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1.
Cell ; 179(6): 1319-1329.e8, 2019 11 27.
Artículo en Inglés | MEDLINE | ID: mdl-31704029

RESUMEN

mTORC1 controls anabolic and catabolic processes in response to nutrients through the Rag GTPase heterodimer, which is regulated by multiple upstream protein complexes. One such regulator, FLCN-FNIP2, is a GTPase activating protein (GAP) for RagC/D, but despite its important role, how it activates the Rag GTPase heterodimer remains unknown. We used cryo-EM to determine the structure of FLCN-FNIP2 in a complex with the Rag GTPases and Ragulator. FLCN-FNIP2 adopts an extended conformation with two pairs of heterodimerized domains. The Longin domains heterodimerize and contact both nucleotide binding domains of the Rag heterodimer, while the DENN domains interact at the distal end of the structure. Biochemical analyses reveal a conserved arginine on FLCN as the catalytic arginine finger and lead us to interpret our structure as an on-pathway intermediate. These data reveal features of a GAP-GTPase interaction and the structure of a critical component of the nutrient-sensing mTORC1 pathway.


Asunto(s)
Proteínas Portadoras/ultraestructura , Microscopía por Crioelectrón , Proteínas de Unión al GTP Monoméricas/ultraestructura , Complejos Multiproteicos/ultraestructura , Proteínas Proto-Oncogénicas/ultraestructura , Proteínas Supresoras de Tumor/ultraestructura , Arginina/metabolismo , Biocatálisis , Proteínas Portadoras/química , Proteínas Activadoras de GTPasa/metabolismo , Células HEK293 , Humanos , Hidrólisis , Modelos Moleculares , Proteínas de Unión al GTP Monoméricas/química , Complejos Multiproteicos/química , Conformación Proteica , Multimerización de Proteína , Proteínas Proto-Oncogénicas/química , Proteínas Supresoras de Tumor/química
2.
Nat Rev Mol Cell Biol ; 21(4): 183-203, 2020 04.
Artículo en Inglés | MEDLINE | ID: mdl-31937935

RESUMEN

The mTOR pathway integrates a diverse set of environmental cues, such as growth factor signals and nutritional status, to direct eukaryotic cell growth. Over the past two and a half decades, mapping of the mTOR signalling landscape has revealed that mTOR controls biomass accumulation and metabolism by modulating key cellular processes, including protein synthesis and autophagy. Given the pathway's central role in maintaining cellular and physiological homeostasis, dysregulation of mTOR signalling has been implicated in metabolic disorders, neurodegeneration, cancer and ageing. In this Review, we highlight recent advances in our understanding of the complex regulation of the mTOR pathway and discuss its function in the context of physiology, human disease and pharmacological intervention.


Asunto(s)
Serina-Treonina Quinasas TOR/genética , Serina-Treonina Quinasas TOR/metabolismo , Envejecimiento/metabolismo , Animales , Autofagia/fisiología , Humanos , Enfermedades Metabólicas/metabolismo , Neoplasias/metabolismo , Estado Nutricional/fisiología , Biosíntesis de Proteínas/fisiología , Transducción de Señal/fisiología
3.
Nat Rev Mol Cell Biol ; 21(4): 246, 2020 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-32005970

RESUMEN

An amendment to this paper has been published and can be accessed via a link at the top of the paper.

4.
Cell ; 168(6): 960-976, 2017 03 09.
Artículo en Inglés | MEDLINE | ID: mdl-28283069

RESUMEN

The mechanistic target of rapamycin (mTOR) coordinates eukaryotic cell growth and metabolism with environmental inputs, including nutrients and growth factors. Extensive research over the past two decades has established a central role for mTOR in regulating many fundamental cell processes, from protein synthesis to autophagy, and deregulated mTOR signaling is implicated in the progression of cancer and diabetes, as well as the aging process. Here, we review recent advances in our understanding of mTOR function, regulation, and importance in mammalian physiology. We also highlight how the mTOR signaling network contributes to human disease and discuss the current and future prospects for therapeutically targeting mTOR in the clinic.


