Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 5.989
Filter
Add more filters

Publication year range
1.
Cell ; 186(24): 5237-5253.e22, 2023 11 22.
Article in English | MEDLINE | ID: mdl-37944512

ABSTRACT

Here, we report the design, construction, and characterization of a tRNA neochromosome, a designer chromosome that functions as an additional, de novo counterpart to the native complement of Saccharomyces cerevisiae. Intending to address one of the central design principles of the Sc2.0 project, the ∼190-kb tRNA neochromosome houses all 275 relocated nuclear tRNA genes. To maximize stability, the design incorporates orthogonal genetic elements from non-S. cerevisiae yeast species. Furthermore, the presence of 283 rox recombination sites enables an orthogonal tRNA SCRaMbLE system. Following construction in yeast, we obtained evidence of a potent selective force, manifesting as a spontaneous doubling in cell ploidy. Furthermore, tRNA sequencing, transcriptomics, proteomics, nucleosome mapping, replication profiling, FISH, and Hi-C were undertaken to investigate questions of tRNA neochromosome behavior and function. Its construction demonstrates the remarkable tractability of the yeast model and opens up opportunities to directly test hypotheses surrounding these essential non-coding RNAs.


Subject(s)
Chromosomes, Artificial, Yeast , Genome, Fungal , Saccharomyces cerevisiae , Gene Expression Profiling , Proteomics , Saccharomyces cerevisiae/genetics , Synthetic Biology , RNA, Transfer/genetics , Chromosomes, Artificial, Yeast/genetics
2.
Cell ; 185(24): 4654-4673.e28, 2022 11 23.
Article in English | MEDLINE | ID: mdl-36334589

ABSTRACT

Brown adipose tissue (BAT) regulates metabolic physiology. However, nearly all mechanistic studies of BAT protein function occur in a single inbred mouse strain, which has limited the understanding of generalizable mechanisms of BAT regulation over physiology. Here, we perform deep quantitative proteomics of BAT across a cohort of 163 genetically defined diversity outbred mice, a model that parallels the genetic and phenotypic variation found in humans. We leverage this diversity to define the functional architecture of the outbred BAT proteome, comprising 10,479 proteins. We assign co-operative functions to 2,578 proteins, enabling systematic discovery of regulators of BAT. We also identify 638 proteins that correlate with protection from, or sensitivity to, at least one parameter of metabolic disease. We use these findings to uncover SFXN5, LETMD1, and ATP1A2 as modulators of BAT thermogenesis or adiposity, and provide OPABAT as a resource for understanding the conserved mechanisms of BAT regulation over metabolic physiology.


Subject(s)
Adipose Tissue, Brown , Proteome , Humans , Mice , Animals , Adipose Tissue, Brown/metabolism , Proteome/metabolism , Thermogenesis/physiology , Adiposity , Obesity/metabolism , Mice, Inbred C57BL , Proto-Oncogene Proteins/metabolism
3.
Cell ; 177(3): 711-721.e8, 2019 04 18.
Article in English | MEDLINE | ID: mdl-30982603

ABSTRACT

Yeast ataxin-2, also known as Pbp1, senses the activity state of mitochondria in order to regulate TORC1. A domain of Pbp1 required to adapt cells to mitochondrial activity is of low sequence complexity. The low-complexity (LC) domain of Pbp1 forms labile, cross-ß polymers that facilitate phase transition of the protein into liquid-like or gel-like states. Phase transition for other LC domains is reliant upon widely distributed aromatic amino acids. In place of tyrosine or phenylalanine residues prototypically used for phase separation, Pbp1 contains 24 similarly disposed methionine residues. Here, we show that the Pbp1 methionine residues are sensitive to hydrogen peroxide (H2O2)-mediated oxidation in vitro and in living cells. Methionine oxidation melts Pbp1 liquid-like droplets in a manner reversed by methionine sulfoxide reductase enzymes. These observations explain how reversible formation of labile polymers by the Pbp1 LC domain enables the protein to function as a sensor of cellular redox state.


