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Self-organization of mouse embryonic stem cells into reproducible pre-gastrulation embryo models via CRISPRa programming.

Embryonic stem cells (ESCs) can self-organize into structures with spatial and molecular similarities to natural embryos. During development, embryonic and extraembryonic cells differentiate through activation of endogenous regulatory elements while co-developing via cell-cell interactions. However, engineering regulatory elements to self-organize ESCs into embryo models remains underexplored. Here, we demonstrate that CRISPR activation (CRISPRa) of two regulatory elements near Gata6 and Cdx2 generates embryonic patterns resembling pre-gastrulation mouse embryos. Live single-cell imaging revealed that self-patterning occurs through orchestrated collective movement driven by cell-intrinsic fate induction. In 3D, CRISPRa-programmed embryo models (CPEMs) exhibit morphological and transcriptomic similarity to pre-gastrulation mouse embryos. CPEMs allow versatile perturbations, including dual Cdx2-Elf5 activation to enhance trophoblast differentiation and lineage-specific activation of laminin and matrix metalloproteinases, uncovering their roles in basement membrane remodeling and embryo model morphology. Our findings demonstrate that minimal intrinsic epigenome editing can self-organize ESCs into programmable pre-gastrulation embryo models with robust lineage-specific perturbation capabilities.

Animals

From genes to geometry: Controlling embryo models by programming genomic activation.

Embryo-like models derived from stem cells have emerged as powerful tools to study early development. In this issue, Lodewijk et al.1 demonstrate that activating just two enhancers via CRISPR activation (CRISPRa) in mouse embryonic stem cells (ESCs) can drive self-organization into structured embryo-like models, offering a genome-driven approach in stem cell and developmental biology.

Animals

Effects of hyperglycemia on mitochondrial morphology in the region of the anterior neuropore in the explanted rat embryo model: evidence for a modified Reid hypothesis as a mechanism for diabetic teratogenesis.

Congenital malformations are the leading cause of the increased perinatal mortality in the infants of insulin-dependent diabetic mothers. The mechanisms(s) of diabetic teratologic development has yet to be defined. Hyperglycemia is known to depress aerobic metabolism in many organisms and cell lines. Reid hypothesized that exposure to hyperglycemia could result in decreased mitochondrial biogenesis in embryonic cells. Should these cells suddenly be changed to an environment of lower glucose concentration, decreased energy capabilities would exist until sufficient numbers of mitochondria could be regenerated. Such cells may not be capable of meeting temporal-spatial requirements, thereby resulting in structural abnormalities. In our study the explanted rat embryo model demonstrated that in the head-fold region hyperglycemia produced morphologic alterations of mitochondria but no difference in the number of mitochondria per cell. Specifically, embryos cultured in euglycemia demonstrated orthodox mitochondrial configuration, whereas those cultured in hyperglycemia had mitochondria in a condensed configuration. These findings were reversible. A modification of Reid's original hypothesis may provide an explanation for the mechanism of diabetic teratologic development.

Abnormalities, Multiple

Protection against group B meningococcal disease. I. Comparison of group-specific and type-specific protection in the chick embryo model.

Protection against group B meningococcal infection was examined using the chick embryo. 12-day-old embryos were challenged intravenously with various meningococcal strains. The chick embryo has an active reticuloendothelial system but lacks functional complement. In this model we found that protection against group B infection was primarily group specific. The group B polysaccharide antibody is an effective opsonin, but is a very poor bactericidal antibody. In contrast, the serotype antibody was bactericidal but only slightly protective in the chick embryo where protection is primarily phagocytic in nature. The group-specific and type-specific antibodies are strongly synergistic. Minute amounts of group B polysaccharide antibody caused a very significant increase in the protective effects of the serotype antibody.

Animals

Chicken embryo model for type III group B beta-hemolytic streptococcal septicemia.

