stress, smoking, caffeine intake, polyunsaturated fatty acid consumption, obesity, and sleep quality—remains inconsistent. Given that shorter telomere length has been associated with cardiovascular, pulmonary, and neurodegenerative diseases, as well as certain types of cancer, these findings highlight the vital importance of maternal health during pregnancy in order to prevent potential adverse effects on the fetus. Further studies are required to elucidate the precise timing, intensity, and interplay of these influences, enabling targeted prenatal interventions to enhance offspring health outcomes. Full article
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15 pages, 550 KB  
Article
New Insights into the Telomere Structure in Hemiptera (Insecta) Inferred from Chromosome-Level and Scaffold-Level Genome Assemblies
by Desislava Stoianova, Snejana Grozeva, Nadezhda Todorova, Miroslav Rangelov, Vladimir A. Lukhtanov and Valentina G. Kuznetsova
Diversity 2025, 17(8), 552; https://doi.org/10.3390/d17080552 - 4 Aug 2025
Cited by 4 | Viewed by 1831
Abstract
Telomeres are terminal regions of chromosomes that protect and stabilize chromosome structures. Telomeres are usually composed of specific DNA repeats (motifs) that are maintained by telomerase and a complex of specific proteins. Telomeric DNA sequences are generally highly conserved throughout the evolution of [...] Read more.
Telomeres are terminal regions of chromosomes that protect and stabilize chromosome structures. Telomeres are usually composed of specific DNA repeats (motifs) that are maintained by telomerase and a complex of specific proteins. Telomeric DNA sequences are generally highly conserved throughout the evolution of different groups of eukaryotes. The most common motif in insects is TTAGG, but it is not universal, including in the large order Hemiptera. In particular, several derived telomeric motifs were identified in this order by analyzing chromosome-level genome assemblies or by FISH screening the chromosomes of target species. Here, we analyzed chromosome-level genome assemblies of 16 species from three hemipteran suborders, including Sternorrhyncha (Coccoidea: Planococcus citri, Acanthococcus lagerstroemiae, and Trionymus diminutus; Aphidoidea: Tuberolachnus salignus, Metopolophium dirhodum, Rhopalosiphum padi, and Schizaphis graminum), Auhenorrhyncha (Cicadomorpha: Allygus modestus, Arthaldeus pascuellus, Aphrophora alni, Cicadella viridis, Empoasca decipiens, and Ribautiana ulmi), and Heteroptera (Gerromorpha: Gerris lacustris; Pentatomomorpha: Aradus depressus and A. truncatus). In addition, scaffold-level genome assemblies of three more species of Heteroptera (Gerromorpha: Gerris buenoi, Microvelia longipes, and Hermatobates lingyangjiaoensis) were examined. The presumably ancestral insect motif TTAGG was found at the ends of chromosomes of all species studied using chromosome-level genome assembly analysis, with four exceptions. In Aphrophora alni, we detected sequences of 4 bp repeats of TGAC, which were tentatively identified as a telomeric motif. In Gerris lacustris, from the basal true bug infraorder Gerromorpha, we found a 10 bp motif TTAGAGGTGG, previously unknown not only in Heteroptera or Hemiptera but also in Arthropoda in general. Blast screening of the scaffold-level assemblies showed that TTAGAGGTGG is also likely to be a telomeric motif in G. buenoi and Microvelia. longipes, while the results obtained for H. lingyangjiaoensis were inconclusive. In A. depressus and A. truncatus from the basal for Pentatomomorpha family Aradidae, we found a 10 bp motif TTAGGGATGG. While the available data allowed us to present two alternative hypotheses about the evolution of telomeric motifs in Heteroptera, further data are needed to verify them, especially for the yet unstudied basal infraorders Enicocephalomorpha, Dipsocoromorpha, and Leptopodomorpha. Full article
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28 pages, 2579 KB  
Review
Telomere Maintenance and DNA Repair: A Bidirectional Relationship in Cancer Biology and Therapy
by Nina Rembiałkowska, Mikołaj Sędzik, Monika Kisielewska, Wiktoria Łuniewska, Kamil Sebastianka, Klaudia Molik, Katarzyna Skinderowicz, Jacek Kuźnicki, Joanna Tunikowska and Julita Kulbacka
Cancers 2025, 17(14), 2284; https://doi.org/10.3390/cancers17142284 - 9 Jul 2025
Cited by 8 | Viewed by 5123
Abstract
Telomeres are repetitive DNA sequences at the ends of chromosomes that protect against genomic instability and prevent unwanted DNA damage responses. In most somatic cells, telomeres progressively shorten with each division, limiting cellular lifespan. However, cancer cells bypass this limitation by activating telomerase [...] Read more.