Subject(s)
Carrier Proteins/metabolism , Methionine/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Amino Acid Sequence , Carrier Proteins/chemistry , Carrier Proteins/genetics , Hydrogen Peroxide/pharmacology , Mechanistic Target of Rapamycin Complex 1/metabolism , Methionine/metabolism , Methionine Sulfoxide Reductases/metabolism , Mitochondria/drug effects , Mitochondria/metabolism , Mutagenesis, Site-Directed , Oxidation-Reduction , Oxidative Stress/drug effects , Phase Transition , Protein Domains , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/genetics
4.
Cell ; 177(3): 697-710.e17, 2019 04 18.
Article in English | MEDLINE | ID: mdl-30982600

ABSTRACT

Yeast ataxin-2, also known as Pbp1 (polyA binding protein-binding protein 1), is an intrinsically disordered protein implicated in stress granule formation, RNA biology, and neurodegenerative disease. To understand the endogenous function of this protein, we identify Pbp1 as a dedicated regulator of TORC1 signaling and autophagy under conditions that require mitochondrial respiration. Pbp1 binds to TORC1 specifically during respiratory growth, but utilizes an additional methionine-rich, low complexity (LC) region to inhibit TORC1. This LC region causes phase separation, forms reversible fibrils, and enables self-association into assemblies required for TORC1 inhibition. Mutants that weaken phase separation in vitro exhibit reduced capacity to inhibit TORC1 and induce autophagy. Loss of Pbp1 leads to mitochondrial dysfunction and reduced fitness during nutritional stress. Thus, Pbp1 forms a condensate in response to respiratory status to regulate TORC1 signaling.


Subject(s)
Carrier Proteins/metabolism , Mechanistic Target of Rapamycin Complex 1/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Signal Transduction , Amino Acid Sequence , Autophagy/drug effects , Carrier Proteins/chemistry , Carrier Proteins/genetics , Mechanistic Target of Rapamycin Complex 1/antagonists & inhibitors , Methionine/metabolism , Mitochondria/drug effects , Mitochondria/metabolism , Mutagenesis, Site-Directed , Phosphorylation , Protein Binding , Protein Domains , Saccharomyces cerevisiae/growth & development , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/genetics , Signal Transduction/drug effects , Sirolimus/pharmacology
5.
Cell ; 159(7): 1591-602, 2014 Dec 18.
Article in English | MEDLINE | ID: mdl-25525877

ABSTRACT

Acetyl-CoA represents a central node of carbon metabolism that plays a key role in bioenergetics, cell proliferation, and the regulation of gene expression. Highly glycolytic or hypoxic tumors must produce sufficient quantities of this metabolite to support cell growth and survival under nutrient-limiting conditions. Here, we show that the nucleocytosolic acetyl-CoA synthetase enzyme, ACSS2, supplies a key source of acetyl-CoA for tumors by capturing acetate as a carbon source. Despite exhibiting no gross deficits in growth or development, adult mice lacking ACSS2 exhibit a significant reduction in tumor burden in two different models of hepatocellular carcinoma. ACSS2 is expressed in a large proportion of human tumors, and its activity is responsible for the majority of cellular acetate uptake into both lipids and histones. These observations may qualify ACSS2 as a targetable metabolic vulnerability of a wide spectrum of tumors.


Subject(s)
Acetate-CoA Ligase/metabolism , Acetates/metabolism , Neoplasms/metabolism , Acetate-CoA Ligase/analysis , Acetate-CoA Ligase/genetics , Acetyl Coenzyme A/metabolism , Animals , Humans , Immunohistochemistry , Liver Neoplasms/metabolism , Mice , Neoplasms/chemistry , Neoplasms/pathology , Positron-Emission Tomography , Triple Negative Breast Neoplasms/chemistry , Triple Negative Breast Neoplasms/pathology
6.
Cell ; 159(6): 1417-1432, 2014 Dec 04.
Article in English | MEDLINE | ID: mdl-25467445

