Search bioRxiv⌕ Search

bioRxiv · 10.64898/2026.06.08.731007

Mechano-Initiated PIEZO1-VEGFR2 Interaction Governs CD34+ Cell Differentiation and Repair in Arteriovenous Fistula

Abstract

BackgroundEndothelial cell (EC) injury induced by disturbed flow drives neointimal hyperplasia in arteriovenous fistulas (AVFs), where CD34+ cell-mediated repair may be involved. PIEZO1 and VEGFR2 are important mechanosensors with critical role in maintaining endothelial function. However, whether PIEZO1 interacts with VEGFR2 during CD34+ cell differentiation to orchestrate the vascular repair remains unknown. MethodsAVF model was established in several mouse strains. Single cell RNA sequencing was performed for human and mouse samples. Cd34-CreERT2; R26-tdTomato; Piezo1flox/flox mice were used to investigate the effect of Piezo1 deletion on endothelial repair in AVFs. CD34-high human umbilical vein ECs (CD34high HUVECs) was sorted and exposed to different flow patterns to determine the role of shear stress in CD34high cell differentiation. Co-immunoprecipitation, proximal ligation assay and complementary approaches were performed to delineate mechanotransduction initiated by PIEZO1-VEGFR2 interaction. ResultsSingle cell RNA sequencing and immunostaining showed abundant CD34high cells in the vessel wall of AVFs in humans and animal models. Exposure of CD34high HUVECs to different flow patterns showed that laminar shear stress downregulated CD34 while upregulating VE-cadherin and claudin-5 expression. In contrast, oscillatory flow produced the opposite effects, indicating impaired endothelial maturation. PIEZO1 knockdown in CD34high HUVECs attenuated shear stress-induced endothelial marker expression. In Cd34 conditional Piezo1 knockout mouse model of AVF, we observed decreased number of CD34-derived cells, more compact cellular arrangement, and attenuated neointimal hyperplasia. Mechanistically, we found PIEZO1 interacts with VEGFR2, thereby mediating the distinct effects of laminar and oscillatory shear stress on AKT-FoxO1 axis, which critically regulates endothelial marker expression. Furthermore, pharmacological activation of AKT signaling in AVF mouse model enhanced CD34+ cell-mediated endothelial repair and attenuated neointimal hyperplasia. ConclusionPIEZO1-VEGFR2 complex-mediated mechanotransduction plays a key role in regulating CD34+ cell-derived endothelial repair in AVFs via AKT-FoxO1 axis. AKT activation enhances endothelial maturation, thereby attenuating neointimal hyperplasia in AVFs. Novelty and SignificanceO_ST_ABSWhat Is Known?C_ST_ABSO_LIIn arteriovenous fistulas (AVFs), abnormal shear stress induces endothelial cell injury, and the resulting neointimal hyperplasia is a major cause of anastomotic stenosis. C_LIO_LICD34 cells actively participate in vascular endothelial repair. C_LIO_LIPIEZO1 is a mechanoreceptor mediating endothelial sensing of hemodynamic shear stress, contributing to the maintenance of atheroprotective endothelial phenotype under laminar shear stress, whereas its activation induces pro-inflammatory effects under disturbed shear stress. C_LI What New Information Does This Article Contribute?O_LICD34 cells participate in repairing endothelial injury induced by abnormal shear stress in AVFs. PIEZO1 knockout in CD34+ cells improve endothelial repair and attenuates neointimal hyperplasia in AVF. C_LIO_LILaminar shear stress induces CD34 downregulation and upregulates VE-cadherin and claudin-5 expression in CD34-high human umbilical vein endothelial cells, whereas oscillatory shear stress upregulates CD34 expression and suppresses VE-cadherin and claudin-5 expression. C_LIO_LIMechano-stimuli lead to PIEZO1-VEGFR2 complex formation regulating CD34 cell-mediated endothelial repair through the downstream AKT-FoxO1 axis. C_LI Abnormal hemodynamic shear stress-induced endothelial injury initiates neointimal hyperplasia in AVFs. The present study identifies PIEZO1 as a key mechanosensor that regulates CD34+ cell-derived endothelial repair in response to distinct blood flow patterns. PIEZO1 promotes CD34+ cell differentiation into mature ECs for endothelial repair under laminar shear stress, whereas it disrupts the differentiation of CD34+ cells into mature endothelium under oscillatory shear stress. Mechanistically, a novel shear stress-sensing complex comprising PIEZO1 and VEGFR2 was identified in regulating flow-induced differentiation of CD34+ cells into mature ECs via the AKT-FoxO1 signaling axis, thereby controlling the expression of endothelial maturation markers VE-Cadherin and Claudin-5. These findings define a novel PIEZO1-VEGFR2 mechanotransduction axis in CD34+ cell-mediated endothelial repair and support AKT pathway activation as a potential therapeutic strategy against neointimal hyperplasia in AVFs.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Zhu, P., Wu, Y., Lu, L., Huang, T., Chen, R., Hu, Y., Jiang, L., Wang, X., Xu, Q., Luo, J.-Y., Hu, X.. 2026-06-10. Mechano-Initiated PIEZO1-VEGFR2 Interaction Governs CD34+ Cell Differentiation and Repair in Arteriovenous Fistula. https://doi.org/10.64898/2026.06.08.731007

