Search bioRxiv⌕ Search

Biology subjects

Vallieres, N.

Publications and source records attributed to Vallieres, N..

2 recordsLinked to original sources

Multimodal transcriptomics and calcium imaging reveal a novel subset of polymodal nociceptors expressing the interleukin 1 receptor in mice

We previously established that sensory neurons in the mouse dorsal root ganglia (DRG) express a functional receptor for the proinflammatory cytokine interleukin (IL)-1. We also demonstrated that deletion of the IL-1 receptor type 1 gene, Il1r1, in TRPV1-expressing (+) neurons prevented pain in models of chronic inflammatory diseases such as multiple sclerosis, rheumatoid arthritis and osteoarthritis. Here, we found a marked sex difference in the abundance of IL-1R1+ neurons, which represented approximately 10% of all DRG neurons in females but only 5% in males. However, male mice exhibited stronger, longer-lasting mechanical hypersensitivity than females after IL-1{beta} injection into the cerebrospinal fluid. In vivo calcium imaging revealed that IL-1{beta}- responsive DRG neurons responded to cutaneous mechanical and capsaicin stimulation. By integrating spatial transcriptomics with single-cell RNA sequencing (scRNA-Seq), we identified a gene signature uniquely marking IL-1R1+ neurons, including genes such as Ada, Cysltr2, Gpr139, Htr1a, Htr1f, Il31ra, Nppb, Npy2r, Nts, P2rx2, Pde4c, and Sst, with Ada and Sst validated at the protein level. Omics analysis revealed that IL-1R1+ DRG neurons form a subset of non-peptidergic type 3 (NP3) sensory neurons, which are linked to inflammatory pain and itch. However, Il1r1 deletion did not affect itch responses to serotonin, histamine, or chloroquine, and these mediators failed to induce calcium activity in IL-1{beta}-responsive DRG neurons. Finally, scRNA-seq identified several genes upregulated in NP3 neurons after IL-1{beta} injection, including Alkal2, Bdnf, and Lcn2, associated with chronic inflammatory pain. Thus, our study unveils novel markers for IL-1R1+ nociceptors and reaffirms their selective role in inflammatory pain.

neuroscience↗

Immunoglobulins are rapidly internalized by neurons after CNS injury and cleared through lysosomal degradation

Spinal cord injury (SCI) causes hemorrhage and blood-spinal cord barrier disruption, allowing blood-derived molecules to infiltrate the parenchyma. While immunoglobulins (Ig) are abundant plasma proteins, their distribution and cellular targets within the injured spinal cord remain poorly defined. Here, we show that circulating non-autoimmune immunoglobulins rapidly infiltrate the spinal cord after injury in mice and disseminate beyond the lesion core. IgG, IgM, and IgA accumulate within the parenchyma early post-injury, with IgG displaying the widest spatial distribution, reaching distant spinal segments within hours. Neurons are the predominant cell type internalizing immunoglobulins in the gray matter, whereas astrocytes exhibit moderate uptake in white matter. Intra-cisterna magna administration of fluorescent serum-derived IgG reveals that neurons and astrocytes internalize IgG under physiological conditions, independently of Fc receptor engagement. Although the neonatal Fc receptor (FcRn) has minimal impact on CNS IgG recycling, its genetic deletion significantly improves locomotor recovery after SCI. Both in vitro and in vivo, neurons clear IgG through lysosomal degradation. Following SCI, inhibition of lysosomal proteases with the clinically approved drug E64d increases CNS IgG retention without compromising locomotor recovery. These findings establish neurons as key targets of circulating immunoglobulins after CNS injury and reveal IgG uptake and clearance pathways that may be leveraged to improve therapeutic performance of monoclonal antibody treatments.

neuroscience↗