George Ronan, Gokhan Bahcecioglu, Jun Yang ...
· MicroRNAs
· Bioengineering Graduate Program, University of Notre Dame, Notre Dame, IN, 46556, USA; Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, IN, 46556, USA.
· pubmed
Aging is a risk factor for cardiovascular disease, the leading cause of death worldwide. Cardiac fibrosis is a harmful result of repeated myocardial infarction that increases risk of morbidity and future injury. Interestingly, both rates and outcomes of cardiac fibrosis differ be...
Aging is a risk factor for cardiovascular disease, the leading cause of death worldwide. Cardiac fibrosis is a harmful result of repeated myocardial infarction that increases risk of morbidity and future injury. Interestingly, both rates and outcomes of cardiac fibrosis differ between young and aged individuals, as well as men and women. Here, for the first time, we identify and isolate matrix-bound extracellular vesicles from the left ventricles (LVs) of young or aged males and females in both human and murine models. These LV vesicles (LVVs) show differences in morphology and content between these four cohorts in both humans and mice. LVV effects on fibrosis were also investigated in vitro, and aged male LVVs were pro-fibrotic while other LVVs were anti-fibrotic. From these LVVs, we could identify therapeutic miRNAs to promote anti-fibrotic effects. Four miRNAs were identified and together, but not individually, demonstrated significant cardioprotective effects when transfected. This suggests that miRNA synergy can regulate cell response, not just individual miRNAs, and also indicates that biological agent-associated therapeutic effects may be recapitulated using non-immunologically active agents. Furthermore, that chronic changes in LVV miRNA content may be a major factor in sex- and age-dependent differences in clinical outcomes of cardiac fibrosis.
Longevity Relevance Analysis
(4)
The paper investigates the differential effects of cardiac tissue-resident vesicles on fibrosis in relation to age and sex, which is pertinent to understanding age-related cardiovascular diseases. However, while it identifies potential therapeutic miRNAs, it primarily addresses symptoms of cardiac fibrosis rather than targeting the root causes of aging itself. The findings contribute solid research to the field but do not represent a significant breakthrough or transformative implications.
Jung-Jin Park, Su Jin Lee, Minwoo Baek ...
· Cellular Senescence
· Department of Biochemistry, Chungbuk National University, College of Medicine and Medical Research Center, Cheongju, 28644, Republic of Korea.
· pubmed
Cellular senescence, a hallmark of aging, is pathogenically linked to the development of aging-related diseases. This study demonstrates that FRMD6, an upstream component of the Hippo/YAP signaling cascade, is a key regulator of senescence. Proteomic analysis revealed that FRMD6 ...
Cellular senescence, a hallmark of aging, is pathogenically linked to the development of aging-related diseases. This study demonstrates that FRMD6, an upstream component of the Hippo/YAP signaling cascade, is a key regulator of senescence. Proteomic analysis revealed that FRMD6 is upregulated in senescent IMR90 fibroblasts under various senescence-inducing conditions. Silencing FRMD6 mitigated the senescence of IMR90 cells, suggesting its requirement in senescence. Conversely, the overexpression of FRMD6 alone induced senescence in cells and in lung tissue, establishing a causal link. The elevated FRMD6 levels correlated well with increased levels of the inhibitory phosphorylated YAP/TAZ. We identified cellular communication network factor 3 (CCN3), a key component of the senescence-associated secretory phenotype regulated by YAP, whose administration attenuated FRMD6-induced senescence in a dose-dependent manner. Mechanistically, FRMD6 interacted with and activated MST kinase, which led to YAP/TAZ inactivation. The expression of FRMD6 was regulated by the p53 and SMAD transcription factors in senescent cells. Accordingly, the expression of FRMD6 was upregulated by TGF-β treatment that activates those transcription factors. In TGF-β-treated IMR90 cells, FRMD6 mainly segregated with p21, a senescence marker, but rarely segregated with α-SMA, a myofibroblast marker, which suggests that FRMD6 has a role in directing cells towards senescence. Similarly, in TGF-β-enriched environments, such as fibroblastic foci (FF) from patients with idiopathic pulmonary fibrosis, FRMD6 co-localized with p16 in FF lining cells, while it was rarely detected in α-SMA-positive myofibroblasts that are abundant in FF. In sum, this study identifies FRMD6 as a novel regulator of senescence and elucidates the contribution of the FRMD6-Hippo/YAP-CCN3 axis to senescence.