A lethal septicemia was induced in 11- and 12-day-old chicken embryos with intravenous inoculation of relatively small numbers of a clinical isolate (GBBHS-III-Bell) or a reference strain (GBBHS-III-D136-C) of group B beta-hemolytic streptococci (GBBHS). GBBHS-III-Bell was more virulent than GBBHS-III-D136-C, and 11-day-old chicken embryos were more susceptible than 12-day-old chicken embryos. Type-specific rabbit antisera protected the embryos from bacterial challenge, and this protective effect was absorbed with homologous but not heterologous GBBHS strains. A heterologous antiserum and normal rabbit sera provided some protection, which could be absorbed with either homologous or heterologous GBBHS strains. The chicken embryo is a suitable animal model for the study of infection and immunity with GBBHS type III.

Animals

The nutrition of the fetus with intestinal atresia: studies in the chick embryo model.

This article examines the effects of experimental prenatal intestinal obstruction on the growth and blood composition of chick embryos. Intestinal atresia (IA) was produced by bipolar bowel electrocoagulation in fertile eggs on the 14th day of incubation. The chicks killed on the 19th day were measured, weighed, and blood-sampled. Twenty-three control, 10 sham-operated, and 11 IA chicks were studied. Animals with IA were severely undernourished by weight (43.4 +/- 4.7 v 70.3 +/- 7.6% of egg weight, P < .001) and length (15.3 +/- 1.1 v 18.1 +/- 0.9 mm tibial length, P < .001) in comparison with sham-operated ones. Their hematocrit was slightly lower, and total protein increased. Prealbumin was absent in their sera and albumin, alpha and beta globulins were significantly decreased, whereas gamma-globulin was greatly increased. Sodium, potassium chloride, urea, and glucose remained within normal limits. The lack of placenta in the avian embryo precludes any supply of nutrients by this route and the ingestion of amniotic fluid, which is protein-rich after the 13th day of incubation, when the opening of the seroamniotic connection allows albumen to be mixed with it, becomes the main source of nutrients until hatching. Obstruction of the main incoming avenue by IA induces severe malnutrition in this model which relies on this route to a greater extent than the human fetus. In spite of the obvious biological differences between the avian embryo and the human fetus, the present evidence supports the hypothesis that prenatal interruption of the amniotic fluid transit contributes to fetal undergrowth in IA.

Amniotic Fluid

Inducibility of neoplastic transformation by Fujinami sarcoma virus in an in vitro chick embryo model for osteosarcoma: (i) effect of differentiation and (ii) investigation for in vivo growth potential in athymic mice.

We have described previously a novel in vitro model for the study of osteosarcoma. In this system, chick periosteal explants (CEP) transformed by the P140gag-fps oncoprotein of Fujinami avian sarcoma virus (FSV) exhibit biochemical and histological manifestations characteristic of osteosarcoma. In the present study, a hypothesis suggesting that more differentiated bone cells may resist FSV-induced oncogene changes was tested. In one set of experiments, CEP cultures were pretreated with a high dose of dexamethasone (10(-7) M), a bone cell differentiating agent, prior to FSV infection. In another experiment, CEP explants were allowed to grow and thus differentiate for various lengths of time in culture prior to infection with FSV. Another goal of this study was to show that FSV-transformed cultures were tumorigenic in nude mice. In experiments focusing on differentiation and FSV-transformation, it was found that groups that had been infected at stages where osteogenic differentiation had been induced or allowed to occur, exhibited significantly decreased values for biochemical parameters associated with osteosarcomatous transformation. Specifically, these parameters were alkaline and acid phosphatase activity, protein content, [3H]thymidine incorporation, mineral profile, and acidification of culture media. Furthermore, osteosarcomatous histopathological features were more prominent in cultures subjected to FSV infection prior to differentiation. These findings indicate that differentiated osteogenic cells are less susceptible to oncogene-mediated transformation than their progenitors. The tumorigenic potential of some CEP cultures transformed in vitro with FSV was examined by transplantation into athymic mice. FSV-transformed CEP cultures xenografted subcutaneously exhibited tumor formation, whereas xenografts of uninfected cultures did not grow or were completely resorbed. This demonstrates that FSV-transformed cultures are tumorigenic, and confirms that this model system is useful for the investigation of the mechanisms governing the development of osteosarcoma in vitro.

Animals

Modeling embryo development and emergence of Boophilus annulatus (Acari: Ixodidae).

