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Cancela, M. L.

Publications and source records attributed to Cancela, M. L..

3 recordsLinked to original sources

Rescuing functional defects in a zebrafish model of CDKL5 deficiency disorder: Contribution to the identification of new therapeutic compounds

Mutations in the CDKL5 gene cause CDKL5 deficiency disorder (CDD), a severe neurodevelopmental encephalopathy characterized by a broad range of symptoms, including early-onset seizures, profound motor impairment and dysmorphic facial features. Current treatment options remain limited and largely focus on seizure management, which is often challenging to control, underscoring the critical need for new effective therapies. To identify potential novel candidate molecules for the treatment of CDD, we performed the first in vivo drug screening using a cdkl5 mutant zebrafish model. Recapitulating key features of the human disorder, cdkl5-/- larvae exhibit reduced locomotor behavior, providing a robust readout to assess therapeutic efficacy. By screening 170 compounds from MAPK Inhibitor and Histone Modification Libraries, both implicated in CDKL5 dysfunction, we identified 18 and 12 small molecules that partially or fully restored locomotor activity, respectively. Among these, fisetin, divalproex, resveratrol, and VX-702 were further evaluated for their capacity to rescue cdkl5-/- craniofacial defects and altered gene expression. Fisetin demonstrated the most consistent phenotypic improvement, including partial restoration of craniofacial abnormalities and normalization of gene expression levels. Future research aimed at elucidating the molecular mechanisms underlying the observed rescue effects will be critical to understand their mode of action. Overall, our study demonstrates the utility of this rapid and scalable zebrafish-based screening approach for therapeutic discovery in CDD and identifies promising therapeutic molecules that warrant further validation in complementary preclinical systems.

neuroscience↗

Harnessing the immune system to treat bone loss: The immunomodulatory and osteoprotective effects of the microalga Skeletonema costatum

The emerging field of osteoimmunology provides compelling evidence for the pivotal role of the immune system in the development of bone erosive pathologies such as osteoporosis. However, no immunomodulatory drug has yet been integrated into the therapeutic management of bone loss. Recently, driven by the demand for next-generation treatments for these conditions, natural compounds are gaining renewed attention as promising candidates for drug discovery. In this study, we explored the anti-osteoclastogenic effects of an emerging extract from the marine microalga Skeletonema costatum. Using a zebrafish model of bone regeneration, we demonstrated the extracts ability to inhibit the recruitment of osteoclast progenitors and block their differentiation into mature osteoclasts in vivo. Bulk RNA sequencing of early-stage fin blastemas revealed the downregulation of genes involved in inflammation, T-cell activation, and antigen presentation, suggesting that the extract exerts its effects primarily through immunomodulatory mechanisms. To further assess its therapeutic potential, we tested the extract in a medaka model of RANKL-induced osteoporosis and on a murine macrophage cell line. The extract effectively prevented bone loss in fish and inhibited osteoclastic differentiation in murine macrophages in vitro. Collectively, our findings provide mechanistic insights into a novel, therapeutically relevant natural extract, offering proof of concept for its osteoprotective potential through immune system modulation. SignificanceRecent findings in the field of osteoimmunology reveal the potential of targeting immune cells to regulate bone homeostasis. However, this approach has yet to be applied to therapies for bone erosive conditions. This study explores the potential of an immunomodulatory strategy using an emerging natural extract, which prevent osteoclast differentiation by modulating inflammation, T-cell activation, and macrophage fate determination in zebrafish and medaka models of bone regeneration and osteoporosis. The extract also inhibits osteoclastic differentiation in a murine macrophage line, suggesting its translatability to mammalian systems. By focusing on immune pathways, this research provides a proof of concept for developing immunomodulatory treatments for osteoporosis and similar conditions, addressing a critical need in bone health management.

immunology↗

Fin ray branching is defined by TRAP+ osteolytic tubules

The shaping of bone structures relies on various cell types and signalling pathways. Here, we use the zebrafish bifurcating fin rays during regeneration to investigate bone patterning. We found that the regenerating fin rays form via two mineralization fronts that undergo an osteoblast-dependent fusion/stitching until the branchpoint, and that bifurcation is not simply the splitting of one unit into two. We identified tartrate-resistant acid phosphatase-positive (TRAP+) osteolytic tubular structures at the branchpoints, here named osteolytic tubules (OLTs). Chemical inhibition of their bone-resorbing activity strongly impairs ray bifurcation, indicating that OLTs counteract the stitching process. Finally, by testing different osteoactive compounds, we show that the position of the branchpoint depends on the balance between bone mineralization and resorption activities. Overall, these findings provide a new perspective on fin ray formation and bifurcation, and reveal a key role for OLTs in defining the proximo-distal position of the branchpoint. Graphical summary O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=98 SRC="FIGDIR/small/491182v1_ufig1.gif" ALT="Figure 1"> View larger version (15K): org.highwire.dtl.DTLVardef@7d0b9dorg.highwire.dtl.DTLVardef@1859078org.highwire.dtl.DTLVardef@1cfb816org.highwire.dtl.DTLVardef@3ec7f3_HPS_FORMAT_FIGEXP M_FIG C_FIG

developmental biology↗