Asunto(s)
Transducción de Señal , Serina-Treonina Quinasas TOR/metabolismo , Envejecimiento/metabolismo , Animales , Diabetes Mellitus/metabolismo , Glucosa/metabolismo , Humanos , Músculos/metabolismo , Neoplasias/metabolismo
5.
Cell ; 168(5): 890-903.e15, 2017 02 23.
Artículo en Inglés | MEDLINE | ID: mdl-28162770

RESUMEN

The genetic dependencies of human cancers widely vary. Here, we catalog this heterogeneity and use it to identify functional gene interactions and genotype-dependent liabilities in cancer. By using genome-wide CRISPR-based screens, we generate a gene essentiality dataset across 14 human acute myeloid leukemia (AML) cell lines. Sets of genes with correlated patterns of essentiality across the lines reveal new gene relationships, the essential substrates of enzymes, and the molecular functions of uncharacterized proteins. Comparisons of differentially essential genes between Ras-dependent and -independent lines uncover synthetic lethal partners of oncogenic Ras. Screens in both human AML and engineered mouse pro-B cells converge on a surprisingly small number of genes in the Ras processing and MAPK pathways and pinpoint PREX1 as an AML-specific activator of MAPK signaling. Our findings suggest general strategies for defining mammalian gene networks and synthetic lethal interactions by exploiting the natural genetic and epigenetic diversity of human cancer cells.


Asunto(s)
Redes Reguladoras de Genes , Leucemia Mieloide Aguda/genética , Animales , Proteínas Portadoras , Línea Celular Tumoral , Repeticiones Palindrómicas Cortas Agrupadas y Regularmente Espaciadas , Epigénesis Genética , Genes Esenciales , Humanos , Sistema de Señalización de MAP Quinasas , Ratones , Proteínas Mitocondriales , Procesamiento Proteico-Postraduccional , Proteínas ras/genética
6.
Cell ; 169(2): 258-272.e17, 2017 Apr 06.
Artículo en Inglés | MEDLINE | ID: mdl-28388410

RESUMEN

A complex interplay of environmental factors impacts the metabolism of human cells, but neither traditional culture media nor mouse plasma mimic the metabolite composition of human plasma. Here, we developed a culture medium with polar metabolite concentrations comparable to those of human plasma (human plasma-like medium [HPLM]). Culture in HPLM, relative to that in traditional media, had widespread effects on cellular metabolism, including on the metabolome, redox state, and glucose utilization. Among the most prominent was an inhibition of de novo pyrimidine synthesis-an effect traced to uric acid, which is 10-fold higher in the blood of humans than of mice and other non-primates. We find that uric acid directly inhibits uridine monophosphate synthase (UMPS) and consequently reduces the sensitivity of cancer cells to the chemotherapeutic agent 5-fluorouracil. Thus, media that better recapitulates the composition of human plasma reveals unforeseen metabolic wiring and regulation, suggesting that HPLM should be of broad utility.


Asunto(s)
Medios de Cultivo/química , Complejos Multienzimáticos/antagonistas & inhibidores , Orotato Fosforribosiltransferasa/antagonistas & inhibidores , Orotidina-5'-Fosfato Descarboxilasa/antagonistas & inhibidores , Ácido Úrico/metabolismo , Anciano , Animales , Técnicas de Cultivo de Célula , Línea Celular Tumoral , Fluorouracilo/farmacología , Glucosa/metabolismo , Humanos , Leucemia Mieloide Aguda/tratamiento farmacológico , Leucemia Mieloide Aguda/patología , Masculino , Ratones , Persona de Mediana Edad , Complejos Multienzimáticos/química , Orotato Fosforribosiltransferasa/química , Orotidina-5'-Fosfato Descarboxilasa/química , Dominios Proteicos , Pirimidinas/biosíntesis
7.
Cell ; 171(3): 642-654.e12, 2017 Oct 19.
Artículo en Inglés | MEDLINE | ID: mdl-29053970

RESUMEN

The mTORC1 kinase is a master growth regulator that senses many environmental cues, including amino acids. Activation of mTORC1 by arginine requires SLC38A9, a poorly understood lysosomal membrane protein with homology to amino acid transporters. Here, we validate that SLC38A9 is an arginine sensor for the mTORC1 pathway, and we uncover an unexpectedly central role for SLC38A9 in amino acid homeostasis. SLC38A9 mediates the transport, in an arginine-regulated fashion, of many essential amino acids out of lysosomes, including leucine, which mTORC1 senses through the cytosolic Sestrin proteins. SLC38A9 is necessary for leucine generated via lysosomal proteolysis to exit lysosomes and activate mTORC1. Pancreatic cancer cells, which use macropinocytosed protein as a nutrient source, require SLC38A9 to form tumors. Thus, through SLC38A9, arginine serves as a lysosomal messenger that couples mTORC1 activation to the release from lysosomes of the essential amino acids needed to drive cell growth.