Longevity Relevance Analysis
(4)
This paper investigates the role of FRMD6 in cellular senescence, a key process associated with aging and age-related diseases. By elucidating the mechanisms through which FRMD6 influences senescence via the Hippo-YAP-CCN3 axis, the study contributes to understanding the biological underpinnings of aging. However, while the findings are solid and provide insights into cellular mechanisms, they do not present a transformative breakthrough or a novel approach to directly addressing the root causes of aging, thus limiting their overall impact.
Kelly L Michie, Hawley E Kunz, Surendra Dasari ...
· Unfolded Protein Response
· Endocrine Research Unit, Division of Endocrinology, Mayo Clinic, Rochester, MN.
· pubmed
The unfolded protein response (UPR) is a proteostatic process that is activated in response to endoplasmic reticulum stress. It is currently unclear how aging influences the chronic and adaptive UPR in human skeletal muscle. Here we determined the effect of aging on UPR activatio...
The unfolded protein response (UPR) is a proteostatic process that is activated in response to endoplasmic reticulum stress. It is currently unclear how aging influences the chronic and adaptive UPR in human skeletal muscle. Here we determined the effect of aging on UPR activation at rest, in response to exercise, and the associations with muscle function.
Longevity Relevance Analysis
(3)
The paper investigates the influence of aging on the unfolded protein response (UPR) in human skeletal muscle, which is relevant to understanding the biological mechanisms of aging and how they may affect muscle function. However, while it contributes to the field of aging research, the findings appear to be more incremental rather than groundbreaking, thus limiting its overall impact.
Abel Plaza-Florido, Inmaculada Pérez-Prieto, Alejandro Lucia
· Aging
· Pediatric Exercise and Genomics Research Center, Department of Pediatrics, School of Medicine, University of California Irvine, Irvine, CA, USA. Electronic address: aplazafl@hs.uci.edu.
· pubmed
The molecular mechanisms behind the potential 'anti-aging' effects of exercise remain to be elucidated. Janssens et al. studied the lipidome of different mouse tissues and human skeletal muscle. They identified an evolutionary conserved 'lipid aging' signature, characterized by b...
The molecular mechanisms behind the potential 'anti-aging' effects of exercise remain to be elucidated. Janssens et al. studied the lipidome of different mouse tissues and human skeletal muscle. They identified an evolutionary conserved 'lipid aging' signature, characterized by bis(monoacylglycero)phosphate accumulation, which, at the muscle level, can be attenuated by exercise.
Longevity Relevance Analysis
(4)
The paper investigates the lipidome changes associated with aging and how exercise can mitigate these changes, which is directly related to understanding the biological mechanisms of aging. While the findings contribute to the field by identifying a specific lipid aging signature and its modulation through exercise, the impact is somewhat limited as it primarily focuses on a specific aspect of aging without addressing broader implications or potential interventions.
Lexia A Dauenhauer, Brady D Hislop, Priyanka Brahmachary ...
· Mice, Inbred C57BL
· Department of Biomedical Engineering, Montana State University, Bozeman, Montana, USA.
· pubmed
Posttraumatic osteoarthritis (PTOA) commonly develops following anterior cruciate ligament (ACL) injuries, affecting around 50% of individuals within 10-20 years. Recent studies have highlighted early changes in subchondral bone structure after ACL injury in adolescent or young a...
