1.Persisting lung pathogenesis and minimum residual virus in hamster after acute COVID-19.
Lunzhi YUAN ; Huachen ZHU ; Ming ZHOU ; Jian MA ; Rirong CHEN ; Liuqin YU ; Wenjia CHEN ; Wenshan HONG ; Jia WANG ; Yao CHEN ; Kun WU ; Wangheng HOU ; Yali ZHANG ; Shengxiang GE ; Yixin CHEN ; Quan YUAN ; Qiyi TANG ; Tong CHENG ; Yi GUAN ; Ningshao XIA
Protein & Cell 2022;13(1):72-77
Animals
;
Antibodies, Neutralizing/biosynthesis*
;
Antibodies, Viral/biosynthesis*
;
Body Weight/immunology*
;
COVID-19/virology*
;
Disease Models, Animal
;
Disease Progression
;
Humans
;
Immunohistochemistry
;
Lung/virology*
;
Male
;
Mesocricetus
;
Nasal Cavity/virology*
;
RNA, Viral/immunology*
;
SARS-CoV-2/pathogenicity*
;
Severity of Illness Index
;
Viral Load
2.Progress in circular RNAs of plants.
Zhenzhen CHANG ; Guizhi GONG ; Zhuchun PENG ; Cheng YANG ; Qibin HONG
Chinese Journal of Biotechnology 2022;38(5):1706-1723
With the development of high-throughput sequencing technology, circular RNAs (circRNAs) have gradually become a hotspot in the research on non-coding RNA. CircRNAs are produced by the covalent circularization of a downstream 3' splice donor and an upstream 5' splice acceptor through backsplicing, and they are pervasive in eukaryotic cells. CircRNAs used to be considered byproducts of false splicing, whereas an explosion of related studies in recent years has disproved this misconception. Compared with the rich studies of circRNAs in animals, the study of circRNAs in plants is still in its infancy. In this review, we introduced the discovery of plant circRNAs, the discovery of plant circRNAs, the circularization feature, expression specificity, conservation, and stability of plant circRNAs and expounded the identification tools, main types, and biogenesis mechanisms of circRNAs. Furthermore, we summarized the potential roles of plant circRNAs as microRNA (miRNA) sponges and translation templates and in response to biotic/abiotic stress, and briefed the degradation and localization of plant circRNAs. Finally, we discussed the challenges and proposed the future directions in the research on plant circRNAs.
Animals
;
MicroRNAs/metabolism*
;
Organelle Biogenesis
;
Plants/metabolism*
;
Protein Biosynthesis/physiology*
;
RNA, Circular/metabolism*
;
RNA, Plant/metabolism*
;
Research/trends*
;
Stress, Physiological/genetics*
3.A human circulating immune cell landscape in aging and COVID-19.
Yingfeng ZHENG ; Xiuxing LIU ; Wenqing LE ; Lihui XIE ; He LI ; Wen WEN ; Si WANG ; Shuai MA ; Zhaohao HUANG ; Jinguo YE ; Wen SHI ; Yanxia YE ; Zunpeng LIU ; Moshi SONG ; Weiqi ZHANG ; Jing-Dong J HAN ; Juan Carlos Izpisua BELMONTE ; Chuanle XIAO ; Jing QU ; Hongyang WANG ; Guang-Hui LIU ; Wenru SU
Protein & Cell 2020;11(10):740-770
Age-associated changes in immune cells have been linked to an increased risk for infection. However, a global and detailed characterization of the changes that human circulating immune cells undergo with age is lacking. Here, we combined scRNA-seq, mass cytometry and scATAC-seq to compare immune cell types in peripheral blood collected from young and old subjects and patients with COVID-19. We found that the immune cell landscape was reprogrammed with age and was characterized by T cell polarization from naive and memory cells to effector, cytotoxic, exhausted and regulatory cells, along with increased late natural killer cells, age-associated B cells, inflammatory monocytes and age-associated dendritic cells. In addition, the expression of genes, which were implicated in coronavirus susceptibility, was upregulated in a cell subtype-specific manner with age. Notably, COVID-19 promoted age-induced immune cell polarization and gene expression related to inflammation and cellular senescence. Therefore, these findings suggest that a dysregulated immune system and increased gene expression associated with SARS-CoV-2 susceptibility may at least partially account for COVID-19 vulnerability in the elderly.