Telomeres are repetitive DNA sequences at the ends of chromosomes that protect against genomic instability and prevent unwanted DNA damage responses. In most somatic cells, telomeres progressively shorten with each division, limiting cellular lifespan. However, cancer cells bypass this limitation by activating telomerase or the alternative lengthening of telomeres, enabling unchecked proliferation and tumor progression. This review examines the molecular mechanisms underlying telomere maintenance and their intricate relationship with DNA repair pathways. We discuss how telomere-associated proteins regulate genomic stability and explore therapeutic strategies targeting telomerase and alternative lengthening of telomeres. Challenges such as resistance mechanisms and off-target effects are also considered, highlighting the need for precision approaches in telomere-based cancer therapies. Full article
(This article belongs to the Section Molecular Cancer Biology)
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21 pages, 353 KB  
Review
Molecular and Environmental Modulators of Aging: Interplay Between Inflammation, Epigenetics, and RNA Stability
by Konstantina Dragoumani, Dimitris Kletsas, George P. Chrousos, Dimitrios Vlachakis and Nikolaos A. A. Balatsos
Genes 2025, 16(7), 796; https://doi.org/10.3390/genes16070796 - 1 Jul 2025
Cited by 3 | Viewed by 2325
Abstract
Aging is a complex biological process characterized by the progressive accumulation of cellular and molecular damage, leading to functional decline and increased susceptibility to age-related diseases. Central to this process is cellular senescence, a state of irreversible cell cycle arrest that acts as [...] Read more.
Aging is a complex biological process characterized by the progressive accumulation of cellular and molecular damage, leading to functional decline and increased susceptibility to age-related diseases. Central to this process is cellular senescence, a state of irreversible cell cycle arrest that acts as both a protective mechanism against tumorigenesis and a contributor to tissue degeneration. Herein, we explore the genetic and molecular mechanisms underlying aging, with a focus on telomere dynamics, the Klotho gene, angiotensin-converting enzyme (ACE), and the NF-κB pathway. Telomeres, which serve as protective caps at chromosome ends, shorten with each cell division, leading to replicative senescence, while the enzyme telomerase plays a pivotal role in maintaining telomere length and cellular longevity. The Klotho gene encoding for an aging suppressor influences insulin/IGF-1 signaling and has antioxidant properties that protect against oxidative stress. ACE, through its dual role in regulating blood pressure and degrading amyloid-beta, impacts longevity and age-related pathologies. The NF-κB pathway drives chronic inflammation or “inflammaging,” contributing to the onset of age-related diseases. Understanding these pathways offers promising avenues for therapeutic interventions to extend health span and lifespan. Targeting mechanisms such as telomerase activation, Klotho supplementation, ACE inhibition, and NF-κB modulation hold potential for combating the detrimental effects of aging and promoting healthier aging in the population. Full article
(This article belongs to the Special Issue Genomic Approaches for Disease Diagnosis and Prognosis)
40 pages, 2183 KB  
Review
The Telomere Length Signature in Leukemias—From Molecular Mechanisms Underlying Telomere Shortening to Immunotherapeutic Options Against Telomerase
by Stella Baliou, Iordanis Pelagiadis, Miruna-Maria Apetroaei, Elena Vakonaki, Andreea Letiția Arsene, Eleftheria Hatzidaki, Manolis N. Tzatzarakis, Petros Ioannou, Aristides Tsatsakis and Eftichia Stiakaki
Cancers 2025, 17(12), 1936; https://doi.org/10.3390/cancers17121936 - 10 Jun 2025
Cited by 6 | Viewed by 3028
Abstract
The nucleoprotein structures known as telomeres provide genomic integrity by protecting the ends of chromosomes. Tumorigenesis is associated with alterations in telomere function and stability. This narrative review provides evidence of the potential prognostic value of telomere length and telomerase in leukemias. On [...] Read more.