Guanine accumulation in Boophilus annulatus (Say) at 15 temperatures (3-42 degrees C) showed embryonic development from 9 to 42 degrees C. Guanine concentrations steadily increased over the period of development. Eggs at 17-36 degrees C achieved hatch (requiring 54-12 d, respectively), and eclosion dates were estimated for larvae developing at 12 degrees C (day 172) and 14 degrees C (day 154) using linear regression. Development rates from 12 to 36 degrees C are described by a six-parameter biophysical model for poikilothermic organisms which defines three temperature development phases characterized by low-temperature (TL, 284.7 degrees K or 11.7 degrees C) and high-temperature (TH, 307.7 degrees K or 34.7 degrees C) enzyme inactivation and a linear region (RHO25, 0.049 day-1) of no temperature inhibition. A model of emergence distribution was derived by fitting a Weibull function to a single distribution representative of the normalized emergence distribution at each temperature.

Animals

A single small molecule-based human embryo model reveals V-ATPase requirement&#xa0;in mammalian blastocyst cavitation.

Human na&#xef;ve pluripotent stem cells (nPSCs) can be induced by various combinations of signaling factors to generate blastocyst-like structures, termed blastoids. Despite rapid progress in human blastoid models, their potential to uncover fundamental mechanisms of early human development remains limited, leaving key morphogenetic processes poorly understood. Here, we describe a simple and robust system in which dimethyl sulfoxide (DMSO) alone induces blastoid formation from human nPSCs. This model recapitulates key pre- and post-implantation features and exhibits enhanced polar trophectoderm (TE) organization, more efficient attachment within an implantation-relevant window, improved epiblast lumenogenesis associated with amniotic cavity formation, and more robust, sustained expansion of embryonic lineages following attachment. Using this system, we reveal a previously unrecognized mechanism underlying TE cavitation and identify lysosome-associated genes&#xa0;-&#xa0;particularly subunits of the proton pump V-ATPase&#xa0;-&#xa0;as essential regulators of blastoid cavitation. DMSO treatment upregulates key V-ATPase subunits (ATP6V0A4 and ATP6V1B1), which are also enriched in the TE of human embryos. Genetic or pharmacological inhibition of V-ATPase activity disrupts lysosomal acidification, blocks intracellular vacuole formation, and impairs blastoid cavitation, whereas overexpression of V-ATPase subunits rescues this phenotype. Furthermore, genetic and pharmacological perturbations of V-ATPase function significantly compromise cavitation in both mouse and human blastocysts. Finally, DMSO treatment induces membrane biomechanical changes characteristic of early embryonic development, suggesting a mode of action distinct from conventional small-molecule, signaling pathway-based induction strategies. This simple DMSO-based blastoid model recapitulates key aspects of human blastocyst development and reveals a conserved requirement for V-ATPase-mediated lysosomal acidification during early mammalian embryogenesis.

Humans

Dual-patterned pluripotent stem cells self-organize into a human embryo model with extended anterior-posterior patterning.

Human gastruloids are a powerful class of stem cell-derived models that recapitulate key features of early embryonic development, including symmetry breaking and the emergence of three germ layers1-3. However, they lack anterior embryonic structures and coordinated axial organization4-6. To address this limitation, we pre-patterned human pluripotent stem cells (hPSCs) by exposing them to either anterior (FGF2) or posterior (CHIR99021 [CHIR] & retinoic acid [RA]) cues. Upon mixing, these dual-patterned hPSCs interacted and self-organized into elongated structures with both anterior and posterior features-which we term anterior-posterior (AP) human gastruloids. Anteriorly pre-treated cells robustly intercalated into posteriorly pre-treated cells, collectively giving rise to a continuum of neural tissues-including a brain-like domain, a neural tube-like structure, and neuro-mesodermal progenitors (NMPs)-with segmented somites arrayed bilaterally. Single cell RNA sequencing (scRNA-seq) revealed that human AP gastruloids contain cell types resembling the midbrain-hindbrain boundary (MHB), regionalized hindbrain structures (i .e. rhombomeres 1-8), regionalized neural crest (i.e. cranial, vagal, trunk)7,8 and head mesoderm. Transcriptomic comparisons to primate embryos revealed that human AP gastruloids most closely resemble Carnegie stage 11 (CS11) embryos. While they lack a notochord and full dorsal-ventral polarity, human AP gastruloids recapitulate key spatial and temporal features of early neurulation and somitogenesis. Perturbation of folic acid metabolism or rho-associated kinase (ROCK) signaling induced spinal cord defects, phenocopying aspects of spina bifida and other neural tube defects, highlighting this model's potential for studying congenital disorders9. AP gastruloids may serve as a simple, robust, scalable platform for modeling coordinated human AP body axis development. More broadly, our results suggest that controlled interactions between differentially prepatterned progenitors can initiate self-organization of complex body axis features. The "pattern-and-mix" strategy may serve as a generalizable framework for assembling spatially organized stem cell models of mammalian development.

