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Biology subjects

Nye, G.

Publications and source records attributed to Nye, G..

3 recordsLinked to original sources

Age-related changes in microRNAs expression in cruciate ligaments of wild-stock house mice

AimCruciate ligaments (CLs) of the knee joint are commonly injured following trauma or ageing. MicroRNAs (miRs) are potential therapeutic targets in musculoskeletal disorders. This study aimed to 1) identify if wild-stock house (WSH) mice are an appropriate model to study age-related changes of the knee joint and 2) investigate expression of miRs in ageing murine CLs. MethodsKnee joints were collected from 6 and 24 months old C57BL/6 and WSH mice (Mus musculus domesticus) for histological analysis. RNA extraction and qPCR gene expression were performed on CLs in 6, 12, 24, and 30 month WSH old mice. Expression of miR targets in CLs was determined, followed by analysis of predicted mRNA target genes and Ingenuity Pathway Analysis. ResultsHigher CL and knee OARSI histological scores were found in 24 month old WSH mice compared to 6 and 12 month old C57BL/6 and 6 month old WSH mice (p< 0.05). miR-29a and miR-34a were upregulated in 30 month-old WSH mice in comparison to 6, 12 and 24-month-old WSH mice (p<0.05). Ingenuity Pathway Analysis on miR-29a and 34a targets was associated with inflammation through interleukins, TGF{beta} and Notch genes and p53 signalling. Collagen type I alpha 1 chain (COL1A1) correlated negatively with both miR-29a (r= -0.35) and miR-34a (r= -0.33). ConclusionThe findings of this study support WSH house mice as an accelerated ageing model of the murine knee joint. This study also indicated that miR-29a and 34a may be important regulators of COL1A1 gene expression in murine CLs.

molecular biology↗

A massively multi-scale approach to characterising tissue architecture by synchrotron micro-CT applied to the human placenta

Multi-scale structural assessment of biological soft tissue is challenging but essential to gain insight into structure-function relationships of tissue/organ. Using the human placenta as an example, this study brings together sophisticated sample preparation protocols, advanced imaging, and robust, validated machine-learning segmentation techniques to provide the first massively multi-scale and multi-domain information that enables detailed morphological and functional analyses of both maternal and fetal placental domains. Finally, we quantify the scale-dependent error in morphological metrics of heterogeneous placental tissue, estimating the minimal tissue scale needed in extracting meaningful biological data. The developed protocol is beneficial for high-throughput investigation of structure-function relationships in both normal and diseased placentas, allowing us to optimise therapeutic approaches for pathological pregnancies. In addition, the methodology presented is applicable in characterisation of tissue architecture and physiological behaviours of other complex organs with similarity to the placenta, where an exchange barrier possesses circulating vascular and avascular fluid spaces.

bioengineering↗

Eukarion-134 attenuates endoplasmic reticulum stress-induced mitochondrial dysfunction in human skeletal muscle cells

ABSTRACTMaladaptive endoplasmic reticulum (ER) stress is associated with modified reactive oxygen species (ROS) generation, altered mitochondrial bioenergetics, and oxidative damage; and is postulated as a potential mechanism involved in the underlying muscle weakness experienced by patients with myositis, an acquired autoimmune neuromuscular disease. In this study, we investigate the impact of ROS generation in an in vitro model of ER stress in skeletal muscle, using the ER stress inducer tunicamycin (24 hours) in presence or absence of a superoxide dismutase/catalase mimetic Eukarion (EUK)-134. ER stress activation, ROS generation, mitochondrial function, biogenesis, morphology and dynamics (fusion/fission) were examined. Tunicamycin induced maladaptive ER stress, validated by stimulation of GRP94, GRP78, CHOP, XBP-1, ERDJ4, and GADD34, which were mostly mitigated by EUK-134 at transcriptional level. ER stress triggered mitochondrial unfolded protein response and promoted mitochondrial dysfunction, described by substantial loss of mitochondrial membrane potential, as well as reduction of respiratory control ratio, reserve capacity, phosphorylating respiration, and coupling efficiency, which was ameliorated by EUK-134. ROS-mediated biogenesis and fusion of mitochondria was evident in presence of tunicamycin, which however, had high propensity of fragmentation, accompanied by upregulated mRNA levels of fission-related markers. Increased cellular ROS generation oxidative stress was observed in response to ER stress that was ameliorated in the presence of EUK-134, even though no changes in mitochondrial superoxide were noticeable. These findings suggest that targeting ROS generation using the superoxide dismutase/catalase mimetic EUK-134 can amend aspects of ER stress-induced changes in mitochondrial dynamics and function. Overall, this study suggests that in instances of chronic ER stress, such as in myositis, quenching ROS generation may be a promising therapy for muscle weakness and dysfunction.Competing Interest StatementThe authors have declared no competing interest.View Full Text

physiology↗