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Ozturgut, M.

Publications and source records attributed to Ozturgut, M..

3 recordsLinked to original sources

A direct SCN-to-DMH output pathway organizes circadian behavioral timing

Circadian rhythms in behavior depend on the suprachiasmatic nucleus (SCN), but how SCN timekeeping is transmitted to downstream circuits that organize daily behavioral rhythms remains poorly defined. The dorsomedial hypothalamus (DMH) has been implicated in circadian behavioral output, but lesion studies cannot determine whether the DMH contributes through local molecular timekeeping or through intact neurons that relay SCN-derived timing signals. Here, we combined DMH neuronal ablation, local molecular clock disruption, retrograde and intersectional tracing, single-cell RNA sequencing, and intersectional optogenetics to define and test a direct SCN-to-DMH output pathway. DMH neuronal ablation disrupted locomotor activity rhythms, whereas DMH Cry1/2 disruption did not, indicating that intact DMH neurons, but not local molecular timekeeping, are required for locomotor rhythmicity. Retrograde tracing identified a sparse population of DMH-projecting SCN neurons concentrated in the dorsal SCN. These neurons showed minimal overlap with canonical AVP- and VIP-expressing SCN populations and were most strongly represented in a Prokr2/Vipr2-expressing transcriptional cluster. Repeated activation of DMH-projecting SCN neurons entrained locomotor rhythms, produced persistent phase shifts after stimulation ended, and compressed the temporal distribution of activity during entrainment. Together, these findings identify sparse, molecularly distinct DMH-projecting SCN neurons capable of organizing circadian locomotor timing.

neuroscience↗

Sex-dependent effects of peptidylarginine deiminases on neutrophil function and long-term outcomes after spinal cord injury

Traumatic spinal cord injury (SCI) initiates an influx of peripheral immune cells to the spinal cord parenchyma that compound tissue damage and restrict functional recovery. Neutrophils infiltrate the spinal cord within the first day after injury, releasing extracellular traps (NETs) comprised of decondensed DNA, modified histones, and granule enzymes, that can worsen tissue damage. Peptidylarginine demininases (PADs), particularly PAD4, have been indicated as mediators of NET formation by facilitating the decondensation of nuclear chromatin via histone citrullination. Though PADs have been shown to be regulated by sex hormones, sex-differences in PAD regulation of neutrophil function in the context of CNS injury have yet to be explored. In this work, we investigated the role of PADs in recovery after SCI using Cl-amidine, a pan-PAD inhibitor. Strikingly, Cl-amidine treated mice exhibited sex-dependent changes to motor function, body weight, and white matter sparing after SCI. Acutely, Cl-amidine treated mice had reduced NET accumulation in the blood and decreased spinal cord neutrophil granularity. Analysis of publicly available scRNA-seq data revealed that female bone marrow neutrophils exhibited elevated Padi4 expression relative to their male counterparts. We then utilized Padi4 knockout (Padi4-/-) mice to assess the role of PAD4 in long-term recovery of male and female mice after SCI. While we observed no changes in motor recovery, a sex-dependent effect on tissue sparing was observed with Padi4 deficiency. These data are the first description of sex differences in PAD-mediated neutrophil function after SCI and highlight the importance of inclusion of both sexes in pre-clinical research.

neuroscience↗

Mature neutrophils promote long-term functional recovery after spinal cord injury in a sex-dependent manner

Neutrophils are abundant and complex innate immune cells that act as first responders to tissue injury, with critical roles in combating infection and initiating would healing. Following spinal cord injury (SCI), neutrophils are the first peripheral immune cells to infiltrate the injured spinal cord in large numbers. Despite the growing body of evidence demonstrating sex differences in neutrophil function, sex as a biological variable in neutrophil responses following SCI has yet to be thoroughly investigated. Here we provide novel evidence that neutrophil responses differ by sex following SCI with divergent effects on long-term outcomes. We show substantial sex-dependent shifts in the phenotype of circulating and intraspinal neutrophils across time following SCI. Depletion of neutrophils immediately after SCI reveals a previously unidentified role for mature neutrophils in promoting long-term functional recovery in a sex-dependent manner. Mechanistically, mature neutrophils acquire an inflammation-resolving phenotype in the acutely injured spinal cord and depletion of mature neutrophils exacerbates long-term macrophage accumulation following SCI in a sex-dependent manner. Collectively, our findings provide the first account of marked sex differences in the response of neutrophils to SCI and elucidate a novel and sex-dependent role for mature neutrophils in promoting resolution of inflammation and long-term recovery following SCI.

neuroscience↗