ABSTRACT

Pain information processing in the spinal cord has been postulated to rely on nociceptive transmission (T) neurons receiving inputs from nociceptors and Aß mechanoreceptors, with Aß inputs gated through feed-forward activation of spinal inhibitory neurons (INs). Here, we used intersectional genetic manipulations to identify these critical components of pain transduction. Marking and ablating six populations of spinal excitatory and inhibitory neurons, coupled with behavioral and electrophysiological analysis, showed that excitatory neurons expressing somatostatin (SOM) include T-type cells, whose ablation causes loss of mechanical pain. Inhibitory neurons marked by the expression of dynorphin (Dyn) represent INs, which are necessary to gate Aß fibers from activating SOM(+) neurons to evoke pain. Therefore, peripheral mechanical nociceptors and Aß mechanoreceptors, together with spinal SOM(+) excitatory and Dyn(+) inhibitory neurons, form a microcircuit that transmits and gates mechanical pain. PAPERCLIP:


Subject(s)
Neurons/physiology , Pain/metabolism , Spinal Cord/physiology , Animals , Dynorphins/metabolism , Mechanoreceptors/metabolism , Mice , Pain Perception , Somatostatin/metabolism
7.
Nature ; 616(7958): 790-797, 2023 04.
Article in English | MEDLINE | ID: mdl-36921622

ABSTRACT

Lactate is abundant in rapidly dividing cells owing to the requirement for elevated glucose catabolism to support proliferation1-6. However, it is not known whether accumulated lactate affects the proliferative state. Here we use a systematic approach to determine lactate-dependent regulation of proteins across the human proteome. From these data, we identify a mechanism of cell cycle regulation whereby accumulated lactate remodels the anaphase promoting complex (APC/C). Remodelling of APC/C in this way is caused by direct inhibition of the SUMO protease SENP1 by lactate. We find that accumulated lactate binds and inhibits SENP1 by forming a complex with zinc in the SENP1 active site. SENP1 inhibition by lactate stabilizes SUMOylation of two residues on APC4, which drives UBE2C binding to APC/C. This direct regulation of APC/C by lactate stimulates timed degradation of cell cycle proteins, and efficient mitotic exit in proliferative human cells. This mechanism is initiated upon mitotic entry when lactate abundance reaches its apex. In this way, accumulation of lactate communicates the consequences of a nutrient-replete growth phase to stimulate timed opening of APC/C, cell division and proliferation. Conversely, persistent accumulation of lactate drives aberrant APC/C remodelling and can overcome anti-mitotic pharmacology via mitotic slippage. In sum, we define a biochemical mechanism through which lactate directly regulates protein function to control the cell cycle and proliferation.


Subject(s)
Anaphase-Promoting Complex-Cyclosome , Cell Cycle Proteins , Cell Cycle , Lactic Acid , Humans , Anaphase , Anaphase-Promoting Complex-Cyclosome/metabolism , Cell Cycle Proteins/metabolism , Lactic Acid/metabolism , Mitosis
8.
Cell ; 155(3): 594-605, 2013 Oct 24.
Article in English | MEDLINE | ID: mdl-24243017

ABSTRACT

Nuclear export of unspliced and singly spliced viral mRNA is a critical step in the HIV life cycle. The structural basis by which the virus selects its own mRNA among more abundant host cellular RNAs for export has been a mystery for more than 25 years. Here, we describe an unusual topological structure that the virus uses to recognize its own mRNA. The viral Rev response element (RRE) adopts an "A"-like structure in which the two legs constitute two tracks of binding sites for the viral Rev protein and position the two primary known Rev-binding sites ~55 Å apart, matching the distance between the two RNA-binding motifs in the Rev dimer. Both the legs of the "A" and the separation between them are required for optimal RRE function. This structure accounts for the specificity of Rev for the RRE and thus the specific recognition of the viral RNA.


