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1.
Annu Rev Immunol ; 39: 481-509, 2021 04 26.
Article in English | MEDLINE | ID: mdl-33577347

ABSTRACT

Posttranscriptional control of mRNA regulates various biological processes, including inflammatory and immune responses. RNA-binding proteins (RBPs) bind cis-regulatory elements in the 3' untranslated regions (UTRs) of mRNA and regulate mRNA turnover and translation. In particular, eight RBPs (TTP, AUF1, KSRP, TIA-1/TIAR, Roquin, Regnase, HuR, and Arid5a) have been extensively studied and are key posttranscriptional regulators of inflammation and immune responses. These RBPs sometimes collaboratively or competitively bind the same target mRNA to enhance or dampen regulatory activities. These RBPs can also bind their own 3' UTRs to negatively or positively regulate their expression. Both upstream signaling pathways and microRNA regulation shape the interactions between RBPs and target RNA. Dysregulation of RBPs results in chronic inflammation and autoimmunity. Here, we summarize the functional roles of these eight RBPs in immunity and their associated diseases.


Subject(s)
MicroRNAs , RNA Stability , Animals , Gene Expression Regulation , Humans , MicroRNAs/genetics , RNA, Messenger/genetics , RNA-Binding Proteins/genetics , RNA-Binding Proteins/metabolism
2.
Annu Rev Biochem ; 92: 227-245, 2023 06 20.
Article in English | MEDLINE | ID: mdl-37001134

ABSTRACT

Messenger RNA (mRNA) stability and translational efficiency are two crucial aspects of the post-transcriptional process that profoundly impact protein production in a cell. While it is widely known that ribosomes produce proteins, studies during the past decade have surprisingly revealed that ribosomes also control mRNA stability in a codon-dependent manner, a process referred to as codon optimality. Therefore, codons, the three-nucleotide words read by the ribosome, have a potent effect on mRNA stability and provide cis-regulatory information that extends beyond the amino acids they encode. While the codon optimality molecular mechanism is still unclear, the translation elongation rate appears to trigger mRNA decay. Thus, transfer RNAs emerge as potential master gene regulators affecting mRNA stability. Furthermore, while few factors related to codon optimality have been identified in yeast, the orthologous genes in vertebrates do not necessary share the same functions. Here, we discuss codon optimality findings and gene regulation layers related to codon composition in different eukaryotic species.


Subject(s)
Protein Biosynthesis , Proteins , Animals , RNA, Messenger/metabolism , Codon/genetics , Proteins/genetics , RNA Stability , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism
3.
Cell ; 186(15): 3208-3226.e27, 2023 07 20.
Article in English | MEDLINE | ID: mdl-37379838

ABSTRACT

N7-methylguanosine (m7G) modification, routinely occurring at mRNA 5' cap or within tRNAs/rRNAs, also exists internally in messenger RNAs (mRNAs). Although m7G-cap is essential for pre-mRNA processing and protein synthesis, the exact role of mRNA internal m7G modification remains elusive. Here, we report that mRNA internal m7G is selectively recognized by Quaking proteins (QKIs). By transcriptome-wide profiling/mapping of internal m7G methylome and QKI-binding sites, we identified more than 1,000 high-confidence m7G-modified and QKI-bound mRNA targets with a conserved "GANGAN (N = A/C/U/G)" motif. Strikingly, QKI7 interacts (via C terminus) with the stress granule (SG) core protein G3BP1 and shuttles internal m7G-modified transcripts into SGs to regulate mRNA stability and translation under stress conditions. Specifically, QKI7 attenuates the translation efficiency of essential genes in Hippo signaling pathways to sensitize cancer cells to chemotherapy. Collectively, we characterized QKIs as mRNA internal m7G-binding proteins that modulate target mRNA metabolism and cellular drug resistance.


