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Bretschneider, A.

Publications and source records attributed to Bretschneider, A..

5 recordsLinked to original sources

Baseline regulatory programs in larval and adult neural progenitors converge towards an injury-induced state after spinal cord injury

Regeneration after spinal cord injury requires progenitor cells to convert injury-associated signals into coordinated remodeling of gene regulatory programs. Mammalian spinal progenitors show limited neurogenic output after injury, whereas zebrafish regenerate spinal neurons and recover motor function. To investigate the regulatory changes that allow ependymo-radial glia (ERG) cells, the progenitor cells of the zebrafish spinal cord, to generate new neurons, we combined single-nucleus gene expression and chromatin accessibility profiling across embryonic, larval, and adult stages with topic-based gene regulatory network (GRN) inference. We found that larval and adult ERGs enter the injury response from distinct regulatory baselines: larval progenitors are characterized by a gliogenic program, whereas adult progenitors maintain a comparatively quiescent state. Following injury, both populations gradually change their baseline programs and shift towards a lesion-associated module marked by stress-responsive and chromatin-associated regulators, including jun, hmga1a, hmga2, ybx1, and foxj1a. The shift away from homeostatic states is supported by decreased expression of the Notch-associated regulators nuclear factor I A (nfia) and hey1 in larvae, while in adults, downregulation of the same nuclear factor and other TFs such as bhlhe41 is associated with quiescence exit. Pathway analysis showed stage-specific alterations after injury, characterized predominantly by extracellular signaling and cytoskeletal reorganization in larvae and by metabolic and translational remodeling in adults. Despite divergence from the homeostatic states, injury-induced larval and adult GRNs remain distinct from embryonic hERG regulatory programs. Thus, larval and adult progenitors follow different trajectories from their baselines towards a related lesion-reactive state, in which shared regeneration-associated features are acquired within respective contexts.

bioinformatics↗

Spinal injury induces a stem cell-like progenitor state that promotes regenerative neurogenesis via clcf1 in zebrafish.

After spinal injury, zebrafish, in contrast to mammals, show regenerative neurogenesis, characterized by enhanced injury-induced proliferation of ependymo-radial glial cells (ERGs) and an increase in injury-induced generation of neurons from these progenitors. It is unclear whether regenerative neurogenesis simply recapitulates development or uses regeneration-specific mechanisms. Using scRNA-seq and in vivo validation we find a spinal injury-induced state in ERGs (iiERGs) in larval zebrafish. This cell state emerges mostly without proliferation and has stem cell characteristics, including weak expression of neurogenic genes and strong expression of stemness factors, such as lin28a. Expression of lin28a is not detectable during ongoing developmental neurogenesis. Following spinal cord lesion, lin28a disruption increases the numbers of ERGs undergoing neuronal differentiation and of newly-generated neurons, at the expense of proliferating ERGs and iiERGs. This supports a stemness-preserving role of lin28a in iiERGs. Importantly, iiERGs secrete growth factors, including the regeneration-specific cytokine clcf1, which depends in part on lin28a expression. Disruption of clcf1 signalling impairs spinal progenitor proliferation and injury-induced generation of new neurons, but does not affect the emergence of iiERGs. Over-expression of clcf1 is sufficient to augment neurogenesis in unlesioned animals without inducing the iiERG state, indicating that clcf1 acts as a generic growth factor. Hence, we describe an injury-specific stem cell-like ERG population that regulates regenerative neurogenesis by attenuating neuronal differentiation via lin28a and promoting progenitor proliferation via clcf1.

neuroscience↗

Tachykinin neuropeptides are involved in axonal and synaptic differentiation of the pioneer motor axon in zebrafish

