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Biology subjects

Haroutounian, S.

Publications and source records attributed to Haroutounian, S..

2 recordsLinked to original sources

Senescent peripheral fibroblasts initiate chemotherapy-induced peripheral neuropathy

Chemotherapy-induced peripheral neuropathy (CIPN) is a common, debilitating complication of cancer therapy. Although axonal degeneration defines CIPN, the initiating cellular events remain unknown. Here, we show that CIPN is initiated by senescent peripheral fibroblasts rather than by the neuron itself. Across the mechanistically distinct chemotherapeutic agents paclitaxel and cisplatin, chemotherapy-induced senescence is unexpectedly restricted to peripheral fibroblasts rather than neurons and acts upstream of neuronal SARM1 activation. Genetic or pharmacological ablation of senescent fibroblasts prevents neuropathy and reverses established disease, demonstrating that these cells are required for both disease initiation and maintenance. Mechanistically, senescent fibroblasts drive neuropathic injury through an MK2-dependent senescence-associated secretory phenotype (SASP), and genetic or pharmacological inhibition of MK2 suppresses the SASP, preserves peripheral innervation and restores sensory function. Together, these findings redefine the cellular origin of CIPN and identify MK2-dependent fibroblast senescence as a therapeutic target.

cancer biology↗

Macrophage-to-sensory neuron crosstalk mediated by Angiotensin II type-2 receptor elicits neuropathic pain

Peripheral nerve damage initiates a complex series of cellular and structural processes that culminate in chronic neuropathic pain. Our study defines local angiotensin signaling via activation of the Angiotensin II (Ang II) type-2 receptor (AT2R) on macrophages as the critical trigger of neuropathic pain. An AT2R-selective antagonist attenuates neuropathic, but not inflammatory pain hypersensitivity in mice, and requires the cell damage-sensing ion channel transient receptor potential family-A member-1 (TRPA1). Mechanical and cold pain hypersensitivity that are characteristic of neuropathic conditions can be attenuated by chemogenetic depletion of peripheral macrophages and AT2R-null hematopoietic cell transplantation. Our findings show no AT2R expression in mouse or human sensory neurons, rather AT2R expression and activation in macrophages triggers production of reactive oxygen/nitrogen species, which trans-activate TRPA1 on sensory neurons. Our study defines the precise neuro-immune crosstalk underlying nociceptor sensitization at the site of nerve injury. This form of cell-to-cell signaling represents a critical peripheral mechanism for chronic neuropathic pain, and therefore identifies multiple analgesic targets.

neuroscience↗