Subject(s)
DNA Helicases , RNA Helicases , DNA Helicases/metabolism , RNA Recognition Motif Proteins/genetics , RNA Recognition Motif Proteins/metabolism , RNA Helicases/metabolism , Stress Granules , Poly-ADP-Ribose Binding Proteins/genetics , Poly-ADP-Ribose Binding Proteins/metabolism , GTP-Binding Proteins/metabolism , RNA, Messenger/metabolism , Cytoplasmic Granules/metabolism
4.
Annu Rev Biochem ; 91: 133-155, 2022 06 21.
Article in English | MEDLINE | ID: mdl-35287470

ABSTRACT

Our current view of how DNA-based genomes are efficiently and accurately replicated continues to evolve as new details emerge on the presence of ribonucleotides in DNA. Ribonucleotides are incorporated during eukaryotic DNA replication at rates that make them the most common noncanonical nucleotide placed into the nuclear genome, they are efficiently repaired, and their removal impacts genome integrity. This review focuses on three aspects of this subject: the incorporation of ribonucleotides into the eukaryotic nuclear genome during replication by B-family DNA replicases, how these ribonucleotides are removed, and the consequences of their presence or removal for genome stability and disease.


Subject(s)
DNA Replication , Genomic Instability , Ribonucleotides , DNA/genetics , DNA/metabolism , DNA Repair , Eukaryota/genetics , Eukaryota/metabolism , Nucleotidyltransferases/genetics , Ribonucleotides/genetics , Ribonucleotides/metabolism
5.
Cell ; 185(12): 2035-2056.e33, 2022 06 09.
Article in English | MEDLINE | ID: mdl-35688132

ABSTRACT

Alpha-synuclein (αS) is a conformationally plastic protein that reversibly binds to cellular membranes. It aggregates and is genetically linked to Parkinson's disease (PD). Here, we show that αS directly modulates processing bodies (P-bodies), membraneless organelles that function in mRNA turnover and storage. The N terminus of αS, but not other synucleins, dictates mutually exclusive binding either to cellular membranes or to P-bodies in the cytosol. αS associates with multiple decapping proteins in close proximity on the Edc4 scaffold. As αS pathologically accumulates, aberrant interaction with Edc4 occurs at the expense of physiologic decapping-module interactions. mRNA decay kinetics within PD-relevant pathways are correspondingly disrupted in PD patient neurons and brain. Genetic modulation of P-body components alters αS toxicity, and human genetic analysis lends support to the disease-relevance of these interactions. Beyond revealing an unexpected aspect of αS function and pathology, our data highlight the versatility of conformationally plastic proteins with high intrinsic disorder.


Subject(s)
Parkinson Disease , alpha-Synuclein , Humans , Parkinson Disease/metabolism , Processing Bodies , RNA Stability , alpha-Synuclein/genetics , alpha-Synuclein/metabolism
6.
Cell ; 185(5): 860-871.e13, 2022 03 03.
Article in English | MEDLINE | ID: mdl-35120603

ABSTRACT

The SARS-CoV-2 Omicron variant with increased fitness is spreading rapidly worldwide. Analysis of cryo-EM structures of the spike (S) from Omicron reveals amino acid substitutions forging interactions that stably maintain an active conformation for receptor recognition. The relatively more compact domain organization confers improved stability and enhances attachment but compromises the efficiency of the viral fusion step. Alterations in local conformation, charge, and hydrophobic microenvironments underpin the modulation of the epitopes such that they are not recognized by most NTD- and RBD-antibodies, facilitating viral immune escape. Structure of the Omicron S bound with human ACE2, together with the analysis of sequence conservation in ACE2 binding region of 25 sarbecovirus members, as well as heatmaps of the immunogenic sites and their corresponding mutational frequencies, sheds light on conserved and structurally restrained regions that can be used for the development of broad-spectrum vaccines and therapeutics.


Subject(s)
Immune Evasion/physiology , SARS-CoV-2/physiology , Spike Glycoprotein, Coronavirus/chemistry , Angiotensin-Converting Enzyme 2/chemistry , Angiotensin-Converting Enzyme 2/metabolism , Antibodies, Viral/immunology , Binding Sites , COVID-19/immunology , COVID-19/pathology , COVID-19/virology , Cryoelectron Microscopy , Humans , Mutagenesis, Site-Directed , Neutralization Tests , Protein Binding , Protein Domains/immunology , Protein Structure, Quaternary , SARS-CoV-2/isolation & purification , Spike Glycoprotein, Coronavirus/genetics , Spike Glycoprotein, Coronavirus/metabolism , Surface Plasmon Resonance , Virus Attachment
7.
Cell ; 184(16): 4251-4267.e20, 2021 08 05.
Article in English | MEDLINE | ID: mdl-34260899