Adult
;
Aged
;
Aged, 80 and over
;
Aging
;
genetics
;
immunology
;
Betacoronavirus
;
CD4-Positive T-Lymphocytes
;
metabolism
;
Cell Lineage
;
Chromatin Assembly and Disassembly
;
Coronavirus Infections
;
immunology
;
Cytokine Release Syndrome
;
etiology
;
immunology
;
Cytokines
;
biosynthesis
;
genetics
;
Disease Susceptibility
;
Flow Cytometry
;
methods
;
Gene Expression Profiling
;
Gene Expression Regulation, Developmental
;
Gene Rearrangement
;
Humans
;
Immune System
;
cytology
;
growth & development
;
immunology
;
Immunocompetence
;
genetics
;
Inflammation
;
genetics
;
immunology
;
Mass Spectrometry
;
methods
;
Middle Aged
;
Pandemics
;
Pneumonia, Viral
;
immunology
;
Sequence Analysis, RNA
;
Single-Cell Analysis
;
Transcriptome
;
Young Adult
4.Novel and potent inhibitors targeting DHODH are broad-spectrum antivirals against RNA viruses including newly-emerged coronavirus SARS-CoV-2.
Rui XIONG ; Leike ZHANG ; Shiliang LI ; Yuan SUN ; Minyi DING ; Yong WANG ; Yongliang ZHAO ; Yan WU ; Weijuan SHANG ; Xiaming JIANG ; Jiwei SHAN ; Zihao SHEN ; Yi TONG ; Liuxin XU ; Yu CHEN ; Yingle LIU ; Gang ZOU ; Dimitri LAVILLETE ; Zhenjiang ZHAO ; Rui WANG ; Lili ZHU ; Gengfu XIAO ; Ke LAN ; Honglin LI ; Ke XU
Protein & Cell 2020;11(10):723-739
Emerging and re-emerging RNA viruses occasionally cause epidemics and pandemics worldwide, such as the on-going outbreak of the novel coronavirus SARS-CoV-2. Herein, we identified two potent inhibitors of human DHODH, S312 and S416, with favorable drug-likeness and pharmacokinetic profiles, which all showed broad-spectrum antiviral effects against various RNA viruses, including influenza A virus, Zika virus, Ebola virus, and particularly against SARS-CoV-2. Notably, S416 is reported to be the most potent inhibitor so far with an EC of 17 nmol/L and an SI value of 10,505.88 in infected cells. Our results are the first to validate that DHODH is an attractive host target through high antiviral efficacy in vivo and low virus replication in DHODH knock-out cells. This work demonstrates that both S312/S416 and old drugs (Leflunomide/Teriflunomide) with dual actions of antiviral and immuno-regulation may have clinical potentials to cure SARS-CoV-2 or other RNA viruses circulating worldwide, no matter such viruses are mutated or not.
Animals
;
Antiviral Agents
;
pharmacology
;
therapeutic use
;
Betacoronavirus
;
drug effects
;
physiology
;
Binding Sites
;
drug effects
;
Cell Line
;
Coronavirus Infections
;
drug therapy
;
virology
;
Crotonates
;
pharmacology
;
Cytokine Release Syndrome
;
drug therapy
;
Drug Evaluation, Preclinical
;
Gene Knockout Techniques
;
Humans
;
Influenza A virus
;
drug effects
;
Leflunomide
;
pharmacology
;
Mice
;
Mice, Inbred BALB C
;
Orthomyxoviridae Infections
;
drug therapy
;
Oseltamivir
;
therapeutic use
;
Oxidoreductases
;
antagonists & inhibitors
;
metabolism
;
Pandemics
;
Pneumonia, Viral
;
drug therapy
;
virology
;
Protein Binding
;
drug effects
;
Pyrimidines
;
biosynthesis
;
RNA Viruses
;
drug effects
;
physiology
;
Structure-Activity Relationship
;
Toluidines
;
pharmacology
;
Ubiquinone
;
metabolism
;
Virus Replication
;
drug effects
5.Screening of long non-coding RNA related to CYP450s involved in biosynthesis of tanshinones.
Yuan CAI ; Ying MA ; Juan GUO ; Yong-Qing WANG ; Qing DU ; Tong CHEN ; Shui-Han ZHANG ; Lu-Qi HUANG
China Journal of Chinese Materia Medica 2019;44(12):2480-2485
Tanshinones are abietane-type norditerpenoid quinones that make up the main bioactive ingredients of traditional Chinese medicine Salvia miltiorrhiza. Cytochrome CYP450 plays an important role in the post-structural modification of tanshinone biosynthesis pathway. Long non-coding RNA( lncRNA) have been defined as transcripts longer than 200 nucleotides,which have been functionally characterized in regulating the growth and development,secondary metabolism and stress of medicinal plants. In this study,we perform a comprehensive identification of lncRNAs in response to tanshinone metabolism induced by yeast extract( YE) and Ag~+ S. miltiorrhiza hairy roots. Deep RNA sequencing was used to identify a set of different 8 942 lncRNAs,of which 6 755 were intergenic lncRNAs. We predicted a total of 1 115 814 lncRNA-coding gene pairs,including 122 lncRNA-coding gene as cis pairs. The correlation analysis between lncRNA and CYP450 related to tanshinone biosynthesis was carried out and a total of 16 249 lncRNA-CYP450 target gene pairs were identified. Further analysis with functional known CYP76 AH1,CYP76 AH3 and CYP76 AK1 involved in tanshinone biosynthesis,we also identified a set of 216 target genes. These candidate genes will be the important target in the downstream regulation mechanism analysis of the tanshinone biosynthesis pathway.
