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Goncalves, C. F.

Publications and source records attributed to Goncalves, C. F..

3 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↗

Subtype-specific circadian clock dysregulation modulates breast cancer biology, invasiveness, and prognosis.

Studies in shift workers and model organisms link circadian disruption to breast cancer. However, molecular rhythms in non-cancerous and cancerous human breast tissues are largely unknown. We reconstructed rhythms informatically, integrating locally collected, time-stamped biopsies with public datasets. For non-cancerous tissue, the inferred order of core-circadian genes matches established physiology. Inflammatory, epithelial-mesenchymal transition (EMT), and estrogen responsiveness pathways show circadian modulation. Among tumors, clock correlation analysis demonstrates subtype-specific changes in circadian organization. Luminal A organoids and informatic ordering of Luminal A samples exhibit continued, albeit disrupted rhythms. However, CYCLOPS magnitude, a measure of global rhythm strength, varied widely among Luminal A samples. Cycling of EMT pathway genes was markedly increased in high-magnitude Luminal A tumors. Patients with high-magnitude tumors had reduced 5-year survival. Correspondingly, 3D Luminal A cultures show reduced invasion following molecular clock disruption. This study links subtype-specific circadian disruption in breast cancer to EMT, metastatic potential, and prognosis.

cancer biology↗

Mechanical loading and hyperosmolarity as a daily resetting cue for skeletal circadian clocks

Daily rhythms in mammalian behaviour and physiology are generated by a multi-oscillator circadian system entrained through environmental cues (e.g. light). Presence of niche-dependent physiological time cues has been proposed, allowing local tissues flexibility of phase adjustment. However, to date, such stimuli have remained elusive. Here we show that cycles of mechanical loading and osmotic stimuli within physiological range drive rhythmic expression of clock genes and reset clock phase and amplitude in cartilage and intervertebral disc tissues. Hyperosmolarity (not hypo-osmolarity) resets clocks in young and ageing skeletal tissues through mTORC2-AKT-GSK3{beta} pathway, leading to genome-wide induction of rhythmic genes. These results advocate diurnal patterns of mechanical loading and consequent daily surges in osmolarity as a bona fide tissue niche-specific time cue to maintain skeletal circadian rhythms in sync. One-Sentence SummaryCircadian clocks in aneural skeletal tissues sense the passage of time through rhythmic patterns of loading and osmolarity

physiology↗