Search bioRxiv⌕ Search

Biology subjects

Wiggett, H.

Publications and source records attributed to Wiggett, H..

3 recordsLinked to original sources

Pdgfrβ signaling orchestrates meningeal repair via the mobilization of arachnoid cells.

Zebrafish possess remarkable regeneration abilities, including the capacity to repair their central nervous system (CNS). Leveraging the optical accessibility of the zebrafish brain, we investigated the mechanisms underlying meningeal repair following laser-induced brain injuries to the optic tectum. In previous work, using live imaging of laser-induced surface injuries to the optic tectum in juvenile zebrafish, we identified a population of flat PDGFR{beta}+ cells that rapidly migrate to the wound site and contribute to meningeal repair. Here, using pharmacological inhibition or genetic perturbation of PDGFR{beta}, we show that recruitment of these PDGFR{beta}+ meningeal cells is strongly dependent on PDGFR{beta} signaling, unlike recruitment of PDGFR{beta}+ pericytes deeper in the wound. Furthermore, PDGFR{beta} inhibition diminishes neurite regrowth and macrophage recruitment. Using photoconversion assays, we traced the origin of PDGFR{beta}+ meningeal cells that migrated to the wound in response to injury, in the midbrain-forebrain and midbrain-hindbrain sulci. Our findings highlight PDGFR{beta}s pivotal role in orchestrating meningeal repair and reveal novel cellular dynamics during CNS regeneration. These results provide insights into potential therapeutic strategies for enhancing brain repair and mitigating fibrosis in mammals, where meningeal scarring remains a barrier to CNS regeneration. HighlightsPDGFR{beta} signaling orchestrates the rapid accumulation of meningeal cells at CNS injury sites to drive tissue remodeling. PDGFR activity acts as a critical regulator, co-recruiting PDGFR{beta}+ meningeal cells and mfap4+ macrophages to the lesion. Meningeal cells are essential for neural repair, with PDGFR inhibition leading to significantly reduced neurite density. Zebrafish maintain locomotor resilience post-injury, identifying a clear distinction between meningeal-driven axonal regrowth and basic motor circuitry recovery. Establishes a high-resolution zebrafish platform to identify conserved meningeal targets for mammalian CNS regeneration.

cell biology↗

The two groups of zebrafish type I interferons target different tissues, paralleling the mammalian type I: type III IFN functional division

Interferons (IFNs) are ancient cytokines that arose in jawed vertebrates [~]400-500 million years ago. IFN systems are present with conserved antiviral functions across vertebrate lineages, including zebrafish (Danio rerio). In mammals, antiviral IFNs are divided between type I interferons (IFN-I), which drive systemic responses, and type III interferons (IFN-III), which protect barrier mucosal epithelia, owing to the specific distribution of their respective receptors. Although zebrafish lack IFN-III, they have IFN-Is which subdivide into 2 groups with distinct receptors, providing a unique opportunity to study how antiviral immunity has evolved in the absence of IFN-III. Whilst previous work has suggested complementary, non-redundant roles for IFNs from these groups, the tissue specificity has not yet been resolved. As larvae, zebrafish only express one group 1 (IFN{varphi}1) and one group 2 IFN (IFN{varphi}3). Using viral infection assays and reporter transgenics, we found that IFNs from group 1 (IFN{varphi}1) and group 2 (IFN{varphi}3) are produced by distinct subsets of cells, with no detectable co-expression. To assess tissue and cell-type-specific responses to these two IFNs, we used ISG reporter fish imaging and whole-larva single cell RNA sequencing after injection of recombinant IFN{varphi}1 and IFN{varphi}3. Despite a similar core ISG response, distinct downstream ISG programs across multiple tissues and organ systems were found. In particular, barrier epithelial cells, such as enterocytes, responded more strongly to IFN{varphi}1, while myeloid cells responded more strongly to IFN{varphi}3. Our results indicate that zebrafish IFN-I families have functionally diversified their antiviral immune responses by tissue context, driven by cellular partitioning of both IFN-I production and response. These results mirror the division of labour between mammalian IFN-I and IFN-III, emphasising the evolutionary importance of tissue division of immune responses, as well as deepening our understanding of the zebrafish as a model for host-pathogen interactions.

immunology↗

Spatial dynamics of peripheral and central nervous system infection by an interferon-inducing neuroinvasive virus

Organ-to-organ dissemination of viruses is a critical feature of host-virus interactions. In particular, neuroinvasive viruses are able to enter the central nervous systems (CNS), which may result in death or permanent neurological impairment. The complex mechanisms underpinning this spread are poorly understood, as they depend on a variety of parameters, including initial site of entry, route of access to the CNS, and immune responses. To better understand these phenomena, we analyzed the spatial dynamics of Sindbis virus (SINV) dissemination in transparent zebrafish larvae. Using fluorescent reporter viruses, we observed that SINV readily invaded the CNS after inoculation at various peripheral sites. From tail muscle, the virus used dorsal root ganglia (DRG) sensory neurons as a gateway to the spinal cord and further propagation to the brain. While peripheral infection was systematically transient, due to the key protective role of the strong and rapid type I interferon (IFN) response, CNS infection was persistent and more variable. Within the CNS, viral dissemination resulted both from long-distance axonal transport and short distance shedding, and IFN response was local, while it was systemic in the periphery. A mathematical model was built on this quantitative imaging foundation, that provided additional insight on the parameters of this infection, such as the rate of new virion production, estimated around 1 to 2 infective virions per productively infected cell per hour; the occurrences of CNS entry events, which was 2 to 3 per larva; or the impact of the IFN response, which did not only prevent new infections but accelerated the death of infected cells.

microbiology↗