Posttraumatic osteoarthritis (PTOA) commonly develops following anterior cruciate ligament (ACL) injuries, affecting around 50% of individuals within 10-20 years. Recent studies have highlighted early changes in subchondral bone structure after ACL injury in adolescent or young adult mice, which could contribute to the development of PTOA. However, ACL injuries do not only occur early in life. Middle-aged and older patients also experience ACL injuries and PTOA, but whether the aged subchondral bone also responds rapidly to injury is unknown. This study utilized a noninvasive, single overload mouse injury model to assess subchondral bone microarchitecture, turnover, and material properties in both young adults (5 months) and early old age (22 months) female C57BL/6JN mice at 7 days after injury. Mice underwent either joint injury (i.e., produces ACL tears) or sham injury procedures on both the loaded and contralateral limbs, allowing evaluation of the impacts of injury versus loading. The subchondral bone response to ACL injury is distinct for young adult and aged mice. While 5-month mice show subchondral bone loss and increased bone resorption postinjury, 22-month mice did not show loss of bone structure and had lower bone resorption. Subchondral bone plate modulus increased with age, but not with injury. Both ages of mice showed several bone measures were altered in the contralateral limb, demonstrating the systemic skeletal response to joint injury. These data motivate further investigation to discern how osteochondral tissues differently respond to injury in aging, such that diagnostics and treatments can be refined for these demographics.
Longevity Relevance Analysis
(3)
The paper investigates the differential response of subchondral bone to injury in young and aged mice, which is relevant to understanding age-related changes in bone health and the development of posttraumatic osteoarthritis. However, while it contributes to the knowledge of aging and its effects on bone response, it does not address the root causes of aging or propose solutions for lifespan extension. Thus, its impact is solid but limited.
Tuckowski, A. M., Beydoun, S., Kitto, E. S. ...
· genetics
· University of Michigan
· biorxiv
Flavin-containing monooxygenases (FMOs) are a conserved family of xenobiotic enzymes upregulated in multiple longevity interventions, including nematode and mouse models. Previous work supports that C. elegans fmo-2 promotes longevity, stress resistance, and healthspan by rewirin...
Flavin-containing monooxygenases (FMOs) are a conserved family of xenobiotic enzymes upregulated in multiple longevity interventions, including nematode and mouse models. Previous work supports that C. elegans fmo-2 promotes longevity, stress resistance, and healthspan by rewiring endogenous metabolism. However, there are five C. elegans FMOs and five mammalian FMOs, and it is not known whether promoting longevity and health benefits is a conserved role of this gene family. Here, we report that expression of C. elegans fmo-4 promotes lifespan extension and paraquat stress resistance downstream of both dietary restriction and inhibition of mTOR. We find that overexpression of fmo-4 in just the hypodermis is sufficient for these benefits, and that this expression significantly modifies the transcriptome. By analyzing changes in gene expression, we find that genes related to calcium signaling are significantly altered downstream of fmo-4 expression. Highlighting the importance of calcium homeostasis in this pathway, fmo-4 overexpressing animals are sensitive to thapsigargin, an ER stressor that inhibits calcium flux from the cytosol to the ER lumen. This calcium/fmo-4 interaction is solidified by data showing that modulating intracellular calcium with either small molecules or genetics can change expression of fmo-4 and/or interact with fmo-4 to affect lifespan and stress resistance. Further analysis supports a pathway where fmo-4 modulates calcium homeostasis downstream of activating transcription factor-6 (atf-6), whose knockdown induces and requires fmo-4 expression. Together, our data identify fmo-4 as a longevity-promoting gene whose actions interact with known longevity pathways and calcium homeostasis.
Longevity Relevance Analysis
(4)
The paper investigates the role of fmo-4 in promoting longevity and stress resistance in C. elegans, linking it to calcium homeostasis and known longevity pathways. This focus on a gene that appears to influence lifespan and healthspan aligns with the goals of longevity research. However, while the findings are solid and contribute to our understanding of the mechanisms involved, they do not represent a major breakthrough or transformative discovery in the field, hence the moderate impact score.