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Schlott, F.

Publications and source records attributed to Schlott, F..

4 recordsLinked to original sources

Deep brain stimulation of the mesencephalic locomotor centre induces stimulation-dependent behavioural states beyond locomotion

Deep brain stimulation (DBS) of the mesencephalic locomotor region (MLR) has been explored to treat gait disturbances. However, clinical outcomes of MLR-DBS have been disappointing overall, with only modest benefits in some individuals and unwanted effects, including anxiety, reported in others. Preclinical studies in several species, by contrast, show that MLR-DBS can improve locomotor and gait deficits, although defensive behaviours in response to stimulation have also been reported in some species. To investigate this discrepancy, we examined frequency- and amplitude-dependent effects of MLR-DBS in healthy rats, combining semi-supervised and unsupervised behavioural analyses. High-frequency, high-amplitude DBS (80-130 Hz), but not low-frequency stimulation (20-60 Hz), elicited hyperlocomotion intermixed with acute defensive-like behaviours. Low-frequency stimulation instead promoted phases of immobility. Consistently, only high-frequency DBS induced region-specific c-Fos expression in the MLR. Complex behaviours, including hyperlocomotion, rearing, tail rattling, and periods of immobility, were most pronounced in animals with the DBS electrode tip localized to the cuneiform nucleus (CnF) of the MLR. Using AAV tracer constructs for bright labelling of CaMKII-positive neurons and their axons, we identified prominent ascending projections from the CnF to the thalamus, substantia nigra pars compacta, zona incerta, hypothalamus, subthalamic nucleus, and central amygdala (CeA). Retrograde tracing confirmed the CnF-to-CeA projection independently. These findings show that the MLR is anatomically connected to higher-order centres linking motor and defensive networks, with DBS frequency and amplitude critically shaping behavioural outcomes that extend beyond locomotion.

neuroscience↗

Sex differences define the molecular and cellular phenotypes of pain resolution in dorsal root ganglia

The dorsal root ganglion (DRG), a key site for the initiation and maintenance of neuropathic pain, was examined for sex-dependent phenotypes in sensory neurons, satellite glial cells (SGCs), and local macrophages following traumatic nerve injury and during natural pain resolution. Systematic analysis of 7,495 DRG immunofluorescence images and 62 transcriptomes revealed pronounced sex-specific, multicellular DRG phenotypes, especially during pain resolution. System parameters, including tissue size and neuron density also showed sex-dependent differences. Neuropathic pain resolved without tissue or sensory neuron loss. After injury, macrophages invaded the space between sensory neurons and satellite glial cells (SGCs); this was partially reversed during pain resolution, particularly in males. In females, immune-related gene expression and macrophage phenotypes persisted longer, while SGC activation and contact to sensory neurons was more persistent in males. During resolution, synaptic and excitability-related processes were pronounced in both sexes. However, while injury responses were largely shared between sexes, the resolution phase displayed distinctly sex-specific molecular and cellular signatures. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=197 SRC="FIGDIR/small/691610v1_ufig1.gif" ALT="Figure 1"> View larger version (76K): org.highwire.dtl.DTLVardef@4063c7org.highwire.dtl.DTLVardef@156c0d2org.highwire.dtl.DTLVardef@8d4be4org.highwire.dtl.DTLVardef@7182bd_HPS_FORMAT_FIGEXP M_FIG C_FIG In briefAnalysis of [~]7,500 bioimages and 62 transcriptomes reveals pronounced sex differences in rat dorsal root ganglia during pain resolution after peripheral nerve injury. HighlightsO_LIIn both female and male rats, peripheral nerve injury and subsequent pain resolution occur in the dorsal root ganglia (DRG) without neuronal or tissue loss. C_LIO_LISex influences DRG tissue size, neuron density, immune and glial phenotypes, and molecular-cellular responses to nerve injury and pain resolution. C_LIO_LIFollowing injury, macrophages infiltrate the space between sensory neurons and satellite glial cells (SGCs); this process reverses during pain resolution, particularly in males. C_LIO_LIIn females, immune phenotypes remain more stable throughout pain resolution, while SGC contact is reduced. C_LIO_LIPain resolution involves not only the reversal of injury-induced cell changes but also the activation of resolution-specific gene programs related to synaptic signaling, neuronal excitation, and cell-cell communication. C_LIO_LISex differences on the molecular-cellular level are less prevalent after nerve injury but become prominent during pain resolution. C_LI

neuroscience↗

Resting calcium ion fluxes protect cells from fast mitochondrial fragmentation, cell stress responses, and immediate transcriptional reprogramming

Homeostatic calcium ion (Ca2+) fluxes between the endoplasmic reticulum, cytosol, and extracellular space occur not only in response to cell stimulation but also in unstimulated cells. Using murine astrocytes as a model, we asked whether there is a signaling function of these resting Ca2+-fluxes. The data showed that endoplasmic reticulum (ER) Ca{superscript 2} depletion, induced by sarcoplasmic/endoplasmic reticulum Ca{superscript 2}-ATPase (SERCA) inhibition, resulted to prolonged Ca{superscript 2} influx and mitochondrial fragmentation within 10 to 30 minutes. This mitochondrial fragmentation could be prevented in Ca2+- free medium or by inhibiting store-operated Ca2+ entry (SOCE). Similarly, attenuation of STIM proteins, which are vital ER Ca2+ sensors, protected mitochondrial morphology. On the molecular level, ER Ca2+ depletion, achieved either by removing extracellular Ca2+ or through acute SERCA inhibition, led to changes in gene expression of about 13% and 41% of the transcriptome within an hour, respectively. Transcriptome changes were associated with universal biological processes such as transcription, differentiation, or cell stress. Strong increase in expression was observed for the transcription factor ATF4, which is under control of the kinase PERK (EIF2AK3), a key protein involved in ER stress. Corroborating these findings, PERK was rapidly phosphorylated in Ca2+-free medium or after acute pharmacological inhibition of SOCE. In summary, resting, homeostatic Ca2+ fluxes prevent immediate- early cell stress and transcriptional reprogramming.

physiology↗

Human dorsal root ganglia after plexus injury: either preservation or loss of the multicellular unit

ObjectivePlexus injury results in lifelong suffering of flaccid paralysis, sensory loss, and intractable pain. For this clinical problem, regenerative medicine concepts, such as cell replacement for restoring dorsal root ganglion (DRG) function, set high expectations. However, it is completely unclear which DRG cell types are affected by plexus injury. MethodsWe investigated the cellular composition of human DRG in a clinically characterized cohort of patients with plexus injury. Avulsed DRG of 13 patients were collected during reconstructive nerve surgery. Then, we analyzed the cellular composition of the DRG with a human-adapted objective deep learning-based analysis of large-scale microscopy images. ResultsSurprisingly, in about half of the patients, the injury-affected DRG no longer contained DRG cells. The complete entity of neurons, satellite glial cells, and microglia was lost and replaced by mesodermal/connective tissue. In the other half of patients, the cellular entity of the DRG was well preserved. We found no loss of neurons, no gliosis, and macrophages close to single sensory neuron/satellite glial cell entities. Patients with neuronal preservation had less pain than patients with neuronal loss. InterpretationThe findings classify plexus injury patients in two categories: type I (neuronal preservation) and type II (neuronal loss). We call for early, post-accidental interventions to protect the entire DRG and improved MRI diagnostics to detect neuronal loss. Regenerative medicine to restore DRG function will need at least two translational directions: reafferentation of existing DRG units for type I injuries; or replacement of the entire DRG structure for type II patients.

neuroscience↗