ABSTRACT

Genetic recombination generates novel trait combinations, and understanding how recombination is distributed across the genome is key to modern genetics. The PRDM9 protein defines recombination hotspots; however, megabase-scale recombination patterning is independent of PRDM9. The single round of DNA replication, which precedes recombination in meiosis, may establish these patterns; therefore, we devised an approach to study meiotic replication that includes robust and sensitive mapping of replication origins. We find that meiotic DNA replication is distinct; reduced origin firing slows replication in meiosis, and a distinctive replication pattern in human males underlies the subtelomeric increase in recombination. We detected a robust correlation between replication and both contemporary and historical recombination and found that replication origin density coupled with chromosome size determines the recombination potential of individual chromosomes. Our findings and methods have implications for understanding the mechanisms underlying DNA replication, genetic recombination, and the landscape of mammalian germline variation.


Subject(s)
Germ Cells/cytology , Homologous Recombination , Meiosis , Animals , Base Composition/genetics , Chromosomes, Mammalian/genetics , DNA Breaks, Double-Stranded , DNA Replication , Genome , Germ Cells/metabolism , Humans , Male , Mammals/metabolism , Mice , Replication Origin , S Phase , Telomere/metabolism , Testis/cytology
8.
Cell ; 184(9): 2302-2315.e12, 2021 04 29.
Article in English | MEDLINE | ID: mdl-33838112

ABSTRACT

By following up the gut microbiome, 51 human phenotypes and plasma levels of 1,183 metabolites in 338 individuals after 4 years, we characterize microbial stability and variation in relation to host physiology. Using these individual-specific and temporally stable microbial profiles, including bacterial SNPs and structural variations, we develop a microbial fingerprinting method that shows up to 85% accuracy in classifying metagenomic samples taken 4 years apart. Application of our fingerprinting method to the independent HMP cohort results in 95% accuracy for samples taken 1 year apart. We further observe temporal changes in the abundance of multiple bacterial species, metabolic pathways, and structural variation, as well as strain replacement. We report 190 longitudinal microbial associations with host phenotypes and 519 associations with plasma metabolites. These associations are enriched for cardiometabolic traits, vitamin B, and uremic toxins. Finally, mediation analysis suggests that the gut microbiome may influence cardiometabolic health through its metabolites.


Subject(s)
Bacteria/genetics , Bacterial Proteins/metabolism , Gastrointestinal Microbiome , Metabolome , Metagenome , Microbiota , Adult , Aged , Aged, 80 and over , Bacteria/classification , Bacteria/isolation & purification , Bacteria/metabolism , Bacterial Proteins/genetics , Drug Resistance, Microbial , Feces/microbiology , Female , Genomic Instability , Humans , Longitudinal Studies , Male , Middle Aged , Phenotype , Polymorphism, Single Nucleotide , Virulence Factors/genetics , Virulence Factors/metabolism , Young Adult
9.
Cell ; 182(2): 481-496.e21, 2020 07 23.
Article in English | MEDLINE | ID: mdl-32649862

ABSTRACT

The response to DNA damage is critical for cellular homeostasis, tumor suppression, immunity, and gametogenesis. In order to provide an unbiased and global view of the DNA damage response in human cells, we undertook 31 CRISPR-Cas9 screens against 27 genotoxic agents in the retinal pigment epithelium-1 (RPE1) cell line. These screens identified 890 genes whose loss causes either sensitivity or resistance to DNA-damaging agents. Mining this dataset, we discovered that ERCC6L2 (which is mutated in a bone-marrow failure syndrome) codes for a canonical non-homologous end-joining pathway factor, that the RNA polymerase II component ELOF1 modulates the response to transcription-blocking agents, and that the cytotoxicity of the G-quadruplex ligand pyridostatin involves trapping topoisomerase II on DNA. This map of the DNA damage response provides a rich resource to study this fundamental cellular system and has implications for the development and use of genotoxic agents in cancer therapy.