Asunto(s)
Sistemas de Transporte de Aminoácidos/metabolismo , Aminoácidos Esenciales/metabolismo , Lisosomas/metabolismo , Complejos Multiproteicos/metabolismo , Serina-Treonina Quinasas TOR/metabolismo , Secuencia de Aminoácidos , Sistemas de Transporte de Aminoácidos/química , Sistemas de Transporte de Aminoácidos/genética , Animales , Arginina/metabolismo , Línea Celular , Línea Celular Tumoral , Humanos , Masculino , Diana Mecanicista del Complejo 1 de la Rapamicina , Ratones , Ratones Endogámicos C57BL , Alineación de Secuencia
8.
Cell ; 166(5): 1324-1337.e11, 2016 Aug 25.
Artículo en Inglés | MEDLINE | ID: mdl-27565352

RESUMEN

Mitochondria house metabolic pathways that impact most aspects of cellular physiology. While metabolite profiling by mass spectrometry is widely applied at the whole-cell level, it is not routinely possible to measure the concentrations of small molecules in mammalian organelles. We describe a method for the rapid and specific isolation of mitochondria and use it in tandem with a database of predicted mitochondrial metabolites ("MITObolome") to measure the matrix concentrations of more than 100 metabolites across various states of respiratory chain (RC) function. Disruption of the RC reveals extensive compartmentalization of mitochondrial metabolism and signatures unique to the inhibition of each RC complex. Pyruvate enables the proliferation of RC-deficient cells but has surprisingly limited effects on matrix contents. Interestingly, despite failing to restore matrix NADH/NAD balance, pyruvate does increase aspartate, likely through the exchange of matrix glutamate for cytosolic aspartate. We demonstrate the value of mitochondrial metabolite profiling and describe a strategy applicable to other organelles.


Asunto(s)
Redes y Vías Metabólicas , Metaboloma , Mitocondrias/metabolismo , Transporte de Electrón/genética , Células HeLa , Humanos , Ácido Pirúvico/metabolismo , Ácido Pirúvico/farmacología
9.
Cell ; 165(1): 153-164, 2016 Mar 24.
Artículo en Inglés | MEDLINE | ID: mdl-26972053

RESUMEN

Amino acids signal to the mTOR complex I (mTORC1) growth pathway through the Rag GTPases. Multiple distinct complexes regulate the Rags, including GATOR1, a GTPase activating protein (GAP), and GATOR2, a positive regulator of unknown molecular function. Arginine stimulation of cells activates mTORC1, but how it is sensed is not well understood. Recently, SLC38A9 was identified as a putative lysosomal arginine sensor required for arginine to activate mTORC1 but how arginine deprivation represses mTORC1 is unknown. Here, we show that CASTOR1, a previously uncharacterized protein, interacts with GATOR2 and is required for arginine deprivation to inhibit mTORC1. CASTOR1 homodimerizes and can also heterodimerize with the related protein, CASTOR2. Arginine disrupts the CASTOR1-GATOR2 complex by binding to CASTOR1 with a dissociation constant of ~30 µM, and its arginine-binding capacity is required for arginine to activate mTORC1 in cells. Collectively, these results establish CASTOR1 as an arginine sensor for the mTORC1 pathway.


Asunto(s)
Arginina/metabolismo , Proteínas Portadoras/metabolismo , Células HEK293 , Humanos , Péptidos y Proteínas de Señalización Intracelular , Diana Mecanicista del Complejo 1 de la Rapamicina , Complejos Multiproteicos/metabolismo , Multimerización de Proteína , Serina-Treonina Quinasas TOR/metabolismo
10.
Cell ; 161(1): 67-83, 2015 Mar 26.
Artículo en Inglés | MEDLINE | ID: mdl-25815986

RESUMEN

For organisms to coordinate their growth and development with nutrient availability, they must be able to sense nutrient levels in their environment. Here, we review select nutrient-sensing mechanisms in a few diverse organisms. We discuss how these mechanisms reflect the nutrient requirements of specific species and how they have adapted to the emergence of multicellularity in eukaryotes.


