Search bioRxiv⌕ Search

Biology subjects

Bertrand, S. G.

Publications and source records attributed to Bertrand, S. G..

3 recordsLinked to original sources

Active and Passive Mechanical Deficits Precede Spinal Curvature in a Zebrafish Model of Idiopathic Scoliosis

Idiopathic scoliosis is a common spinal disorder characterized by progressive three-dimensional curvature of unknown cause. Although biomechanical imbalance has long been proposed to contribute to scoliosis, the early physiological states that precede curvature onset remain poorly understood. Here, we investigated this problem using zebrafish uts2r3 mutants, which develop fully penetrant juvenile-onset spinal curvature following disruption of urotensin signaling. Transcriptomic analysis before curvature revealed altered expression of muscle-associated genes, suggesting that Uts2r3 influences axial muscle development or function. However, immunofluorescence, birefringence imaging, and quantitative analysis of myotome morphology showed that mutants lack overt muscle architectural defects or dystrophic pathology. By contrast, direct measurements of isolated larval trunks revealed pre-curvature biomechanical abnormalities: namely, uts2r3 mutants generated reduced active force following electrical stimulation while also exhibiting increased passive resistance to stretch. These findings identify urotensin signaling as a regulator of axial tissue biomechanics during growth and suggest that scoliosis-like curvature can arise from an early imbalance between active force generation and passive tissue stiffness. SignificanceSpinal curvature is common, but the biological events that cause the spine to bend during growth remain poorly understood. Animal models, especially zebrafish, make it possible to study these events before curvature begins. Zebrafish lacking urotensin signaling develop spinal curves that arise during juvenile growth, similar to idiopathic scoliosis in humans. Here, we demonstrate that zebrafish lacking the urotensin pathway receptor Uts2r3 develop an abnormal biomechanical state prior to curve onset. Their axial tissues generate less active force when contracting and, at the same time, show increased passive resistance to stretch--an unexpected combination that reveals a distinct pre-curvature biomechanical state. These findings suggest that spinal curvature can arise from an early imbalance in tissue mechanics during growth and identify urotensin signaling as a pathway that helps preserve spinal morphology through a biomechanical mechanism.

developmental biology↗

Motile cilia spin the Reissner fiber, a tensioned and anchored extracellular thread essential for body morphogenesis

The Reissner fiber (RF) is an extracellular thread composed of the glycoprotein SCO-spondin (Sspo) that forms within cerebrospinal fluid (CSF) in the brain ventricles and central canal (CC) of vertebrates. Its assembly depends on motile cilia, yet how cilia and CSF flow transform secreted Sspo into a fiber that spans the length of the body axis has remained unknown. Using live imaging in zebrafish, we show that globular Sspo is remodeled into thin fibrils that anchor to the floor plate (FP), elongate, and spin together into a tensioned, posteriorly translocating RF. Fiber assembly draws on a shared CSF pool of Sspo but requires local ciliary activity for globule-to-fibril remodeling. Once assembled, the RF is anchored by dynamic fibrils that stabilize the fiber and preserve its tension. Perturbations that locally disrupt ciliary motility and RF integrity along the CC result in region-specific defects in axial morphogenesis. These findings identify the RF as a flow-responsive extracellular system that converts ciliary beating into mechanical structure, linking fluid dynamics to the large-scale shaping of the vertebrate body. HighlightsO_LIMotile cilia remodel Sspo globules into FP-anchored fibrils that bundle into RF. C_LIO_LIRF assembly draws on a shared CSF Sspo pool but requires local cilia activity. C_LIO_LILaser ablation reveals patterned RF tension constrained by dynamic FP anchors. C_LIO_LIRegional cilia defects cause local RF loss and corresponding body shape defects. C_LI

developmental biology↗

Microtubule acetylation by TAT1 is essential for touch sensation in zebrafish but dispensable for embryonic development

Acetylation of -tubulin at lysine 40 (-tubK40Ac) is a conserved post-translational modification that occurs on the microtubule lumenal surface, but its developmental functions remain poorly defined. In zebrafish, morpholino knockdown of -tubulin acetyltransferase 1 (TAT1), the enzyme responsible for depositing -tubK40Ac marks, has been reported to cause severe developmental defects, whereas genetic loss-of-function studies in mice found no overt role in development. Here, we generated TAT1 loss-of-function alleles in zebrafish and found that, in contrast to morphants, mutants are viable, fertile, and develop normally. TAT1 mutants lack detectable -tubK40Ac in all examined tissues, indicating that no other enzyme compensates for loss of TAT1. Both cilia and neurons normally display high levels of -tubK40Ac and despite the complete loss of this modification in TAT1 mutants, gross cilia structure and motility were preserved, and cilia-dependent developmental processes remained intact. However, TAT1 mutants did exhibit defects in touch responsiveness, something which could be rescued by wild-type but not catalytically inactive TAT1. These findings demonstrate that TAT1 is solely responsible for -tubK40Ac in zebrafish and that, while dispensable for embryonic development and ciliary function, this modification is required for normal somatosensory behavior.

developmental biology↗