Subject(s)
DNA Damage , Gene Regulatory Networks/physiology , Aminoquinolines/pharmacology , Animals , CRISPR-Cas Systems/genetics , Cell Line , Cytochrome-B(5) Reductase/genetics , Cytochrome-B(5) Reductase/metabolism , DNA Damage/drug effects , DNA Helicases/genetics , DNA Helicases/metabolism , DNA Repair , DNA Topoisomerases, Type II/genetics , DNA Topoisomerases, Type II/metabolism , Humans , Mice , Picolinic Acids/pharmacology , RNA, Guide, Kinetoplastida/metabolism , Tumor Suppressor Protein p53/deficiency , Tumor Suppressor Protein p53/genetics
10.
Cell ; 181(5): 1046-1061.e6, 2020 05 28.
Article in English | MEDLINE | ID: mdl-32392465

ABSTRACT

Since their discovery, giant viruses have expanded our understanding of the principles of virology. Due to their gargantuan size and complexity, little is known about the life cycles of these viruses. To answer outstanding questions regarding giant virus infection mechanisms, we set out to determine biomolecular conditions that promote giant virus genome release. We generated four infection intermediates in Samba virus (Mimivirus genus, lineage A) as visualized by cryoelectron microscopy (cryo-EM), cryoelectron tomography (cryo-ET), and scanning electron microscopy (SEM). Each of these four intermediates reflects similar morphology to a stage that occurs in vivo. We show that these genome release stages are conserved in other mimiviruses. Finally, we identified proteins that are released from Samba and newly discovered Tupanvirus through differential mass spectrometry. Our work revealed the molecular forces that trigger infection are conserved among disparate giant viruses. This study is also the first to identify specific proteins released during the initial stages of giant virus infection.


Subject(s)
Giant Viruses/genetics , Giant Viruses/metabolism , Giant Viruses/physiology , Capsid/metabolism , DNA Viruses/genetics , Genome, Viral/genetics , Proteomics/methods , Virus Assembly/genetics , Virus Assembly/physiology , Virus Diseases/genetics , Viruses/genetics
11.
Cell ; 181(7): 1582-1595.e18, 2020 06 25.
Article in English | MEDLINE | ID: mdl-32492408

ABSTRACT

N6-methyladenosine (m6A) is the most abundant mRNA nucleotide modification and regulates critical aspects of cellular physiology and differentiation. m6A is thought to mediate its effects through a complex network of interactions between different m6A sites and three functionally distinct cytoplasmic YTHDF m6A-binding proteins (DF1, DF2, and DF3). In contrast to the prevailing model, we show that DF proteins bind the same m6A-modified mRNAs rather than different mRNAs. Furthermore, we find that DF proteins do not induce translation in HeLa cells. Instead, the DF paralogs act redundantly to mediate mRNA degradation and cellular differentiation. The ability of DF proteins to regulate stability and differentiation becomes evident only when all three DF paralogs are depleted simultaneously. Our study reveals a unified model of m6A function in which all m6A-modified mRNAs are subjected to the combined action of YTHDF proteins in proportion to the number of m6A sites.


Subject(s)
Adenosine/analogs & derivatives , RNA-Binding Proteins/metabolism , Adenosine/genetics , Adenosine/metabolism , Cell Differentiation , HeLa Cells , Humans , Methylation , Methyltransferases/metabolism , Protein Biosynthesis , RNA Stability , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA-Binding Proteins/genetics
12.
Annu Rev Biochem ; 88: 137-162, 2019 06 20.
Article in English | MEDLINE | ID: mdl-31220977

ABSTRACT

Genomic DNA is susceptible to endogenous and environmental stresses that modify DNA structure and its coding potential. Correspondingly, cells have evolved intricate DNA repair systems to deter changes to their genetic material. Base excision DNA repair involves a number of enzymes and protein cofactors that hasten repair of damaged DNA bases. Recent advances have identified macromolecular complexes that assemble at the DNA lesion and mediate repair. The repair of base lesions generally requires five enzymatic activities: glycosylase, endonuclease, lyase, polymerase, and ligase. The protein cofactors and mechanisms for coordinating the sequential enzymatic steps of repair are being revealed through a range of experimental approaches. We discuss the enzymes and protein cofactors involved in eukaryotic base excision repair, emphasizing the challenge of integrating findings from multiple methodologies. The results provide an opportunity to assimilate biochemical findings with cell-based assays to uncover new insights into this deceptively complex repair pathway.


