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Biology subjects

Tran, V. A.

Publications and source records attributed to Tran, V. A..

2 recordsLinked to original sources

SUN2 mediates epigenetic remodeling to drive mechanotransduction during skin fibrosis

Fibrosis involves sustained changes in fibroblast gene expression, leading to excessive extracellular matrix (ECM) deposition and progressive tissue stiffening. Although matrix stiffness is a potent regulator of cell fate and transcription, it is not clear how nuclear mechanosensing contributes to fibrosis. Here, we define a central role for SUN2, a component of linker of nucleoskeleton and cytoskeleton (LINC) complexes, as a mediator of stiffness-dependent nuclear and chromatin responses during skin fibrosis. SUN2 transcripts are upregulated in dermal fibroblasts of patients with systemic sclerosis and Sun2 protein is elevated in fibrotic mouse skin. Nuclear size, A-type lamins and Sun2 are elevated in dermal fibroblasts plated on stiff substrates. Loss of Sun2 protects against bleomycin-induced skin fibrosis in vivo and abolishes stiffness-induced changes in nuclear size and fibrotic gene expression in vitro. Mechanistically, we identify three Sun2-dependent mechanosensitive chromatin states and show that mechanical induction of the histone methyltransferase Ezh2 requires Sun2. These findings define SUN2 as a nuclear mechanosensor that couples matrix stiffness to chromatin regulation and transcriptional programs that drive fibrosis, identifying it as a potential therapeutic target pathway in fibrotic disease.

cell biology↗

Neuroimmune changes underscore pain-associated behaviors and disc herniations in SM/J mice

There are no appropriate mouse models to study the pathophysiology of spontaneous disc herniations and associated pain pathology. We demonstrate that SM/J mice show a high incidence of age-associated lumbar disc herniations with neurovascular innervations. Transcriptomic comparisons of the SM/J annulus fibrosus with human tissues showed shared pathways related to immune cell activation and inflammation. Notably, aged SM/J mice showed increased pain sensitization and neuroinflammatory signatures associated with altered extracellular matrix regulation in the DRGs and spinal cord. There were increased T cells in the vertebral marrow, and CyTOF analysis showed increased splenic CD8+ T cells, nonspecific activation of CD8+ memory T cells, and enhanced IFN-{gamma} production in the myeloid compartment. ScRNA-seq of PBMCs in SM/J showed more B cells, with lower proportions of T cells, monocytes, and granulocytes. This study identifies SM/J mice as a clinically-relevant model to study the pathophysiology of spontaneous disc herniations and highlights a causative axis for chronic discogenic pain with novel contributors from the primary lymphoid organs (spleen and vertebral marrow), circulation, and the nervous system. One-Sentence SummaryThe novel SM/J mouse model shows a neuroimmune axis drives chronic back pain, a leading cause of years lived with disability.

cell biology↗