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Lepore, A. C.

Publications and source records attributed to Lepore, A. C..

4 recordsLinked to original sources

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↗

PTEN inhibition promotes robust growth of bulbospinal respiratory axons and partial recovery of diaphragm function in a chronic model of cervical contusion spinal cord injury

High spinal cord injury (SCI) leads to persistent and debilitating compromise in respiratory function. Cervical SCI not only causes the death of phrenic motor neurons (PhMNs) that innervate the diaphragm, but also damages descending respiratory pathways originating in the rostral ventral respiratory group (rVRG) located in the brainstem, resulting in denervation and consequent silencing of spared PhMNs located caudal to injury. It is imperative to determine whether interventions targeting rVRG axon growth and respiratory neural circuit reconnection are efficacious in chronic cervical contusion SCI, given that the vast majority of individuals are chronically-injured and most cases of SCI involve contusion-type damage to the cervical region. We therefore employed a clinically-relevant rat model of chronic cervical hemicontusion to test therapeutic manipulations aimed at reconstructing damaged rVRG-PhMN-diaphragm circuitry to achieve recovery of respiratory function. At a chronic time point post-injury, we systemically administered: an antagonist peptide directed against phosphatase and tensin homolog (PTEN), a central inhibitor of neuron-intrinsic axon growth potential; an antagonist peptide directed against receptor-type protein tyrosine phosphatase sigma (PTP{sigma}), another important negative regulator of axon growth capacity; or a combination of these two peptides. PTEN antagonist peptide (PAP4) promoted partial recovery of diaphragm motor activity out to nine months post-injury, while PTP{sigma} peptide did not impact diaphragm function after cervical SCI. Furthermore, PAP4 promoted robust growth of descending bulbospinal rVRG axons caudal to the injury within the denervated portion of the PhMN pool, while PTP{sigma} peptide did not affect rVRG axon growth at this location that is critical to control of diaphragmatic respiratory function. In conclusion, we find that, when PTEN inhibition is targeted at a chronic time point following cervical contusion that is most relevant to the SCI clinical population, our non-invasive PAP4 strategy can successfully promote significant regrowth of damaged respiratory neural circuitry and also partial recovery of diaphragm motor function. HIGHLIGHTSO_LIPTEN antagonist peptide promotes partial diaphragm function recovery in chronic cervical contusion SCI. C_LIO_LIPTP{sigma} inhibitory peptide does not impact diaphragm function recovery in chronic cervical contusion SCI. C_LIO_LIPTEN antagonist peptide promotes growth of bulbospinal rVRG axons in chronic cervical contusion SCI. C_LIO_LIPTP{sigma} peptide does not affect rVRG axon growth in chronic cervical contusion SCI. C_LI

neuroscience↗

EphrinB2 knockdown in spinal cord astrocytes preserves diaphragm innervation in a mutant SOD1 mouse model of ALS

Amyotrophic lateral sclerosis (ALS) is a neurodegenerative disease characterized by motor neuron loss. Importantly, non-neuronal cell types such as astrocytes also play significant roles in disease pathogenesis. However, mechanisms of astrocyte contribution to ALS remain incompletely understood. Astrocyte involvement suggests that transcellular signaling may play a role in disease. We examined contribution of transmembrane signaling molecule ephrinB2 to ALS pathogenesis, in particular its role in driving motor neuron damage by spinal cord astrocytes. In symptomatic SOD1G93A mice (a well-established ALS model), ephrinB2 expression was dramatically increased in ventral horn astrocytes. Reducing ephrinB2 in the cervical spinal cord ventral horn via viral-mediated shRNA delivery reduced motor neuron loss and preserved respiratory function by maintaining phrenic motor neuron innervation of diaphragm. EphrinB2 expression was also elevated in human ALS spinal cord. These findings implicate ephrinB2 upregulation as both a transcellular signaling mechanism in mutant SOD1-associated ALS and a promising therapeutic target.

neuroscience↗

Astrocytic expression of ALS-causative mutant FUS leads to TNFa-dependent neurodegeneration in vivo

Genetic mutations that cause Amyotrophic Lateral Sclerosis (ALS), a progressively lethal motor neuron disease, are commonly found in ubiquitously expressed genes. In addition to direct defects within motor neurons, growing evidence suggests that dysfunction of non-neuronal cells is also an important driver of disease. Previously, we demonstrated that mutations in DNA/RNA binding protein Fused in Sarcoma (FUS) induce neurotoxic phenotypes in astrocytes in vitro, via activation of the NF-{kappa}B pathway and release of pro-inflammatory cytokine TNF. Here, we developed an intraspinal cord injection model to test whether astrocyte-specific expression of ALS-causative FUSR521G variant (mtFUS) causes neuronal damage in vivo. We show that mtFUS expression causes TNF upregulation, motor function deficits, and spinal motor neuron loss. We further demonstrate a lack of phenotype in TNF knockout animals expressing mtFUS, and prevention of neurodegeneration in mtFUS-transduced animals through administration of TNF neutralizing antibodies. Together, these studies strengthen evidence that astrocytes contribute to disease in ALS, establish that FUS-ALS astrocytes induce pathogenic changes to motor neurons in vivo, and provide insights identifying FUS-ALS specific potential therapeutic targets.

neuroscience↗