Subject(s)
Active Transport, Cell Nucleus , HIV-1/chemistry , RNA, Messenger/chemistry , RNA, Viral/chemistry , rev Gene Products, Human Immunodeficiency Virus/chemistry , Base Sequence , Binding Sites , Cell Nucleus/metabolism , HEK293 Cells , HIV-1/genetics , Humans , Molecular Sequence Data , Nuclear Pore/metabolism , Nucleic Acid Conformation , RNA Folding , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA, Viral/genetics , RNA, Viral/metabolism , Scattering, Small Angle , X-Ray Diffraction , rev Gene Products, Human Immunodeficiency Virus/genetics , rev Gene Products, Human Immunodeficiency Virus/metabolism
9.
Nature ; 598(7879): 159-166, 2021 10.
Article in English | MEDLINE | ID: mdl-34616071

ABSTRACT

An essential step toward understanding brain function is to establish a structural framework with cellular resolution on which multi-scale datasets spanning molecules, cells, circuits and systems can be integrated and interpreted1. Here, as part of the collaborative Brain Initiative Cell Census Network (BICCN), we derive a comprehensive cell type-based anatomical description of one exemplar brain structure, the mouse primary motor cortex, upper limb area (MOp-ul). Using genetic and viral labelling, barcoded anatomy resolved by sequencing, single-neuron reconstruction, whole-brain imaging and cloud-based neuroinformatics tools, we delineated the MOp-ul in 3D and refined its sublaminar organization. We defined around two dozen projection neuron types in the MOp-ul and derived an input-output wiring diagram, which will facilitate future analyses of motor control circuitry across molecular, cellular and system levels. This work provides a roadmap towards a comprehensive cellular-resolution description of mammalian brain architecture.


Subject(s)
Motor Cortex/anatomy & histology , Motor Cortex/cytology , Neurons/classification , Animals , Atlases as Topic , Female , GABAergic Neurons/cytology , GABAergic Neurons/metabolism , Glutamates/metabolism , Male , Mice , Mice, Inbred C57BL , Neuroimaging , Neurons/cytology , Neurons/metabolism , Organ Specificity , Sequence Analysis, RNA , Single-Cell Analysis
10.
Mol Cell ; 73(6): 1115-1126.e6, 2019 03 21.
Article in English | MEDLINE | ID: mdl-30772176

ABSTRACT

Dysregulation of chromatin methylation is associated with defects in cellular differentiation as well as a variety of cancers. How cells regulate the opposing activities of histone methyltransferase and demethylase enzymes to set the methylation status of the epigenome for proper control of gene expression and metabolism remains poorly understood. Here, we show that loss of methylation of the major phosphatase PP2A in response to methionine starvation activates the demethylation of histones through hyperphosphorylation of specific demethylase enzymes. In parallel, this regulatory mechanism enables cells to preserve SAM by increasing SAH to limit SAM consumption by methyltransferase enzymes. Mutants lacking the PP2A methyltransferase or the effector H3K36 demethylase Rph1 exhibit elevated SAM levels and are dependent on cysteine due to reduced capacity to sink the methyl groups of SAM. Therefore, PP2A directs the methylation status of histones by regulating the phosphorylation status of histone demethylase enzymes in response to SAM levels.


Subject(s)
Chromatin/metabolism , DNA Methylation , Histones/metabolism , Protein Phosphatase 2/metabolism , Protein Processing, Post-Translational , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/enzymology , Chromatin/genetics , Dealkylation , Gene Expression Regulation, Fungal , Histone Demethylases/genetics , Histone Demethylases/metabolism , Methylation , Mutation , Protein Binding , Protein Phosphatase 2/genetics , Repressor Proteins/genetics , Repressor Proteins/metabolism , S-Adenosylmethionine/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics
11.
PLoS Biol ; 21(12): e3002429, 2023 Dec.
Article in English | MEDLINE | ID: mdl-38079456

ABSTRACT

Motile bacteria navigate toward favorable conditions and away from unfavorable environments using chemotaxis. Mechanisms of sensing attractants are well understood; however, molecular aspects of how bacteria sense repellents have not been established. Here, we identified malate as a repellent recognized by the MCP2201 chemoreceptor in a bacterium Comamonas testosteroni and showed that it binds to the same site as an attractant citrate. Binding determinants for a repellent and an attractant had only minor differences, and a single amino acid substitution in the binding site inverted the response to malate from a repellent to an attractant. We found that malate and citrate affect the oligomerization state of the ligand-binding domain in opposing way. We also observed opposing effects of repellent and attractant binding on the orientation of an alpha helix connecting the sensory domain to the transmembrane helix. We propose a model to illustrate how positive and negative signals might be generated.


