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Wu, J. H.

Publications and source records attributed to Wu, J. H..

2 recordsLinked to original sources

Differentiation of human intestinal organoids with endogenous vascular endothelial cells

Human pluripotent stem cell (hPSC)-derived intestinal organoids (HIOs) generated using directed differentiation lack some cellular populations found in the native organ, including vasculature. Using single cell RNA sequencing (scRNAseq), we have identified a transient population of endothelial cells (ECs) present early in HIO differentiation that are lost over time in culture. Here, we have developed a method to enhance co-differentiation and maintenance of ECs within HIOs (vHIOs). Given that ECs are known to possess organ specific gene expression, morphology and function, we used bulk RNAseq and scRNAseq to interrogate the developing human intestine, lung, and kidney in order to identify organ-enriched EC-gene signatures in these organ systems. By comparing organ-specific gene signatures along with markers validated by fluorescent in situ hybridization to HIO ECs, we find that HIO ECs grown in vitro share the highest similarity with native intestinal ECs relative to kidney and lung. Together, these data show that HIOs can co-differentiate a native EC population that are properly patterned with an intestine-specific EC transcriptional signature in vitro.

developmental biology

In vitro and in vivo development of the human intestine at single cell resolution

The human intestinal stem cell (ISC) niche supports ISC self-renewal and epithelial function, yet little is known about the development of the human ISC niche. We used single-cell mRNA sequencing (scRNA-seq) to interrogate the human intestine across 7-21 weeks of gestation. Using these data coupled with marker validation in situ, molecular identities and spatial locations were assigned to several cell populations that comprise the epithelial niche, and the cellular origins of many niche factors were determined. The major source of WNT and RSPONDIN ligands were ACTA2+ cells of the muscularis mucosa. EGF was predominantly expressed in the villus epithelium and the EGF-family member NEUREGULIN1 (NRG1) was expressed by subepithelial mesenchymal cells. Functional data from enteroid cultures showed that NRG1 improved cellular diversity, enhanced the stem cell gene signature, and increased enteroid forming efficiency, whereas EGF supported a secretory gene expression profile and stimulated rapid proliferation. This work highlights unappreciated complexities of intestinal EGF/ERBB signaling and identifies NRG1 as a stem cell niche factor.

developmental biology