Journal Article

Phenytoin embryotoxicity: role of enzymatic bioactivation in a murine embryo culture model.

A murine embryo culture model was developed to study the potential contribution of enzymatic bioactivation to the teratogenicity of phenytoin. To assess the relative embryonic and maternal contributions to bioactivation, embryos were cultured respectively alone or in the presence of an exogenous source of cytochromes P-450 (P-450), which are thought to bioactivate phenytoin to a teratogenic reactive intermediate. Embryological development from gestational day 9 to day 10 was assessed, and bioactivation was quantified by the irreversible binding of radiolabeled phenytoin to embryonic protein. Embryos cultured with phenytoin and an exogenous P-450 bioactivating system showed a significant decrease in the incidence of turning and closure of the anterior neuropore, yolk sac diameter, and protein content as well as growth retardation. In the absence of an exogenous P-450 system, phenytoin did not decrease the incidence of turning or anterior neuropore closure but did cause growth retardation and a lesser but significant reduction in yolk sac diameter and embryonic protein content. An exogenous P-450 system enhanced the bioactivation of phenytoin, although significant activity also was detectable in embryos cultured without an exogenous bioactivating system. These results suggest that the embryo itself can enzymatically bioactivate embryotoxically significant amounts of phenytoin, and that bioactivation and embryotoxicity can be further enhanced, qualitatively and quantitatively, by an exogenous P-450 system, implicating a possible maternal contribution to phenytoin teratogenicity.

Animals

Genetics of post-hatching survival potential of Australorp chicks infected as embryos by subgroup A Rous sarcoma virus: further support to 4-allele genetic model.

Embryos (II day-old) of Australorp breed were inoculated via chorioallantoic membrane (CAM) with subgroup A Rous sarcoma virus, and hatched subsequently. The post-hatch survival period in chicks was recorded upto the last chick that died by virus-induced liver tumour, which had a range from 3 to 50 days with an average of 13 +/- 8.7 days. The survival potential of progency tested Australorp parents selected on the basis of negative CAM-infection and those selected on uninoculated embryos, differed significantly (P less than 0.01) while maintaining an inverse relationship between liver tumour mortality and degrees of infection of CAMs. The homozygous susceptibles lacking either ar1 or ar2 or both alleles of the tva (tumour virus a) locus died within 7 days of post-hatching, supporting thereby 4-allele genetic model of tva locus recently proposed for the control of LT- and CAM-infection phenotypes.

Alleles

Dispersal of rat uterine mast cells and their functional response to an embryo-derived histamine releasing factor: a possible model for embryo implantation.

Rat uterine tissue was dissociated by enzymatic digestion with collagenase and viable mast cells were obtained. Their viability was assessed by the ability to exclude trypan blue dye and to respond functionally to different stimuli. Challenge with anti-IgE gave a calcium-dependent histamine release of 49%, whilst the undigested uterine fragments gave 23%. Moreover, they were capable of releasing histamine on challenge with the compound 48/80, suggesting a similarity with connective tissue mast cells. This similarity was further supported by their insensitivity to aldehyde blocking of dye binding. The final dispersed cell preparation contained 3 X 10(5) mast cells/g of uterine tissue, representing about 2% of total nucleated cells. The total histamine content of the undigested uterus was 2.5 micrograms/g of tissue, whilst after digestion the histamine determined was 1.2 pg per mast cell with a yield of 14%. The total histamine content of the uterus changed throughout the reproductive cycle, increasing before ovulation, reaching a maximum during ovulation and then decreasing after embryo implantation. This suggests that the implanting embryo, interacting with the uterus, may be capable of inducing the release of histamine. The embryo-derived histamine releasing factor (EHRF) that we have described previously is capable of inducing 22% histamine-release on uterine mast cells, thus supporting this hypothesis.