Subject(s)
DNA Glycosylases/chemistry , DNA-Directed DNA Polymerase/chemistry , DNA/chemistry , Endonucleases/chemistry , Genome , Ligases/chemistry , Lyases/chemistry , DNA/metabolism , DNA/ultrastructure , DNA Damage , DNA Glycosylases/metabolism , DNA Glycosylases/ultrastructure , DNA Repair , DNA-Directed DNA Polymerase/metabolism , DNA-Directed DNA Polymerase/ultrastructure , Endonucleases/metabolism , Endonucleases/ultrastructure , Eukaryota/genetics , Eukaryota/metabolism , Eukaryotic Cells/cytology , Eukaryotic Cells/enzymology , Genomic Instability , Humans , Ligases/metabolism , Ligases/ultrastructure , Lyases/metabolism , Lyases/ultrastructure , Models, Molecular , Mutagenesis , Nucleic Acid Conformation , Protein Conformation
13.
Cell ; 175(7): 1872-1886.e24, 2018 12 13.
Article in English | MEDLINE | ID: mdl-30449621

ABSTRACT

Generation of the "epitranscriptome" through post-transcriptional ribonucleoside modification embeds a layer of regulatory complexity into RNA structure and function. Here, we describe N4-acetylcytidine (ac4C) as an mRNA modification that is catalyzed by the acetyltransferase NAT10. Transcriptome-wide mapping of ac4C revealed discretely acetylated regions that were enriched within coding sequences. Ablation of NAT10 reduced ac4C detection at the mapped mRNA sites and was globally associated with target mRNA downregulation. Analysis of mRNA half-lives revealed a NAT10-dependent increase in stability in the cohort of acetylated mRNAs. mRNA acetylation was further demonstrated to enhance substrate translation in vitro and in vivo. Codon content analysis within ac4C peaks uncovered a biased representation of cytidine within wobble sites that was empirically determined to influence mRNA decoding efficiency. These findings expand the repertoire of mRNA modifications to include an acetylated residue and establish a role for ac4C in the regulation of mRNA translation.


Subject(s)
Cytidine/analogs & derivatives , N-Terminal Acetyltransferase E/metabolism , Protein Biosynthesis , RNA, Messenger/metabolism , Acetylation , Cytidine/genetics , Cytidine/metabolism , HeLa Cells , Humans , N-Terminal Acetyltransferase E/genetics , N-Terminal Acetyltransferases , RNA, Messenger/genetics
14.
Cell ; 172(4): 744-757.e17, 2018 02 08.
Article in English | MEDLINE | ID: mdl-29398113

ABSTRACT

Cell communication within tissues is mediated by multiple paracrine signals including growth factors, which control cell survival and proliferation. Cells and the growth factors they produce and receive constitute a circuit with specific properties that ensure homeostasis. Here, we used computational and experimental approaches to characterize the features of cell circuits based on growth factor exchange between macrophages and fibroblasts, two cell types found in most mammalian tissues. We found that the macrophage-fibroblast cell circuit is stable and robust to perturbations. Analytical screening of all possible two-cell circuit topologies revealed the circuit features sufficient for stability, including environmental constraint and negative-feedback regulation. Moreover, we found that cell-cell contact is essential for the stability of the macrophage-fibroblast circuit. These findings illustrate principles of cell circuit design and provide a quantitative perspective on cell interactions.


Subject(s)
Cell Communication/physiology , Cell Proliferation/physiology , Fibroblasts/metabolism , Macrophages/metabolism , Animals , Cell Survival/physiology , Female , Fibroblasts/cytology , Macrophages/cytology , Male , Mice , Mice, Transgenic
15.
Cell ; 172(3): 439-453.e14, 2018 01 25.
Article in English | MEDLINE | ID: mdl-29290468

ABSTRACT

Telomere maintenance critically depends on the distinct activities of telomerase, which adds telomeric repeats to solve the end replication problem, and RTEL1, which dismantles DNA secondary structures at telomeres to facilitate replisome progression. Here, we establish that reversed replication forks are a pathological substrate for telomerase and the source of telomere catastrophe in Rtel1-/- cells. Inhibiting telomerase recruitment to telomeres, but not its activity, or blocking replication fork reversal through PARP1 inhibition or depleting UBC13 or ZRANB3 prevents the rapid accumulation of dysfunctional telomeres in RTEL1-deficient cells. In this context, we establish that telomerase binding to reversed replication forks inhibits telomere replication, which can be mimicked by preventing replication fork restart through depletion of RECQ1 or PARG. Our results lead us to propose that telomerase inappropriately binds to and inhibits restart of reversed replication forks within telomeres, which compromises replication and leads to critically short telomeres.