Asunto(s)
Bacterias/metabolismo , Transducción de Señal , Bacterias/genética , Evolución Biológica , Eucariontes/genética , Eucariontes/metabolismo , Alimentos
11.
Cell ; 162(3): 540-51, 2015 Jul 30.
Artículo en Inglés | MEDLINE | ID: mdl-26232224

RESUMEN

The mitochondrial electron transport chain (ETC) enables many metabolic processes, but why its inhibition suppresses cell proliferation is unclear. It is also not well understood why pyruvate supplementation allows cells lacking ETC function to proliferate. We used a CRISPR-based genetic screen to identify genes whose loss sensitizes human cells to phenformin, a complex I inhibitor. The screen yielded GOT1, the cytosolic aspartate aminotransferase, loss of which kills cells upon ETC inhibition. GOT1 normally consumes aspartate to transfer electrons into mitochondria, but, upon ETC inhibition, it reverses to generate aspartate in the cytosol, which partially compensates for the loss of mitochondrial aspartate synthesis. Pyruvate stimulates aspartate synthesis in a GOT1-dependent fashion, which is required for pyruvate to rescue proliferation of cells with ETC dysfunction. Aspartate supplementation or overexpression of an aspartate transporter allows cells without ETC activity to proliferate. Thus, enabling aspartate synthesis is an essential role of the ETC in cell proliferation.


Asunto(s)
Ácido Aspártico/biosíntesis , Proliferación Celular , Transporte de Electrón , Mitocondrias/metabolismo , Aspartato Aminotransferasa Citoplasmática/metabolismo , Ácido Aspártico/metabolismo , ADN Mitocondrial/genética , Humanos , Células Jurkat , Mutación , Fenformina/farmacología , Ácido Pirúvico/metabolismo
12.
Cell ; 158(5): 1094-1109, 2014 Aug 28.
Artículo en Inglés | MEDLINE | ID: mdl-25171410

RESUMEN

It is increasingly appreciated that oncogenic transformation alters cellular metabolism to facilitate cell proliferation, but less is known about the metabolic changes that promote cancer cell aggressiveness. Here, we analyzed metabolic gene expression in cancer cell lines and found that a set of high-grade carcinoma lines expressing mesenchymal markers share a unique 44 gene signature, designated the "mesenchymal metabolic signature" (MMS). A FACS-based shRNA screen identified several MMS genes as essential for the epithelial-mesenchymal transition (EMT), but not for cell proliferation. Dihydropyrimidine dehydrogenase (DPYD), a pyrimidine-degrading enzyme, was highly expressed upon EMT induction and was necessary for cells to acquire mesenchymal characteristics in vitro and for tumorigenic cells to extravasate into the mouse lung. This role of DPYD was mediated through its catalytic activity and enzymatic products, the dihydropyrimidines. Thus, we identify metabolic processes essential for the EMT, a program associated with the acquisition of metastatic and aggressive cancer cell traits.


Asunto(s)
Transición Epitelial-Mesenquimal , Pirimidinas/metabolismo , Animales , Carcinoma/metabolismo , Línea Celular Tumoral , Dihidrouracilo Deshidrogenasa (NADP)/genética , Citometría de Flujo , Perfilación de la Expresión Génica , Humanos , Mesodermo/citología , Mesodermo/metabolismo , Ratones , ARN Interferente Pequeño/metabolismo
13.
Nature ; 608(7921): 209-216, 2022 08.
Artículo en Inglés | MEDLINE | ID: mdl-35859173

RESUMEN

Mechanistic target of rapamycin complex 1 (mTORC1) regulates cell growth and metabolism in response to multiple nutrients, including the essential amino acid leucine1. Recent work in cultured mammalian cells established the Sestrins as leucine-binding proteins that inhibit mTORC1 signalling during leucine deprivation2,3, but their role in the organismal response to dietary leucine remains elusive. Here we find that Sestrin-null flies (Sesn-/-) fail to inhibit mTORC1 or activate autophagy after acute leucine starvation and have impaired development and a shortened lifespan on a low-leucine diet. Knock-in flies expressing a leucine-binding-deficient Sestrin mutant (SesnL431E) have reduced, leucine-insensitive mTORC1 activity. Notably, we find that flies can discriminate between food with or without leucine, and preferentially feed and lay progeny on leucine-containing food. This preference depends on Sestrin and its capacity to bind leucine. Leucine regulates mTORC1 activity in glial cells, and knockdown of Sesn in these cells reduces the ability of flies to detect leucine-free food. Thus, nutrient sensing by mTORC1 is necessary for flies not only to adapt to, but also to detect, a diet deficient in an essential nutrient.


