1.The regulatory role of the RUS family in plant growth and development.
Yao HU ; Sirui LI ; Xinxin ZHANG ; Qinglin TANG ; Dayong WEI ; Shibing TIAN ; Yang YANG ; Zhimin WANG
Chinese Journal of Biotechnology 2024;40(1):81-93
The chloroplast genome encodes many key proteins involved in photosynthesis and other metabolic processes, and metabolites synthesized in chloroplasts are essential for normal plant growth and development. Root-UVB (ultraviolet radiation B)-sensitive (RUS) family proteins composed of highly conserved DUF647 domain belong to chloroplast proteins. They play an important role in the regulation of various life activities such as plant morphogenesis, material transport and energy metabolism. This article summarizes the recent advances of the RUS family proteins in the growth and development of plants such as embryonic development, photomorphological construction, VB6 homeostasis, auxin transport and anther development, with the aim to facilitate further study of its molecular regulation mechanism in plant growth and development.
Female
;
Pregnancy
;
Humans
;
Ultraviolet Rays
;
Biological Transport
;
Chloroplasts/genetics*
;
Embryonic Development
;
Plant Development/genetics*
2.A case for the oocyte: Why grading of oocyte morphology should be implemented in the IVF laboratory and how
Philippine Journal of Reproductive Endocrinology and Infertility 2024;21(2):59-71
In Vitro Fertilization (IVF) is generally accepted as the most effective treatment for infertility. Its success depends on the correct and meticulous implementation of each stage in the procedure. The process of systematically examining embryos is standardized through the use of internationally recognized criteria. On the other hand, the evaluation of oocyte quality continues to be conducted more arbitrarily. A morphologically good quality mature human oocyte is universally described as one that shows a homogeneous cytoplasm, has a single polar body (PB), an approprate zona pellucida (ZP) thickness and a proper perivitelline space (PVS). An abnormality in one or more of these features are very common in IVF cycles and may be related to several factors that are extrinsic and intrinsic to the patient. There has been extensive speculation over whether specific anomalies in the structure of oocytes can suggest a reduced developmental capacity. The most notable among the dysmorphisms of oocytes are the severe morphological deviations, such as smooth endoplasmic reticulum clusters, cytoplasm granularity, and giant oocytes that are related to genetic abnormalities, and extra-cytoplasmic parameters such as PB morphology, the PVS and ZP abnormalities that may indicate oocyte ageing. This paper acknowledges the significance of oocyte morphology grading as an important and practical predictor of a successful IVF outcome and it can serve as a supplementary measure to embryonic assessment in order to optimize efficacy of assisted reproductive technology (ART). It discusses the fundamental knowledge that infertility specialists and embryologists should possess to enable its routine application in the ART laboratory.
Fertilization In Vitro ; Sperm Injections, Intracytoplasmic ; Reproductive Techniques, Assisted ; Embryonic Development ; Meiotic Spindle ; Spindle Apparatus
4.A Spacetime Odyssey of Neural Progenitors to Generate Neuronal Diversity.
Mengmeng GE ; Amirhossein SHEIKHSHAHROKH ; Xiang SHI ; Yu-Hong ZHANG ; Zhiheng XU ; Qing-Feng WU
Neuroscience Bulletin 2023;39(4):645-658
To understand how the nervous system develops from a small pool of progenitors during early embryonic development, it is fundamentally important to identify the diversity of neuronal subtypes, decode the origin of neuronal diversity, and uncover the principles governing neuronal specification across different regions. Recent single-cell analyses have systematically identified neuronal diversity at unprecedented scale and speed, leaving the deconstruction of spatiotemporal mechanisms for generating neuronal diversity an imperative and paramount challenge. In this review, we highlight three distinct strategies deployed by neural progenitors to produce diverse neuronal subtypes, including predetermined, stochastic, and cascade diversifying models, and elaborate how these strategies are implemented in distinct regions such as the neocortex, spinal cord, retina, and hypothalamus. Importantly, the identity of neural progenitors is defined by their spatial position and temporal patterning factors, and each type of progenitor cell gives rise to distinguishable cohorts of neuronal subtypes. Microenvironmental cues, spontaneous activity, and connectional pattern further reshape and diversify the fate of unspecialized neurons in particular regions. The illumination of how neuronal diversity is generated will pave the way for producing specific brain organoids to model human disease and desired neuronal subtypes for cell therapy, as well as understanding the organization of functional neural circuits and the evolution of the nervous system.