Cytochrome P-450 Enzyme System
;
genetics
;
Diterpenes, Abietane
;
biosynthesis
;
Gene Expression Regulation, Plant
;
Plant Roots
;
RNA, Long Noncoding
;
genetics
;
RNA, Plant
;
genetics
;
Salvia miltiorrhiza
;
genetics
6.Alternative role of noncoding RNAs: coding and noncoding properties.
Gui-Zhen ZHENG ; Wei LI ; Zhi-Yong LIU
Journal of Zhejiang University. Science. B 2019;20(11):920-927
Noncoding RNAs (ncRNAs) have played a critical role in cellular biological functions. Recently, some peptides or proteins originating from annotated ncRNAs were identified in organism development and various diseases. Here, we briefly review several novel peptides translated by annotated ncRNAs and related key functions. In addition, we summarize the potential mechanism of bifunctional ncRNAs and propose a specific "switch" triggering the transformation from the noncoding to the coding state under certain stimuli or cellular stress. The coding properties of ncRNAs and their peptide products may provide a novel horizon in proteomic research and can be regarded as a potential therapeutic target for the treatment of various diseases.
Animals
;
Calcium/metabolism*
;
Humans
;
Open Reading Frames
;
Protein Biosynthesis
;
RNA, Messenger/genetics*
;
RNA, Untranslated/physiology*
7.RNA binding protein 24 regulates the translation and replication of hepatitis C virus.
Huang CAO ; Kaitao ZHAO ; Yongxuan YAO ; Jing GUO ; Xiaoxiao GAO ; Qi YANG ; Min GUO ; Wandi ZHU ; Yun WANG ; Chunchen WU ; Jizheng CHEN ; Yuan ZHOU ; Xue HU ; Mengji LU ; Xinwen CHEN ; Rongjuan PEI
Protein & Cell 2018;9(11):930-944
The secondary structures of hepatitis C virus (HCV) RNA and the cellular proteins that bind to them are important for modulating both translation and RNA replication. However, the sets of RNA-binding proteins involved in the regulation of HCV translation, replication and encapsidation remain unknown. Here, we identified RNA binding motif protein 24 (RBM24) as a host factor participated in HCV translation and replication. Knockdown of RBM24 reduced HCV propagation in Huh7.5.1 cells. An enhanced translation and delayed RNA synthesis during the early phase of infection was observed in RBM24 silencing cells. However, both overexpression of RBM24 and recombinant human RBM24 protein suppressed HCV IRES-mediated translation. Further analysis revealed that the assembly of the 80S ribosome on the HCV IRES was interrupted by RBM24 protein through binding to the 5'-UTR. RBM24 could also interact with HCV Core and enhance the interaction of Core and 5'-UTR, which suppresses the expression of HCV. Moreover, RBM24 enhanced the interaction between the 5'- and 3'-UTRs in the HCV genome, which probably explained its requirement in HCV genome replication. Therefore, RBM24 is a novel host factor involved in HCV replication and may function at the switch from translation to replication.
Cells, Cultured
;
Hepacivirus
;
genetics
;
growth & development
;
metabolism
;
Humans
;
Protein Biosynthesis
;
RNA-Binding Proteins
;
metabolism
;
Virus Replication
;
genetics
8.An Emerging Role for Circular RNAs in Osteoarthritis.
Yonsei Medical Journal 2018;59(3):349-355
Circular RNAs (circRNAs) are currently classed as non-coding RNAs that, unlike the better known canonical linear RNAs, form a covalently closed continuous loop without 5′ or 3′ polarities. With the development of high throughput sequencing technology, a large number of circRNAs have been discovered in many species. More importantly, growing evidence suggests that circRNAs are abundant, evolutionally conserved, and relatively stable in cells and tissues. Strikingly, recent studies have discovered that circRNAs can serve as microRNA sponges, interact with RNA-binding protein, and regulate gene transcription, as well as protein translation. Osteoarthritis (OA) is the most common chronic degenerative joint disease. CircRNAs are differentially expressed in OA cartilage. Moreover, some circRNAs are involved in multiple pathological processes during OA, mainly extracellular matrix degradation, inflammation, and apoptosis. In this review, we briefly delineate the biogenesis, characteristics, and biofunctions of circRNAs, and then, focus on the role of circRNAs in the occurrence and progression OA.