Asunto(s)
Adaptación Fisiológica , Dieta , Proteínas de Drosophila , Drosophila melanogaster , Leucina , Sestrinas , Adaptación Fisiológica/genética , Alimentación Animal , Animales , Autofagia , Dieta/veterinaria , Proteínas de Drosophila/deficiencia , Proteínas de Drosophila/genética , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/genética , Drosophila melanogaster/metabolismo , Preferencias Alimentarias , Leucina/deficiencia , Leucina/metabolismo , Diana Mecanicista del Complejo 1 de la Rapamicina/metabolismo , Proteínas Mutantes/genética , Proteínas Mutantes/metabolismo , Neuroglía/metabolismo , Sestrinas/deficiencia , Sestrinas/genética , Sestrinas/metabolismo , Transducción de Señal
14.
Nature ; 607(7919): 610-616, 2022 07.
Artículo en Inglés | MEDLINE | ID: mdl-35831510

RESUMEN

Mechanistic target of rapamycin complex 1 (mTORC1) controls growth by regulating anabolic and catabolic processes in response to environmental cues, including nutrients1,2. Amino acids signal to mTORC1 through the Rag GTPases, which are regulated by several protein complexes, including GATOR1 and GATOR2. GATOR2, which has five components (WDR24, MIOS, WDR59, SEH1L and SEC13), is required for amino acids to activate mTORC1 and interacts with the leucine and arginine sensors SESN2 and CASTOR1, respectively3-5. Despite this central role in nutrient sensing, GATOR2 remains mysterious as its subunit stoichiometry, biochemical function and structure are unknown. Here we used cryo-electron microscopy to determine the three-dimensional structure of the human GATOR2 complex. We found that GATOR2 adopts a large (1.1 MDa), two-fold symmetric, cage-like architecture, supported by an octagonal scaffold and decorated with eight pairs of WD40 ß-propellers. The scaffold contains two WDR24, four MIOS and two WDR59 subunits circularized via two distinct types of junction involving non-catalytic RING domains and α-solenoids. Integration of SEH1L and SEC13 into the scaffold through ß-propeller blade donation stabilizes the GATOR2 complex and reveals an evolutionary relationship to the nuclear pore and membrane-coating complexes6. The scaffold orients the WD40 ß-propeller dimers, which mediate interactions with SESN2, CASTOR1 and GATOR1. Our work reveals the structure of an essential component of the nutrient-sensing machinery and provides a foundation for understanding the function of GATOR2 within the mTORC1 pathway.


Asunto(s)
Aminoácidos , Microscopía por Crioelectrón , Complejos Multiproteicos , Nutrientes , Subunidades de Proteína , Humanos , Aminoácidos/metabolismo , Arginina , Proteínas Portadoras , Leucina , Diana Mecanicista del Complejo 1 de la Rapamicina/metabolismo , Complejos Multiproteicos/química , Complejos Multiproteicos/metabolismo , Complejos Multiproteicos/ultraestructura , Nutrientes/metabolismo , Dominios Proteicos , Subunidades de Proteína/química , Subunidades de Proteína/metabolismo , Proteínas
15.
Nature ; 609(7929): 1005-1011, 2022 09.
Artículo en Inglés | MEDLINE | ID: mdl-36131016