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

KEEP EXPLORING

Related preprints

Differential requirement for the Ire1 luminal domain in Candida albicans drug susceptibility and pathogenicity

The opportunistic human pathogen Candida albicans depends on the unfolded protein response (UPR) for cell wall integrity, antifungal tolerance, filamentous growth, and virulence. The UPR is driven by the conserved transmembrane sensor Ire1, which is activated either by misfolded proteins through its luminal domain or by lipid bilayer stress (LBS) through its transmembrane domain. In budding yeast, these two activation modes deploy divergent transcriptional programs. Whether the requirement for these two input domains is separable in C. albicans, where the cell membrane and cell wall are themselves the targets of major antifungal drug classes, remains unknown. Here, we engineered a C. albicans strain expressing Ire1 lacking an intact luminal domain (ire1{Delta}LD), which no longer detects proteotoxic stress. The ire1{Delta}LD strain grew in the presence of the azole antifungals fluconazole and miconazole but was highly sensitive to heat shock, cell wall stress, and the echinocandin caspofungin. It was also unable to sustain filamentous growth and showed reduced virulence in a Caenorhabditis elegans infection model. RNA sequencing revealed only modest changes to the steady-state transcriptome of ire1{Delta}LD cells. Together, these findings define a differential requirement for the input domains of C. albicans Ire1, uncoupling growth under azole-induced membrane stress from the cell wall, thermal, and virulence-associated outputs that depend on proteotoxic sensing, a distinction that could inform antifungal strategies targeting the UPR.

cell biology↗

Nucleosome Core Allostery Governs Chromatin Recognition and Cell Fate

Nucleosomes regulate chromatin folding, accessibility, and factor recruitment. Current models primarily attribute these functions to histone tail modifications, while the core is largely viewed as a structural scaffold. Yet subtle changes within the nucleosome core can produce profound functional consequences, and the mechanisms underlying these effects remain unclear. Here, we describe nucleosome core allostery as a fundamental principle of chromatin regulation that amplifies the impact of minimal nucleosome variations. Leveraging natural differences between H2A.Z variants, we show that the nucleosome core encodes distinct conformational dynamics that propagate allosterically, thereby controlling nucleosome accessibility and recognition by chromatin factors. As a result, a single buried amino acid substitution alone is sufficient to reprogram nucleosome dynamics and bias cell identity. Our findings establish the nucleosome core as an allosteric regulatory module and provide a generalizable framework for how subtle variation within nucleosomes is amplified into diverse biological outcomes in development and disease.

cell biology↗

A Novel Open-Source CellProfiler Pipeline for Automated, User-Friendly Hierarchical and K-Means Clustering of Microglial Morphology

Microglia represent a highly dynamic and heterogeneous cell type that is critically implicated in states of health and pathology. Microglial morphological subgroups have been identified that correspond to functional characteristics determining health-related outcomes. The identification of states based on morphological characteristics will therefore provide invaluable insights into the microglia-specific functional mechanisms driving treatment effects. The application of clustering analyses enables the detection of groupings within samples reflecting differences in morphological features. Here we propose the application of three custom-created modules to be used within the open-source software CellProfiler. These modules enable the automated detection of clusters present within the sample of microglia, as well as the assessment of the abundance of these clusters across conditions. The application of the analysis is conducted in a highly user-friendly manner, with a user interface integrated into the pipeline, enabling the performance of the analysis with only minimal user input. The workflow thereby includes the conduction of an outlier assessment, followed by hierarchical clustering and k-means clustering and the generation of interactive graphs to determine the number of microglia states present in the sample. Bar plots displaying the abundance of the microglia states across conditions included in the sample will be created. This approach will facilitate faster and more comparable detection of microglial morphological clusters across studies.

cell biology↗