Apoptosis
;
Cartilage
;
Cartilage, Articular
;
Extracellular Matrix
;
Inflammation
;
Joint Diseases
;
MicroRNAs
;
Osteoarthritis*
;
Pathologic Processes
;
Porifera
;
Protein Biosynthesis
;
RNA*
;
RNA, Untranslated
;
RNA-Binding Proteins
9.Chicken RNA-binding protein T-cell internal antigen-1 contributes to stress granule formation in chicken cells and tissues
Yingjie SUN ; Pin ZHANG ; Hang ZHENG ; Luna DONG ; Lei TAN ; Cuiping SONG ; Xusheng QIU ; Ying LIAO ; Chunchun MENG ; Shengqing YU ; Chan DING
Journal of Veterinary Science 2018;19(1):3-12
T-cell internal antigen-1 (TIA-1) has roles in regulating alternative pre-mRNA splicing, mRNA translation, and stress granule (SG) formation in human cells. As an evolutionarily conserved response to environmental stress, SGs have been reported in various species. However, SG formation in chicken cells and the role of chicken TIA-1 (cTIA-1) in SG assembly has not been elucidated. In the present study, we cloned cTIA-1 and showed that it facilitates the assembly of canonical SGs in both human and chicken cells. Overexpression of the chicken prion-related domain (cPRD) of cTIA-1 that bore an N-terminal green fluorescent protein (GFP) tag (pntGFP-cPRD) or Flag tag (pFlag-cPRD) induced the production of typical SGs. However, C-terminal GFP-tagged cPRD induced notably large cytoplasmic granules that were devoid of endogenous G3BP1 and remained stable when exposed to cycloheximide, indicating that these were not typical SGs, and that the pntGFP tag influences cPRD localization. Finally, endogenous cTIA-1 was recruited to SGs in chicken cells and tissues under environmental stress. Taken together, our study provide evidence that cTIA-1 has a role in canonical SG formation in chicken cells and tissues. Our results also indicate that cPRD is necessary for SG aggregation.
Chickens
;
Clone Cells
;
Cycloheximide
;
Cytoplasmic Granules
;
Humans
;
Protein Biosynthesis
;
RNA Precursors
;
RNA-Binding Proteins
;
T-Lymphocytes
10.Osthole decreases collagen I/III contents and their ratio in TGF-β1-overexpressed mouse cardiac fibroblasts through regulating the TGF-β/Smad signaling pathway.
Jin-Cheng LIU ; Lei ZHOU ; Feng WANG ; Zong-Qi CHENG ; Chen RONG
Chinese Journal of Natural Medicines (English Ed.) 2018;16(5):321-329
The present study was designed to elucidate whether the mechanism by which osthole decreases collagenI/III contents and their ratio is regulating the TGF-β/Smad signaling pathway in TGF-β1-overexpressed mouse cardiac fibroblasts (CFs). These CFs were cultured and treated with different concentrations of osthole. Our results showed that the TGF-β1 expression in the CFs transfected with that the recombinant expression plasmids pcDNA3.1(+)-TGF-β1 was significantly enhanced. After the CFs were treated with 1.25-5 μg·mL of osthole for 24 h, the mRNA and protein expression levels of collagensIand III were reduced. The collagen I/III ratio was also reduced. The mRNA and protein expression levels of TGF-β1, TβRI, Smad2/3, P-Smad2/3, Smad4, and α-SMA were decreased, whereas the expression level of Smad7 was increased. These effects suggested that osthole could inhibit collagen I and III expression and reduce their ratio via the TGF-β/Smad signaling pathway in TGF-β1 overexpressed CFs. These effects of osthole may play beneficial roles in the prevention and treatment of myocardial fibrosis.
Actins
;
genetics
;
Animals
;
Cells, Cultured
;
Collagen
;
biosynthesis
;
genetics
;
Coumarins
;
pharmacology
;
Fibroblasts
;
drug effects
;
metabolism
;
Gene Expression Regulation
;
drug effects
;
Mice
;
Myocardium
;
cytology
;
Protein-Serine-Threonine Kinases
;
genetics
;
RNA, Messenger
;
genetics
;
Real-Time Polymerase Chain Reaction
;
Receptor, Transforming Growth Factor-beta Type I
;
Receptors, Transforming Growth Factor beta
;
genetics
;
Signal Transduction
;
drug effects
;
Smad Proteins
;
genetics
;
Transforming Growth Factor beta1
;
genetics

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