Animals

Spina bifida: a chick embryo experimental model.

Neural Tube Defects (NTD) can be induced in the chick embryo with relative ease in order to provide an experimental tool for investigation of such disabling malformations. Domestic hen (Gallus gallus) eggs were incubated at 37.5 degrees C and 80% humidity for 24 h. At that moment, 5 ml of albumen were aspirated by sterile puncture of the shell, and the incubation was resumed. The embryos were recovered and studied at the 8th, 10th and 14th days. Almost half (45%) of the 602 treated embryos survived and 73 of them (12%) had various malformations. Thirty-six (6%) suffered NTD of which 30 were open myelomeningocele, 2 meningocele and 4 encephalocele. The anatomy of the defects was astonishingly similar to that of the human malformation. Whether these experimental NTD are induced by mechanical or nutritional modifications of the internal environment of the egg is unknown, but the similarity of the lesion with those in humans make them suitable for further investigation of these issues. We believe that this relatively simple and inexpensive model is a suitable tool for research on spina bifida.

Animals

Unilateral renal agenesis in chick embryos: a model for chronic renal insufficiency.

Although renal agenesis and dysgenesis are relatively common and significant birth defects, no animal model to date has been utilized to adequately study these developmental pathologies. Blockage of the migration of the mesonephric duct in Day 2 chick embryos results in unilateral renal agenesis (URA) on the operated side, thus providing a model of chronic renal insufficiency. Embryos with URA respond with an increase in the rate of growth of the remaining meso- and metanephric kidney. The allometric scaling of single (left) kidney weight to total body weight in control embryos is KM = 3.48M0.98 compared to KM = 3.02M1.16 in embryos with URA. In addition, embryos with URA exhibit a progressively polycystic mesonephros with distinct glomerulonephritis and expansion of the renal tubules. These renal changes are insufficient for normal urine (allantoic fluid) production and oliguria persists throughout incubation. While mortality is unaffected by URA in embryos up to Day 14 of incubation, there is a steady increase in mortality after Day 14; no chick embryo with URA lives beyond Day 18 of the 21-day incubation period.

Animals

Mammalian embryo: a model for congenital prolonged QT syndrome.

The QT interval has been studied in ECG in mouse and rat embryos during two stages of development. The QT interval during the early stage of development is prolonged and an ST segment clearly exists. Both disappear during fetal development and do not exist in adult animals in which the T wave immediately follows the QRS. Mammalian embryos have therefore been proposed as a model for the study of QT prolongation. It is suggested that the origin of the QT prolongation in the young embryos is caused by the prolonged duration of the action potentials of the primordial cardiac tissue. During embryonic development this tissue becomes organized as a conductive system surrounded by "neomyocardial" tissue with a shorter duration of action potential, which causes the shorter QT interval at this stage. Our working hypothesis is that the pathogenesis of the prolonged QT syndrome in children could be interpreted as an incomplete or delayed differentiation between the primordial or primordial-like myocardium retaining prolonged action potential duration, and "neomyocardium" with short duration.

Animals

Production of erythropoietic colony-forming units and erythrocytes during chick embryo development: an attempt at modelization of chick embryo erythropoiesis.

The enumeration of erythropoietic colony-forming cells in vitro has allowed us to complete previous data on changes in the various erythroid cell populations during chick embryo-genesis. Erythrocytic colony-forming units in culture (CFU-cE) which are sensitive to avian erythropoietin appear in the blastoderm as soon as the 24th hour of development. They represent most likely precursors of the megalocytic erythropoiesis, and do not seem to derive from stem cells common with normocytic erythropoiesis. Data concerning vitelline normocytic erythropoiesis were analysed in a kinetic model based on stochastic change of the stem cells. From this model it appears that 17-20 cell divisions are required for differentiation of erythrocytes from stem cells.

Animals