The nucleoprotein structures known as telomeres provide genomic integrity by protecting the ends of chromosomes. Tumorigenesis is associated with alterations in telomere function and stability. This narrative review provides evidence of the potential prognostic value of telomere length and telomerase in leukemias. On the one hand, oxidative stress and mitochondrial dysfunction can accelerate telomere shortening, leading to higher susceptibility and the progression of leukemia. On the other hand, cytogenetic alterations (such as gene fusions and chromosomal abnormalities) and genomic complexity can result from checkpoint dysregulation, the induction of the DNA damage response (DDR), and defective repair signaling at telomeres. This review thoroughly outlines the ways by which telomere dysfunction can play a key role in the development and progression of four primary leukemias, including chronic lymphocytic leukemia (CLL), chronic myeloid leukemia (CML), and acute leukemias of myeloid or lymphoid origin, highlighting the potential prognostic value of telomere length in this field. However, telomerase, which is highly active in leukemias, can prevent the rate of telomere attrition. In line with this, leukemia cells can proliferate, suggesting telomerase as a promising therapeutic target in leukemias. For this reason, telomerase-based immunotherapy is analyzed in the fight against leukemias, leveraging the immune system to eliminate leukemia cells with uncontrolled proliferation. Full article
(This article belongs to the Section Cancer Immunology and Immunotherapy)
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20 pages, 6146 KB  
Article
The stn1-sz2 Mutant Provides New Insight into the Impacts of Telomeric Cdc13-Stn1-Ten1 Dysfunction on Cell Cycle Progression
by Nathalie Grandin and Michel Charbonneau
Cells 2025, 14(11), 784; https://doi.org/10.3390/cells14110784 - 26 May 2025
Viewed by 1321
Abstract
The conserved and essential Cdc13/CTC1-Stn1-Ten1 telomeric complex (CST) ensures chromosome stability by protecting telomere ends and regulating telomerase accessibility. In a recent study, we uncovered mutants of the S. cerevisiae CST, in which damage was sensed by the two major G2/M spindle [...] Read more.
The conserved and essential Cdc13/CTC1-Stn1-Ten1 telomeric complex (CST) ensures chromosome stability by protecting telomere ends and regulating telomerase accessibility. In a recent study, we uncovered mutants of the S. cerevisiae CST, in which damage was sensed by the two major G2/M spindle checkpoints (one is Bub2-dependent and the other one Mad2-dependent), as well as the major G2/M DNA damage checkpoint (Mec1-dependent). In this study, we found, by fluorescence microscopy, that the stability of the mitotic tubulin spindle was profoundly affected in the best-studied of these mutants, stn1-sz2. Additional data from genetic analyses suggested the potential involvement of Stu1 and Stu2, as well as Slk19, in these defects. Throughout this study, we compared the phenotypes of stn1-sz2 with those of cdc13-1, the best-studied CST mutant, which also serves as a prototype of telomere-damage-characterized CST mutants. We propose that stn1-sz2 represents the prototype of cst mutants characterized by tubulin spindle damage. These newly described phenotypes potentially represent the basis for identifying new functions of the CST telomeric complex. These functions might consist of ensuring correct chromosome segregation through the stabilization of the mitotic spindle. Full article
(This article belongs to the Special Issue Chromosomal Instability in Health and Disease)
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15 pages, 549 KB  
Review
Telomeropathies in Interstitial Lung Disease and Lung Transplant Recipients
by Brian D. Southern and Shruti K. Gadre
J. Clin. Med. 2025, 14(5), 1496; https://doi.org/10.3390/jcm14051496 - 24 Feb 2025
Cited by 5 | Viewed by 4613
Abstract
Telomeropathies, or telomere biology disorders (TBDs), are syndromes that can cause a number of medical conditions, including interstitial lung disease (ILD), bone marrow failure, liver fibrosis, and other diseases. They occur due to genetic mutations to the telomerase complex enzymes that result in [...] Read more.
