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Enhancer remodeling by OTX2 directs specification and patterning of mammalian definitive endoderm.

The molecular mechanisms that drive essential patterning events in the mammalian embryo remain poorly understood. Analysis of transcription factor expression kinetics at peri-gastrulation stages of development suggest Otx2 as a candidate regulator of the definitive endoderm, the precursor of all gut-derived organs. Accordingly, timed OTX2 depletion in gastruloids or during directed differentiation results in abnormal definitive endoderm specification in mouse and human, characterized by altered expression of components and transcriptional targets of the canonical WNT signaling pathway, perturbed adhesion and migration programs, and de-repression of regulators of other lineages. These defects cumulate in impaired foregut formation. Mechanistically, OTX2 is required to activate a subset of endoderm-specific enhancers and to suppress select enhancers of other lineages, allowing timely exit from the primitive streak and correct specification of anterior endoderm. Our results establish OTX2 as an early gut regulator and suggest molecular principles underlying spatiotemporal cell identity conserved across germ layers and species.

Otx Transcription Factors

Investigation of the potency of cells from the postimplantation mouse embryo by blastocyst injection: a preliminary report.

Chimaeric conceptuses have been produced by injection of 5 1/2-and 6 1/2-day extra-embryonic ectoderm and 5 1/2-day embryonic and extra-embryonic endoderm into 3 1/2-day mouse blastocysts. Extra-embryonic ectoderm cells contributed only to the ectoplacental cone and/or trophoblast giant cell fractions, reflecting the probable trophectoderm origin of these cells. Proximal (visceral) endoderm cells overlying both the embryonic and extra-embryonic ectoderm contributed cells only to the endoderm of the visceral yolk sac, indicating that the definitive embryonic endoderm has not formed by 5 1/2 days p.c.

Animals

[Experimental and biochemical aspects of crystalline lens induction during embryogenesis].

The lens induction is a two-step process and involves morphogenetic influences from the archencepalic endoderm and optic vesicle. One can suggest that the lens induction is primed by specific proteins which are synthesized and secreted by the optic vesicle cells. The proteins-inductors appear to penetrate in the cells and, while interacting (directly or via the cytoplasm) with the nuclei, "programme" the ectodermal cells towards the lens differentiation. The contact interactions and extracellular matrix are of substantial, but not crucial value for the lens induction. The synthesis of specific proteins (crystallins) is to be considered as the most objective criterion of lens differentiation. In vertebrates, there is a lag-period between the moment of lens induction and synthesis of crystallins which is the most long-term in amphibians. The chick embryos constitute an exception and the synthesis of crystallin mRNA occurs in them a few hours after the lens induction. The developing retina loses its capacity to induce lens but stimulates the processes of fiber formation and synthesis of crystallins. A factor was found in the definitive lens epithelium which may be considered as a possible regulator of lens differentiation. On the basis of experiments with heterogenous and native lens inductors, a suggestion is put forward to the effect that the activity of inducing substances is determined by a definite determinant group of the molecule, rather than by the whole molecule.

Animals

[Morphologic characteristics of definitive and provisional structures of normal 17-day-old human embryos].

The structure of the presomite human embryo was investigated at embryogenesis. The embryonic shield is a three-layer gastrula 810 mkm long in the anteroposterior direction and 855 mkm wide (at the level of the primitive nodule). The primitive streak is 200 mkm long; the primitive nodule is well pronounced. All three germ layers are separately followed only in the cranial end of the embryo. The chordo-mesodermal process, 80 mkm long, is seen and is situated anterior to the primitive nodule, between ecto- and endoderm; in its zone, as well as in the area of the primary nodule and the primary streak, along the middle line, the germ layers are in close contact with each other. In the caudal end the mesoderm grows thin, and the external and internal layers come into contact forming the cloacal membrane. Extraembryonic formations are described: amniotic vesicle, yolk sac, amniotic peduncle, allantois and chorionic membrane wall. Together with the extraembryonic ecto- and endoderm, exocoelomic mesoderm participates in the formation of walls of the primitive germ vesicles. The yolk sac wall contains blood islets. Primary blood vessels are detected in the connective tissue matrix of the chorionic layer and in the amniotic peduncle. According to the anamnesis, morphological data and comparing to the data of the literature on presomitic human embryos, the age of the embryo "Krym" is determined as old as 17 days.

Adult

Cell number in relation to primary pattern formation in the embryo of Xenopus laevis. II. Sequential cell recruitment, and control of the cell cycle, during mesoderm formation.

Morphological evidence is presented that definitive mesoderm formation in Xenopus is best understood as extending to the end of the neurula phase of development. A process of recruitment of cells from the deep neurectoderm layers into mesodermal position and behaviour, strictly comparable with that already agreed to occur around the internal blastoporal 'lip' during gastrula stage 20 (earliest tail bud). Spatial patterns of incidence of mitosis are described for the fifteen hours of development between the late gastrula and stage 20--22. These are related to the onset of new cell behaviours and overt cyto-differentiations characterizing the dorsal axial pattern, which occur in cranio-caudal and then medio-lateral spatial sequence as development proceeds. A relatively abrupt cessation of mitosis, among hitherto asynchronously cycling cells, precedes the other changes at each level in the presumptive axial pattern. The widespread incidence of cells still in DNA synthesis, anterior to the last mitoses in the posterior-to-anterior developmental sequence of axial tissue, strongly suggests that cells of notochord and somites in their prolonged, non-cycling phase are G2-arrested, and thus tetraploid. This is discussed in relation to what is known of cell-cycle control in other situations. Best estimates for cell-cycle time in the still-dividing, posterior mesoderm of the neurula lie between 10 and 15 h. The supposition of continuing recruitment from neurectoderm can resolve an apparent discrepancy whereby total mesodermal cell number nevertheless contrives to double over a period of approximately 12 h during neurulation when most of the cells are leaving the cycle. Because of pre-existing evidence that cells maintain their relative positions (despite distortion) during the movements that form the mesodermal mantle, the patterns presented in this paper can be understood in two ways: as a temporal sequence of developmental events undergone by individual, posteriorly recruited cells as they achieve their final positions in the body pattern, or alternatively as a succession of wavefronts with respect to changes of cell state, passing obliquely across the presumptive body pattern in antero-posterior direction. These concepts are discussed briefly in relation to recent ideas about pattern formation in growing systems.

Animals