Subject(s)
DNA Helicases/genetics , DNA Replication , Telomere Homeostasis , Animals , Cell Line , Cells, Cultured , DNA Helicases/metabolism , Glycoside Hydrolases/metabolism , Mice , Poly (ADP-Ribose) Polymerase-1/metabolism , RecQ Helicases/metabolism , Ubiquitin-Conjugating Enzymes/metabolism
16.
Cell ; 173(7): 1622-1635.e14, 2018 06 14.
Article in English | MEDLINE | ID: mdl-29779948

ABSTRACT

Degrons are minimal elements that mediate the interaction of proteins with degradation machineries to promote proteolysis. Despite their central role in proteostasis, the number of known degrons remains small, and a facile technology to characterize them is lacking. Using a strategy combining global protein stability (GPS) profiling with a synthetic human peptidome, we identify thousands of peptides containing degron activity. Employing CRISPR screening, we establish that the stability of many proteins is regulated through degrons located at their C terminus. We characterize eight Cullin-RING E3 ubiquitin ligase (CRL) complex adaptors that regulate C-terminal degrons, including six CRL2 and two CRL4 complexes, and computationally implicate multiple non-CRLs in end recognition. Proteome analysis revealed that the C termini of eukaryotic proteins are depleted for C-terminal degrons, suggesting an E3-ligase-dependent modulation of proteome composition. Thus, we propose that a series of "C-end rules" operate to govern protein stability and shape the eukaryotic proteome.


Subject(s)
Proteome/metabolism , Ubiquitin-Protein Ligases/metabolism , Amino Acid Motifs , Animals , Antigens, Neoplasm/metabolism , CRISPR-Cas Systems/genetics , Computational Biology/methods , Genetic Vectors/genetics , Genetic Vectors/metabolism , HEK293 Cells , Humans , Lentivirus/genetics , Leupeptins/pharmacology , Open Reading Frames/genetics , Peptides/metabolism , Proteasome Endopeptidase Complex/chemistry , Proteasome Endopeptidase Complex/metabolism , Protein Stability/drug effects , Protein Subunits/metabolism , Proteolysis , Proteome/genetics , Receptors, Cytokine/genetics , Receptors, Cytokine/metabolism
17.
Cell ; 173(4): 851-863.e16, 2018 05 03.
Article in English | MEDLINE | ID: mdl-29576452

ABSTRACT

Hibernating mammals survive hypothermia (<10°C) without injury, a remarkable feat of cellular preservation that bears significance for potential medical applications. However, mechanisms imparting cold resistance, such as cytoskeleton stability, remain elusive. Using the first iPSC line from a hibernating mammal (13-lined ground squirrel), we uncovered cellular pathways critical for cold tolerance. Comparison between human and ground squirrel iPSC-derived neurons revealed differential mitochondrial and protein quality control responses to cold. In human iPSC-neurons, cold triggered mitochondrial stress, resulting in reactive oxygen species overproduction and lysosomal membrane permeabilization, contributing to microtubule destruction. Manipulations of these pathways endowed microtubule cold stability upon human iPSC-neurons and rat (a non-hibernator) retina, preserving its light responsiveness after prolonged cold exposure. Furthermore, these treatments significantly improved microtubule integrity in cold-stored kidneys, demonstrating the potential for prolonging shelf-life of organ transplants. Thus, ground squirrel iPSCs offer a unique platform for bringing cold-adaptive strategies from hibernators to humans in clinical applications. VIDEO ABSTRACT.


Subject(s)
Adaptation, Physiological , Induced Pluripotent Stem Cells/metabolism , Neurons/metabolism , Animals , Cell Differentiation , Cold Temperature , Humans , Induced Pluripotent Stem Cells/cytology , Kidney/drug effects , Kidney/metabolism , Lysosomes/metabolism , Mice , Mice, Inbred C57BL , Mitochondria/metabolism , Neurons/cytology , Oxidative Stress , Protease Inhibitors/pharmacology , Rats , Reactive Oxygen Species/metabolism , Retina/metabolism , Sciuridae , Transcriptome , Tubulin/chemistry , Tubulin/genetics , Tubulin/metabolism
18.
Annu Rev Biochem ; 86: 277-304, 2017 06 20.
Article in English | MEDLINE | ID: mdl-28654323