In contrast to many other developing systems, in which axon pathfinding and synaptogenesis are separated in time, the pioneering axon of the individually identifiable caudal primary motor neuron in embryonic zebrafish forms en passant synapses during its stereotypical ventral growth. How simultaneous synaptic differentiation and axon pathfinding are coordinated is not fully understood. Here we ask what the role of the tac1 gene, coding for the synaptic tachykinin neuropeptides, is in this unique axon differentiation process. The gene is expressed during axon outgrowth and its disruption results in increased branch length of CaP axons and subtle morphological defects of the pre-synapse. These abnormalities are accompanied by a robust [~]1.5-fold increase in motor neuron activity and in spontaneous early contractions in tac1-deficient embryos. Furthermore, pharmacological inhibition of the tachykinin receptor (Tacr1) leads to altered CaP axonal morphology, mimicking the axonal phenotype observed in tac1-deficient zebrafish. These findings suggest that tachykinin neuropeptides modulate formation and activity of en passant synapses and prevent aberrant axon branching during growth of zebrafish motor axons. HIGHLIGHTS- tac1 refines CaP primary motor axon development in zebrafish - Loss of tac1 disrupts presynaptic maturation at the horizontal myoseptum - tac1 mutants show elevated motor neuron activity and spontaneous contractions

neuroscience↗

A reparative neutrophil subpopulation promotes spinal cord regeneration in zebrafish by controlling macrophage inflammation via Il-4

In mammals, a dysregulated immune response is detrimental to spinal cord repair. In zebrafish, which are capable of spinal cord regeneration, the immune response promotes regeneration. Neutrophils are the first immune cells to arrive at a spinal cord injury site, but their role in successful regeneration is not fully understood. Here we show that ablating neutrophils, including a subpopulation that expresses the cytokine il4, increases expression of il1b (coding for Il-1{beta}) in macrophages/microglia and impairs anatomical and functional recovery after a spinal cord injury in larval zebrafish. Regeneration is fully rescued by over-expression of il4 alone or experimentally reducing Il-1{beta} levels. Disruption of il4 mimics the detrimental effect of neutrophil ablation for axonal regeneration and is also rescued by reducing Il-1{beta} levels. Hence, after spinal cord injury, a pro-regenerative neutrophil subpopulation promotes spinal cord regeneration in larval zebrafish by controlling expression of il1b in macrophages/microglia. For this neutrophil action, il4 expression is necessary and sufficient. HIGHLIGHTS- Neutrophil ablation impairs spinal cord repair in zebrafish - The neutrophil response can be replaced by reducing Il-1{beta} levels - A pro-regenerative subpopulation of neutrophils expresses il4 - il4 overexpression fully rescues effects of neutrophil ablation

neuroscience↗

Macrophage crosstalk with neural progenitors and fibroblasts controls regenerative neurogenesis via Sema4ab after spinal cord injury in zebrafish

Zebrafish, in contrast to mammals, regenerate neurons after spinal cord injury, but little is known about the control mechanisms of this process. Here we use scRNA-seq and in vivo experiments to show that sema4ab, mainly expressed by lesion-reactive microglia, attenuates regenerative neurogenesis by changing the complex lesion environment. After spinal injury, disruption of sema4ab doubles the number of newly generated progenitor cells and neurons but attenuates axon regrowth and recovery of swimming function. Disruption of the plxnb1a/b receptors, selectively expressed by neural progenitor cells, increases regenerative neurogenesis. In addition, disruption of sema4ab alters activation state and cytokine expression of microglia, such that fibroblasts increase expression of the cytokine tgfb3, which strongly promotes regenerative neurogenesis. Hence, sema4ab in microglia attenuates regenerative neurogenesis in multiple ways, likely directly through plxnb1a/b receptors and indirectly, by controlling the inflammatory milieu and tgfb3 levels. Targeting Sema4A-dependent signalling in non-regenerating vertebrates may be a future strategy to improve regenerative outcomes. HIGHLIGHTS- Microglia suppress pro-regenerative fibroblast signalling in a spinal injury site - Fibroblasts promote regenerative neurogenesis via Tgfb3 signalling - sema4ab promotes microglia activation state after spinal injury - scRNA-seq reveals full complement of sema4ab-dependent changes on different cell types during repair of a spinal lesion site

neuroscience↗