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Aveleira, C.

Publications and source records attributed to Aveleira, C..

3 recordsLinked to original sources

Lonafarnib Partially Reverses Cardiac Senescence in Human and Mouse Progeria Models via Autophagy Activation

Hutchinson-Gilford Progeria Syndrome (HGPS), characterised by accelerated ageing, causes cardiovascular defects resembling aspects of cardiovascular ageing. We used human left ventricle cardiomyocytes (CMs) derived from HGPS-induced pluripotent stem cells (iPSCs), and their isogenic-corrected controls, to investigate HGPS-CM dysfunction and identify potential therapies. Our results revealed that HGPS-iPSC-CMs exhibit greater maturity and associated elevated oxidative stress compared to controls, which they could not contend with, leading to cellular senescence. Increased senescence was also observed in cardiac tissue from mouse and human physiologically-aged and HGPS individuals. Functionally, HGPS-iPSC-CMs showed dysregulated mitochondrial respiration and calcium handling. Amongst the six drugs tested, rapamycin and lonafarnib were the most effective against HGPS-cardiac phenotypes. Although lonafarnib raised safety concerns, it partially reverted the cardiac senescent phenotype by inducing cellular autophagy and decreasing progerin expression in progeroid mice. Our study supports the use of HGPS-iPSC-CMs to identify novel biomarkers and therapies for HGPS, and potentially cardiac physiological-ageing.

cell biology↗

Extracellular matrix mechanical cues (dys)regulate metabolic redox homeostasis due to impaired autophagic flux

Extracellular matrix (ECM) stiffness is increasingly recognized as a critical regulator of cellular behavior, governing processes such as proliferation, differentiation, and metabolism. Neurodegenerative diseases are characterized by mitochondrial dysfunction, oxidative stress, impaired autophagy, and progressive softening of the brain tissue, yet research into how mechanical cues influence cellular metabolism in this context remains scarce. In this study, we evaluated the long-term effects of brain-compliant, soft ECM on mitochondrial bioenergetics, redox balance, and autophagic capacity in neuronal cells. Using human neuroblastoma (SH-SY5Y) and mouse hippocampal (HT22) cell lines, as well as primary mouse neurons, we observed that prolonged exposure to soft ECM resulted in mitochondrial bioenergetic dysfunction, redox imbalance, and disrupted autophagic flux. These findings were consistently validated across both human and mouse neuronal cells. Our data indicate a decreased maximal autophagic capacity in cells exposed to long-term soft ECM, potentially due to an imbalance in autophagosome formation and degradation, as demonstrated by decreased LC3 II levels following chloroquine-induced autophagic flux inhibition. This impairment in autophagy was coupled with increased cellular oxidative stress, further indicating metabolic alterations. These findings emphasize the critical role of ECM stiffness in regulating neuronal cell metabolism and suggest that prolonged exposure to soft ECM may mimic key aspects of neurodegenerative disease pathology, thereby enhancing the physiological relevance of in vitro models. This study underscores the necessity for further research into ECM mechanics as a contributing factor in neurodegenerative disease progression and as a potential target for therapeutic strategies.

cell biology↗

Nuclear aging in polyglutamine-induced neurodegeneration

Machado-Joseph disease (MJD) is an autosomal dominantly-inherited neurodegenerative disorder characterized by an over-repetition of the CAG trinucleotide of the ATXN3 gene, conferring a toxic gain-of-function to the resulting ataxin-3 protein. Despite the significant advances produced over the last years, the molecular mechanisms involved in MJD are still unclear and no treatment able to modify the disease progression is available. Aging is the major risk factor for neurodegenerative disorders, being associated with the occurrence and progression of several diseases, such as Alzheimers, Huntingtons, among others. The nuclear membrane proteins - lamins - and lamin-processing related proteins, such as ZMPSTE24, have been shown to be altered, not only during normal aging, but also in neurodegenerative disorders, such as Alzheimers disease. Taking this into account, we aimed at investigating the role of aging in MJD by evaluating the presence of age-related markers in human and animal MJD models. Decreased levels of lamins B and C, together with decreased ZMPSTE24 levels were identified in the different MJD models. Accordingly, abnormalities in nuclear circularity, a hallmark of aging, were also observed in a N2a MJD cellular model, supporting an age-related phenotype. Furthermore, overexpressing progerin, the abnormal lamin A, generated in Hutchinson Guilford Progeria Syndrome patients that present premature and accelerated aging, in a relevant brain area of a lentiviral MJD mouse model, induced an aggravation of MJD-associated neuropathology. Our results suggest that aging is a key player in the context of MJD pathogenesis, unveiling new pathways for the development of future therapies for the disease.

neuroscience↗