Single-cell Transcriptomic Analysis Identifies Senescent Osteocytes that Trigger Bone Destruction in Breast Cancer Metastasis.
Japneet KaurManish AdhikariHayley M SabolAric AnloagueSharmin KhanNoriyoshi KuriharaMarta Diaz-delCastilloChristina Møller AndreasenC Lowry BarnesJeffrey B StamboughMichela PalmieriOlivia Reyes-CastroJennifer ZarrerHanna TaipaleenmäkiElena AmbroginiMaria AlmeidaCharles A O'BrienIntawat NookaewJesús Delgado-CallePublished in: Cancer research (2024)
Breast cancer bone metastases increase fracture risk and are a major cause of morbidity and mortality among women. Upon colonization by tumor cells, the bone microenvironment undergoes profound reprogramming to support cancer progression, which disrupts the balance between osteoclasts and osteoblasts and leads to bone lesions. A deeper understanding of the processes mediating this reprogramming could help develop interventions for treating patients with bone metastases. Here, we demonstrated that osteocytes in established breast cancer bone metastasis develop premature senescence and a distinctive senescence-associated secretory phenotype (SASP) that favors bone destruction. Single-cell RNA sequencing identified osteocytes from mice with breast cancer bone metastasis enriched in senescence, SASP markers, and pro-osteoclastogenic genes. Multiplex in situ hybridization and AI-assisted analysis depicted osteocytes with senescence-associated satellite distension, telomere dysfunction, and p16Ink4a expression in mice and patients with breast cancer bone metastasis. Breast cancer cells promoted osteocyte senescence and enhanced their osteoclastogenic potential in in vitro and ex vivo organ cultures. Clearance of senescent cells with senolytics suppressed bone resorption and preserved bone mass in mice with breast cancer bone metastasis. These results demonstrate that osteocytes undergo pathological reprogramming by breast cancer cells and identify osteocyte senescence as an initiating event triggering lytic bone disease in breast cancer metastases.
Keyphrases
- bone mineral density
- bone loss
- single cell
- soft tissue
- bone regeneration
- endothelial cells
- dna damage
- breast cancer cells
- postmenopausal women
- gene expression
- metabolic syndrome
- stem cells
- risk assessment
- high throughput
- pregnant women
- high fat diet induced
- signaling pathway
- endoplasmic reticulum stress
- insulin resistance
- adipose tissue
- climate change
- childhood cancer