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Biology subjects

Pathiranage, D. R.

Publications and source records attributed to Pathiranage, D. R..

2 recordsLinked to original sources

Modulation of circadian rhythms in articular cartilage by heat pulses

ObjectivePrior studies have shown that disruption of the circadian clock leads to cartilage degeneration in mice while shift work is associated with higher risk of osteoarthritis (OA) in humans. In this study we investigated the potential of heat pulses to restore dampened circadian rhythms in articular cartilage. MethodsFemoral head cartilage explants and primary chondrocytes were isolated from PER2::LUC mice. Human femoral condyle cartilage was obtained from osteoarthritic patients undergoing total knee replacement. Tissues and cells were exposed to heat shock at various temperatures (37-43 {degrees}C) and incubation lengths. Bioluminescence from explants and cells was recorded in real-time. RNA sequencing and qPCR were used to assess gene expression changes in response to heat. ResultsWe established that a 60-min pulse at 43 {degrees}C was sufficient to restore dampened PER2::LUC rhythms in mouse cartilage explants or in primary chondrocytes. Transcriptome analysis in mouse articular cartilage showed an up-regulation of genes encoding heat shock proteins and collagens, and a transient down-regulation of Sox9, Runx2, Per1, Clock and Cry2. Heat induced the expression of circadian clock genes in human osteoarthritic knee cartilage. Mechanistically, inhibition of HSP90 activity or perturbation of F-actin polymerisation blocked the heat-induced resynchronisation of circadian rhythms. ConclusionTogether, these data have contributed to a greater understanding of the multifaceted nature of the connections between circadian timekeeping, heat stress responses and homeostasis in articular cartilage. These findings also suggest that time-prescribed temperature increases could be developed into a non-invasive intervention to slow down tissue ageing and restore homeostasis in osteoarthritic joints by improving circadian oscillations of cartilage rhythmic pathways.

cell biology↗

The clock transcription factor BMAL1 is a key regulator of extracellular matrix homeostasis and cell fate in the intervertebral disc

The circadian clock in mammals temporally coordinates physiological and behavioural processes to anticipate daily rhythmic changes in their environment. Chronic disruption to circadian rhythms (e.g., through ageing or shift work) is thought to contribute to a multitude of diseases, including degeneration of the musculoskeletal system. The intervertebral disc (IVD) in the spine contains circadian clocks which control [~]6% of the transcriptome in a rhythmic manner, including key genes involved in extracellular matrix (ECM) homeostasis. However, it remains largely unknown to what extent the local IVD molecular clock is required to drive rhythmic gene transcription and IVD physiology. In this work, we identified profound age-related changes of ECM microarchitecture and an endochondral ossification-like phenotype in the annulus fibrosus (AF) region of the IVD in the Col2a1-Bmal1 knockout mice. Circadian time series RNA-Seq of the whole IVD in Bmal1 knockout revealed loss of circadian patterns in gene expression, with an unexpected emergence of 12-hour ultradian rhythms, including FOXO transcription factors. Further RNA sequencing of the AF tissue identified region-specific changes in gene expression, evidencing a loss of AF phenotype markers and a dysregulation of ECM and FOXO pathways in Bmal1 knockout mice. Consistent with an up-regulation of FOXO1 mRNA and protein levels in Bmal1 knockout IVDs, inhibition of FOXO1 in AF cells suppressed their osteogenic differentiation. Collectively, these data highlight the importance of the local molecular clock mechanism in the maintenance of the cell fate and ECM homeostasis of the IVD. Further studies may identify potential new molecular targets for alleviating IVD degeneration.

physiology↗