Subject(s)
Bacterial Proteins , Malates , Methyl-Accepting Chemotaxis Proteins/chemistry , Bacterial Proteins/metabolism , Ligands , Escherichia coli/metabolism , Chemotaxis/physiology , Bacteria/metabolism , Citrates
12.
PLoS Biol ; 21(10): e3002313, 2023 Oct.
Article in English | MEDLINE | ID: mdl-37796762

ABSTRACT

Mutations in mitochondrial DNA (mtDNA) contribute to a variety of serious multi-organ human diseases, which are strictly inherited from the maternal germline. However, there is currently no curative treatment. Attention has been focused on preventing the transmission of mitochondrial diseases through mitochondrial replacement (MR) therapy, but levels of mutant mtDNA can often unexpectedly undergo significant changes known as mitochondrial genetic drift. Here, we proposed a novel strategy to perform spindle-chromosomal complex transfer (SCCT) with maximal residue removal (MRR) in metaphase II (MII) oocytes, thus hopefully eliminated the transmission of mtDNA diseases. With the MRR procedure, we initially investigated the proportions of mtDNA copy numbers in isolated karyoplasts to those of individual oocytes. Spindle-chromosomal morphology and copy number variation (CNV) analysis also confirmed the safety of this method. Then, we reconstructed oocytes by MRR-SCCT, which well developed to blastocysts with minimal mtDNA residue and normal chromosomal copy numbers. Meanwhile, we optimized the manipulation order between intracytoplasmic sperm injection (ICSI) and SCC transfer and concluded that ICSI-then-transfer was conducive to avoid premature activation of reconstructed oocytes in favor of normal fertilization. Offspring of mice generated by embryos transplantation in vivo and embryonic stem cells derivation further presented evidences for competitive development competence and stable mtDNA carryover without genetic drift. Importantly, we also successfully accomplished SCCT in human MII oocytes resulting in tiny mtDNA residue and excellent embryo development through MRR manipulation. Taken together, our preclinical mouse and human models of the MRR-SCCT strategy not only demonstrated efficient residue removal but also high compatibility with normal embryo development, thus could potentially be served as a feasible clinical treatment to prevent the transmission of inherited mtDNA diseases.


Subject(s)
DNA Copy Number Variations , Mitochondrial Diseases , Male , Humans , Animals , Mice , DNA Copy Number Variations/genetics , Semen , Mitochondria/genetics , DNA, Mitochondrial/genetics , DNA, Mitochondrial/analysis , Mitochondrial Diseases/genetics , Mitochondrial Diseases/prevention & control , Oocytes
13.
Cell ; 144(2): 282-95, 2011 Jan 21.
Article in English | MEDLINE | ID: mdl-21241895

ABSTRACT

At a synapse, fast synchronous neurotransmitter release requires localization of Ca(2+) channels to presynaptic active zones. How Ca(2+) channels are recruited to active zones, however, remains unknown. Using unbiased yeast two-hybrid screens, we here identify a direct interaction of the central PDZ domain of the active-zone protein RIM with the C termini of presynaptic N- and P/Q-type Ca(2+) channels but not L-type Ca(2+) channels. To test the physiological significance of this interaction, we generated conditional knockout mice lacking all multidomain RIM isoforms. Deletion of RIM proteins ablated most neurotransmitter release by simultaneously impairing the priming of synaptic vesicles and by decreasing the presynaptic localization of Ca(2+) channels. Strikingly, rescue of the decreased Ca(2+)-channel localization required the RIM PDZ domain, whereas rescue of vesicle priming required the RIM N terminus. We propose that RIMs tether N- and P/Q-type Ca(2+) channels to presynaptic active zones via a direct PDZ-domain-mediated interaction, thereby enabling fast, synchronous triggering of neurotransmitter release at a synapse.


