2.Coactivators in energy metabolism: peroxisome proliferator-activated receptor-gamma coactivator 1 family.
Rui WANG ; Yong-sheng CHANG ; Fu-de FANG
Acta Academiae Medicinae Sinicae 2009;31(6):773-777
Peroxisome proliferator-activated receptor gamma coactivator 1 (PGC1) family is highly expressed in tissues with high energy metabolism. They coactivate transcription factors in regulating genes engaged in processes such as gluconeogenesis, adipose beta-oxydation, lipoprotein synthesis and secretion, mitochondrial biogenesis, and oxidative metabolism. Protein conformation studies demonstrated that they lack DNA binding domains and act as coactivators through physical interaction with transcription factors. PGC1 activity is regulated at transcription level or by multiple covalent chemical modifications such as phosphorylation, methylation and acetylation/deacetylation. Abnormal expression of PGC1 coactivators usually is closely correlated with diseases such as diabetes, obesity, hyperglycemia, hyperlipemia, and arterial and brain neuron necrosis diseases.
Animals
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Energy Metabolism
;
physiology
;
Humans
;
Transcription Factors
;
metabolism
3.Role of PXR and CAR in Cholestasis.
The Korean Journal of Hepatology 2006;12(1):5-15
Cholestatic liver diseases are characterized by impairments of bile flows and accumulations of biliary constituents such as bile acids and bilirubin. The changes of phase I and II metabolism and the hepatobiliary transport system minimize cholestatic liver injury. These adaptive responses are transcriptionally regulated by several nuclear receptors. Recent studies have revealed that the pregnane X receptor (PXR) and the constitutive androstane receptor (CAR) are key nuclear receptors for regulating many of the adaptive responses noted in cholestasis. PXR and CAR coordinately regulate not only bile acid metabolism and transport, but also bilirubin clearance. PXR and CAR ligands may be useful in the future for the treatment of cholestatic liver disease.
Transcription Factors/metabolism/*physiology
;
Receptors, Steroid/metabolism/*physiology
;
Receptors, Cytoplasmic and Nuclear/metabolism/*physiology
;
Humans
;
Cholestasis/metabolism/*physiopathology
4.The network of cytokines, receptors and transcription factors governing the development of dendritic cell subsets.
Protein & Cell 2011;2(8):620-630
The pathways leading to the development of different dendritic cell (DC) subsets have long been unclear. In recent years, a number of precursors on the route to DC development, both under steady state and inflammatory conditions, have been described, and the nature of these pathways is becoming clearer. In addition, the development of various knockout mouse models and an in vitro system modelling DC development have revealed the role of numerous cytokines and transcription factors that influence DC development. Here, we review recent findings on the factors important in DC development in the context of the developmental pathways that have been described.
Animals
;
Cytokines
;
metabolism
;
Dendritic Cells
;
metabolism
;
Humans
;
Signal Transduction
;
physiology
;
Transcription Factors
;
metabolism
5.The differential requirement of mushroom body α/β subdivisions in long-term memory retrieval in Drosophila.
Cheng HUANG ; Pengzhi WANG ; Zhiyong XIE ; Lianzhang WANG ; Yi ZHONG
Protein & Cell 2013;4(7):512-519
The mushroom body (MB), a bilateral brain structure possessing about 2000-2500 neurons per hemisphere, plays a central role in olfactory learning and memory in Drosophila melanogaster. Extensive studies have demonstrated that three major types of MB neurons (α/β, α'/β' and Γ) exhibit distinct functions in memory processing, including the critical role of approximately 1000 MB α/β neurons in retrieving long-term memory. Inspired by recent findings that MB α/β neurons can be further divided into three subdivisions (surface, posterior and core) and wherein the α/β core neurons play an permissive role in long-term memory consolidation, we examined the functional differences of all the three morphological subdivisions of MB α/β by temporally precise manipulation of their synaptic outputs during long-term memory retrieval. We found the normal neurotransmission from a combination of MB α/β surface and posterior neurons is necessary for retrieving both aversive and appetitive long-term memory, whereas output from MB α/β posterior or core subdivision alone is dispensable. These results imply a specific requirement of about 500 MB α/β neurons in supporting long-term memory retrieval and a further functional partitioning for memory processing within the MB α/β region.
Adenylyl Cyclases
;
metabolism
;
Animals
;
Drosophila Proteins
;
metabolism
;
Drosophila melanogaster
;
cytology
;
metabolism
;
physiology
;
Memory, Long-Term
;
physiology
;
Mushroom Bodies
;
cytology
;
physiology
;
Neurons
;
cytology
;
metabolism
;
Synapses
;
metabolism
;
Transcription Factors
;
metabolism
6.Atoh1 regulation in the cochlea: more than just transcription.