RESUMEN

Lysosomes have many roles, including degrading macromolecules and signalling to the nucleus1. Lysosomal dysfunction occurs in various human conditions, such as common neurodegenerative diseases and monogenic lysosomal storage disorders (LSDs)2-4. For most LSDs, the causal genes have been identified but, in some, the function of the implicated gene is unknown, in part because lysosomes occupy a small fraction of the cellular volume so that changes in lysosomal contents are difficult to detect. Here we develop the LysoTag mouse for the tissue-specific isolation of intact lysosomes that are compatible with the multimodal profiling of their contents. We used the LysoTag mouse to study CLN3, a lysosomal transmembrane protein with an unknown function. In children, the loss of CLN3 causes juvenile neuronal ceroid lipofuscinosis (Batten disease), a lethal neurodegenerative LSD. Untargeted metabolite profiling of lysosomes from the brains of mice lacking CLN3 revealed a massive accumulation of glycerophosphodiesters (GPDs)-the end products of glycerophospholipid catabolism. GPDs also accumulate in the lysosomes of CLN3-deficient cultured cells and we show that CLN3 is required for their lysosomal egress. Loss of CLN3 also disrupts glycerophospholipid catabolism in the lysosome. Finally, we found elevated levels of glycerophosphoinositol in the cerebrospinal fluid of patients with Batten disease, suggesting the potential use of glycerophosphoinositol as a disease biomarker. Our results show that CLN3 is required for the lysosomal clearance of GPDs and reveal Batten disease as a neurodegenerative LSD with a defect in glycerophospholipid metabolism.


Asunto(s)
Ésteres , Glicerofosfolípidos , Fosfatos de Inositol , Lisosomas , Glicoproteínas de Membrana , Chaperonas Moleculares , Animales , Biomarcadores/líquido cefalorraquídeo , Biomarcadores/metabolismo , Niño , Ésteres/metabolismo , Glicerofosfolípidos/líquido cefalorraquídeo , Glicerofosfolípidos/metabolismo , Humanos , Fosfatos de Inositol/líquido cefalorraquídeo , Fosfatos de Inositol/metabolismo , Enfermedades por Almacenamiento Lisosomal/líquido cefalorraquídeo , Enfermedades por Almacenamiento Lisosomal/genética , Enfermedades por Almacenamiento Lisosomal/metabolismo , Lisosomas/metabolismo , Lisosomas/patología , Glicoproteínas de Membrana/deficiencia , Glicoproteínas de Membrana/genética , Glicoproteínas de Membrana/metabolismo , Ratones , Chaperonas Moleculares/genética , Chaperonas Moleculares/metabolismo , Lipofuscinosis Ceroideas Neuronales/líquido cefalorraquídeo , Lipofuscinosis Ceroideas Neuronales/genética , Lipofuscinosis Ceroideas Neuronales/metabolismo
16.
Cell ; 149(2): 274-93, 2012 Apr 13.
Artículo en Inglés | MEDLINE | ID: mdl-22500797

RESUMEN

The mechanistic target of rapamycin (mTOR) signaling pathway senses and integrates a variety of environmental cues to regulate organismal growth and homeostasis. The pathway regulates many major cellular processes and is implicated in an increasing number of pathological conditions, including cancer, obesity, type 2 diabetes, and neurodegeneration. Here, we review recent advances in our understanding of the mTOR pathway and its role in health, disease, and aging. We further discuss pharmacological approaches to treat human pathologies linked to mTOR deregulation.


Asunto(s)
Transducción de Señal , Serina-Treonina Quinasas TOR/metabolismo , Animales , Humanos , Enfermedades Metabólicas/metabolismo , Neoplasias/metabolismo , Enfermedades Neurodegenerativas/metabolismo , Células Madre/metabolismo
17.
Cell ; 169(2): 361-371, 2017 04 06.
Artículo en Inglés | MEDLINE | ID: mdl-28388417
18.
Cell ; 150(6): 1196-208, 2012 Sep 14.
Artículo en Inglés | MEDLINE | ID: mdl-22980980

RESUMEN

The mTOR Complex 1 (mTORC1) pathway regulates cell growth in response to numerous cues, including amino acids, which promote mTORC1 translocation to the lysosomal surface, its site of activation. The heterodimeric RagA/B-RagC/D GTPases, the Ragulator complex that tethers the Rags to the lysosome, and the v-ATPase form a signaling system that is necessary for amino acid sensing by mTORC1. Amino acids stimulate the binding of guanosine triphosphate to RagA and RagB but the factors that regulate Rag nucleotide loading are unknown. Here, we identify HBXIP and C7orf59 as two additional Ragulator components that are required for mTORC1 activation by amino acids. The expanded Ragulator has nucleotide exchange activity toward RagA and RagB and interacts with the Rag heterodimers in an amino acid- and v-ATPase-dependent fashion. Thus, we provide mechanistic insight into how mTORC1 senses amino acids by identifying Ragulator as a guanine nucleotide exchange factor (GEF) for the Rag GTPases.