Telomeropathies, or telomere biology disorders (TBDs), are syndromes that can cause a number of medical conditions, including interstitial lung disease (ILD), bone marrow failure, liver fibrosis, and other diseases. They occur due to genetic mutations to the telomerase complex enzymes that result in premature shortening of telomeres, the caps on the ends of cellular DNA that protect chromosome length during cell division, leading to early cell senescence and death. Idiopathic pulmonary fibrosis (IPF) is the most common manifestation of the telomere biology disorders, although it has been described in other interstitial lung diseases as well, such as rheumatoid arthritis-associated ILD and chronic hypersensitivity pneumonitis. Telomere-related mutations can be inherited or can occur sporadically. Identifying these patients and offering genetic counseling is important because telomerapathies have been associated with poorer outcomes including death, lung transplantation, hospitalization, and FVC decline. Additionally, treatment with immunosuppressants has been shown to be associated with worse outcomes. Currently, there is no specific treatment for TBD except to transplant the organ that is failing, although there are a number of promising treatment strategies currently under investigation. Shortened telomere length is routinely discovered in patients undergoing lung transplantation for IPF. Testing to detect early TBD in patients with suggestive signs or symptoms can allow for more comprehensive treatment and multidisciplinary care pre- and post-transplant. Patients with TBD undergoing lung transplantation have been reported to have both pulmonary and extrapulmonary complications at a higher frequency than other lung transplant recipients, such as graft-specific complications, increased infections, and complications related to immunosuppressive therapy. Full article
(This article belongs to the Special Issue Updates on Interstitial Lung Disease)
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17 pages, 1779 KB  
Article
Simple Sequence Repeats (SSRs) and Telomeric Analysis in Somatic Organs of Reproductive and Non-Reproductive Castes of Termite Reticulitermes chinensis
by Haroon, Zahid Khan, Wasim Javaid and Lian-Xi Xing
Biology 2025, 14(2), 166; https://doi.org/10.3390/biology14020166 - 6 Feb 2025
Viewed by 1843
Abstract
The study of Reticulitermes chinensis offers valuable insights into insect aging and longevity, focusing on telomere biology and simple sequence repeats (SSRs). Telomeres, the protective cap at chromosome ends, are often linked to cellular aging and lifespan. Through transcriptomic analysis using the RepeatExplorer [...] Read more.
The study of Reticulitermes chinensis offers valuable insights into insect aging and longevity, focusing on telomere biology and simple sequence repeats (SSRs). Telomeres, the protective cap at chromosome ends, are often linked to cellular aging and lifespan. Through transcriptomic analysis using the RepeatExplorer tool, a total of 10,740 SSR loci were identified, encompassing di-, tri-, tetra-, penta-, and hexa-nucleotide motifs. Among these, tri-nucleotide repeats were the most prevalent (2702), with prominent motifs including AC/GT (21.91%), AAG/CTT (8.49%), and AGC/CTG (8.2%). The identified SSRs serve as valuable genetic markers for taxonomy, phylogenetic, and population genetics. A telomeric sequence array featuring the TTAGG repeat motif was also discovered, with fluorescence in situ hybridization (FISH) confirming its localization at chromosome ends. Telomere lengths R. chinensis ranged from tens to hundreds of kilobases but showed no significant correlation with lifespan differences among termite castes. All castes had the same telomere length. This finding suggests that R. chinensis may possess a unique telomere maintenance mechanism, decoupling telomere length from aging and challenging the conventional view that shorter telomeres are indicative aging. It is hypothesized that telomerase activity plays a critical role in preserving telomere integrity in this species. These findings underscore the complexity and evolutionary adaptations of telomere biology in social insects. Moreover, the variation and organization of SSRs in R. chinensis provide a rich genetic resource for genome mapping, evolutionary research, and population genetics. This study sheds light on telomere dynamics and genetic diversity in termites, opening new pathways for research in evolutionary biology and the molecular mechanisms of aging. Full article
(This article belongs to the Section Zoology)
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19 pages, 1436 KB  
Review
Exploring the Link Between Telomeres and Mitochondria: Mechanisms and Implications in Different Cell Types
by Graziana Assalve, Paola Lunetti, Maria Santa Rocca, Ilaria Cosci, Andrea Di Nisio, Alberto Ferlin, Vincenzo Zara and Alessandra Ferramosca
Int. J. Mol. Sci. 2025, 26(3), 993; https://doi.org/10.3390/ijms26030993 - 24 Jan 2025
Cited by 17 | Viewed by 6731
Abstract
Telomeres protect chromosome ends from damage, but they shorten with each cell division due to the limitations of DNA replication and are further affected by oxidative stress. This shortening is a key feature of aging, and telomerase, an enzyme that extends telomeres, helps [...] Read more.