Subject(s)
ATP-Binding Cassette Transporters/metabolism , Calcium Channels/metabolism , GTP-Binding Proteins/metabolism , Nerve Tissue Proteins/metabolism , ATP-Binding Cassette Transporters/chemistry , Animals , Calcium/metabolism , Calcium Channels/chemistry , GTP-Binding Proteins/chemistry , Mice , Mice, Knockout , Nerve Tissue Proteins/chemistry , Neurotransmitter Agents/metabolism , Presynaptic Terminals/metabolism , Protein Isoforms/chemistry , Protein Isoforms/metabolism , Protein Structure, Tertiary , Two-Hybrid System Techniques
14.
Nature ; 577(7789): 199-203, 2020 01.
Article in English | MEDLINE | ID: mdl-31915396

ABSTRACT

Bulk amorphous materials have been studied extensively and are widely used, yet their atomic arrangement remains an open issue. Although they are generally believed to be Zachariasen continuous random networks1, recent experimental evidence favours the competing crystallite model in the case of amorphous silicon2-4. In two-dimensional materials, however,  the corresponding questions remain unanswered. Here we report the synthesis, by laser-assisted chemical vapour deposition5, of centimetre-scale, free-standing, continuous and stable monolayer amorphous carbon, topologically distinct from disordered graphene. Unlike in bulk materials, the structure of monolayer amorphous carbon can be determined by atomic-resolution imaging. Extensive characterization by Raman and X-ray spectroscopy and transmission electron microscopy reveals the complete absence of long-range periodicity and a threefold-coordinated structure with a wide distribution of bond lengths, bond angles, and five-, six-, seven- and eight-member rings. The ring distribution is not a Zachariasen continuous random network, but resembles the competing (nano)crystallite model6. We construct a corresponding model that enables density-functional-theory calculations of the properties of monolayer amorphous carbon, in accordance with observations. Direct measurements confirm that it is insulating, with resistivity values similar to those of boron nitride grown by chemical vapour deposition. Free-standing monolayer amorphous carbon is surprisingly stable and deforms to a high breaking strength, without crack propagation from the point of fracture. The excellent physical properties of this stable, free-standing monolayer amorphous carbon could prove useful for permeation and diffusion barriers in applications such as magnetic recording devices and flexible electronics.

15.
Plant J ; 2024 Apr 12.
Article in English | MEDLINE | ID: mdl-38606500

ABSTRACT

Drought stress is one of the dominating challenges to the growth and productivity in crop plants. Elucidating the molecular mechanisms of plants responses to drought stress is fundamental to improve fruit quality. However, such molecular mechanisms are poorly understood in apple (Malus domestica Borkh.). In this study, we explored that the BTB-BACK-TAZ protein, MdBT2, negatively modulates the drought tolerance of apple plantlets. Moreover, we identified a novel Homeodomain-leucine zipper (HD-Zip) transcription factor, MdHDZ27, using a yeast two-hybrid (Y2H) screen with MdBT2 as the bait. Overexpression of MdHDZ27 in apple plantlets, calli, and tomato plantlets enhanced their drought tolerance by promoting the expression of drought tolerance-related genes [responsive to dehydration 29A (MdRD29A) and MdRD29B]. Biochemical analyses demonstrated that MdHDZ27 directly binds to and activates the promoters of MdRD29A and MdRD29B. Furthermore, in vitro and in vivo assays indicate that MdBT2 interacts with and ubiquitinates MdHDZ27, via the ubiquitin/26S proteasome pathway. This ubiquitination results in the degradation of MdHDZ27 and weakens the transcriptional activation of MdHDZ27 on MdRD29A and MdRD29B. Finally, a series of transgenic analyses in apple plantlets further clarified the role of the relationship between MdBT2 and MdHDZ27, as well as the effect of their interaction on drought resistance in apple plantlets. Collectively, our findings reveal a novel mechanism by which the MdBT2-MdHDZ27 regulatory module controls drought tolerance, which is of great significance for enhancing the drought resistance of apple and other plants.