Humans
;
Neural Stem Cells/physiology*
;
Neurons/physiology*
;
Brain
;
Spinal Cord
;
Embryonic Development
;
Cell Differentiation/physiology*
5.Bilineage embryo-like structure from EPS cells can produce live mice with tetraploid trophectoderm.
Kuisheng LIU ; Xiaocui XU ; Dandan BAI ; Yanhe LI ; Yalin ZHANG ; Yanping JIA ; Mingyue GUO ; Xiaoxiao HAN ; Yingdong LIU ; Yifan SHENG ; Xiaochen KOU ; Yanhong ZHAO ; Jiqing YIN ; Sheng LIU ; Jiayu CHEN ; Hong WANG ; Yixuan WANG ; Wenqiang LIU ; Shaorong GAO
Protein & Cell 2023;14(4):262-278
Self-organized blastoids from extended pluripotent stem (EPS) cells possess enormous potential for investigating postimplantation embryo development and related diseases. However, the limited ability of postimplantation development of EPS-blastoids hinders its further application. In this study, single-cell transcriptomic analysis indicated that the "trophectoderm (TE)-like structure" of EPS-blastoids was primarily composed of primitive endoderm (PrE)-related cells instead of TE-related cells. We further identified PrE-like cells in EPS cell culture that contribute to the blastoid formation with TE-like structure. Inhibition of PrE cell differentiation by inhibiting MEK signaling or knockout of Gata6 in EPS cells markedly suppressed EPS-blastoid formation. Furthermore, we demonstrated that blastocyst-like structures reconstituted by combining the EPS-derived bilineage embryo-like structure (BLES) with either tetraploid embryos or tetraploid TE cells could implant normally and develop into live fetuses. In summary, our study reveals that TE improvement is critical for constructing a functional embryo using stem cells in vitro.
Pregnancy
;
Female
;
Animals
;
Mice
;
Tetraploidy
;
Blastocyst
;
Embryo, Mammalian
;
Cell Differentiation
;
Embryonic Development
6.Modeling human pregastrulation development by 3D culture of blastoids generated from primed-to-naïve transitioning intermediates.
Zhifen TU ; Yan BI ; Xuehao ZHU ; Wenqiang LIU ; Jindian HU ; Li WU ; Tengyan MAO ; Jianfeng ZHOU ; Hanwei WANG ; Hong WANG ; Shaorong GAO ; Yixuan WANG
Protein & Cell 2023;14(5):337-349
Human pluripotent stem cells provide an inexhaustible model to study human embryogenesis in vitro. Recent studies have provided diverse models to generate human blastoids by self-organization of different pluripotent stem cells or somatic reprogramming intermediates. However, whether blastoids can be generated from other cell types or whether they can recapitulate postimplantation development in vitro is unknown. Here, we develop a strategy to generate human blastoids from heterogeneous intermediates with epiblast, trophectoderm, and primitive endoderm signatures of the primed-to-naïve conversion process, which resemble natural blastocysts in morphological architecture, composition of cell lineages, transcriptome, and lineage differentiation potential. In addition, these blastoids reflect many features of human peri-implantation and pregastrulation development when further cultured in an in vitro 3D culture system. In summary, our study provides an alternative strategy to generate human blastoids and offers insights into human early embryogenesis by modeling peri- and postimplantation development in vitro.
Humans
;
Pluripotent Stem Cells/metabolism*
;
Embryo, Mammalian/metabolism*
;
Cell Differentiation
;
Blastocyst
;
Cell Lineage
;
Embryonic Development
7.LIN28 coordinately promotes nucleolar/ribosomal functions and represses the 2C-like transcriptional program in pluripotent stem cells.