ABSTRACT

Metabolites are the small biological molecules involved in energy conversion and biosynthesis. Studying metabolism is inherently challenging due to metabolites' reactivity, structural diversity, and broad concentration range. Herein, we review the common pitfalls encountered in metabolomics and provide concrete guidelines for obtaining accurate metabolite measurements, focusing on water-soluble primary metabolites. We show how seemingly straightforward sample preparation methods can introduce systematic errors (e.g., owing to interconversion among metabolites) and how proper selection of quenching solvent (e.g., acidic acetonitrile:methanol:water) can mitigate such problems. We discuss the specific strengths, pitfalls, and best practices for each common analytical platform: liquid chromatography-mass spectrometry (LC-MS), gas chromatography-mass spectrometry (GC-MS), nuclear magnetic resonance (NMR), and enzyme assays. Together this information provides a pragmatic knowledge base for carrying out biologically informative metabolite measurements.


Subject(s)
Chromatography, Liquid/standards , Gas Chromatography-Mass Spectrometry/standards , Magnetic Resonance Spectroscopy/standards , Mass Spectrometry/standards , Metabolomics/standards , Adenosine Triphosphate/analysis , Animals , Glutathione/analysis , Guidelines as Topic , Humans , Liquid Phase Microextraction/methods , Metabolomics/instrumentation , Metabolomics/methods , Mice , NADP/analysis , Solvents
19.
Cell ; 169(7): 1214-1227.e18, 2017 Jun 15.
Article in English | MEDLINE | ID: mdl-28622508

ABSTRACT

Higher eukaryotic chromosomes are organized into topologically constrained functional domains; however, the molecular mechanisms required to sustain these complex interphase chromatin structures are unknown. A stable matrix underpinning nuclear organization was hypothesized, but the idea was abandoned as more dynamic models of chromatin behavior became prevalent. Here, we report that scaffold attachment factor A (SAF-A), originally identified as a structural nuclear protein, interacts with chromatin-associated RNAs (caRNAs) via its RGG domain to regulate human interphase chromatin structures in a transcription-dependent manner. Mechanistically, this is dependent on SAF-A's AAA+ ATPase domain, which mediates cycles of protein oligomerization with caRNAs, in response to ATP binding and hydrolysis. SAF-A oligomerization decompacts large-scale chromatin structure while SAF-A loss or monomerization promotes aberrant chromosome folding and accumulation of genome damage. Our results show that SAF-A and caRNAs form a dynamic, transcriptionally responsive chromatin mesh that organizes large-scale chromosome structures and protects the genome from instability.


Subject(s)
Chromosomes/metabolism , Genomic Instability , Heterogeneous-Nuclear Ribonucleoprotein U/metabolism , RNA, Small Nuclear/metabolism , Amino Acid Sequence , Chromatin , HEK293 Cells , Heterogeneous-Nuclear Ribonucleoprotein U/chemistry , Humans , Interphase , Models, Molecular , Sequence Alignment , Transcription, Genetic
20.
Cell ; 171(6): 1397-1410.e14, 2017 Nov 30.
Article in English | MEDLINE | ID: mdl-29107331

ABSTRACT

YAP is a mechanosensitive transcriptional activator with a critical role in cancer, regeneration, and organ size control. Here, we show that force applied to the nucleus directly drives YAP nuclear translocation by decreasing the mechanical restriction of nuclear pores to molecular transport. Exposure to a stiff environment leads cells to establish a mechanical connection between the nucleus and the cytoskeleton, allowing forces exerted through focal adhesions to reach the nucleus. Force transmission then leads to nuclear flattening, which stretches nuclear pores, reduces their mechanical resistance to molecular transport, and increases YAP nuclear import. The restriction to transport is further regulated by the mechanical stability of the transported protein, which determines both active nuclear transport of YAP and passive transport of small proteins. Our results unveil a mechanosensing mechanism mediated directly by nuclear pores, demonstrated for YAP but with potential general applicability in transcriptional regulation.


Subject(s)
Active Transport, Cell Nucleus , Adaptor Proteins, Signal Transducing/metabolism , Nuclear Pore/metabolism , Phosphoproteins/metabolism , Animals , Biomechanical Phenomena , Cell Cycle Proteins , Cell Line, Tumor , Cell Nucleus/metabolism , Humans , Mice , Transcription Factors , Transcription, Genetic , YAP-Signaling Proteins
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