16.
Hum Mol Genet ; 32(3): 506-519, 2023 01 13.
Article in English | MEDLINE | ID: mdl-36067019

ABSTRACT

Epilepsy is a chronic neurological disorder featuring recurrent, unprovoked seizures, which affect more than 65 million people worldwide. Here, we discover that the PKHD1L1, which is encoded by polycystic kidney and hepatic disease1-like 1 (Pkhd1l1), wildly distributes in neurons in the central nervous system (CNS) of mice. Disruption of PKHD1L1 in the dentate gyrus region of the hippocampus leads to increased susceptibility to pentylenetetrazol-induced seizures in mice. The disturbance of PKHD1L1 leads to the overactivation of the mitogen-activated protein kinase (MAPK)/extracellular regulated kinase (ERK)-Calpain pathway, which is accompanied by remarkable degradation of cytoplasmic potassium chloride co-transporter 2 (KCC2) level together with the impaired expression and function of membrane KCC2. However, the reduction of membrane KCC2 is associated with the damaged inhibitory ability of the vital GABA receptors, which ultimately leads to the significantly increased susceptibility to epileptic seizures. Our data, thus, indicate for the first time that Pkhd1l1, a newly discovered polycystic kidney disease (PKD) association gene, is required in neurons to maintain neuronal excitability by regulation of KCC2 expression in CNS. A new mechanism of the clinical association between genetic PKD and seizures has been built, which could be a potential therapeutic target for treating PKD-related seizures.


Subject(s)
Epilepsy , Symporters , Mice , Animals , Seizures/genetics , Seizures/metabolism , Epilepsy/metabolism , Hippocampus/metabolism , Symporters/genetics , Dentate Gyrus/metabolism
17.
Rev Physiol Biochem Pharmacol ; 184: 159-179, 2023.
Article in English | MEDLINE | ID: mdl-35380274

ABSTRACT

Pulmonary hypertension (PH) is a disease with high pulmonary arterial pressure, pulmonary vasoconstriction, pulmonary vascular remodeling, and microthrombosis in complex plexiform lesions, but it has been unclear of the exact mechanism of PH. A new understanding of the pathogenesis of PH is occurred and focused on the role of crosstalk between the cells on pulmonary vessels and pulmonary alveoli. It was found that the crosstalks among the endothelial cells, smooth muscle cells, fibroblasts, pericytes, alveolar epithelial cells, and macrophages play important roles in cell proliferation, migration, inflammation, and so on. Therefore, the heterogeneity of multiple pulmonary blood vessels and alveolar cells and tracking the transmitters of cell communication could be conducive to the further insights into the pathogenesis of PH to discover the potential therapeutic targets for PH.


Subject(s)
Hypertension, Pulmonary , Humans , Hypertension, Pulmonary/etiology , Hypertension, Pulmonary/pathology , Endothelial Cells , Lung/pathology , Pericytes/pathology , Cell Communication , Vascular Remodeling
18.
Rev Physiol Biochem Pharmacol ; 186: 177-198, 2023.
Article in English | MEDLINE | ID: mdl-36472676

ABSTRACT

Alveolar macrophages (AMs) are extremely versatile cells with complex functions involved in health or diseases such as pneumonia, asthma, and pulmonary alveolar proteinosis. In recent years, it has been widely identified that the different functions and states of macrophages are the results from the complex interplay between microenvironmental signals and macrophage lineage. Diverse and complicated signals to which AMs respond are mentioned when they are described individually or in a particular state of AMs. In this review, the microenvironmental signals are divided into autocrine, paracrine, and endocrine signals based on their secreting characteristics. This new perspective on classification provides a more comprehensive and systematic introduction to the complex signals around AMs and is helpful for understanding the roles of AMs affected by physiological environment. The existing possible treatments of AMs are also mentioned in it. The thorough understanding of AMs signals modulation may be contributed to the development of more effective therapies for AMs-related lung diseases.