Zhen SUN ; Hua YU ; Jing ZHAO ; Tianyu TAN ; Hongru PAN ; Yuqing ZHU ; Lang CHEN ; Cheng ZHANG ; Li ZHANG ; Anhua LEI ; Yuyan XU ; Xianju BI ; Xin HUANG ; Bo GAO ; Longfei WANG ; Cristina CORREIA ; Ming CHEN ; Qiming SUN ; Yu FENG ; Li SHEN ; Hao WU ; Jianlong WANG ; Xiaohua SHEN ; George Q DALEY ; Hu LI ; Jin ZHANG
Protein & Cell 2022;13(7):490-512
LIN28 is an RNA binding protein with important roles in early embryo development, stem cell differentiation/reprogramming, tumorigenesis and metabolism. Previous studies have focused mainly on its role in the cytosol where it interacts with Let-7 microRNA precursors or mRNAs, and few have addressed LIN28's role within the nucleus. Here, we show that LIN28 displays dynamic temporal and spatial expression during murine embryo development. Maternal LIN28 expression drops upon exit from the 2-cell stage, and zygotic LIN28 protein is induced at the forming nucleolus during 4-cell to blastocyst stage development, to become dominantly expressed in the cytosol after implantation. In cultured pluripotent stem cells (PSCs), loss of LIN28 led to nucleolar stress and activation of a 2-cell/4-cell-like transcriptional program characterized by the expression of endogenous retrovirus genes. Mechanistically, LIN28 binds to small nucleolar RNAs and rRNA to maintain nucleolar integrity, and its loss leads to nucleolar phase separation defects, ribosomal stress and activation of P53 which in turn binds to and activates 2C transcription factor Dux. LIN28 also resides in a complex containing the nucleolar factor Nucleolin (NCL) and the transcriptional repressor TRIM28, and LIN28 loss leads to reduced occupancy of the NCL/TRIM28 complex on the Dux and rDNA loci, and thus de-repressed Dux and reduced rRNA expression. Lin28 knockout cells with nucleolar stress are more likely to assume a slowly cycling, translationally inert and anabolically inactive state, which is a part of previously unappreciated 2C-like transcriptional program. These findings elucidate novel roles for nucleolar LIN28 in PSCs, and a new mechanism linking 2C program and nucleolar functions in PSCs and early embryo development.
Animals
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Cell Differentiation
;
Embryo, Mammalian/metabolism*
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Embryonic Development
;
Mice
;
Pluripotent Stem Cells/metabolism*
;
RNA, Messenger/genetics*
;
RNA, Ribosomal
;
RNA-Binding Proteins/metabolism*
;
Transcription Factors/metabolism*
;
Zygote/metabolism*
8.Association of gene expression in ovarian granulosa cells with embryonic development potential among patients with polycystic ovary syndrome.
Juan TENG ; Ancong WANG ; Xiangyu ZHAO ; Meiju LIU ; Yan WU ; Lin LI ; Wen LI
Chinese Journal of Medical Genetics 2022;39(12):1354-1359
OBJECTIVE:
To assess the association of gene expression with development potential of early embryos derived from patients with polycystic ovary syndrome (PCOS).
METHODS:
Three pairs of infertile patients with respectively matched age, body mass index, ovarian reserve and treatment with gonadotrophin-releasing hormone (GnRH) antagonists were selected. Patients with fewer embryos were assigned as the case group (n = 3), whilst the remainders were assigned as the control group (n = 3). Ovarian granulosa cells from patients were collected for the extraction of total RNA and subjected to RNA sequencing. The results were subjected to differential gene expression and functional enrichment analyses.
RESULTS:
Compared with the control group, 76 genes were up-regulated and 110 genes were down-regulated in the case group. The level of estradiol (E2) was significantly higher in the control group on the trigger day with the injection of human chorionic gonadotrophin (HCG). Compared with the control group, the KRT7 gene was most significantly up-regulated, whilst the CCNYL2 gene was most significantly down-regulated in the case group. Gene ontology (GO) entries enrichment has found those associated with chromosome segregation, cell cycle regulation, and fatty acid metabolism to be significantly enriched. The genes participating in the regulation of cell assembly, differentiation, negative regulation of cell cycle, negative regulation of development, extracellular regulated protein kinases (ERK), ERK1 and ERK2 signaling pathways to be significantly down-regulated. KEGG enrichment analysis of cell signaling pathways revealed that steroid hormone biosynthesis-related genes were enriched.