Journal of Zhejiang University. Science. B 2019;20(2):146-155
More than 80% of all cases of deafness are related to the death or degeneration of cochlear hair cells and the associated spiral ganglion neurons, and a lack of regeneration of these cells leads to permanent hearing loss. Therefore, the regeneration of lost hair cells is an important goal for the treatment of deafness. Atoh1 is a basic helix-loop-helix (bHLH) transcription factor that is critical in both the development and regeneration of cochlear hair cells. Atoh1 is transcriptionally regulated by several signaling pathways, including Notch and Wnt signalings. At the post-translational level, it is regulated through the ubiquitin-proteasome pathway. In vitro and in vivo studies have revealed that manipulation of these signaling pathways not only controls development, but also leads to the regeneration of cochlear hair cells after damage. Recent progress toward understanding the signaling networks involved in hair cell development and regeneration has led to the development of new strategies to replace lost hair cells. This review focuses on our current understanding of the signaling pathways that regulate Atoh1 in the cochlea.
Basic Helix-Loop-Helix Transcription Factors/physiology*
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Cell Differentiation
;
Cochlea/physiology*
;
Hair Cells, Auditory/physiology*
;
Hearing Loss/etiology*
;
Humans
;
Proteasome Endopeptidase Complex/physiology*
;
Signal Transduction/physiology*
;
Transcription Factors/physiology*
;
Ubiquitin/metabolism*
;
Wnt Signaling Pathway
;
beta Catenin/physiology*
7.Role of transcription factor acetylation in the regulation of metabolic homeostasis.
Joo-Man PARK ; Seong-Ho JO ; Mi-Young KIM ; Tae-Hyun KIM ; Yong-Ho AHN
Protein & Cell 2015;6(11):804-813
Post-translational modifications (PTMs) of transcription factors play a crucial role in regulating metabolic homeostasis. These modifications include phosphorylation, methylation, acetylation, ubiquitination, SUMOylation, and O-GlcNAcylation. Recent studies have shed light on the importance of lysine acetylation at nonhistone proteins including transcription factors. Acetylation of transcription factors affects subcellular distribution, DNA affinity, stability, transcriptional activity, and current investigations are aiming to further expand our understanding of the role of lysine acetylation of transcription factors. In this review, we summarize recent studies that provide new insights into the role of protein lysine-acetylation in the transcriptional regulation of metabolic homeostasis.
Acetylation
;
Animals
;
Diabetes Mellitus, Type 2
;
metabolism
;
Homeostasis
;
genetics
;
physiology
;
Humans
;
Protein Processing, Post-Translational
;
genetics
;
physiology
;
Transcription Factors
;
metabolism
8.Human ESC-derived vascular cells promote vascular regeneration in a HIF-1α dependent manner.
Jinghui LEI ; Xiaoyu JIANG ; Daoyuan HUANG ; Ying JING ; Shanshan YANG ; Lingling GENG ; Yupeng YAN ; Fangshuo ZHENG ; Fang CHENG ; Weiqi ZHANG ; Juan Carlos Izpisua BELMONTE ; Guang-Hui LIU ; Si WANG ; Jing QU
Protein & Cell 2024;15(1):36-51
Hypoxia-inducible factor (HIF-1α), a core transcription factor responding to changes in cellular oxygen levels, is closely associated with a wide range of physiological and pathological conditions. However, its differential impacts on vascular cell types and molecular programs modulating human vascular homeostasis and regeneration remain largely elusive. Here, we applied CRISPR/Cas9-mediated gene editing of human embryonic stem cells and directed differentiation to generate HIF-1α-deficient human vascular cells including vascular endothelial cells, vascular smooth muscle cells, and mesenchymal stem cells (MSCs), as a platform for discovering cell type-specific hypoxia-induced response mechanisms. Through comparative molecular profiling across cell types under normoxic and hypoxic conditions, we provide insight into the indispensable role of HIF-1α in the promotion of ischemic vascular regeneration. We found human MSCs to be the vascular cell type most susceptible to HIF-1α deficiency, and that transcriptional inactivation of ANKZF1, an effector of HIF-1α, impaired pro-angiogenic processes. Altogether, our findings deepen the understanding of HIF-1α in human angiogenesis and support further explorations of novel therapeutic strategies of vascular regeneration against ischemic damage.
Humans
;
Vascular Endothelial Growth Factor A/metabolism*
;
Endothelial Cells/metabolism*
;
Transcription Factors/metabolism*
;
Gene Expression Regulation
;
Hypoxia/metabolism*
;
Cell Hypoxia/physiology*
9.Hypoxia inhibits differentiation of C2C12.
Xiang LI ; Xu WANG ; Peng ZHANG
Chinese Journal of Applied Physiology 2008;24(3):267-278