Subject(s)
Asthma , Lung Diseases , Pulmonary Alveolar Proteinosis , Humans , Macrophages, Alveolar , Macrophages
19.
Plant Physiol ; 2024 May 02.
Article in English | MEDLINE | ID: mdl-38696652

ABSTRACT

Pear ring rot, caused by Botryosphaeria dothidea, is the most serious disease of pear (Pyrus spp.) trees. However, the molecular mechanisms underlying pear resistance to B. dothidea remain elusive. Herein, we demonstrated that the pear AuTophagy-related Gene 1a (PbrATG1a) plays a key role in autophagic activity and resistance to B. dothidea. Stable overexpression of PbrATG1a enhanced resistance to B. dothidea in pear calli. Autophagy activity was greater in PbrATG1a overexpressing calli than in WT calli. We used yeast one-hybrid screening to identify a transcription factor, Related to ABI3 and VP1 (Pbr3RAV2), that binds the promoter of PbrATG1a and enhances pear resistance to B. dothidea by regulating autophagic activity. Specifically, overexpression of Pbr3RAV2 enhanced resistance to B. dothidea in pear calli, while transient silencing of Pbr3RAV2 resulted in compromised resistance to B. dothidea in Pyrus betulaefolia. In addition, we identified Transparent Testa Glabra 1 (PbrTTG1), which interacts with Pbr3RAV2. Pathogen infection enhanced the interaction between Pbr3RAV2 and PbrTTG1. The Pbr3RAV2-PbrTTG1 complex increased the binding capacity of Pbr3RAV2 and transcription of PbrATG1a. In addition to providing insights into the molecular mechanisms underlying pear disease resistance, these findings suggest potential genetic targets for enhancing disease resistance in pear.

20.
Mol Psychiatry ; 29(5): 1253-1264, 2024 May.
Article in English | MEDLINE | ID: mdl-38228891

ABSTRACT

The pathophysiology of autism spectrum disorders (ASDs) is causally linked to postsynaptic scaffolding proteins, as evidenced by numerous large-scale genomic studies [1, 2] and in vitro and in vivo neurobiological studies of mutations in animal models [3, 4]. However, due to the distinct phenotypic and genetic heterogeneity observed in ASD patients, individual mutation genes account for only a small proportion (<2%) of cases [1, 5]. Recently, a human genetic study revealed a correlation between de novo variants in FERM domain-containing-5 (FRMD5) and neurodevelopmental abnormalities [6]. In this study, we demonstrate that deficiency of the scaffolding protein FRMD5 leads to neurodevelopmental dysfunction and ASD-like behavior in mice. FRMD5 deficiency results in morphological abnormalities in neurons and synaptic dysfunction in mice. Frmd5-deficient mice display learning and memory dysfunction, impaired social function, and increased repetitive stereotyped behavior. Mechanistically, tandem mass tag (TMT)-labeled quantitative proteomics revealed that FRMD5 deletion affects the distribution of synaptic proteins involved in the pathological process of ASD. Collectively, our findings delineate the critical role of FRMD5 in neurodevelopment and ASD pathophysiology, suggesting potential therapeutic implications for the treatment of ASD.


Subject(s)
Autism Spectrum Disorder , Disease Models, Animal , Membrane Proteins , Neurodevelopmental Disorders , Animals , Mice , Autism Spectrum Disorder/genetics , Autism Spectrum Disorder/metabolism , Neurodevelopmental Disorders/genetics , Neurodevelopmental Disorders/metabolism , Membrane Proteins/genetics , Membrane Proteins/metabolism , Male , Neurons/metabolism , Behavior, Animal/physiology , Cytoskeletal Proteins/genetics , Cytoskeletal Proteins/metabolism , Mice, Knockout , Autistic Disorder/genetics , Autistic Disorder/metabolism , Mice, Inbred C57BL , Social Behavior , Stereotyped Behavior , Synapses/metabolism , Female
SELECTION OF CITATIONS
SEARCH DETAIL