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McCracken, K. W.

Publications and source records attributed to McCracken, K. W..

4 recordsLinked to original sources

Bridging the gap of late-gestation nephrogenesis using a non-human primate model

BackgroundHuman nephrogenesis is complete at 34-36 weeks gestation, with 60% of nephrons forming during the third trimester through lateral branch nephrogenesis (LBN). Currently, no mechanism exists for LBN as there are no late gestation human kidney transcriptional datasets. We hypothesized that a differentiated but dividing population of nephron progenitor cells (NPCs) would contribute to the amplification of nephrons in late gestation. We used the rhesus macaque, an established model of LBN, to help identify potential mechanisms. MethodsSingle-cell RNA-sequencing (scRNA-Seq) was performed on cortically-enriched fetal rhesus kidneys (n=9) from late second trimester and third trimester during LBN. This data was integrated with publicly available human scRNA-seq datasets from 8-18 weeks gestation kidneys (n=8) using state-of-the-art bioinformatics pipelines. Differentially expressed genes and ligand-receptor interactions were assessed and validated using RNAScopeTM on human and rhesus archival tissue. ResultsscRNA-Seq of 64,782 rhesus cells revealed 37 transcriptionally distinct cell populations, including 7,879 rhesus NPCs. Pseudotime analyses identified a late gestation-specific lineage branch of differentiated NPC in rhesus that was not observed in mid-gestation humans. Differential expression analyses identified increased SFRP1, FZD4, and TLE2 and decreased FZD7, SHISA2, SHISA3, and TLE4 within the late-gestation rhesus NPC compared to mid-gestation human NPC and increased SEMA3D within the rhesus ureteric bud (UB) tip, suggesting a compositional shift in WNT and SEMA signaling components within the naive NPC population during LBN. ConclusionThe rhesus macaque uniquely enables molecular studies of late-gestation primate nephrogenesis. Our study suggests the hypothesis that a transitional state of self-renewing NPCs supported by compositional shifts in key pathways may underlie the switch from branching phase nephrogenesis to lateral branch nephrogenesis and support ongoing nephron formation in late gestation. Translational statementNo transcriptional data exists for the late-gestation human kidney, during which 60% of the nephron endowment is formed through a primate-specific process called lateral branch nephrogenesis (LBN). In this study, we used single-cell RNA sequencing the late gestation rhesus macaque as a model for this developmental stage. Our findings suggest a potential mechanism for LBN, in which a transitional state of self-renewing nephron progenitor cells (NPCs) is supported by compositional shifts in key pathways, allowing for continued nephron formation in late gestation.

developmental biology↗

Human Stem Cell-derived Kidney Collecting Duct Model via Epithelial Microphysiological Analysis Platform: Epi-MAP

The kidney epitheliums pivotal role in molecular filtration, metabolism, and excretion highlights the crucial importance of understanding kidney physiology in drug development. However, our knowledge is largely derived from non-human or non-physiological models, potentially limiting its applicability to humans. To address this significant gap, we have pioneered a human kidney epithelial microphysiological analysis platform (Epi-MAP) designed to establish, mature, and monitor renal functions of the human collecting epithelium within a physiologically relevant microenvironment. We first demonstrate the highly mature collecting duct physiology derived from human stem cells, enabled by the Epi-MAPs microenvironments that recapitulate in vivo asymmetries in fluidic and biochemical conditions. The integrated biosensors of the Epi-MAP provide long-term, time-resolved epithelial maturation trajectories, revealing advanced integrity and functional maturity with transepithelial metrics. Furthermore, Epi-MAPs electrophysiological analytics for measuring water flux, in conjunction with transepithelial potential and resistance, allow for real-time decoding of intricate epithelial responses to substance stimulation, showcasing its effectiveness as a robust pharmacological test model. This human cell-derived, physiologically advanced model on a chip stands as a robust in vitro tool, offering comprehensive insights into human kidney biology and significantly enhancing drug discovery process based on human physiology.

bioengineering↗

Integrating collecting systems in kidney organoids through fusion of distal nephron to ureteric bud.

The kidney maintains homeostasis through an array of parallel nephrons, which all originate in development as isolated epithelial structures that later fuse through their distal poles to a system of collecting ducts (CD). This connection is required to generate functional nephrons by providing a pathway for excretion of metabolic waste and byproducts. Currently, methods for differentiating human pluripotent stem cells into kidney organoids generate nephrons that lack CDs and instead terminate as blind-ended tubules. Here we describe a developmentally inspired system that addresses this deficiency through assembly of induced nephrogenic mesenchyme with ureteric bud (UB) tissues, the embryonic building blocks of the kidneys collecting system. The UB progenitors grow and develop into a network of CDs within the organoid, and importantly, they functionally integrate with the nephrons through recapitulating fusion between the distal tubule and CD to create a continuous epithelial lumen. We further showed that proximal-distal nephron specification, fusion frequency, and maturation of the CD can be augmented through temporal manipulation of developmental signaling pathways. This work provides a platform for interrogating the principles and mechanisms underlying nephron-UB fusion and a framework for engineering unobstructed nephrons with patterned collecting systems, an important step toward the de novo generation of functional kidney tissue.

developmental biology↗

Deciphering Endothelial and Mesenchymal Organ Specification in Vascularized Lung and Intestinal Organoids

To investigate the co-development of vasculature, mesenchyme, and epithelium crucial for organogenesis and the acquisition of organ-specific characteristics, we constructed a human pluripotent stem cell-derived organoid system comprising lung or intestinal epithelium surrounded by organotypic mesenchyme and vasculature. We demonstrated the pivotal role of co-differentiating mesoderm and endoderm via precise BMP regulation in generating multilineage organoids and gut tube patterning. Single-cell RNA-seq analysis revealed organ specificity in endothelium and mesenchyme, and uncovered key ligands driving endothelial specification in the lung (e.g., WNT2B and Semaphorins) or intestine (e.g., GDF15). Upon transplantation under the kidney capsule in mice, these organoids further matured and developed perfusable human-specific sub-epithelial capillaries. Additionally, our model recapitulated the abnormal endothelial-epithelial crosstalk in patients with FOXF1 deletion or mutations. Multilineage organoids provide a unique platform to study developmental cues guiding endothelial and mesenchymal cell fate determination, and investigate intricate cell-cell communications in human organogenesis and disease. HighlightsO_LIBMP signaling fine-tunes the co-differentiation of mesoderm and endoderm. C_LIO_LIThe cellular composition in multilineage organoids resembles that of human fetal organs. C_LIO_LIMesenchyme and endothelium co-developed within the organoids adopt organ-specific characteristics. C_LIO_LIMultilineage organoids recapitulate abnormal endothelial-epithelial crosstalk in FOXF1-associated disorders. C_LI

developmental biology↗