Asunto(s)
Proteínas Adaptadoras Transductoras de Señales/metabolismo , Aminoácidos/metabolismo , Drosophila/metabolismo , Factores de Intercambio de Guanina Nucleótido/metabolismo , Proteínas/metabolismo , Transducción de Señal , Proteínas Adaptadoras Transductoras de Señales/química , Secuencia de Aminoácidos , Animales , GTP Fosfohidrolasas/metabolismo , Factores de Intercambio de Guanina Nucleótido/química , Células HEK293 , Humanos , Diana Mecanicista del Complejo 1 de la Rapamicina , Datos de Secuencia Molecular , Complejos Multiproteicos , Serina-Treonina Quinasas TOR
19.
Immunity ; 46(6): 1045-1058.e6, 2017 06 20.
Artículo en Inglés | MEDLINE | ID: mdl-28636954

RESUMEN

During antibody affinity maturation, germinal center (GC) B cells cycle between affinity-driven selection in the light zone (LZ) and proliferation and somatic hypermutation in the dark zone (DZ). Although selection of GC B cells is triggered by antigen-dependent signals delivered in the LZ, DZ proliferation occurs in the absence of such signals. We show that positive selection triggered by T cell help activates the mechanistic target of rapamycin complex 1 (mTORC1), which promotes the anabolic program that supports DZ proliferation. Blocking mTORC1 prior to growth prevented clonal expansion, whereas blockade after cells reached peak size had little to no effect. Conversely, constitutively active mTORC1 led to DZ enrichment but loss of competitiveness and impaired affinity maturation. Thus, mTORC1 activation is required for fueling B cells prior to DZ proliferation rather than for allowing cell-cycle progression itself and must be regulated dynamically during cyclic re-entry to ensure efficient affinity-based selection.


Asunto(s)
Linfocitos B/fisiología , Selección Clonal Mediada por Antígenos , Centro Germinal/inmunología , Complejos Multiproteicos/metabolismo , Linfocitos T Colaboradores-Inductores/inmunología , Serina-Treonina Quinasas TOR/metabolismo , Animales , Afinidad de Anticuerpos , Ciclo Celular , Proliferación Celular , Células Cultivadas , Citocinas/metabolismo , Diana Mecanicista del Complejo 1 de la Rapamicina , Ratones , Ratones Endogámicos C57BL , Ratones Transgénicos , Complejos Multiproteicos/genética , Receptores de Antígenos de Linfocitos B/genética , Sirolimus/farmacología , Hipermutación Somática de Inmunoglobulina , Serina-Treonina Quinasas TOR/genética
20.
Cell ; 146(3): 408-20, 2011 Aug 05.
Artículo en Inglés | MEDLINE | ID: mdl-21816276

RESUMEN

The nutrient- and growth factor-responsive kinase mTOR complex 1 (mTORC1) regulates many processes that control growth, including protein synthesis, autophagy, and lipogenesis. Through unknown mechanisms, mTORC1 promotes the function of SREBP, a master regulator of lipo- and sterolgenic gene transcription. Here, we demonstrate that mTORC1 regulates SREBP by controlling the nuclear entry of lipin 1, a phosphatidic acid phosphatase. Dephosphorylated, nuclear, catalytically active lipin 1 promotes nuclear remodeling and mediates the effects of mTORC1 on SREBP target gene, SREBP promoter activity, and nuclear SREBP protein abundance. Inhibition of mTORC1 in the liver significantly impairs SREBP function and makes mice resistant, in a lipin 1-dependent fashion, to the hepatic steatosis and hypercholesterolemia induced by a high-fat and -cholesterol diet. These findings establish lipin 1 as a key component of the mTORC1-SREBP pathway.


Asunto(s)
Proteínas Nucleares/metabolismo , Proteínas/metabolismo , Transducción de Señal , Proteína 1 de Unión a los Elementos Reguladores de Esteroles/metabolismo , Proteína 2 de Unión a Elementos Reguladores de Esteroles/metabolismo , Animales , Humanos , Metabolismo de los Lípidos , Masculino , Diana Mecanicista del Complejo 1 de la Rapamicina , Ratones , Complejos Multiproteicos , Fosfatidato Fosfatasa , Serina-Treonina Quinasas TOR
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