Multispecies investigation of early pregnancy loss mechanisms using bioengineered stem cell models

NIH Pandemic-Era Grants

Pandemic Era Grants

2024

Document text

Principal Investigator: Ashley  Abel
Organization: YALE UNIVERSITY
Fiscal Year: 2024
Award: $48,974
Funding agency: Eunice Kennedy Shriver National Institute of Child Health and Human Development

Abstract: Nearly 60% of human conceptions are miscarried surrounding the window of implantation. During this
stage within a week after fertilization, the pluripotent epiblast tissue of the embryo transforms into a polarized
epithelium with a central lumen. The causes of significant pregnancy loss at this period are still not well
understood owing to the substantial challenges associated with human embryo research. Critical gaps in
knowledge include mechanistic understanding of the cellular morphogens driving epiblast tissue development at
the implantation stages. Further, animal models such as rodents, while highly valuable, have been found to
demonstrate distinct processes from humans at the implantation stages. Thus, an in-depth understanding of the
levels of conservation or divergence between key mammalian species at this stage remains incomplete, making
it difficult to extrapolate findings around the implantation period from model species to human health. The central
goal of this proposal is to enhance our comprehension of the human-specific mechanisms that govern embryonic
development by examining the regulatory mechanisms through which WNT/β-catenin signaling guides epiblast
tissue remodeling during implantation across different species. Based on my preliminary results, the overall
hypothesis that WNT/β-catenin signaling will show species-specific differences in its role in epiblast tissue
remodeling. I hypothesize that these differences are mechanistically tied to regulation of Ezrin-Radixin-Moesin
(ERM) proteins which control cell surface tension and actin architecture. Aim 1 will identify the biomechanical
effects of WNT/β-catenin signaling on human epiblast development at implantation using novel human 3D stem
cell-based models. Using these highly reproducible models, I will confirm that WNT/β-catenin acts through pERM
via Western Blot and loss-of-function experiments. I will then utilize live-cell imaging to analyze changes in actin
architecture over development, and then analyze changes in cell surface tension through use a fluorescent
membrane tension probe that will be quantified using fluorescence lifetime imaging microscopy (FLIM) to validate
previous preliminary data using a secondary 5-dimensional state-of-the-art imaging software-based readout of
cell surface tension. Aim 2 will define species-specificity of the mechanism underlying WNT/β-catenin epiblast
remodeling control across humans, non-human primates and mice, through performing similar perturbation
techniques and characterizations using Western Blot and IF, live-cell imaging with actin reporters, 5D imaging
analyses, and FLIM. This proposal directly addresses the NICHDD’s research theme 1: “Understanding the
Molecular, Cellular, and Structural Basis of Development” through use of novel models to understand correct
processes of early human embryonic development, as well as how abnormal processes lead to undesirable
outcomes. A detailed understanding of the morphogen-driven mechanisms at this monumental developmental
stage, particularly in the clinically relevant context of human-specific development, can shed light on the
pathological alterations that lead to miscarriage at implantation.

Terms: <3-D><3-Dimensional><3D><Actins><Address><Affect><Animal Model><Animal Models and Related Studies><Animals><Apical><Architecture><Assay><Automobile Driving><Beta Cadherin-Associated Protein><Beta-1 Catenin><Bioassay><Biological Assay><Biomechanics><Biomedical Engineering><Body Tissues><CUL-2><Cancers><Cell Aggregation><Cell Body><Cell Communication><Cell Communication and Signaling><Cell Interaction><Cell Signaling><Cell surface><Cell-to-Cell Interaction><Cells><Comprehension><Conceptions><Coupled><Cues><Data><Development><Dimensions><Disease><Disorder><Drops><Embryo><Embryo Development><Embryo Experimentation><Embryo Research><Embryogenesis><Embryonic><Embryonic Development><Embryonic Tissue><Engineering / Architecture><Epiblast><Epithelium><FLIM imaging><Fertilization><Fetus><Fibrosis><Future><Goals><Health><Heterogeneity><Human><Human Development><Image><Image Analyses><Image Analysis><Immunoblotting><Immunofluorescence><Immunofluorescence Immunologic><In Vitro><Intracellular Communication and Signaling><Investigation><Knowledge><Lead><Ligands><Link><Malignant Neoplasms><Malignant Tumor><Mammalia><Mammals><Mechanics><Membrane><Mice><Mice Mammals><Miscarriage><Modeling><Modern Man><Molecular><Morphogenesis><Morphology><Murine><Mus><Nuclear><Osmosis><Outcome><PRO2286><Pathologic><Pb element><Persons><Phosphorylation><Pluripotent Stem Cells><Pregnancy loss><Process><Protein Phosphorylation><Proteins><Proxy><Receptor Protein><Regulation><Reporter><Reproducibility><Research><Rodent><Rodentia><Rodents Mammals><Role><Shapes><Signal Transduction><Signal Transduction Systems><Signaling><Species Specificity><Spontaneous abortion><Surface Tension><Suspension substance><Suspensions><Techniques><Testing><Time><Tissues><Translating><Western Blotting><Western Immunoblotting><Work><animal data><beta catenin><bio-engineered><bio-engineers><bioengineering><biological engineering><biological signal transduction><biomechanical><clinical relevance><clinically relevant><developmental><differentiation factors><driving><early pregnancy><early pregnancy loss><embryo tissue><experiment><experimental research><experimental study><experiments><ezrin><fertilizations><fluorescence life-time imaging><fluorescence life-time imaging microscopy><fluorescence lifetime imaging><fluorescence lifetime imaging microscopy><gene network><health application><heavy metal Pb><heavy metal lead><high resolution imaging><human embryogenesis><human embryonic development><image evaluation><image interpretation><imaging><imaging software><implantation><in vivo><insight><interest><knock-down><knockdown><live cell image><live cell imaging><live cellular image><live cellular imaging><loss of function><malignancy><mechanic><mechanical><mechanical cue><mechanical signal><membrane structure><membrane-organizing extension spike protein><model development><model developments><model of animal><moesin><morphogenetic process><morphogenic factors><morphogens><neoplasm/cancer><non-human primate><nonhuman primate><novel><phosphoprotein p81><pluripotent progenitor><pregnant><progenitor cell model><progenitor model><protein blotting><radixin><radixin protein><receptor><self organization><social role><spheroids><stem and progenitor cell model><stem cell based model><stem cell derived model><stem cell model><three dimensional><transcriptomics><β-catenin>