Telomeres protect chromosome ends from damage, but they shorten with each cell division due to the limitations of DNA replication and are further affected by oxidative stress. This shortening is a key feature of aging, and telomerase, an enzyme that extends telomeres, helps mitigate this process. Aging is also associated with mitochondrial dysfunction, leading to increased reactive oxygen species (ROS) that exacerbate cellular damage and promote apoptosis. Elevated ROS levels can damage telomeres by oxidizing guanine and disrupting their regulation. Conversely, telomere damage impacts mitochondrial function, and activation of telomerase has been shown to reverse this decline. A critical link between telomere shortening and mitochondrial dysfunction is the DNA damage response, which activates the tumor suppressor protein p53, resulting in reduced mitochondrial biogenesis and metabolic disruptions. This highlights the bidirectional relationship between telomere maintenance and mitochondrial function. This review explores the complex interactions between telomeres and mitochondria across various cell types, from fibroblasts to sperm cells, shedding light on the interconnected mechanisms underlying aging and cellular function. Full article
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17 pages, 3787 KB  
Review
Recent Advances in DNA Systems for In Situ Telomerase Activity Detection and Imaging
by Shiyi Zhang, Wenjing Xiong, Shuyue Xu and Ruocan Qian
Chemosensors 2025, 13(1), 17; https://doi.org/10.3390/chemosensors13010017 - 15 Jan 2025
Cited by 6 | Viewed by 3520
Abstract
Telomeres play a key role in maintaining chromosome stability and cellular aging. They consist of repetitive DNA sequences that protect chromosome ends and regulate cell division. Telomerase is a reverse transcriptase enzyme counteracts the natural shortening of telomeres during cell division by extending [...] Read more.
Telomeres play a key role in maintaining chromosome stability and cellular aging. They consist of repetitive DNA sequences that protect chromosome ends and regulate cell division. Telomerase is a reverse transcriptase enzyme counteracts the natural shortening of telomeres during cell division by extending them. Its activity is pivotal in stem cells and cancer cells but absent in most normal somatic cells. Recent advances in biosensor technologies have facilitated the in situ detection of telomerase activity, which is essential for understanding its role in aging and cancer. Techniques such as fluorescence, electrochemistry, and DNA nanotechnology are now being employed to monitor telomerase activity in living cells, providing real-time insights into cellular processes. DNA-based biosensors, especially those incorporating molecular beacons, DNA walkers, and logic gates, have shown promise for enhancing sensitivity and specificity in telomerase imaging. These approaches also facilitate the simultaneous analysis of related cellular pathways, offering potential applications in early cancer detection and precision therapies. This review explores recent developments in intracellular telomerase imaging, highlighting innovative approaches such as DNA-functionalized nanoparticles and multi-channel logic systems, which offer non-invasive, real-time detection of telomerase activity in complex cellular environments. Full article
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30 pages, 16711 KB  
Article
Dinochromosome Heterotermini with Telosomal Anchorages
by Alvin Chun Man Kwok, Kosmo Ting Hin Yan, Shaoping Wen, Shiyong Sun, Chongping Li and Joseph Tin Yum Wong
Int. J. Mol. Sci. 2024, 25(20), 11312; https://doi.org/10.3390/ijms252011312 - 21 Oct 2024
Cited by 1 | Viewed by 2223
Abstract
Dinoflagellate birefringent chromosomes (BfCs) contain some of the largest known genomes, yet they lack typical nucleosomal micrococcal-nuclease protection patterns despite containing variant core histones. One BfC end interacts with extranuclear mitotic microtubules at the nuclear envelope (NE), which remains intact throughout the cell [...] Read more.
