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Nazaraliyev, A.

Publications and source records attributed to Nazaraliyev, A..

2 recordsLinked to original sources

Acute activation of autophagy enables growth plate regeneration following radiation-induced injury.

Purpose Radiation injury to growth plates commonly leads to skeletal late complications including short stature, limb length-discrepancy, and scoliosis/kyphosis in pediatric oncology patients. We aimed to understand the acute responses of direct growth plate irradiation that result in skeletal late complications. Materials and methods We first established an in vivo model of focal growth plate irradiation that recapitulates the clinical development of skeletal late complications and used it to explore the responses of growth plate chondrocytes within the first 72 hours of radiation exposure. To monitor acute effects of radiation exposure on human chondrocytes, rare human growth plate biopsies were exposed to ionizing radiation ex vivo. Using these approaches, we applied clonal genetic tracing and immunofluorescence to monitor changes at the cellular and molecular levels. Functional in vivo perturbations were conducted with clinically-relevant autophagy inhibitor, hydroxychloroquine. Results Growth plate irradiation disrupted the continuous production of chondrocytes required for bone elongation and was associated with DNA damage throughout the growth plate. Indicators of growth plate activity, SOX9 and the phosphorylated form of ribosomal protein S6, decreased during a 6- and 24-hour post-irradiation window but returned to normal levels 72 hours after irradiation. We identified a surge in autophagic flux throughout the growth plate during this window, based on temporal SQSTM1 and LAMP1 protein levels. The earliest stages of these response mechanisms are conserved between species and relevant to humans. Hydroxychloroquine treatment immediately after radiation injury in mice impaired growth plate regeneration, resulting in more severe late complications. Conclusion Our findings demonstrate that autophagy is an important acute response to irradiation in growth plate chondrocytes, revealing a novel potential therapeutic target for preventing radiation-induced skeletal late complications.

molecular biology↗

Human growth plates house resting zone sub-populations with features of quiescent stem cells

Incomplete mapping of gene expression within human (epiphyseal) growth plates contributes to the challenges of diagnosing and treating patients with skeletal growth disorders. To address this issue, we applied spatially resolved transcriptomics to rare growth plate biopsies obtained from healthy adolescents. In addition to identifying novel markers of each zone of the human growth plate, spatial profiling revealed that the expression of genes associated with poorly understood growth disorders, including NKX3-2, SGMS2 and WNK4, is restricted to specific human growth plate zones. By elaborating on the low transcriptional activity of resting zone chondrocytes, we found that a subset of these cells exists in a functionally quiescent state in vivo, as determined by their predominantly nuclear mRNA, abundant heterochromatin, and ability to exit the G0 phase under specific conditions - features shared with skeletal stem cells in mouse growth plates. Additionally, we identified distinct and overlapping sub-populations of human resting zone chondrocytes; an exploration of their hierarchy determined that CHRDL2 and/or SFRP5-positive sub-populations are among the least quiescent resting zone cells. In summary, we generated the most comprehensive gene expression characterization of the human growth plate, which revealed novel zone-specific markers, new primary growth disorders, candidate pharmacological targets, and led us to uncover sub-populations of resting zone chondrocytes with features of quiescent stem cells. These results contribute to a better understanding of the cellular and molecular mechanisms governing human height and can facilitate improved diagnosis and treatment strategies of patients with skeletal growth disorders.

molecular biology↗