CONCLUSION
Among patients treated with GnRH antagonists, the significant difference in the number of oocytes fertilized in vitro and the number of available embryos are associated with the difference in the expression of genes of ovarian granulosa cells.
Female
;
Humans
;
Pregnancy
;
Embryonic Development
;
Gene Expression
;
Gonadotropin-Releasing Hormone/antagonists & inhibitors*
;
Granulosa Cells
;
Polycystic Ovary Syndrome/genetics*
9.The role of histone deacetylases 1/2 in regulating murine oogenesis.
Acta Physiologica Sinica 2021;73(3):527-534
Oogenesis is the basic reproductive process of female mammals and is essential for fertilization and embryo development. Recent studies have shown that epigenetic modifications play an important role in the regulation of mammalian reproductive processes (such as oogenesis, spermatogenesis, preimplantation embryo development and sex differentiation). Taking histone acetylation as an instance, the dynamic changes of histone acetyltransferases (HATs) and deacetylases (HDACs) are involved in the regulation of gene activation and inactivation when numerous key physiological events occur during reproduction. Thereinto, HDAC1 and HDAC2, which are highly homologous in terms of both structure and function, play a pivotal role in murine oogenesis. HDAC1 and 2 jointly regulate the global transcription and the incidence of apoptosis of growing oocytes and affect its subsequent growth and development, which reflects their compensatory function. In addition, HDAC1 and 2 also play a specific part in oogenesis respectively. It has shown that HDAC2 is more critical than HDAC1 for oocyte development, which regulates de novo DNA methylation and chromosome segregation. Reciprocally, HDAC1 is more critical than HDAC2 for preimplantation development. Deficiency of HDAC1 causes the decreased proliferation of embryonic stem cells and the smaller embryoid bodies with irregular shape. In this review, we summarized the role and the current research progress of HDAC1/2 in murine oogenesis, to provide a reference for further understanding the relationship between epigenetic modifications and reproductive regulation.
Acetylation
;
Animals
;
Embryonic Development
;
Female
;
Histone Deacetylase 1/metabolism*
;
Histone Deacetylase 2/metabolism*
;
Histone Deacetylases/metabolism*
;
Male
;
Mice
;
Oocytes
;
Oogenesis
10.Insights into epigenetic patterns in mammalian early embryos.
Ruimin XU ; Chong LI ; Xiaoyu LIU ; Shaorong GAO
Protein & Cell 2021;12(1):7-28
Mammalian fertilization begins with the fusion of two specialized gametes, followed by major epigenetic remodeling leading to the formation of a totipotent embryo. During the development of the pre-implantation embryo, precise reprogramming progress is a prerequisite for avoiding developmental defects or embryonic lethality, but the underlying molecular mechanisms remain elusive. For the past few years, unprecedented breakthroughs have been made in mapping the regulatory network of dynamic epigenomes during mammalian early embryo development, taking advantage of multiple advances and innovations in low-input genome-wide chromatin analysis technologies. The aim of this review is to highlight the most recent progress in understanding the mechanisms of epigenetic remodeling during early embryogenesis in mammals, including DNA methylation, histone modifications, chromatin accessibility and 3D chromatin organization.
Animals
;
Chromatin Assembly and Disassembly
;
DNA Methylation
;
DNA Transposable Elements
;
Embryo, Mammalian
;
Embryonic Development/genetics*
;
Epigenesis, Genetic
;
Epigenome
;
Female
;
Fertilization/physiology*
;
Gene Expression Regulation, Developmental
;
Histone Code
;
Histones/metabolism*
;
Male
;
Mice
;
Oocytes/metabolism*
;
Spermatozoa/metabolism*


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