Dinoflagellate birefringent chromosomes (BfCs) contain some of the largest known genomes, yet they lack typical nucleosomal micrococcal-nuclease protection patterns despite containing variant core histones. One BfC end interacts with extranuclear mitotic microtubules at the nuclear envelope (NE), which remains intact throughout the cell cycle. Ultrastructural studies, polarized light and fluorescence microscopy, and micrococcal nuclease-resistant profiles (MNRPs) revealed that NE-associated chromosome ends persisted post-mitosis. Histone H3K9me3 inhibition caused S-G2 delay in synchronous cells, without any effects at G1. Differential labeling and nuclear envelope swelling upon decompaction indicate an extension of the inner compartment into telosomal anchorages (TAs). Additionally, limited effects of low-concentration sirtinol on bulk BfCs, coupled with distinct mobility patterns in MNase-digested and psoralen-crosslinked nuclei observed on 2D gels, suggest that telomeric nucleosomes (TNs) are the primary histone structures. The absence of a nucleosomal ladder with cDNA probes, the presence of histone H2A and telomere-enriched H3.3 variants, along with the immuno-localization of H3 variants mainly at the NE further reinforce telomeric regions as the main nucleosomal domains. Cumulative biochemical and molecular analyses suggest that telomeric repeats constitute the major octameric MNRPs that provision chromosomal anchorage at the NE. Full article
(This article belongs to the Section Macromolecules)
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14 pages, 2818 KB  
Article
α-Terpineol Induces Shelterin Components TRF1 and TRF2 to Mitigate Senescence and Telomere Integrity Loss via A Telomerase-Independent Pathway
by Marianna Kapetanou, Sophia Athanasopoulou, Andreas Goutas, Dimitra Makatsori, Varvara Trachana and Efstathios Gonos
Antioxidants 2024, 13(10), 1258; https://doi.org/10.3390/antiox13101258 - 17 Oct 2024
Cited by 3 | Viewed by 2578
Abstract
Cellular senescence is a hallmark of aging characterized by irreversible growth arrest and functional decline. Progressive telomeric DNA shortening in dividing somatic cells, programmed during development, leads to critically short telomeres that trigger replicative senescence and thereby contribute to aging. Therefore, protecting telomeres [...] Read more.
Cellular senescence is a hallmark of aging characterized by irreversible growth arrest and functional decline. Progressive telomeric DNA shortening in dividing somatic cells, programmed during development, leads to critically short telomeres that trigger replicative senescence and thereby contribute to aging. Therefore, protecting telomeres from DNA damage is essential in order to avoid entry into senescence and organismal aging. In several organisms, including mammals, telomeres are protected by a protein complex named shelterin that prevents DNA damage at the chromosome ends through the specific function of its subunits. Here, we reveal that the nuclear protein levels of shelterin components TRF1 and TRF2 decline in fibroblasts reaching senescence. Notably, we identify α-terpineol as an activator that effectively enhances TRF1 and TRF2 levels in a telomerase-independent manner, counteracting the senescence-associated decline in these crucial proteins. Moreover, α-terpineol ameliorates the cells’ response to oxidative DNA damage, particularly at the telomeric regions, thus preserving telomere length and delaying senescence. More importantly, our findings reveal the significance of the PI3K/AKT pathway in the regulation of shelterin components responsible for preserving telomere integrity. In conclusion, this study deepens our understanding of the molecular pathways involved in senescence-associated telomere dysfunction and highlights the potential of shelterin components to serve as targets of therapeutic interventions, aimed at promoting healthy aging and combating age-related diseases. Full article
(This article belongs to the Special Issue Antioxidants as Anti-Aging Interventions)
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