bioRxiv Science⌕ Search

bioRxiv · 10.64898/2026.06.25.734621

Bradycardia inhibits brain vessel mural cell differentiation via reducing mechanosensory and Jag2-Notch signaling

Abstract

Bradycardia occurs when the heart rate is lower than normal resulting in reduced cerebral blood flow and contributing to neurodegeneration in adults but how it affects embryonic cerebrovascular development is not well studied. We induce bradycardia by targeting the heart pacemaker channel Hcn4 via chemical (ivabradine) and genetic (hcn4 mutant) methods. Bradycardia results in reduced brain vessel diameter and mural cell (pericyte and vascular smooth muscle cell) number. Endothelial cells are the first responders in sensing changes in blood flow, and we show that signalling through the canonical endothelial-autonomous mechanosensitive pathway (Piezo1, Mek5, Erk5, Klf2) is reduced in bradycardia. To identify the ligand-receptor combination that transmits signals to developing mural cells, we show that expression of the Notch ligand jagged2b is decreased in the brain of both hcn4 and klf2 mutants. jag2b knockdown reduces mural cell numbers in brain vessels. Restoring jag2b levels increases mural cell numbers in both wildtype and hcn4 mutants. Our work connects bradycardia, mechanosensitive signaling and mural cell recruitment demonstrating that mural cell numbers can be increased in bradycardia by restoring Notch signalling via upregulating endothelial Jag2b. SummaryBradycardia models show reduced blood flow, Piezo1-klf2-jag2b-notch3 mechanosensing and mural cell recruitment to developing brain vasculature. Restoration of jag2, an endogenous endothelial cell ligand, rescues mural cell numbers in bradycardia mutants.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Shandilya, R., Childs, S.. 2026-06-26. Bradycardia inhibits brain vessel mural cell differentiation via reducing mechanosensory and Jag2-Notch signaling. https://doi.org/10.64898/2026.06.25.734621

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Neural tracking of stressed syllables in Dutch nursery rhymes relates to vocabulary outcomes in a large, longitudinal sample

Speech consists of regularities at different timescales. Already during infancy, neural electrophysiological activity aligns to these rhythms. The degree to which infants exhibit neural tracking of speech can be linked to their language development. In this study, we examined how the neural tracking of sung speech develops across age, from infancy to early childhood, and across different frequency bands (i.e., at the stress, syllabic, and phonemic rates), and whether neural tracking at each frequency and age predicts childrens language outcomes. We included 2565 children of the longitudinal YOUth cohort. Children listened to Dutch sung nursery rhymes while EEG was recorded at three measurement waves. After preprocessing the data, we included 955 children at 5 months, 1048 children at 10 months, and 795 children at 2-4 years. The final sample consisted of 750 children who also completed a receptive vocabulary test at 2-4 years. Children from 5 months onwards showed significant neural tracking of stressed syllables, syllables, and phonemes, measured with speech-brain coherence (SBC). Unexpectedly, there were no developmental changes in SBC across different frequency bands from infancy to early childhood. As expected, children with larger receptive vocabularies showed increased SBC in the stressed syllable rate. These findings suggest that stronger tracking of stressed syllables is related to individual differences in language ability.

Developmental Biology↗

FGF Signaling Potentiates Müller Glia for Mammalian Retinal Regeneration

Muller glia possess latent regenerative potential that could be harnessed to restore retinal neurons lost to injury or disease. Although fibroblast growth factor (FGF) signaling is upregulated following retinal damage, its role in mammalian retinal regeneration remains unclear. Here, we investigated the function of FGF signaling in Muller glial reprogramming using genetic, pharmacological, and single-cell transcriptomic approaches. Activation of FGF signaling alone was insufficient to induce Muller glial proliferation in the mouse retina. However, conditional deletion of FGFR1/2 in Muller glia abolished regenerative responses induced by multiple independent pathways, demonstrating that FGF signaling is essential for regenerative competence. Mechanistically, loss of FGF signaling impaired sustained ERK/MAPK activation following injury, while MEK/ERK inhibition phenocopied the regenerative defect. Conversely, constitutive MEK activation induced limited Muller glial proliferation in the absence of injury. Although STAT3/5 inhibition synergized with Activin-A to promote robust proliferation and neurogenic gene expression, it failed to rescue regeneration in FGF-deficient Muller glia. Single-cell RNA sequencing revealed that FGF signaling suppresses multiple anti-regenerative programs, including Hes1, S1pr1, p27, NF-{kappa}B, and p300/CBP activity. Together, these findings identify FGF signaling as a critical permissive regulator of mammalian retinal regeneration that potentiates Muller glia through sustained ERK activation and suppression of transcriptional barriers to regeneration.

Developmental Biology↗

Doublesex- mediated regulation of insulin signaling drives sex-specific body growth

Most animals develop sex-biased body sizes driven by sexually divergent plasticity in nutrient-dependent growth. Prior work in Drosophila, implicated the sex-determination gene transformer (tra) in regulation of sex differences in body size. However, tra does not widely mediate sex determination across insects. Thus, the unifying molecular pathway governing female-biased sexual size dimorphism (SSD) remains poorly established in non-drosophilid insects. The rice stem borer Chilo suppressalis, a devastating lepidopteran crop pest, exhibits a robust SSD, offering an ideal system to dissect underlying mechanisms. We report that female-specific splice forms of the sex-determining gene doublesex (Csdsx) are master regulators of female-biased growth. Disruption of the female-specific Csdsx exon 3 via CRISPR knockout or RNA interference drastically reduces female body size and completely erases the SSD. Csilp2, encoding a key insulin-like peptide (ILP2), is selectively upregulated in late-instar female larvae, and female CsDsx proteins directly bind and activate the Csilp2 promoter to boost transcription. Loss-of-function of Csilp2 eliminates the SSD by suppressing female somatic overgrowth. Our results identify a novel regulatory cascade: female-specific Dsx directly stimulates insulin signaling via Csilp2, bridging core sex-determination circuitry and nutrient-dependent body growth control. SignificanceSexual size dimorphism (SSD), widespread across insects with larger females, strongly shapes reproductive fitness. Yet reports on the molecular connection between sex determination and dimorphic growth are scarce. Using a major agricultural pest, the rice stem borer with a prominent female-biased SSD, we show that female-specific Doublesex (dsx) splice variants directly activate the promoter of Insulin-like peptide 2 in late larvae to trigger increased growth. Knocking out either gene in females abolishes the SSD. Our findings thus establish dsx as a novel link connecting sex-determination, insulin signaling and nutrient-dependent body growth.

Developmental Biology↗